WO2015090511A1 - Light modulation element - Google Patents

Light modulation element Download PDF

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Publication number
WO2015090511A1
WO2015090511A1 PCT/EP2014/003192 EP2014003192W WO2015090511A1 WO 2015090511 A1 WO2015090511 A1 WO 2015090511A1 EP 2014003192 W EP2014003192 W EP 2014003192W WO 2015090511 A1 WO2015090511 A1 WO 2015090511A1
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Prior art keywords
liquid
light modulation
modulation element
compounds
element according
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PCT/EP2014/003192
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French (fr)
Inventor
Rachel TUFFIN
Rebecca PROCTOR
Simon SIEMIANOWSKI
Karl Skjonnemand
Owain Llyr Parri
Geoffrey LUCKHURST
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Merck Patent Gmbh
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Application filed by Merck Patent Gmbh filed Critical Merck Patent Gmbh
Priority to KR1020167019381A priority Critical patent/KR20160099695A/en
Priority to EP14806183.1A priority patent/EP3083884B1/en
Priority to US15/106,656 priority patent/US10416518B2/en
Priority to CN201480068773.1A priority patent/CN105874035A/en
Priority to JP2016541059A priority patent/JP2017501451A/en
Publication of WO2015090511A1 publication Critical patent/WO2015090511A1/en

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    • C09K19/0258Flexoelectric
    • GPHYSICS
    • G02OPTICS
    • G02FOPTICAL DEVICES OR ARRANGEMENTS FOR THE CONTROL OF LIGHT BY MODIFICATION OF THE OPTICAL PROPERTIES OF THE MEDIA OF THE ELEMENTS INVOLVED THEREIN; NON-LINEAR OPTICS; FREQUENCY-CHANGING OF LIGHT; OPTICAL LOGIC ELEMENTS; OPTICAL ANALOGUE/DIGITAL CONVERTERS
    • G02F1/00Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics
    • G02F1/01Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics for the control of the intensity, phase, polarisation or colour 
    • G02F1/13Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics for the control of the intensity, phase, polarisation or colour  based on liquid crystals, e.g. single liquid crystal display cells
    • G02F1/137Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics for the control of the intensity, phase, polarisation or colour  based on liquid crystals, e.g. single liquid crystal display cells characterised by the electro-optical or magneto-optical effect, e.g. field-induced phase transition, orientation effect, guest-host interaction or dynamic scattering
    • G02F1/139Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics for the control of the intensity, phase, polarisation or colour  based on liquid crystals, e.g. single liquid crystal display cells characterised by the electro-optical or magneto-optical effect, e.g. field-induced phase transition, orientation effect, guest-host interaction or dynamic scattering based on orientation effects in which the liquid crystal remains transparent
    • G02F1/1393Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics for the control of the intensity, phase, polarisation or colour  based on liquid crystals, e.g. single liquid crystal display cells characterised by the electro-optical or magneto-optical effect, e.g. field-induced phase transition, orientation effect, guest-host interaction or dynamic scattering based on orientation effects in which the liquid crystal remains transparent the birefringence of the liquid crystal being electrically controlled, e.g. ECB-, DAP-, HAN-, PI-LC cells
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    • C09K19/10Non-steroidal liquid crystal compounds containing at least two non-condensed rings containing at least two benzene rings
    • C09K19/20Non-steroidal liquid crystal compounds containing at least two non-condensed rings containing at least two benzene rings linked by a chain containing carbon and oxygen atoms as chain links, e.g. esters or ethers
    • C09K19/2007Non-steroidal liquid crystal compounds containing at least two non-condensed rings containing at least two benzene rings linked by a chain containing carbon and oxygen atoms as chain links, e.g. esters or ethers the chain containing -COO- or -OCO- groups
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    • C09K19/30Non-steroidal liquid crystal compounds containing at least two non-condensed rings containing saturated or unsaturated non-aromatic rings, e.g. cyclohexane rings
    • C09K19/3001Cyclohexane rings
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    • C09K19/08Non-steroidal liquid crystal compounds containing at least two non-condensed rings
    • C09K19/30Non-steroidal liquid crystal compounds containing at least two non-condensed rings containing saturated or unsaturated non-aromatic rings, e.g. cyclohexane rings
    • C09K19/3001Cyclohexane rings
    • C09K19/3066Cyclohexane rings in which the rings are linked by a chain containing carbon and oxygen atoms, e.g. esters or ethers
    • GPHYSICS
    • G02OPTICS
    • G02FOPTICAL DEVICES OR ARRANGEMENTS FOR THE CONTROL OF LIGHT BY MODIFICATION OF THE OPTICAL PROPERTIES OF THE MEDIA OF THE ELEMENTS INVOLVED THEREIN; NON-LINEAR OPTICS; FREQUENCY-CHANGING OF LIGHT; OPTICAL LOGIC ELEMENTS; OPTICAL ANALOGUE/DIGITAL CONVERTERS
    • G02F1/00Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics
    • G02F1/01Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics for the control of the intensity, phase, polarisation or colour 
    • G02F1/13Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics for the control of the intensity, phase, polarisation or colour  based on liquid crystals, e.g. single liquid crystal display cells
    • G02F1/133Constructional arrangements; Operation of liquid crystal cells; Circuit arrangements
    • G02F1/1333Constructional arrangements; Manufacturing methods
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    • C09K19/08Non-steroidal liquid crystal compounds containing at least two non-condensed rings
    • C09K19/30Non-steroidal liquid crystal compounds containing at least two non-condensed rings containing saturated or unsaturated non-aromatic rings, e.g. cyclohexane rings
    • C09K19/3001Cyclohexane rings
    • C09K19/3003Compounds containing at least two rings in which the different rings are directly linked (covalent bond)
    • C09K2019/3004Cy-Cy
    • GPHYSICS
    • G02OPTICS
    • G02FOPTICAL DEVICES OR ARRANGEMENTS FOR THE CONTROL OF LIGHT BY MODIFICATION OF THE OPTICAL PROPERTIES OF THE MEDIA OF THE ELEMENTS INVOLVED THEREIN; NON-LINEAR OPTICS; FREQUENCY-CHANGING OF LIGHT; OPTICAL LOGIC ELEMENTS; OPTICAL ANALOGUE/DIGITAL CONVERTERS
    • G02F1/00Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics
    • G02F1/01Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics for the control of the intensity, phase, polarisation or colour 
    • G02F1/13Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics for the control of the intensity, phase, polarisation or colour  based on liquid crystals, e.g. single liquid crystal display cells
    • G02F1/137Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics for the control of the intensity, phase, polarisation or colour  based on liquid crystals, e.g. single liquid crystal display cells characterised by the electro-optical or magneto-optical effect, e.g. field-induced phase transition, orientation effect, guest-host interaction or dynamic scattering
    • G02F1/13706Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics for the control of the intensity, phase, polarisation or colour  based on liquid crystals, e.g. single liquid crystal display cells characterised by the electro-optical or magneto-optical effect, e.g. field-induced phase transition, orientation effect, guest-host interaction or dynamic scattering the liquid crystal having positive dielectric anisotropy

Definitions

  • flexoelectric polarisable liquid-crystalline medium characterized in that the switching from a boundary state A to a boundary state B involves a combination of a flexoelectric switching regime and a dielectric switching regime upon application of an electric field.
  • the switching from a boundary state A to a boundary state B involves a combination of a distinct flexoelectric switching regime and a distinct dielectric switching regime upon application of an electric field.
  • the present invention relates to the use of such light modulation elements in an electro-optical device, i.e. in a LCD display devices, and further to electro-optical devices comprising the light modulation element according to the present invention. Moreover, the invention relates to a method of production of the light modulation element according to the present invention.
  • LCDs Liquid Crystal Displays
  • TN twisted nematic
  • the super twisted nematic (STN)-mode more recently the optically compensated bend (OCB)-mode, the electrically controlled birefringence (ECB)-mode with their various modifications, as e. g. the vertically aligned nematic (VAN), the patterned ITO vertically aligned nematic (PVA)-, the polymer stabilized vertically aligned nematic (PSVA)- mode, the multi domain vertically aligned nematic (MVA)-mode, as well as others, have been increasingly used.
  • VAN vertically aligned nematic
  • PVA patterned ITO vertically aligned nematic
  • PSVA polymer stabilized vertically aligned nematic
  • MVA multi domain vertically aligned nematic
  • nematic liquid crystal displays are operated based on dielectric switching, i.e. the coupling between dielectric anisotropy ( ⁇ ) of the liquid crystal and an applied electric field, which gives rise to an electro- optic response.
  • This response is quadratic with the applied field, i.e. it is not polar, and arises from the switching of the liquid crystal molecules by the field.
  • the switching of the liquid crystal molecules takes place in a plane containing the direction of the applied electric field, which means that an electric field is applied across a liquid crystal sandwich cell, will switch the molecules out-of- plane, i.e. in a plane perpendicular to the cell substrates.
  • This kind of switching gives an electro-optic response having a contrast strongly dependent on the viewing angle.
  • electro-optical modes employing an electrical field substantially parallel to the substrates, respectively the liquid crystal layer, like e.g. the In Plane Switching (short IPS) mode (as disclosed e.g. in DE 40 00 451 and EP 0 588 568) and the Fringe Field Switching (FFS) mode.
  • the latter mentioned electro-optical modes which have good viewing angle properties and good response times, are increasingly used for LCDs for modern desktop monitors and even for displays for TV and for multimedia applications.
  • new display modes have been proposed exploiting the so-called "flexoelectric" effect.
  • the flexoelectric effect was first discussed as a liquid crystal analogue to the piezoelectric effect in R.B. Meyer, Phys. Rev. Lett. 1969, 22, 918 - 921.
  • Flexoelectricity is the generation of a spontaneous polarization in a liquid crystal due to a deformation of the director, or conversely, the deformation of the director due to an applied electric field, which is also called flexoelectric switching.
  • the flexoelectric effect arises from molecules with a shape asymmetry.
  • the first cases to be considered were wedge and banana shaped molecules. Wedge shaped molecules with longitudinal dipoles show spontaneous polarization when splayed. Likewise, banana shaped molecules with transverse dipoles exhibit spontaneous polarization under bend deformation.
  • the flexoelectric effect has a large influence on many phenomena in liquid crystals. Technologically it plays a key role in some novel device applications.
  • WO 2005/071477 A1 discloses a liquid crystal device comprising a flexoelectric liquid crystal bulk layer, wherein an
  • inhomogeneous electric field in a direction substantially parallel to the substrates is generated by an interdigitated electrode pattern. It is preferred that the average polarization direction in a direction parallel to the substrates in field-off state is orthogonal to the direction in which an electric field is to be generated. In this case, both the rise and the fall times become field-dependent and the total response time is thereby decreased.
  • WO 2008/104533 A1 discloses a hybrid aligned nematic LC mode (HAN).
  • the liquid-crystalline molecules which are sandwiched between two substrates, align perpendicular to one substrate surface, but parallel to the other substrate surface. This surface orientation is fixing.
  • the two substrates require different alignment layers.
  • such a deformation is induced caused by the different surface orientations of the liquid-crystalline molecules at the two substrate surfaces and by the elastic forces among the individual liquid-crystalline molecules (due to a continuous transition from parallel to perpendicular orientation across the thickness of the liquid-crystalline molecule layer), so that a flexoelectric polarisation is generated.
  • the liquid-crystalline molecules, or their projection into the display plane will rotate. Due to the flexoelectric polarisation, the direction of rotation of the molecules then depends on the sign of the voltage.
  • Document WO 2008/104533 A1 further describes arrangements where the electrodes are arranged as in an IPS display and arrangements where an additional base electrode is disposed on the same substrate, as in a fringe-field switching (FFS) display. Moreover, it discloses arrangements where in-plane electrodes or FFS electrodes are optionally disposed on the substrate with parallel orientation of the liquid-crystalline molecules or on the substrate with vertical orientation of the liquid-crystalline molecules.
  • the former is described there as the embodiment for liquid-crystalline media with positive ⁇ , the latter as the embodiment for liquid-crystalline media with negative ⁇ .
  • there have been many experimental studies of the flexoelectric effect For example, Takezoe et al. describe in Liquid Crystals, 36, 2009, 1119- 124 an experimental method for the determination of the
  • This compound was introduced into a homeotropically aligned cell, which contained two parallel 12pm thick strips of aluminium foil serving as spacers and electrodes with a gap of 2 mm.
  • is the induced birefringence
  • K33 the bend elastic constant
  • E the strength of the applied field
  • d the thickness of the liquid-crystalline medium layer
  • n 0 , n e are the ordinary and extraordinary refractive indices, respectively.
  • a general object of the present invention is to alleviate the above problems and to provide an alternative to the commonly known light modulation elements of the prior art, or preferably, to provide an improved light modulation element.
  • an object of the invention is to provide a light modulation element having the capability of generating high contrast and wide viewing angle images and exhibiting a fast in- plane switching, more particularly to reduce the total switching time enabling a satisfactory display of moving images.
  • Other objects of the present invention are to decrease the driving voltage of the light modulation element, to increase the optical aperture ratio and to increase the transmittance.
  • the improvements of these parameters are in particularly important for portable applications, such as cellular phones.
  • the inventors of the present invention have found that the converse flexoelectric effect can be utilized in a light modulation element, which utilizes a combination of flexoelectric and dielectric switching.
  • the invention relates to a light modulation element comprising a flexoelectric polarisable liquid-crystalline medium, characterized in that the switching from a boundary state A to a boundary state B involves a combination of a distinct flexoelectric switching regime and a distinct dielectric switching regime upon application of an electric field.
  • the light modulation element according to the present invention exhibits especially, beside other beneficial properties, the following properties:
  • the invention relates also to a method of production of a light modulation element as described above and below.
  • the invention further relates to the use of a light modulation element, as described above and below, in liquid crystal displays (LCDs) or other optical or electrooptical devices.
  • LCDs liquid crystal displays
  • the invention further relates to an electrooptical device, such as an LCD, comprising at least one light modulation element as described above and below.
  • liquid crystal relates to materials having liquid-crystalline mesophases in some temperature ranges (thermotropic LCs) or in some concentration ranges in solutions (lyotropic LCs). They obligatorily contain mesogenic compounds.
  • mesogenic compound or “liquid crystal compound” are taken into mean a compound comprising one or more calamitic (rod- or board/lath-shaped) or discotic (disk-shaped) mesogenic group.
  • mesogenic group means a group with the ability to induce liquid- crystalline phase (or mesophase) behaviour.
  • the compounds comprising mesogenic groups do not necessarily have to exhibit a liquid-crystalline mesophase themselves. It is also possible that they show liquid-crystalline mesophases only in mixtures with other compounds.
  • a calamitic mesogenic group usually comprises a mesogenic core.
  • the mesogenic core consists of one or more aromatic or non-aromatic cyclic groups, which are connected to each other directly or via linkage groups and optionally comprising terminal groups attached to the ends of the mesogenic core.
  • the mesogenic group comprises one or more groups that are laterally attached to the long side of the mesogenic core, wherein these terminal and lateral groups are usually selected e.g. from carbyl or hydrocarbyl groups, polar groups like halogen, nitro, hydroxy, etc..
  • the term "liquid-crystalline medium” is taken to mean a material, which exhibits liquid-crystalline properties under certain conditions. In particular, the term is taken to mean a material, which forms a nematic liquid-crystalline phase under certain conditions.
  • a liquid-crystalline medium may comprise one or more liquid- crystalline compounds and in addition further substances.
  • alignment or "orientation” relates to the alignment (orientational ordering) of anisotropic units of material such as small molecules or fragments of big molecules in a common direction named "alignment direction".
  • alignment direction In an aligned layer of liquid-crystalline material or medium, the liquid-crystalline director coincides with the alignment direction so that the alignment direction corresponds to the direction of the anisotropy axis of the material.
  • uniform orientation or “uniform alignment” of an liquid- crystalline material, for example in a layer of the material, mean that the long molecular axes (in case of calamitic compounds) or the short molecular axes (in case of discotic compounds) of the liquid-crystalline molecules are oriented substantially in the same direction. In other words, the lines of liquid-crystalline director are parallel.
  • planar orientation/alignment for example in a layer of an liquid- crystalline material, means that the long molecular axes (in case of calamitic compounds) or the short molecular axes (in case of discotic compounds) of the liquid-crystalline molecules are oriented substantially parallel to the main plane of the layer.
  • homeotropic orientation/alignment for example in a layer of an liquid-crystalline material, means that the long molecular axes (in case of calamitic compounds) or the short molecular axes (in case of discotic compounds) of the liquid-crystalline molecules are oriented substantially perpendicular to the main plane of the layer.
  • a flexoelectric polarisable liquid-crystalline medium is taken to mean a liquid-crystalline medium, which has a significant value of at least one of the flexoelectric coefficients ei and ⁇ 3, preferably a high value of ⁇ 3.
  • the bend flexoelectric coefficient e 3 can be defined according to R.B. Meyer, Phys. Rev. Lett. 1969, 22, 918-921 , as wherein (a>b), (a) is the length of the molecule, (b) is the width of the molecule, ( ⁇ ) is the traverse component of the dipole moment and ( ⁇ ) is the opening angle of the molecule. In general, there exist splay
  • compounds showing suitable values for the bend flexoelectric coefficient ⁇ 3 are compounds having a dipole associated with a bend in the average molecular structure as defined by Helfrich et al. Z. Naturforsch 1970, 26a, p833-835.
  • Examples such molecules are the so-called “bent core” liquid crystals.
  • the term "bent-core molecule” or “banana-shaped molecule” relates to the three-dimensional shape of molecules, having a non-linear shape and a corresponding opening angle of less than 180°.
  • boundary state is taken to mean a state in which the transmission reaches a maximum or minimum value and changes no further or virtually no further if no electrical field is applied.
  • the light modulation element preferably has two boundary states, one, a boundary state A with a corresponding transmission TA when no electrical field is applied the so-called "off state, and the other, a boundary state B with a corresponding transmission TB when an electrical field is applied the so-called "on" state, whereby:
  • the term light transmission is taken to mean the passage of electromagnetic radiation in the visible (VIS), near infrared (near-IR, NIR) and UV-A region through the light modulation element.
  • VIS visible
  • NIR near infrared
  • UV-A region through the light modulation element.
  • light in the present application is
  • UV-A light, visible light and near infrared light together are taken to mean radiation having a wavelength of 320 to 3000 nm.
  • the term in-plane electric field is taken to mean employing a DC electrical field substantially parallel to the substrates, respectively the liquid crystal layer.
  • the wavelength of light generally referred to in this application is 550 nm, unless explicitly specified otherwise.
  • the birefringence ⁇ herein is defined as,
  • n e the extraordinary refractive index and n 0 is the ordinary refractive index
  • n av . the average refractive index
  • the extraordinary refractive index n e and the ordinary refractive index n 0 can be measured using an Abbe refractometer.
  • the birefringence ( ⁇ ) can then be calculated.
  • the induced retardation can be written as wherein (n e ) is the extraordinary refractive index, (n 0 ) is the ordinary refractive index, (d) is the thickness of the layer of the liquid-crystalline medium, e 3 is the bend flexoelectric coefficient, K 33 is the bend
  • dielectrically positive is used for compounds or components with ⁇ > 3.0, "dielectrically neutral” with -1.5 ⁇ ⁇ ⁇ 3.0 and “dielectrically negative” with ⁇ ⁇ -1.5.
  • is determined at a frequency of 1 kHz and at 20 °C.
  • the dielectric anisotropy of the respective compound is determined from the results of a solution of 10 % of the respective individual compound in a nematic host mixture. In case the solubility of the respective compound in the host medium is less than 10 % its concentration is reduced by a factor of 2 until the resultant medium is stable enough at least to allow the determination of its properties.
  • the concentration is kept at least at 5 %, however, in order to keep the significance of the results a high as possible.
  • the capacitance of the test mixtures are determined both in a cell with homeo- tropic and with homogeneous alignment.
  • the cell gap of both types of cells is approximately 20 m.
  • the voltage applied is a rectangular wave with a frequency of 1 kHz and a root mean square value typically of 0.5 V to 1.0 V; however, it is always selected to be below the capacitive threshold of the respective test mixture.
  • the dielectric anisotropy ( ⁇ ) is defined as ( ⁇
  • the dielectric permittivity of the compounds is determined from the change of the respective values of a host medium upon addition of the compounds of interest. The values are extrapolated to a
  • clearing point means the temperature at which the transition between the mesophase with the highest temperature range and the isotropic phase occurs.
  • threshold voltage for the present invention relates to the capacitive threshold (V0), also called the Freedericks threshold, unless explicitly indicated otherwise.
  • V0 capacitive threshold
  • V10 optical threshold for 10% relative contrast
  • Suitable liquid crystal media in accordance with the present invention are a flexoelectric polarisable upon application of an in-plane electric field.
  • a suitable liquid-crystalline medium in accordance with the present invention comprises 2 or more, preferably at least 3, particularly preferably at least 4 and very particularly preferably at least 5, different liquid- crystalline compounds. If only 2 liquid-crystalline compounds are employed, their typical concentration ranges from about 70% to 99% by weight of the total mixture.
  • the liquid-crystalline media used in the light modulation element according to the present invention exhibits an absolute value of the bend flexoelectric coefficient I e31 , which is in the range from approximately 1 pCm "1 to approximately 60 pCm "1 , more preferably in the range from approximately 2 pCm "1 to approximately 30 pCm " 1 , and most preferably in the range from approximately 3 pCm "1 to approximately 20 pCm "1 .
  • the light modulation element according to the present invention comprises a liquid-crystalline medium, which comprises at least one liquid-crystalline compound having a dipole associated with a bend in the average molecular structure and which show suitable high values for the bend flexoelectric coefficient e3.
  • Suitable bend flexoelectric coefficients I e31 are preferably in the range from approximately 1 pCm “ to approximately 100 pCm “1 , more preferably in the range from approximately 5 pCm “1 to approximately 40 pCm “1 , most preferably in the range from approximately 13 pCm " 1 to approximately 18 pCm ⁇ Molecules, which have a dipole associated with a bend in the average molecular structure, and which show suitable high values for e3 are preferably selected from the so-called bent-core liquid-crystalline compounds.
  • Suitable bent-core liquid-crystalline compounds are preferably, selected from the group of compounds of formula I,
  • Y and Y 2 are in each case independently -0-, -S-, -CO-,
  • is H or alkyl with 1 to 4 C atoms
  • M 1 and M 2 are independently of each other a mesogenic group
  • B is a bivalent ring group that imparts a bent structure to the compound
  • R and R 2 denote, each and independently from another, H, F, CI, CN,
  • OCN, SCN, SF 5 ,NO2 or a straight-chain or branched alkyl radical with up to 25 C atoms which may be unsubstituted, mono- or polysubstituted by halogen or CN, it being also possible for one or more non-adjacent CH 2 groups to be replaced, in each case independently from one another, by -0-, -S-, -NH-, -N(CH 3 )-, -CO-, -COO-, -OCO-, -OCO-O-, - S-CO-, -CO-S-, -CH CH- or -C ⁇ C- in such a manner that oxygen atoms are not linked directly to one another.
  • the bivalent ring group B in formula I is selected to impart to the inventive compound a bent or banana-shaped structure with a molecular bending angle a as described above.
  • the opening angle imparted to compounds of formula I by the bivalent ring group B is preferably from approximately 90 to approximately 165 °, in particular from approximately 105 to
  • B is preferably a mono- or bicyclic aromatic group that may also contain up to three hetero atoms, and is for example selected from the following groups
  • U is CR' or N
  • V is CR' 2) NR ⁇ O or S, R' is H or alkyl with 1 to 7 C atoms, and the monocyclic five-membered groups can be substituted with 1 , 2 or 3, the monocyclic six-membered groups with 1 , 2, 3 or 4 and the bicyclic groups with 1, 2, 3, 4, 5 or 6 groups L, with L being in each case
  • B is selected from the following groups
  • R' and L have one of the meanings given above and r is 0, 1, 2 or 3.
  • R is 0, 1, 2 or 3.
  • at least one of R" denotes H.
  • B is 1,3-phenylene that is optionally substituted with L in the
  • L 1 , L 2 and L 3 preferably selected from F, CI, CN, OH, NO 2( CH 3 , C 2 H 5 , OCH 3 , OC 2 H 5 , COCH 3 , COC 2 H 5) COOCH 3) COOC 2 H 5 , CF 3 , OCF 3 , OCHF 2) OC 2 F 5 , in particular F, CI, CN, CH 3 , C 2 H 5 , OCH 3 , COCH 3 , CF 3 and OCF 3) most preferably F, CI, CN, CH 3 , OCH 3 and OCF 3 .
  • formula I is preferably selected of formula 1 * 1
  • a 1 and A 2 are each independently 1 ,4-phenylene in which, in addition, one or more CH groups may be replaced by N, 1 ,4- cyclohexylene in which, in addition, one or two non-adjacent CH 2 groups may be replaced by O and/or S, 1 ,4- cyclohexenylene, 1 ,4-bicyclo(2,2,2)octylene, piperidine-1 ,4- diyl, naphthalene-2,6-diyl, decahydronaphthalene-2,6-diyl, or 1 ,2,3,4-tetrahydro-naphthalene-2,6-diyl, it being possible for all these groups to be unsubstituted, mono- or polysubstituted with F, CI, SCN, CN, NO 2 ,SF 5 or optionally fluorinated alkyl, alkoxy, alkylcarbonyl or alkoxycarbonyl with 1 to 7 C atom
  • has the meaning of formula I, and ml is 0, 1, 2 or 3.
  • M 2 in formula I is preferably selected of formula 2 -A -(Z-A 2 ) m2 - l*2 wherein A 1 , Z and A 2 have one of the meanings of formula 1 and m2 is 0, 1 , 2 or 3.
  • Preferred compounds of formula I are those wherein ml and m2 are independently of each other 1, 2 or 3. Further preferred are compounds wherein the mesogenic groups M and M 2 comprise two or three five- or six-membered rings. Especially preferred are compounds wherein one of ml and m2 is 2 or 3 and the other is 1 , 2 or 3, very preferably both ml and m2 are 2 or 3, in particular 2. Further preferred are compounds wherein m1+m2 is 3, 4, 5 or 6. Another preferred embodiment relates to compounds wherein at least one radical Z in formula 1 * 1 and/or 2 denotes -C ⁇ C ⁇ . These compounds are especially suitable for uses where highly birefringent materials are needed.
  • a smaller group of preferred mesogenic groups M 1 and M 2 is listed below.
  • Phe in these groups is 1 ,4-phenylene that may also be substituted by 1 to 4 groups L, with L being F, CI, CN, SCN, NO 2 , SF 5 or an alkyl, alkoxy, alkylcarbonyl or alkoxycarbonyl group having 1 to 7 C atoms wherein one or more H atoms may be substituted by F or CI, and Cyc is 1 ,4-cyclohexylene.
  • Z has one of the meanings of formula 1 * 1.
  • the list comprises the following subformulae as well as their mirror images
  • Z is preferably -COO-, -OCO-, -CH 2 CH 2 -, -C ⁇ C- or a single bond.
  • M and M 2 are selected from the following formulae and their mirror images
  • L is preferably F, CI, CN, OH, NO 2 , CH 3 , C 2 H 5) OCH 3 , OC 2 H 5 , COCH 3 , COC 2 H 5) COOCH 3) COOC 2 H 5( CF 3 , OCF 3> OCHF 2> OC 2 F 5) in particular F, CI, CN, CH 3 , C 2 H 5 , OCH 3 , COCH 3 , CF 3 and OCF 3 , most preferably F, CI, CH 3 , OCH 3 and OCF 3 .
  • R 1 or R 2 in formula I is an alkyl or alkoxy radical, i.e. where the terminal CH 2 group is replaced by -O-, this may be straight-chain or branched.
  • R 1 or R 2 is straight chain alkyl or alkoxy with 1 to 8 C atoms.
  • Halogen is F, CI, Br, I, preferably F or CI.
  • R 1 or R 2 in formula I can be a polar or a non-polar group.
  • R is selected from CN, N0 2) halogen, OCH 3) OCN, SCN, COR 5 , COOR 5 or a mono- oligo- or polyfluorinated alkyl or alkoxy group with 1 to 4 C atoms.
  • R 5 is optionally fluorinated alkyl with 1 to 4, preferably 1 to 3 C atoms.
  • polar groups R are selected of F, CI, CN, NO 2 , OCH 3 , COCH 3 , COC 2 H 5) COOCH 3 , COOC 2 H 5) CF 3 , C 2 F 5 , OCF 3 , OCHF 2 , and OC 2 F 5 , in particular of F, CI, CN, OCH 3 and OCF 3 .
  • R 1 or R 2 is preferably alkyl with up to 15 C atoms or alkoxy with 2 to 15 C atoms.
  • R or R 2 in formula I can be an achiral or a chiral group.
  • Preferred chiral groups R 1 or R 2 are 2-alkyl, 2-alkoxy, 2-methylalkyl, 2- methylalkoxy, 2-fluoroalkyl, 2-fluoroalkoxy, 2-(2-ethin)-alkyl, 2-(2-ethin)- alkoxy, 1 ,1 ,1 -trifluoro-2-alkyl and 1 ,1 ,1-trifluoro-2-alkoxy.
  • achiral branched group R 1 or R 2 may occasionally be of importance, for example, due to a reduction in the tendency towards crystallization.
  • Branched groups of this type generally do not contain more than one chain branch.
  • Preferred compounds of formula I are the following
  • L 1 and L 2 has each and independently from another one of the meanings of L, R 1 and R 2 have each and independently and in each occurrence one of the meanings as given above in formula I.
  • R 1 and R 2 denote a straight chain or branched alkyl or alkoxy with 1 to 15 C atoms.
  • the compounds of formula I can be synthesized according to or in analogy to methods which are known per se and which are described in standard works of organic chemistry such as, for example, Houben-Weyl, Methoden der organischen Chemie, Thieme-Verlag, Stuttgart. Some specific methods of preparation can be taken from the examples.
  • the liquid-crystalline medium comprises one or more dielectrically positive compounds, preferably selected from the group of compounds of formulae II and III,
  • L 21 denotes F
  • X 21 denotes halogen, halogenated alkyl or alkoxy having 1 to 3 C atoms or halogenated alkenyl or alkenyloxy hav ⁇
  • L and L independently of one another, denote H or F, preferably
  • n denotes 0, 1 , 2 or 3, preferably 1 or 3 and particularly preferably 1.
  • Preferred compounds are selected from the group of compounds of subformulae 11-1 and II-2:
  • L 23 and L 24 independently of one another, denote H or F, preferably L 23 denotes F, and
  • X 21 preferably denotes F or OCF 3 , particularly preferably F, and, in the case of formula II-3,
  • the media in accordance with the present invention preferably comprise, alternatively or in addition to the compounds of the formulae 111-1 and/or III-2, one or more compounds of the formula III-3
  • the liquid-crystal medium preferably comprises compounds selected from the group of the compounds of the formulae 11-1 to II-4 in which L 21 and L 22 and/or L 23 and L 24 both denote F.
  • the liquid-crystal medium comprises compounds selected from the group of the compounds of the formulae II-2 and II-3 in which L 21 , L 22 , L 23 and L 24 all denote F.
  • the liquid-crystal medium preferably comprises one or more compounds of the formula 11-1.
  • the compounds of the formula 11-1 are preferably selected from the group of the compounds of the formulae 11-1 a to ll-1e, preferably of formula 11-1 d: in which the parameters have the respective meanings indicated above, and L 25 and L 26 , independently of one another and of the other parameters, denote H or F, and preferably in the formulae ll-1a and ll-1 b, L 21 and L 22 both denote F, in the formulae ll-1c and 11-1 d.
  • L 21 and L 22 both denote F and/or L 23 and L 24 both denote F, and in formula ll-1e, L 21 , L 22 and L 23 denote F.
  • the liquid-crystal medium preferably comprises one or more compounds of the formula 11-2, which are preferably selected from the group of the compounds of the formulae ll-2a to ll-2j, preferably of formula ll-2j:
  • L 25 to L 28 independently of one another, denote H or F, preferably L 27 and L 28 both denote H, particularly preferably L 26 denotes H.
  • the liquid-crystal medium preferably comprises compounds selected from the group of the compounds of the formulae ll-1a to ll-1e in which L 21 and L 22 both denote F and/or L 23 and L 24 both denote F. ln a preferred embodiment, the liquid-crystal medium comprises compounds selected from the group of the compounds of the formulae ll-1a to 11-1 i in which L 21 , L 22 , L 23 and L 24 all denote F.
  • Especially preferred compounds of the formula II-2 are the compounds of the following formulae:
  • R 21 and X 21 have the meanings indicated above, and X 21 preferably denotes F.
  • the liquid-crystal medium preferably comprises one or more compounds of the formula 111-1.
  • Suitable compounds of the formula 111-1 are preferably selected from the group of the compounds of the formulae 111-1 a to lll-1j, preferably from formulae lll-1c, lll-1f, lll-1g and lll-1j:
  • the parameters have the meanings given above and preferably in which the parameters have the respective meanings indicated above, and the parameters L 35 and L 36 , independently of one another and of the other parameters, denote H or F.
  • the liquid-crystal medium preferably comprises one or more compounds of the formula lll-1c, which are preferably selected from the group of the compounds of the formulae lll-1c-1 to lll-1c-5, preferably of formulae III- 1c-3 and lll-1c-4: in which R has the meaning indicated above.
  • the liquid-crystal medium preferably comprises one or more compounds of the formula lll-1f, which are preferably selected from the group of the compounds of the formulae lll-1f-1 to lll-1f-5, preferably of formulae lll-1f-1 , lll-1f-2, lll-1f-4 and lll-lf-5, more preferably of formulae lll-1f-1 , lll-1f-4 and lll-1f-5, more preferably:
  • the liquid-crystal medium preferably comprises one or more compounds of the formula lll-1g, which are preferably selected from the group of the compounds of the formulae lll-1g-1 to IIMg-5, preferably of formula lll-1g-3:
  • the liquid-crystal medium preferably comprises one or more compounds of the formula lll-1h, which are preferably selected from the group of the compounds of the formulae lll-1h-1 to lll-1h-3, preferably of the formula
  • the liquid-crystal medium preferably comprises one or more compounds of the formula ⁇ -1 ⁇ , which are preferably selected from the group of the compounds of the formulae ⁇ -1 ⁇ -1 and ⁇ -1 ⁇ -2, preferably of the formula lll-1i-2:
  • X 31 preferably denotes F.
  • the liquid-crystal medium preferably comprises one or more compounds of the formula lll-1j, which are preferably selected from the group of the compounds of the formulae lll-1j-1 and lll-1j-2 ( preferably of the formula lll-1j-1: in which the parameters have the meanings given above.
  • the liquid-crystal medium preferably comprises one or more compounds of the formula 111-2.
  • the compounds of the formula 111-2 are preferably selected from the group of the compounds of the formulae 111-23 and lll-2b:
  • the liquid-crystal medium preferably comprises one or more compounds of the formula lll-2a, which are preferably selected from the group of the compounds of the formulae lll-2a-1 to lll-2a-6: in which R 31 has the meaning indicated above.
  • the liquid-crystal medium preferably comprises one or more compounds of the formula lll-2b, which are preferably selected from the group of the compounds of the formulae lll-2b-1 to lll-2b-4, preferably lll-2b-4:
  • the media in accordance with the present invention preferably comprise one or more compounds of the formula 111— 3
  • the liquid-crystalline medium comprises one or more, preferably dielectrically neutral, compounds of the formula IV in which R 41 and R 42 , independently of one another, have the meaning indicated above for R 21 under formula II, preferably R 41 denotes alkyl and R 42 denotes alkyl or alkoxy or R 41 denotes alkenyl and R denotes alkyl,
  • the liquid-crystalline media in accordance with the present invention preferably comprise one or more compounds selected from the group of the compounds of the formulae IV-1 to IV-6: lv-1 in which R 4 and R 42 have the respective meanings indicated above under formula IV, and, in the formulae IV-1 , IV-5 and IV-6, R 41 preferably denotes alkyl or alkenyl, preferably alkenyl, and R 42 preferably denotes alkyl or alkenyl, preferably alkyl, in formula IV-2, R 41 and R 42 preferably denote alkyl, and in formula IV-4, R 4 preferably denotes alkyl or alkenyl, more preferably alkyl, and R 42 preferably denotes alkyl or alkoxy, more preferably alkoxy.
  • the liquid-crystalline media in accordance with the present invention preferably comprise one or more compounds selected from the group of the compounds of the formulae IV-1 , IV-4, IV-5 and IV-6, preferably one or more compounds of the formula IV-1 and one or more compounds selected from the group of the formulae IV-4 and IV-5, more preferably in each case one or more compounds of the formulae IV-1 , IV-4 and IV-5 and very preferably in each case one or more compounds of the formulae IV-1, IV-4, IV-5 and IV-6.
  • the liquid-crystalline media in accordance with the present invention preferably comprise one or more compounds of the formula IV-1, more preferably selected from the respective sub-formulae thereof of the formulae CC-n-m and/or CC-n-Om and/or CC-n-V and/or CC-nV-m and/or CC-Vn-m, more preferably of the formulae CC-n-m and/or CC-n-V and/or CC-nV-m and very preferably selected from the group of the formulae CC-3-1 , CC-3-2, CC-3-3, CC-3-4, CC-3-5, CC-3-01 , CC-3-V, CC-4-V, CC-5-V and CC-3-V1.
  • the definitions of these are preferably selected from the respective sub-formulae thereof of the formulae CC-n-m and/or CC-n-Om and/or CC-n-V and/or CC-nV-m and/or CC
  • the liquid-crystalline media in accordance with the present invention preferably comprise one or more compounds of the formula IV-4, more preferably selected from the respective sub-formulae thereof of the formulae CP-V-n and/ or CP-nV-m and/or CP-Vn-m, more preferably of the formulae CP-nV-m and/or CP-V2-n and very preferably selected from the group of the formulae CP-2V-1, CP-1V-2 and CP-V2-1.
  • the definitions of these abbreviations are evident from
  • the liquid-crystalline media in accordance with the present invention preferably comprise one or more compounds of the formula IV-5, more preferably selected from the respective sub-formulae thereof of the formulae CCP-V-n and/or CCP-nV-m and/or CCP-Vn-m, more preferably of the formulae CCP-V-n and/or CCP-V2-n and very pref- erably selected from the group of the formulae CCP-V-1 and CCP-V2-1.
  • the liquid-crystal medium preferably comprises one or more compounds of the formula IV-1 , more preferably selected from the respective sub-formulae thereof of the formulae CC-n-m, CC-n-Om, CC-n-V, CC-n-Vm, CC-V-V, CC-V-Vn and/or CC-nV-Vm, more preferably of the formulae CC-n-m and/or CC-n-V and/or CC-n-Vm and very preferably selected from the group of the formulae CC-3-1 , CC-3-2, CC-3-3, CC-3-4, CC-3-5, CC-3-01 , CC-3-V, CC-4-V, CC-5-V and CC-3- V1 and in particular selected from the group of the formulae CC-3-V, CC- 4-V, CC-5-V CC-3-V1 , CC-4-V1 , CC-5-V1 ,
  • liquid-crystal mixtures in accordance with the present invention comprise the compounds of the formula IV selected from the group of the compounds of the formulae IV-1 to IV-6 as shown above and optionally of the formulae IV-7 to IV-14, preferably of formulae IV-7 and/or IV-14:
  • R and R independently of one another, denote alkyl, alkoxy, fluorinated alkyl or fluorinated alkoxy having 1 to 7 C atoms, alkenyl, alkenyloxy, alkoxyalkyl or fluorinated alkenyl having 2 to 7 C atoms, and
  • L 4 denotes H or F.
  • the liquid-crystal medium preferably comprises one or more compounds of the formula IV-7, more preferably selected from the respective sub-formulae thereof of the formulae CPP-3-2, CPP-5-2 and CGP-3-2, more preferably of the formulae CPP-3-2 and/or CGP-3-2 and very particularly preferably of the formula CPP-3-2.
  • the definitions of these abbreviations are evident from Tables A and B.
  • the liquid-crystal medium preferably comprises one or more compounds of the formula IV-14, more preferably selected from the respective sub-formulae thereof of the formulae CPGP-3-2, CPGP-5-2 and CPGP-3-4, more preferably of the formulae CPGP-3-2 and/or CPGP-3-2 and very particularly preferably of the formula
  • liquid-crystalline media in accordance with the present invention preferably comprise one or more, preferably dielectrically neutral, compounds of the formula V, in which R 51 and R 52 , independently of one another, have the meanings indicated above for R 21 under formula II, preferably R 51 denotes alkyl and R 52 denotes alkyl or alkenyl,
  • liquid-crystalline media in accordance with the present invention preferably comprise one or more compounds selected from the group of the compounds of the formulae V-1 and V-2, preferably of formula V-1 :
  • the liquid-crystalline media in accordance with the present invention preferably comprise one or more compounds selected from the group of the compounds of the formulae V-1 and V-2, in which R 51 preferably denotes n-alkyl and, in formula V-1 , R 52 preferably denotes alkenyl and, in formula V-2, R 52 preferably denotes n-alkyl.
  • the liquid-crystal medium preferably comprises one or more compounds of the formula V-1 , more preferably of the sub- formula PP-n-2Vm thereof, still more preferably of the formula PP-1-2V1.
  • the definitions of these abbreviations are evident from Tables A and B.
  • the liquid-crystal medium preferably comprises one or more compounds of the formula V-2, more preferably of the sub- formulae PGP-n-m, PGP-n-2V and PGP-n-2Vm thereof, still more preferably of the sub-formulae PGP-3-m, PGP-n-2V and PGP-n-V1 thereof, very preferably selected from the formulae PGP-3-2, PGP-3-3, PGP-3-4, PGP-3-5, PGP-1-2V, PGP-2-2V and PGP-3-2V.
  • the definitions of these abbreviations are evident from Tables A and B.
  • the liquid-crystalline media in accordance with the present invention preferably comprise compounds selected from the group of the compounds of the formulae I to V and more preferably of the formulae I to IV, more preferably predominantly consist, still more preferably essentially consist and very preferably completely consist thereof.
  • the liquid-crystal mixtures in accordance with the present invention preferably comprise compounds of the formulae II and/or III, preferably of the formula II and of compounds of the formula 111.
  • the liquid-crystal mixtures in accordance with the present invention particularly preferably additionally comprise one or more compounds of the formulae IV and/or V, particularly preferably of the formula IV.
  • mixtures in accordance with the present invention may of course also comprise in each case one or more compounds of a plurality of the five formulae, formulae I to V, and even all five formulae, formulae I to V.
  • compositions means that the entity in question, i.e. generally the medium, comprises the compound or compounds indicated, preferably in a total concentration of
  • essentially consist of means that the entity in question comprises approximately 80 % or more, preferably approximately 90 % or more and very preferably approximately 95 % or more of the compound or compounds indicated.
  • completely consist of means that the entity in question comprises approximately 98 % or more, preferably approximately 99 % or more and very preferably 100.0 % of the compound or compounds indicated.
  • mesogenic compounds such as, for example dielectric negative compounds, which are not mentioned explicitly above, can optionally and advantageously also be used in the media in accordance with the present invention. Such compounds are known to the person skilled in the art.
  • the compounds of formula I are preferably used in a concentration of approximately 3 % to approximately 70 %, more preferably approximately 5% to approximately 60 % and very particularly preferably approximately 10% to approximately 50% of the mixture as a whole.
  • the compounds of the formulae II and III are preferably used in a concentration of approximately 2 % to approximately 90 %, more preferably approximately 3 % to approximately 80 % and very particularly preferably approximately 4 % to approximately 70% of the mixture as a whole.
  • the compounds of the formulae IV and V are preferably used in a concentration of approximately 2 % to approximately 70 %, more preferably approximately 5 % to approximately 65 %, even more preferably approximately 10 % to approximately 60 % and very particularly preferably from approximately 10 %, preferably from approximately 15 %, to approximately 55 % of the mixture as a whole.
  • the media according to the invention may optionally comprise further liquid-crystal compounds in order to adjust the physical properties. Such compounds are known to the person skilled in the art.
  • Their concentration in the media in accordance with the present invention is preferably 0 % to approximately 30 %, more preferably approximately 0.1 % to
  • the liquid-crystal media preferably comprise in total approximately 50 % to 100 %, more preferably approximately 70 % to 100 % and very preferably approximately 80 % to 100 % and in particular approximately 90 % to 100 % preferably predominantly consist of and very preferably entirely consist of one or more of the compounds of the formulae I, II, III, IV and V, preferably of the formulae I, II, III and IV or V.
  • the liquid-crystalline medium in accordance with the present invention optionally comprises further compounds, for example stabilisers, antioxidants, and/or as mentioned above self-alignment agents. They are preferably employed in a concentration of 0% to approximately 30%, particularly preferably 0 % to approximately 15%, and very particularly preferably 0 % to approximately 5%.
  • the liquid-crystalline medium preferably exhibits positive values for the dielectric anisotropy ⁇ . In this case, ⁇ preferably has a value of approximately > 3, more preferably
  • the liquid-crystal media in accordance with the present invention preferably have a clearing point of approximately 65°C or more, more preferably approximately 70°C or more, still more preferably 80°C or more, particularly preferably approximately 85°C or more and very particularly preferably approximately 90°C or more.
  • the nematic phase of the media according to the invention preferably extends at least from approximately 0°C or less to approximately 65°C or more, more preferably at least from approximately 20°C or less to approximately 70°C or more, very preferably at least from approximately 30°C or less to approximately 70°C or more and in particular at least from approximately 40°C or less to approximately 90°C or more. In individual preferred embodiments, it may be necessary for the nematic phase of the media according to the invention to extend to a temperature of
  • the ⁇ of a suitable liquid-crystal media is preferably as high as possible.
  • the ⁇ of the liquid-crystal media in accordance with the present invention is preferably in the range from approximately 0.10 or more to approximately 0.35 or more, more preferably in the range from approximately 0.12 or more to approximately 0.35 or more, even more preferably in the range from approximately 0.15 or more to approximately 0.35 or more and very particularly preferably in the range from approximately 0.17 or more to approximately 0.35 or more.
  • the liquid-crystal media used in the light modulation element according to the present invention preferably have an elastic constant Kn of
  • the liquid-crystal media used in the light modulation element according to the present invention preferably have an elastic constant K 33 of
  • the rotational viscosity of a suitable liquid-crystal media is preferably as low as possible.
  • the media according to the present invention exhibit a rotational viscosity of approximately 90 mPas or less, preferably of approximately 80 mPas or less.
  • the liquid-crystal media utilized in the light modulation element according to the present invention are prepared in a manner conventional per se.
  • the desired amount of the components used in lesser amount is dissolved in the components making up the principal constituent, preferably at elevated temperature.
  • the light modulation element comprises two or more polarisers, at least one of which is arranged on one side of the layer of the liquid-crystalline medium and at least one of which is arranged on the opposite side of the layer of the liquid-crystalline medium.
  • the layer of the liquid-crystalline medium and the polarisers here are preferably arranged parallel to one another.
  • the polarisers can be linear polarisers.
  • precisely two polarisers are present in the light modulation element.
  • the polarisers can be reflective or absorptive polarisers.
  • a reflective polariser in the sense of the present application reflects light having one polarisation direction or one type of circular-polarised light, while being transparent to light having the other polarisation direction or the other type of circular-polarised light.
  • an absorptive polariser absorbs light having one polarisation direction or one type of circular- polarised light, while being transparent to light having the other
  • polarisation direction or the other type of circular-polarised light.
  • the reflection or absorption is usually not quantitative; meaning that complete polarisation of the light passing through the polariser does not take place.
  • absorptive and reflective polarisers can be employed. Preference is given to the use of polarisers, which are in the form of thin optical films.
  • polarisers which are in the form of thin optical films.
  • reflective polarisers which can be used in the light modulation element according to the invention are DRPF (diffusive reflective polariser film, 3M), DBEF (dual brightness enhanced film, 3M), DBR (layered-polymer distributed Bragg reflectors, as described in US 7,038,745 and US 6,099,758) and APF (advanced polariser film, 3M).
  • absorptive polarisers which can be employed in the light modulation elements according to the invention, are the Itos XP38 polariser film and the Nitto Denko GU-1220DUN polariser film.
  • a further example is the CP42 polariser (ITOS).
  • the layer of the liquid- crystalline medium is arranged between two substrate layers.
  • the two substrate layers may consist, inter alia, each and independently from another of a polymeric material, of metal oxide, for example ITO and of glass, preferably each and
  • the substrates are arranged with a separation in the range from approximately 1 pm to approximately 50 pm from one another, preferably in the range from approximately 2 pm to approximately 40 pm from one another, and more preferably in the range from
  • the layer of the liquid-crystalline medium is thereby located in the interspace.
  • the substrate layers can be kept at a defined separation from one another, for example, by spacers or electrodes, which extend through the full cell thickness or projecting structures in the layer.
  • spacers or electrodes which extend through the full cell thickness or projecting structures in the layer.
  • Typical spacer materials are commonly known to the expert, as for example spacers made of plastic, silica, epoxy resins, etc.
  • the light modulation element may furthermore have one or more alignment layers, which are in direct contact with the layer of the liquid- crystalline medium, and preferably induce a homeotropic alignment throughout the entire liquid-crystalline medium.
  • the alignment layers may also serve as substrate layers, so that substrate layers are not necessary in the light modulation element. If substrate layers are additionally present, the alignment layers are in each case arranged between the substrate layer and the layer of the liquid-crystalline medium.
  • Typical alignment layer materials are commonly known to the expert, such as, for example, layers made of polyimide, alkoxysilanes, alkyltrichlorosilanes, CTAB, and chromium based Werner complexes, such as, for example, commercially available Quilon ⁇ C from Zaclon.
  • the light modulation element may comprise no alignment layers adjacent to the layer of the liquid-crystalline medium.
  • a homeotropical alignment can be achieved by adding to the liquid-crystalline medium one or more so called "self alignment agents".
  • self alignment agents are, for example, described by Shie-Chang Jeng et al. Optics Letters (2009), 34, 455-457 or Shug-June Hwang et al. J. Phys D. Appl. Phys 2009, 42, 025102 or the self alignment agents disclosed in US 2008/0198301 , JP 2010-170090 A, EP 2 593 529 A1 or EP 2 606 101 A1.
  • the light modulation element may furthermore comprise filters, which block light of certain wavelengths, for example, UV filters.
  • further functional layers commonly known to the expert may also be present, such as, for example, protective films and/or compensation films.
  • the light modulation element comprises a pattern of parallel electrodes, which are capable to allow the application of an electric field, which is substantially parallel to the substrates or the liquid-crystal layer.
  • both substrates carry patterns of opposing electrodes on their facing surfaces with the intervening liquid crystal medium there between.
  • a suitable electrode structures is, for example, a comb-like electrode arrangement. Further preferred electrode structures are, for example, IPS, or FFS electrode structures. in another preferred embodiment, a through cell electrode structure is utilized, which serves as both spacer and electrode. Other suitable electrode structures are commonly known to the expert.
  • Suitable electrode materials are commonly known to the expert, as for example electrodes made of metal or metal oxides, such as, for example transparent indium tin oxide (ITO), which is preferred according to the present invention.
  • ITO transparent indium tin oxide
  • the spacing between the electrodes is preferably in the range from approximately 1 pm to approximately 1000 ⁇ , more preferably in the range from approximately 10 pm to approximately 1000 ⁇ , and even more preferably in the range from approximately 20 pm to approximately 1000 pm, in particular in the range from approximately 30 pm to
  • the electrodes of the light modulation element are associated with a switching element, such as a thin film transistor (TFT) or thin film diode (TFD).
  • TFT thin film transistor
  • TFD thin film diode
  • the light transmission of the device is high when an electric field is applied and low in the initial state when no electric field is applied.
  • the device according to the invention has a boundary state A and a boundary state B.
  • boundary state is taken to mean a state in which the transmission reaches a maximum or minimum value and changes no further or virtually no further on a further reduction or increase in the of the applied electric field.
  • the light modulation element preferably has the boundary state A with a transmission TA when no electrical field is applied, the so called off state, in which the liquid crystal medium is essentially homeotropically aligned.
  • the light modulation element preferably has another boundary state B when an electric field is applied, the so called “on state", in which the liquid crystal medium is increasingly distorted away from the vertical towards the bend state, whereby the LC medium is initially homeotropically aligned and then becomes bent.
  • the light modulation element preferably exhibits an induced retardation in the "on"-state in the range from approximately 1 nm to approximately
  • 300nm more preferably from approximately 1nm to approximately 275nm, even more preferably from approximately 1nm to approximately 260nm.
  • the low applied electric fields required to switch the light modulation elements according to the present invention have several advantages.
  • the inter-electrode spacing is substantially larger than the inter-electrode spacing found in current IPS devices. Accordingly, lower cost patterning of the electrodes, improved yields, increased optical apertures and lower driving voltages are some benefits from the light modulation element according to the present invention.
  • the homeotropic "off state" of the device provides excellent optical extinction and therefore a favourable contrast.
  • the optics of the device are to some degree self-compensating (similar to a conventional pi-cell) and provide better viewing angle than a
  • the required applied electric field strength is mainly dependent on the electrode gap and the concentration of compounds of formula I as well as the ⁇ of the host mixture.
  • the applied electric field strengths are typically lower than approximately 0.5 V/pm " , preferably lower than approximately 0.2 V/pm "1 and more preferably lower than approximately 0.1 V/pm "1 .
  • the applied driving voltage is in the range from 0 V to
  • the nature of the switching can also be inferred from the behaviour of the device under slow square wave driving.
  • the switched state resulting from a Freedericksz transition has no polarity sensitivity, and the optical change as the voltage is reversed, is minimal.
  • the bend state changes the direction of its distortion in response to the applied voltage and the cell becomes optically extinct and then regains its previous appearance when the polarity changes. This provides a simple check on the nature of the distortion occurring in a particular cell/voltage combination.
  • three distinct switching regimes can be observed in a light modulation element according to the present invention: 1. At low applied electric fields, the induced retardation increases as a result from the induced flexoelectric bend distortion,
  • the induced retardation increases as a result from the distinct flexoelectric switching regime and at higher applied electric fields approaching the Freedericksz critical field, the transmission increases rapidly as a result from the distinct dielectric switching regime.
  • the light modulation element according to the present invention can be operated with a conventional driving waveform as commonly known by the expert.
  • a typical process for the production of a light modulation element according to the invention comprises the following steps:
  • the light modulation element of the present invention can be used in various types of optical and electro-optical devices.
  • Said optical and electro optical devices include, without limitation electrooptical displays, liquid crystal displays (LCDs), non-linear optic (NLO) devices, and optical information storage devices.
  • LCDs liquid crystal displays
  • NLO non-linear optic
  • Light modulation element comprising a flexoelectric polarisable liquid-crystalline medium, characterized in that the switching from a boundary state A to a boundary state B involves a combination of a flexoelectric switching regime and a dielectric switching regime upon application of an electric field.
  • the light modulation element according to note 1 characterized in that the liquid-crystalline medium which is sandwiched between at least two substrates, is homeotropically aligned to both substrate surfaces in the boundary state A.
  • liquid-crystalline medium comprises a bent core liquid-crystalline compound having an absolute value of the bend flexoelectric coefficient
  • liquid crystal medium comprises at least one bent core compound selected from the compounds of formula I
  • R 1 -M -Y 1 -B-Y 2 -M 2 -R 2 I wherein the parameters R 1 , M 1 , Y 1 , B, Y 2 , M 2 and R 2 have the same meanings as given above for formula I.
  • the light modulation element according to one or more of notes 1 to 5, wherein the liquid-crystalline medium comprises one or more compounds of formulae II and III,
  • III in the liquid-crystalline medium as a whole is in the range from 2 to 90 %.
  • Electro-optical device comprising the light modulation element according to one or more of claims 1 to 15.
  • the LC media according to the invention comprise one or more compounds selected from the group consisting of compounds from Tables A and B.
  • Table C
  • Table C indicates possible stabilizers, which can be added to the LC media according to the invention.
  • the LC media preferably comprise 0 to 10% by weight, in particular 0.01 to 5% by weight and particularly preferably 0.1 to 3% by weight, of dopants.
  • the LC media preferably comprise one or more dopants selected from the group consisting of compounds from Table C.
  • a cell is prepared by the following method: Two glass substrates are cleaned in deionised water in an ultrasound bath for 10 minutes, dried in a stream of air and immersed for 60 seconds in a solution of 20% KOH in deionised water. The substrates are rinsed in deionised water, dried under a stream of air, and dipped into a solution of a Quilon C, Chrome Complex solution for 60 seconds. The treated substrates are rinsed briefly in deionised water and dried at 150°C for 60 minutes. Subsequently, two strips of aluminium foil of 30 pm thickness were cut and placed parallel to each other on one of the substrates with a narrow gap of approximately 1mm between the electrodes.
  • Norland Optical Adhesive #65 A thin bead of Norland Optical Adhesive #65 is applied around the outside of the electrodes and the formed cell is subjected to pressure and Norland Optical Adhesive #65 was exposed to UV light (350 nm) to glue the cell together and to seal the edges leaving two gaps to allow filling with liquid crystal mixture.
  • UV light 350 nm
  • a mixture containing 30% of compound (1) in ZLI-1132 (70%) is prepared and introduced into the cell by capillary filling at 80°C.
  • the cell is held at 60°C for 30 minutes and cooled down to ambient temperature.
  • Wires are attached to the aluminium foil electrodes using conductive adhesive (RS 186-3600, silver-loaded electrically conductive paint) and clips.
  • a dc voltage is applied and the transmission of the cell is recorded using a standard photodiode on a polarising microscope. The transmission as a function of voltage is shown in table 1.
  • Table 1 Transmission of the cell as a function of the applied electric field.
  • a mixture containing 63.6 % ZLI-1132, 27.3 % of compound (1) and 9.1% of compound (2) is prepared.
  • the cell is held at 60°C for 30 minutes and cooled down to ambient temperature.
  • Wires are attached to the aluminium foil electrodes using conductive adhesive (RS 186-3600, silver-loaded electrically conductive paint) and clips.
  • a dc voltage is applied and the transmission of the cell is recorded using a standard photodiode on a polarising microscope (table 2).
  • Applied FieldA/pm "1 Transmission %
  • Table 2 Transmission of the cell as a function of the applied electric field.

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Abstract

The invention provides a light modulation element comprising a flexoelectric polarisable liquid-crystalline medium, characterized in that the switching from a boundary state A to a boundary state B comprises a combination of a distinct flexoelectric switching regime and a distinct dielectric switching regime upon application of an electric field. Furthermore, the present invention relates to the use of such a light modulation element in an electro-optical device, i.e. an LCD display device, and electrooptical devices comprising the light modulation element according to the present invention. Moreover, the invention relates to a method of production of the light modulation element according to the present invention.

Description

Light modulation element
Technical Field The invention provides a light modulation element comprising a
flexoelectric polarisable liquid-crystalline medium, characterized in that the switching from a boundary state A to a boundary state B involves a combination of a flexoelectric switching regime and a dielectric switching regime upon application of an electric field. Preferably the switching from a boundary state A to a boundary state B involves a combination of a distinct flexoelectric switching regime and a distinct dielectric switching regime upon application of an electric field.
Furthermore, the present invention relates to the use of such light modulation elements in an electro-optical device, i.e. in a LCD display devices, and further to electro-optical devices comprising the light modulation element according to the present invention. Moreover, the invention relates to a method of production of the light modulation element according to the present invention. State of the Art
Liquid Crystal Displays (LCDs) are widely used to display information. LCDs are used for direct view displays, as well as for projection type displays. The electro-optical mode, which is employed for most displays still, is the twisted nematic (TN)-mode with its various modifications.
Besides this mode, the super twisted nematic (STN)-mode, more recently the optically compensated bend (OCB)-mode, the electrically controlled birefringence (ECB)-mode with their various modifications, as e. g. the vertically aligned nematic (VAN), the patterned ITO vertically aligned nematic (PVA)-, the polymer stabilized vertically aligned nematic (PSVA)- mode, the multi domain vertically aligned nematic (MVA)-mode, as well as others, have been increasingly used.
In general, nematic liquid crystal displays (LCD) are operated based on dielectric switching, i.e. the coupling between dielectric anisotropy (Δε) of the liquid crystal and an applied electric field, which gives rise to an electro- optic response. This response is quadratic with the applied field, i.e. it is not polar, and arises from the switching of the liquid crystal molecules by the field. In conventional nematic LCDs, the switching of the liquid crystal molecules takes place in a plane containing the direction of the applied electric field, which means that an electric field is applied across a liquid crystal sandwich cell, will switch the molecules out-of- plane, i.e. in a plane perpendicular to the cell substrates. This kind of switching, however, gives an electro-optic response having a contrast strongly dependent on the viewing angle.
Besides the above-mentioned modes there are also electro-optical modes employing an electrical field substantially parallel to the substrates, respectively the liquid crystal layer, like e.g. the In Plane Switching (short IPS) mode (as disclosed e.g. in DE 40 00 451 and EP 0 588 568) and the Fringe Field Switching (FFS) mode. Especially the latter mentioned electro-optical modes, which have good viewing angle properties and good response times, are increasingly used for LCDs for modern desktop monitors and even for displays for TV and for multimedia applications. Further to the above-mentioned display modes, new display modes have been proposed exploiting the so-called "flexoelectric" effect.
The flexoelectric effect was first discussed as a liquid crystal analogue to the piezoelectric effect in R.B. Meyer, Phys. Rev. Lett. 1969, 22, 918 - 921.
Flexoelectricity is the generation of a spontaneous polarization in a liquid crystal due to a deformation of the director, or conversely, the deformation of the director due to an applied electric field, which is also called flexoelectric switching.
Typically, the flexoelectric effect arises from molecules with a shape asymmetry. The first cases to be considered were wedge and banana shaped molecules. Wedge shaped molecules with longitudinal dipoles show spontaneous polarization when splayed. Likewise, banana shaped molecules with transverse dipoles exhibit spontaneous polarization under bend deformation.
In the above cases, the polarization couples to a splay and/or bend deformation. It can be seen from symmetry arguments that the twist deformation cannot give rise to a polarization. Thus, a phenomenological formula for the flexoelectric polarization (Pf) can be written as
Pf= ein(div n)+ e3(curl n) x n where ei and e$ are the splay, bend flexoelectric coefficients, and n (div n), and (curl n) x n are the splay and bend vectors respectively.
The flexoelectric effect has a large influence on many phenomena in liquid crystals. Technologically it plays a key role in some novel device applications.
For example, WO 2005/071477 A1 discloses a liquid crystal device comprising a flexoelectric liquid crystal bulk layer, wherein an
inhomogeneous electric field in a direction substantially parallel to the substrates is generated by an interdigitated electrode pattern. It is preferred that the average polarization direction in a direction parallel to the substrates in field-off state is orthogonal to the direction in which an electric field is to be generated. In this case, both the rise and the fall times become field-dependent and the total response time is thereby decreased.
Moreover, WO 2008/104533 A1 discloses a hybrid aligned nematic LC mode (HAN). The liquid-crystalline molecules, which are sandwiched between two substrates, align perpendicular to one substrate surface, but parallel to the other substrate surface. This surface orientation is fixing. The two substrates require different alignment layers. In the HAN arrangement, such a deformation is induced caused by the different surface orientations of the liquid-crystalline molecules at the two substrate surfaces and by the elastic forces among the individual liquid-crystalline molecules (due to a continuous transition from parallel to perpendicular orientation across the thickness of the liquid-crystalline molecule layer), so that a flexoelectric polarisation is generated.
If an in-plane field is applied, the liquid-crystalline molecules, or their projection into the display plane will rotate. Due to the flexoelectric polarisation, the direction of rotation of the molecules then depends on the sign of the voltage.
Document WO 2008/104533 A1 further describes arrangements where the electrodes are arranged as in an IPS display and arrangements where an additional base electrode is disposed on the same substrate, as in a fringe-field switching (FFS) display. Moreover, it discloses arrangements where in-plane electrodes or FFS electrodes are optionally disposed on the substrate with parallel orientation of the liquid-crystalline molecules or on the substrate with vertical orientation of the liquid-crystalline molecules. The former is described there as the embodiment for liquid-crystalline media with positive Δε, the latter as the embodiment for liquid-crystalline media with negative Δε. In addition, there have been many experimental studies of the flexoelectric effect. For example, Takezoe et al. describe in Liquid Crystals, 36, 2009, 1119- 124 an experimental method for the determination of the
flexoelectric coefficients. For this purpose, the authors suggested the use of a bent-core compound of the following formula,
Figure imgf000005_0001
This compound was introduced into a homeotropically aligned cell, which contained two parallel 12pm thick strips of aluminium foil serving as spacers and electrodes with a gap of 2 mm.
When a DC field was applied transversely through the homeotropic cell, a coupling between the induced flexoelectric polarisation (Pf) and an external electric field (E) was observed, which led to the bending deformation of the director, the so-called converse flexoelectric effect.
The relation of the physical parameters involved in this effect can be expressed as
Figure imgf000006_0001
where δη is the induced birefringence, K33 the bend elastic constant, E the strength of the applied field, d the thickness of the liquid-crystalline medium layer, and n0, ne are the ordinary and extraordinary refractive indices, respectively.
In order to utilize the converse flexoelectric effect in a light modulation element the following requirements have to be optimized concerning
1. the homeotropic alignment throughout the entire liquid-crystalline medium,
2. the anchoring energies in the vicinity of the glass substrate,
3. the applied electrical field which should be as uniform as possible,
4. the electrode spacing , and concerning
5. the cell thickness.
At the same time, the following requirements on a liquid-crystalline medium have to be satisfied in order to guarantee a good performance of the light modulation element:
1. a suitable high bend flexoelectric coefficient,
2. a suitable ratio of dielectric anisotropy to bend flexoelectric coefficient,
3. a suitable value for the birefringence to increase the retardation for a given director deviation,
4. a suitable rotational viscosity to optimize switching speed, and
5. suitable elastic constants.
A general object of the present invention is to alleviate the above problems and to provide an alternative to the commonly known light modulation elements of the prior art, or preferably, to provide an improved light modulation element.
In particular, an object of the invention is to provide a light modulation element having the capability of generating high contrast and wide viewing angle images and exhibiting a fast in- plane switching, more particularly to reduce the total switching time enabling a satisfactory display of moving images. Other objects of the present invention are to decrease the driving voltage of the light modulation element, to increase the optical aperture ratio and to increase the transmittance. The improvements of these parameters are in particularly important for portable applications, such as cellular phones. In view of the numerous requirements and parameters summarized above, surprisingly, the inventors of the present invention have found that the converse flexoelectric effect can be utilized in a light modulation element, which utilizes a combination of flexoelectric and dielectric switching. Thus, the invention relates to a light modulation element comprising a flexoelectric polarisable liquid-crystalline medium, characterized in that the switching from a boundary state A to a boundary state B involves a combination of a distinct flexoelectric switching regime and a distinct dielectric switching regime upon application of an electric field.
The light modulation element according to the present invention exhibits especially, beside other beneficial properties, the following properties:
- a favourable low-cost electrode-structure,
- a favourable optical aperture,
- a favourable low driving voltage,
- a favourable low viewing angle dependence,
- a favourable optical extinction and therefore a favourable contrast,
- a favourable degree of self-compensation, and
- favourable fast switching times. The invention relates also to a method of production of a light modulation element as described above and below.
The invention further relates to the use of a light modulation element, as described above and below, in liquid crystal displays (LCDs) or other optical or electrooptical devices.
Thus, the invention further relates to an electrooptical device, such as an LCD, comprising at least one light modulation element as described above and below.
Terms and Definition
The term "liquid crystal (LC)" relates to materials having liquid-crystalline mesophases in some temperature ranges (thermotropic LCs) or in some concentration ranges in solutions (lyotropic LCs). They obligatorily contain mesogenic compounds.
The terms "mesogenic compound" or "liquid crystal compound" are taken into mean a compound comprising one or more calamitic (rod- or board/lath-shaped) or discotic (disk-shaped) mesogenic group. The term "mesogenic group" means a group with the ability to induce liquid- crystalline phase (or mesophase) behaviour. The compounds comprising mesogenic groups do not necessarily have to exhibit a liquid-crystalline mesophase themselves. It is also possible that they show liquid-crystalline mesophases only in mixtures with other compounds.
A calamitic mesogenic group usually comprises a mesogenic core. The mesogenic core consists of one or more aromatic or non-aromatic cyclic groups, which are connected to each other directly or via linkage groups and optionally comprising terminal groups attached to the ends of the mesogenic core. Optionally, the mesogenic group comprises one or more groups that are laterally attached to the long side of the mesogenic core, wherein these terminal and lateral groups are usually selected e.g. from carbyl or hydrocarbyl groups, polar groups like halogen, nitro, hydroxy, etc.. For the purposes of the present invention, the term "liquid-crystalline medium" is taken to mean a material, which exhibits liquid-crystalline properties under certain conditions. In particular, the term is taken to mean a material, which forms a nematic liquid-crystalline phase under certain conditions. A liquid-crystalline medium may comprise one or more liquid- crystalline compounds and in addition further substances.
The term "alignment" or "orientation" relates to the alignment (orientational ordering) of anisotropic units of material such as small molecules or fragments of big molecules in a common direction named "alignment direction". In an aligned layer of liquid-crystalline material or medium, the liquid-crystalline director coincides with the alignment direction so that the alignment direction corresponds to the direction of the anisotropy axis of the material.
The terms "uniform orientation" or "uniform alignment" of an liquid- crystalline material, for example in a layer of the material, mean that the long molecular axes (in case of calamitic compounds) or the short molecular axes (in case of discotic compounds) of the liquid-crystalline molecules are oriented substantially in the same direction. In other words, the lines of liquid-crystalline director are parallel.
Throughout this application, the alignment of liquid-crystalline layers, unless stated otherwise, is uniform alignment.
The term "planar orientation/alignment", for example in a layer of an liquid- crystalline material, means that the long molecular axes (in case of calamitic compounds) or the short molecular axes (in case of discotic compounds) of the liquid-crystalline molecules are oriented substantially parallel to the main plane of the layer.
The term "homeotropic orientation/alignment", for example in a layer of an liquid-crystalline material, means that the long molecular axes (in case of calamitic compounds) or the short molecular axes (in case of discotic compounds) of the liquid-crystalline molecules are oriented substantially perpendicular to the main plane of the layer.
A flexoelectric polarisable liquid-crystalline medium is taken to mean a liquid-crystalline medium, which has a significant value of at least one of the flexoelectric coefficients ei and β3, preferably a high value of β3.
The bend flexoelectric coefficient e3 can be defined according to R.B. Meyer, Phys. Rev. Lett. 1969, 22, 918-921 , as
Figure imgf000010_0001
wherein (a>b), (a) is the length of the molecule, (b) is the width of the molecule, (μ) is the traverse component of the dipole moment and (Θ) is the opening angle of the molecule. In general, there exist splay
deformation, bend deformation and asymmetrical hybrid (splay + bend) deformation.
Typically, compounds showing suitable values for the bend flexoelectric coefficient β3 are compounds having a dipole associated with a bend in the average molecular structure as defined by Helfrich et al. Z. Naturforsch 1970, 26a, p833-835. Examples such molecules are the so-called "bent core" liquid crystals. The term "bent-core molecule" or "banana-shaped molecule" relates to the three-dimensional shape of molecules, having a non-linear shape and a corresponding opening angle of less than 180°.
For the purposes of the present application, the term boundary state is taken to mean a state in which the transmission reaches a maximum or minimum value and changes no further or virtually no further if no electrical field is applied.
The light modulation element preferably has two boundary states, one, a boundary state A with a corresponding transmission TA when no electrical field is applied the so-called "off state, and the other, a boundary state B with a corresponding transmission TB when an electrical field is applied the so-called "on" state, whereby:
TA < TB
For the purposes of the present application, the term light transmission is taken to mean the passage of electromagnetic radiation in the visible (VIS), near infrared (near-IR, NIR) and UV-A region through the light modulation element. The term light in the present application is
correspondingly likewise taken to mean electromagnetic radiation in the visible, near infrared and UV-A region of the spectrum. In accordance with physical definitions usually used, UV-A light, visible light and near infrared light together are taken to mean radiation having a wavelength of 320 to 3000 nm.
For the purposes of the present application, the term in-plane electric field is taken to mean employing a DC electrical field substantially parallel to the substrates, respectively the liquid crystal layer. The optical retardation (δ(λ)) of a liquid-crystalline medium as a function of the wavelength of the incident beam (λ) is given by the following equation: δ(λ) = (2πΔη^)/λ wherein (Δη) is the birefringence of the liquid-crystalline medium, (d) is the thickness of the layer of the liquid-crystalline medium and λ is the wavelength of light. The wavelength of light generally referred to in this application is 550 nm, unless explicitly specified otherwise. The birefringence Δη herein is defined as,
Δη = ne - n0 wherein ne is the extraordinary refractive index and n0 is the ordinary refractive index, and the average refractive index nav. is given by, r = [(2n0 2 + ne 2)/3]
The extraordinary refractive index ne and the ordinary refractive index n0 can be measured using an Abbe refractometer. The birefringence (Δη) can then be calculated.
The induced retardation can be written as
Figure imgf000012_0001
wherein (ne) is the extraordinary refractive index, (n0) is the ordinary refractive index, (d) is the thickness of the layer of the liquid-crystalline medium, e3 is the bend flexoelectric coefficient, K33 is the bend
In the present application the term "dielectrically positive" is used for compounds or components with Δε > 3.0, "dielectrically neutral" with -1.5 < Δε < 3.0 and "dielectrically negative" with Δε < -1.5. Δε is determined at a frequency of 1 kHz and at 20 °C. The dielectric anisotropy of the respective compound is determined from the results of a solution of 10 % of the respective individual compound in a nematic host mixture. In case the solubility of the respective compound in the host medium is less than 10 % its concentration is reduced by a factor of 2 until the resultant medium is stable enough at least to allow the determination of its properties. Preferably, the concentration is kept at least at 5 %, however, in order to keep the significance of the results a high as possible. The capacitance of the test mixtures are determined both in a cell with homeo- tropic and with homogeneous alignment. The cell gap of both types of cells is approximately 20 m. The voltage applied is a rectangular wave with a frequency of 1 kHz and a root mean square value typically of 0.5 V to 1.0 V; however, it is always selected to be below the capacitive threshold of the respective test mixture.
The dielectric anisotropy (Δε) is defined as (ε | | - ε±), whereas ε. is
(ε | I + 2 ε±) / 3. The dielectric permittivity of the compounds is determined from the change of the respective values of a host medium upon addition of the compounds of interest. The values are extrapolated to a
concentration of the compounds of interest of 100 %.
All temperatures, such as, for example, the melting point T(C,N) or T(C,S), the transition from the smectic (S) to the nematic (N) phase T(S,N) and the clearing point T(N,I) of the liquid crystals, are quoted in degrees Celsius. All temperature differences are quoted in differential degrees.
The term "clearing point" means the temperature at which the transition between the mesophase with the highest temperature range and the isotropic phase occurs.
The term "threshold voltage" for the present invention relates to the capacitive threshold (V0), also called the Freedericks threshold, unless explicitly indicated otherwise. In the examples, as generally usual, the optical threshold for 10% relative contrast (V10) may also be indicated.
Throughout this application and unless explicitly stated otherwise, all concentrations are given in weight percent and relate to the respective complete medium. All physical properties have been and are determined according to "Merck Liquid Crystals, Physical Properties of Liquid
Crystals", Status Nov. 1997, Merck KGaA, Germany and are given for a temperature of 20 °C, unless explicitly stated otherwise. In case of doubt the definitions as given in C. Tschierske, G. Pelzl and S. Diele, Angew. Chem. 2004, 116, 6340-6368 shall apply.
The ranges of the parameters that are indicated in this application all include the limit values, unless expressly stated otherwise.
Throughout this application, the substituents on the saturated 1 ,4- substituted ring systems are, unless indicated otherwise, in the trans configuration. The other formulae stand for both configurations and preferably for the trans-configuration The different upper and lower limit values indicated for various ranges of properties in combination with one another give rise to additional preferred ranges. Throughout the description and claims of this specification, the words "comprise" and "contain" and variations of the words, for example
"comprising" and "comprises", mean "including but not limited to", and are not intended to (and do not) exclude other components. On the other hand, the word "comprise" also encompasses the term "consisting of but is not limited to it.
Detailed Description Suitable liquid crystal media in accordance with the present invention are a flexoelectric polarisable upon application of an in-plane electric field.
A suitable liquid-crystalline medium in accordance with the present invention comprises 2 or more, preferably at least 3, particularly preferably at least 4 and very particularly preferably at least 5, different liquid- crystalline compounds. If only 2 liquid-crystalline compounds are employed, their typical concentration ranges from about 70% to 99% by weight of the total mixture. Preferably, the liquid-crystalline media used in the light modulation element according to the present invention exhibits an absolute value of the bend flexoelectric coefficient I e31 , which is in the range from approximately 1 pCm"1 to approximately 60 pCm"1, more preferably in the range from approximately 2 pCm"1 to approximately 30 pCm" 1 , and most preferably in the range from approximately 3 pCm"1 to approximately 20 pCm"1.
In a preferred embodiment, the light modulation element according to the present invention comprises a liquid-crystalline medium, which comprises at least one liquid-crystalline compound having a dipole associated with a bend in the average molecular structure and which show suitable high values for the bend flexoelectric coefficient e3.
Suitable bend flexoelectric coefficients I e31 are preferably in the range from approximately 1 pCm" to approximately 100 pCm"1, more preferably in the range from approximately 5 pCm"1 to approximately 40 pCm"1, most preferably in the range from approximately 13 pCm" 1 to approximately 18 pCm \ Molecules, which have a dipole associated with a bend in the average molecular structure, and which show suitable high values for e3 are preferably selected from the so-called bent-core liquid-crystalline compounds. Suitable bent-core liquid-crystalline compounds are preferably, selected from the group of compounds of formula I,
R'-M^-B-Y^M^R2 I wherein
Y and Y2 are in each case independently -0-, -S-, -CO-,
-COO-, -OCO-, -OCO-O-, -CO-NR0-, -NR°-CO-,
-OCH2-, -CH2O-, -SCH2-, -CH2S-, -CH=CH-COO-,
-OOC-CH=CH- or a single bond,
R° is H or alkyl with 1 to 4 C atoms,
M1 and M2 are independently of each other a mesogenic group, B is a bivalent ring group that imparts a bent structure to the compound, and
R and R2 denote, each and independently from another, H, F, CI, CN,
OCN, SCN, SF5 ,NO2 or a straight-chain or branched alkyl radical with up to 25 C atoms which may be unsubstituted, mono- or polysubstituted by halogen or CN, it being also possible for one or more non-adjacent CH2 groups to be replaced, in each case independently from one another, by -0-, -S-, -NH-, -N(CH3)-, -CO-, -COO-, -OCO-, -OCO-O-, - S-CO-, -CO-S-, -CH=CH- or -C≡C- in such a manner that oxygen atoms are not linked directly to one another.
The bivalent ring group B in formula I is selected to impart to the inventive compound a bent or banana-shaped structure with a molecular bending angle a as described above. The opening angle imparted to compounds of formula I by the bivalent ring group B is preferably from approximately 90 to approximately 165 °, in particular from approximately 105 to
approximately 150 °, very preferably from approximately 115 to
approximately 135 °, most preferably from approximately 120 to
approximately 130 °.
B is preferably a mono- or bicyclic aromatic group that may also contain up to three hetero atoms, and is for example selected from the following groups
Figure imgf000016_0001
wherein
U is CR' or N,
V is CR'2) NR\ O or S, R' is H or alkyl with 1 to 7 C atoms, and the monocyclic five-membered groups can be substituted with 1 , 2 or 3, the monocyclic six-membered groups with 1 , 2, 3 or 4 and the bicyclic groups with 1, 2, 3, 4, 5 or 6 groups L, with L being in each case
independently F, CI, CN, SCN, N02, SF5, alkyl, alkoxy, alkylcarbonyl or alkoxycarbonyl having 1 to 7 C atoms wherein one or more H atoms may be substituted by F or CI.
Preferably B is selected from the following groups
Figure imgf000017_0001
Figure imgf000018_0001
wherein R' and L have one of the meanings given above and r is 0, 1, 2 or 3. Preferably at least one of R" denotes H.
Very preferably B is 1,3-phenylene that is optionally substituted with L in the
Figure imgf000018_0002
with L1, L2 and L3 preferably selected from F, CI, CN, OH, NO2( CH3, C2H5, OCH3, OC2H5, COCH3, COC2H5) COOCH3) COOC2H5, CF3, OCF3, OCHF2) OC2F5, in particular F, CI, CN, CH3, C2H5, OCH3, COCH3, CF3 and OCF3) most preferably F, CI, CN, CH3, OCH3 and OCF3. formula I is preferably selected of formula 1*1
-A1-(Z-A2) ml 1*1 wherein Z is in each case independently -O-, -S-, -CO-, -COO-,
-OCO-, -O-COO-, -CO-NR0-, -NR°-CO-, -OCH2-, -CH2O-, -SCH2-, -CH2S-, -CH2CH2-, -CH=CH-, -C≡C-, -CH=CH-COO-, -OCO-CH=CH- or a single bond,
A1 and A2 are each independently 1 ,4-phenylene in which, in addition, one or more CH groups may be replaced by N, 1 ,4- cyclohexylene in which, in addition, one or two non-adjacent CH2 groups may be replaced by O and/or S, 1 ,4- cyclohexenylene, 1 ,4-bicyclo(2,2,2)octylene, piperidine-1 ,4- diyl, naphthalene-2,6-diyl, decahydronaphthalene-2,6-diyl, or 1 ,2,3,4-tetrahydro-naphthalene-2,6-diyl, it being possible for all these groups to be unsubstituted, mono- or polysubstituted with F, CI, SCN, CN, NO2,SF5 or optionally fluorinated alkyl, alkoxy, alkylcarbonyl or alkoxycarbonyl with 1 to 7 C atoms,
R° has the meaning of formula I, and ml is 0, 1, 2 or 3.
M2 in formula I is preferably selected of formula 2 -A -(Z-A2)m2- l*2 wherein A1, Z and A2 have one of the meanings of formula 1 and m2 is 0, 1 , 2 or 3.
Preferred compounds of formula I are those wherein ml and m2 are independently of each other 1, 2 or 3. Further preferred are compounds wherein the mesogenic groups M and M2 comprise two or three five- or six-membered rings. Especially preferred are compounds wherein one of ml and m2 is 2 or 3 and the other is 1 , 2 or 3, very preferably both ml and m2 are 2 or 3, in particular 2. Further preferred are compounds wherein m1+m2 is 3, 4, 5 or 6. Another preferred embodiment relates to compounds wherein at least one radical Z in formula 1*1 and/or 2 denotes -C≡C~. These compounds are especially suitable for uses where highly birefringent materials are needed.
A smaller group of preferred mesogenic groups M1 and M2 is listed below. For reasons of simplicity, Phe in these groups is 1 ,4-phenylene that may also be substituted by 1 to 4 groups L, with L being F, CI, CN, SCN, NO2, SF5 or an alkyl, alkoxy, alkylcarbonyl or alkoxycarbonyl group having 1 to 7 C atoms wherein one or more H atoms may be substituted by F or CI, and Cyc is 1 ,4-cyclohexylene. Z has one of the meanings of formula 1*1. The list comprises the following subformulae as well as their mirror images
-Phe- Γ-1
-Cyc- l*-2
-Phe-Z-Phe- l*-3
-Phe-Z-Cyc- I
-Cyc-Z-Cyc- l*-5
-Phe-Z-Phe-Z-Phe- l*-6
-Phe-Z-Phe-Z-Cyc- l*-7
-Phe-Z-Cyc-Z-Phe- l*-8
-Cyc-Z-Phe-Z-Cyc- l*-9
-Phe-Z-Cyc-Z-Cyc- Γ-10
-Cyc-Z-Cyc-Z-Cyc- l*-11
Particularly preferred are the subformulae l*-3, l*-4, -5, -7 and -10.
Z is preferably -COO-, -OCO-, -CH2CH2-, -C≡C- or a single bond.
Very preferably M and M2 are selected from the following formulae and their mirror images
Figure imgf000020_0001
l*a
Figure imgf000021_0001

Figure imgf000022_0001
wherein L has the meaning given above and r is 0, 1 or 2.
.
Figure imgf000022_0002
Very preferred are subformulae l*d, Pg, l*h, l*i, l*k and ο, in particular l*d and l*k.
L is preferably F, CI, CN, OH, NO2, CH3, C2H5) OCH3, OC2H5, COCH3, COC2H5) COOCH3) COOC2H5( CF3, OCF3> OCHF2> OC2F5) in particular F, CI, CN, CH3, C2H5, OCH3, COCH3, CF3 and OCF3 , most preferably F, CI, CH3, OCH3 and OCF3. If R1 or R2 in formula I is an alkyl or alkoxy radical, i.e. where the terminal CH2 group is replaced by -O-, this may be straight-chain or branched. It is preferably straight-chain, has 2, 3, 4, 5, 6, 7 or 8 carbon atoms and accordingly is preferably ethyl, propyl, butyl, pentyl, hexyl, heptyl, octyl, ethoxy, propoxy, butoxy, pentoxy, hexoxy, heptoxy, or octoxy, furthermore methyl, nonyl, decyl, undecyl, dodecyl, tridecyl, tetradecyl, pentadecyl, nonoxy, decoxy, undecoxy, dodecoxy, tridecoxy or tetradecoxy, for example. Especially preferably, R1 or R2 is straight chain alkyl or alkoxy with 1 to 8 C atoms.
Oxaalkyl, i.e. where one CH2 group is replaced by -O-, is preferably straight-chain 2-oxapropyl (=methoxymethyl), 2- (=ethoxymethyl) or 3- oxabutyl (=2-methoxyethyl), 2-, 3-, or 4-oxapentyl, 2-, 3-, 4-, or 5-oxahexyl, 2-, 3-, 4-, 5-, or 6-oxaheptyl, 2-, 3-, 4-, 5-, 6- or 7-oxaoctyl, 2-, 3-, 4-, 5-, 6-, 7- or 8-oxanonyl or 2-, 3-, 4-, 5-, 6-,7-, 8- or 9-oxadecyl, for example.
Halogen is F, CI, Br, I, preferably F or CI.
R1 or R2 in formula I can be a polar or a non-polar group. In case of a polar group, R is selected from CN, N02) halogen, OCH3) OCN, SCN, COR5, COOR5 or a mono- oligo- or polyfluorinated alkyl or alkoxy group with 1 to 4 C atoms. R5 is optionally fluorinated alkyl with 1 to 4, preferably 1 to 3 C atoms. Especially preferably polar groups R are selected of F, CI, CN, NO2, OCH3, COCH3, COC2H5) COOCH3, COOC2H5) CF3, C2F5, OCF3, OCHF2, and OC2F5, in particular of F, CI, CN, OCH3 and OCF3.
In case of a non-polar group, R1 or R2 is preferably alkyl with up to 15 C atoms or alkoxy with 2 to 15 C atoms.
R or R2 in formula I can be an achiral or a chiral group.
Preferred chiral groups R1 or R2 are 2-alkyl, 2-alkoxy, 2-methylalkyl, 2- methylalkoxy, 2-fluoroalkyl, 2-fluoroalkoxy, 2-(2-ethin)-alkyl, 2-(2-ethin)- alkoxy, 1 ,1 ,1 -trifluoro-2-alkyl and 1 ,1 ,1-trifluoro-2-alkoxy. Particularly preferred chiral groups R1 or R2 are 2-butyl (=1-methylpropyl), 2-methylbutyl, 2-methylpentyl, 3-methylpentyl, 2-ethylhexyl, 2-propylpentyl, in particular 2-methylbutyl, 2-methylbutoxy, 2-methylpentoxy, 3- methylpentoxy, 2-ethylhexoxy, 1-methylhexoxy, 2-octyloxy, 2-oxa-3- methylbutyl, 3-oxa-4-methylpentyl, 4-methylhexyl, 2-hexyl, 2-octyl, 2-nonyl, 2-decyl, 2-dodecyl, 6-methoxyoctoxy, 6-methyloctoxy, 6- methyloctanoyloxy, 5-methylheptyloxycarbonyl, 2-methylbutyryloxy, 3- methylvaleroyloxy, 4-methylhexanoyloxy, 2-chlorpropionyloxy, 2-chloro-3- methylbutyryloxy, 2-chloro-4-methylvaleryloxy, 2-chloro-3- methylvaleryloxy, 2-methyl-3-oxapentyl, 2-methyl-3-oxahexyl, 1- methoxypropyl-2-oxy, 1-ethoxypropyl-2-oxy, 1-propoxypropyl-2-oxy, 1- butoxypropyl-2-oxy, 2-fluorooctyloxy, 2-fluorodecyloxy, 1 ,1 ,1 -trifluoro-2- octyloxy, 1 ,1 ,1-trifluoro-2-octyl, 2-fluoromethyloctyloxy for example. Very preferred are 2-hexyl, 2-octyl, 2-octyloxy, 1,1 ,1-trifluoro-2-hexyl, 1 ,1,1- trifluoro-2-octyl and 1,1,1-trifluoro-2-octyloxy, for example.
In addition, compounds of formula I containing an achiral branched group R1 or R2 may occasionally be of importance, for example, due to a reduction in the tendency towards crystallization. Branched groups of this type generally do not contain more than one chain branch. Preferred achiral branched groups are isopropyl, isobutyl (=methylpropyl), isopentyl (=3-methylbutyl), isopropoxy, 2-methyl-propoxy and 3-methylbutoxy. Preferred compounds of formula I are the following
Figure imgf000024_0001
Figure imgf000025_0001
Figure imgf000025_0002
wherein L1and L2 has each and independently from another one of the meanings of L, R1 and R2 have each and independently and in each occurrence one of the meanings as given above in formula I. Especially preferred are compounds of the above formulae, wherein L is CN, CI, F, CF3 or OCF3) and R1 and R2 denote a straight chain or branched alkyl or alkoxy with 1 to 15 C atoms.
The compounds of formula I can be synthesized according to or in analogy to methods which are known per se and which are described in standard works of organic chemistry such as, for example, Houben-Weyl, Methoden der organischen Chemie, Thieme-Verlag, Stuttgart. Some specific methods of preparation can be taken from the examples.
In a preferred embodiment, the liquid-crystalline medium comprises one or more dielectrically positive compounds, preferably selected from the group of compounds of formulae II and III,
Figure imgf000026_0001
denotes alkyl, alkoxy, fluorinated alkyl or fluorinated alkoxy having 1 to 7 C atoms, alkenyl, alkenyloxy, alkoxyalkyl or fluorinated alkenyl having 2 to 7 C atoms and preferably alkyl or alkenyl,
Figure imgf000026_0002
on each appearance, independently of one another, denote
Figure imgf000027_0001
denote H or F, preferably L21 denotes F,
X21 denotes halogen, halogenated alkyl or alkoxy having 1 to 3 C atoms or halogenated alkenyl or alkenyloxy hav¬
35
ing 2 or 3 C atoms, preferably F, CI, -OCF3, -O-CH2CF3, -O-CH=CH2, -O-CH=CF2 or -CF3> very preferably F, CI, -0-CH=CF2 or -OCF3) denotes 0, 1 , 2 or 3, preferably 1 or 2 and particularly preferably 1 , denotes alkyl, alkoxy, fluorinated alkyl or fluorinated alkoxy having 1 to 7 C atoms, alkenyl, alkenyloxy, alkoxyalkyi or fluorinated alkenyl having 2 to 7 C atoms and preferably alkyl or alkenyl,
Figure imgf000028_0001
on eac , are
Figure imgf000028_0002
Figure imgf000029_0001
L and L , independently of one another, denote H or F, preferably
L3 denotes F,
X31 denotes halogen, halogenated alkyl or alkoxy having 1 to 3 C atoms or halogenated alkenyl or alkenyloxy having 2 or 3 C atoms, F, CI, -OCF3, -O- CH2CF3, -O-CH=CF2, -O-CH=CH2 or -CF3) very preferably F, CI, -O-CH=CF2 or -OCF3,
Z31 denotes -CH2CH2-, -CF2CF2-, -COO-, trans-CH=CH-, trans-CF=CF-, -CH20- or a single bond,
preferably -CH2CH2-, -COO-, trans-CH=CH- or a single bond and very preferably -COO-, trans-CH=C - or a single bond, and n denotes 0, 1 , 2 or 3, preferably 1 or 3 and particularly preferably 1.
Preferred compounds are selected from the group of compounds of subformulae 11-1 and II-2:
11-1
Figure imgf000029_0002
Figure imgf000030_0001
in which the parameters have the respective meanings indicated above under formula II, and L23 and L24, independently of one another, denote H or F, preferably L23 denotes F, and
Figure imgf000030_0002
and, in the case of formulae 11-1 and II-4, X21 preferably denotes F or OCF3, particularly preferably F, and, in the case of formula II-3,
Figure imgf000030_0003
and/or selected from the group of the compounds of the formulae III-1 and III-2:
Figure imgf000030_0004
Figure imgf000031_0001
in which the parameters have the meanings given under formula III.
The media in accordance with the present invention preferably comprise, alternatively or in addition to the compounds of the formulae 111-1 and/or III-2, one or more compounds of the formula III-3
Figure imgf000031_0002
in which the parameters have the respective meanings indicated above, and the parameters L33 and L34, independently of one another and of the other parameters, denote H or F.
The liquid-crystal medium preferably comprises compounds selected from the group of the compounds of the formulae 11-1 to II-4 in which L21 and L22 and/or L23 and L24 both denote F.
In a preferred embodiment, the liquid-crystal medium comprises compounds selected from the group of the compounds of the formulae II-2 and II-3 in which L21, L22, L23 and L24 all denote F.
The liquid-crystal medium preferably comprises one or more compounds of the formula 11-1. The compounds of the formula 11-1 are preferably selected from the group of the compounds of the formulae 11-1 a to ll-1e, preferably of formula 11-1 d:
Figure imgf000032_0001
in which the parameters have the respective meanings indicated above, and L25 and L26, independently of one another and of the other parameters, denote H or F, and preferably in the formulae ll-1a and ll-1 b, L21 and L22 both denote F, in the formulae ll-1c and 11-1 d. L21 and L22 both denote F and/or L23 and L24 both denote F, and in formula ll-1e, L21, L22 and L23 denote F. The liquid-crystal medium preferably comprises one or more compounds of the formula 11-2, which are preferably selected from the group of the compounds of the formulae ll-2a to ll-2j, preferably of formula ll-2j:
Figure imgf000033_0001
Figure imgf000034_0001
in which the parameters have the respective meanings indicated above, and L25 to L28, independently of one another, denote H or F, preferably L27 and L28 both denote H, particularly preferably L26 denotes H.
The liquid-crystal medium preferably comprises compounds selected from the group of the compounds of the formulae ll-1a to ll-1e in which L21 and L22 both denote F and/or L23 and L24 both denote F. ln a preferred embodiment, the liquid-crystal medium comprises compounds selected from the group of the compounds of the formulae ll-1a to 11-1 i in which L21, L22, L23 and L24 all denote F.
Especially preferred compounds of the formula II-2 are the compounds of the following formulae:
Figure imgf000035_0001
Figure imgf000036_0001
in which R21 and X21 have the meanings indicated above, and X21 preferably denotes F.
The liquid-crystal medium preferably comprises one or more compounds of the formula 111-1. Suitable compounds of the formula 111-1 are preferably selected from the group of the compounds of the formulae 111-1 a to lll-1j, preferably from formulae lll-1c, lll-1f, lll-1g and lll-1j:
Figure imgf000037_0001
Figure imgf000038_0001
in which the parameters have the meanings given above and preferably in which the parameters have the respective meanings indicated above, and the parameters L35 and L36, independently of one another and of the other parameters, denote H or F.
The liquid-crystal medium preferably comprises one or more compounds of the formula lll-1c, which are preferably selected from the group of the compounds of the formulae lll-1c-1 to lll-1c-5, preferably of formulae III- 1c-3 and lll-1c-4:
Figure imgf000039_0001
in which R has the meaning indicated above.
The liquid-crystal medium preferably comprises one or more compounds of the formula lll-1f, which are preferably selected from the group of the compounds of the formulae lll-1f-1 to lll-1f-5, preferably of formulae lll-1f-1 , lll-1f-2, lll-1f-4 and lll-lf-5, more preferably of formulae lll-1f-1 , lll-1f-4 and lll-1f-5, more preferably:
Figure imgf000039_0002
lll-1f-1
Figure imgf000040_0001
in which R31 has the meaning indicated above.
The liquid-crystal medium preferably comprises one or more compounds of the formula lll-1g, which are preferably selected from the group of the compounds of the formulae lll-1g-1 to IIMg-5, preferably of formula lll-1g-3:
-Ig-1
Figure imgf000040_0002
Figure imgf000041_0001
in which R31 has the meaning indicated above.
The liquid-crystal medium preferably comprises one or more compounds of the formula lll-1h, which are preferably selected from the group of the compounds of the formulae lll-1h-1 to lll-1h-3, preferably of the formula
Figure imgf000041_0002
Figure imgf000042_0001
in which the parameters have the meanings given above, and X preferably denotes F.
The liquid-crystal medium preferably comprises one or more compounds of the formula ΙΙΙ-1Ϊ, which are preferably selected from the group of the compounds of the formulae ΙΙΙ-1Ϊ-1 and ΙΙΙ-1Ϊ-2, preferably of the formula lll-1i-2:
Figure imgf000042_0002
in which the parameters have the meanings given above, and X31 preferably denotes F.
The liquid-crystal medium preferably comprises one or more compounds of the formula lll-1j, which are preferably selected from the group of the compounds of the formulae lll-1j-1 and lll-1j-2( preferably of the formula lll-1j-1:
Figure imgf000043_0001
in which the parameters have the meanings given above.
The liquid-crystal medium preferably comprises one or more compounds of the formula 111-2. The compounds of the formula 111-2 are preferably selected from the group of the compounds of the formulae 111-23 and lll-2b:
Figure imgf000043_0002
in which the parameters have the respective meanings indicated above, and the parameters L33 and L34, independently of one another and of the other parameters, denote H or F.
The liquid-crystal medium preferably comprises one or more compounds of the formula lll-2a, which are preferably selected from the group of the compounds of the formulae lll-2a-1 to lll-2a-6:
Figure imgf000044_0001
in which R31 has the meaning indicated above.
The liquid-crystal medium preferably comprises one or more compounds of the formula lll-2b, which are preferably selected from the group of the compounds of the formulae lll-2b-1 to lll-2b-4, preferably lll-2b-4:
lll-2b-1
Figure imgf000044_0002
Figure imgf000045_0001
in which R has the meaning indicated above.
Alternatively or in addition to the compounds of the formulae 111-1 and/or III-2, the media in accordance with the present invention preferably comprise one or more compounds of the formula 111— 3
Figure imgf000045_0002
in which the parameters have the respective meanings indicated above under formula III. These compounds are preferably selected from the group of the formulae lll-3a and lll-3b:
R hcH2-CH2- _ F
Figure imgf000046_0001
in which R has the meaning indicated above.
In another preferred embodiment, the liquid-crystalline medium comprises one or more, preferably dielectrically neutral, compounds of the formula IV
Figure imgf000046_0002
in which R41 and R42, independently of one another, have the meaning indicated above for R21 under formula II, preferably R41 denotes alkyl and R42 denotes alkyl or alkoxy or R41 denotes alkenyl and R denotes alkyl,
Figure imgf000046_0003
denote independently of one another and, if
> 41
— occurs twice, also these independently of one another, denote
Figure imgf000046_0004
Figure imgf000047_0001
rably one or more of
Figure imgf000047_0002
denotes or denote
Z41 and Z42, independently of one another and, if Z41 occurs twice, also these independently of one another,
denote -CH2CH2-, -COO-, trans-C =CH-, trans- CF=CF-, -CH2O-, -CF2O-, -C≡C- or a single bond, preferably one or more thereof denotes/denote a single bond, and p denotes 0, 1 or 2, preferably 0 or 1.
The liquid-crystalline media in accordance with the present invention preferably comprise one or more compounds selected from the group of the compounds of the formulae IV-1 to IV-6:
Figure imgf000047_0003
lv-1
Figure imgf000048_0001
in which R4 and R42 have the respective meanings indicated above under formula IV, and, in the formulae IV-1 , IV-5 and IV-6, R41 preferably denotes alkyl or alkenyl, preferably alkenyl, and R42 preferably denotes alkyl or alkenyl, preferably alkyl, in formula IV-2, R41 and R42 preferably denote alkyl, and in formula IV-4, R4 preferably denotes alkyl or alkenyl, more preferably alkyl, and R42 preferably denotes alkyl or alkoxy, more preferably alkoxy.
The liquid-crystalline media in accordance with the present invention preferably comprise one or more compounds selected from the group of the compounds of the formulae IV-1 , IV-4, IV-5 and IV-6, preferably one or more compounds of the formula IV-1 and one or more compounds selected from the group of the formulae IV-4 and IV-5, more preferably in each case one or more compounds of the formulae IV-1 , IV-4 and IV-5 and very preferably in each case one or more compounds of the formulae IV-1, IV-4, IV-5 and IV-6. In a preferred embodiment, the liquid-crystalline media in accordance with the present invention preferably comprise one or more compounds of the formula IV-1, more preferably selected from the respective sub-formulae thereof of the formulae CC-n-m and/or CC-n-Om and/or CC-n-V and/or CC-nV-m and/or CC-Vn-m, more preferably of the formulae CC-n-m and/or CC-n-V and/or CC-nV-m and very preferably selected from the group of the formulae CC-3-1 , CC-3-2, CC-3-3, CC-3-4, CC-3-5, CC-3-01 , CC-3-V, CC-4-V, CC-5-V and CC-3-V1. The definitions of these
abbreviations (acronyms) are evident from Tables A to B.
In a preferred embodiment, the liquid-crystalline media in accordance with the present invention preferably comprise one or more compounds of the formula IV-4, more preferably selected from the respective sub-formulae thereof of the formulae CP-V-n and/ or CP-nV-m and/or CP-Vn-m, more preferably of the formulae CP-nV-m and/or CP-V2-n and very preferably selected from the group of the formulae CP-2V-1, CP-1V-2 and CP-V2-1. The definitions of these abbreviations (acronyms) are evident from
Tables A and B. in a preferred embodiment, the liquid-crystalline media in accordance with the present invention preferably comprise one or more compounds of the formula IV-5, more preferably selected from the respective sub-formulae thereof of the formulae CCP-V-n and/or CCP-nV-m and/or CCP-Vn-m, more preferably of the formulae CCP-V-n and/or CCP-V2-n and very pref- erably selected from the group of the formulae CCP-V-1 and CCP-V2-1. The definitions of these abbreviations (acronyms) evident from Tables A and B.
In a likewise preferred embodiment, the liquid-crystal medium preferably comprises one or more compounds of the formula IV-1 , more preferably selected from the respective sub-formulae thereof of the formulae CC-n-m, CC-n-Om, CC-n-V, CC-n-Vm, CC-V-V, CC-V-Vn and/or CC-nV-Vm, more preferably of the formulae CC-n-m and/or CC-n-V and/or CC-n-Vm and very preferably selected from the group of the formulae CC-3-1 , CC-3-2, CC-3-3, CC-3-4, CC-3-5, CC-3-01 , CC-3-V, CC-4-V, CC-5-V and CC-3- V1 and in particular selected from the group of the formulae CC-3-V, CC- 4-V, CC-5-V CC-3-V1 , CC-4-V1 , CC-5-V1 , CC-3-V2 and CC-V-V1. The definitions of these abbreviations (acronyms) are evident from Tables A and B. In a further preferred embodiment of the present invention, which may be the same as the preceding one or another, the liquid-crystal mixtures in accordance with the present invention comprise the compounds of the formula IV selected from the group of the compounds of the formulae IV-1 to IV-6 as shown above and optionally of the formulae IV-7 to IV-14, preferably of formulae IV-7 and/or IV-14:
Figure imgf000050_0001
Figure imgf000051_0001
in which
R and R , independently of one another, denote alkyl, alkoxy, fluorinated alkyl or fluorinated alkoxy having 1 to 7 C atoms, alkenyl, alkenyloxy, alkoxyalkyl or fluorinated alkenyl having 2 to 7 C atoms, and
L4 denotes H or F.
In a preferred embodiment, the liquid-crystal medium preferably comprises one or more compounds of the formula IV-7, more preferably selected from the respective sub-formulae thereof of the formulae CPP-3-2, CPP-5-2 and CGP-3-2, more preferably of the formulae CPP-3-2 and/or CGP-3-2 and very particularly preferably of the formula CPP-3-2. The definitions of these abbreviations (acronyms) are evident from Tables A and B.
In a preferred embodiment, the liquid-crystal medium preferably comprises one or more compounds of the formula IV-14, more preferably selected from the respective sub-formulae thereof of the formulae CPGP-3-2, CPGP-5-2 and CPGP-3-4, more preferably of the formulae CPGP-3-2 and/or CPGP-3-2 and very particularly preferably of the formula
CPGP-5-2. The definitions of these abbreviations (acronyms) are evident from Tables A and B. The liquid-crystalline media in accordance with the present invention preferably comprise one or more, preferably dielectrically neutral, compounds of the formula V,
Figure imgf000052_0001
in which R51 and R52, independently of one another, have the meanings indicated above for R21 under formula II, preferably R51 denotes alkyl and R52 denotes alkyl or alkenyl,
on each appearance, independently of one another,
Figure imgf000052_0002
denotes
Figure imgf000052_0003
preferably one or more
Figure imgf000052_0004
Z and Z , independently of one another and, if Z occurs twice, also these independently of one another,
denote -CH2CH2-, -COO-, trans-C =CH-t trans- CF=CF-, -CH2O-, -CF2O- or a single bond, preferably one or more thereof denotes/denote a single bond, and r denotes 0, 1 or 2, preferably 0 or 1 , particularly preferably 1.
The liquid-crystalline media in accordance with the present invention preferably comprise one or more compounds selected from the group of the compounds of the formulae V-1 and V-2, preferably of formula V-1 :
Figure imgf000053_0001
in which R51 and R52 have the respective meanings indicated above under formula V, and R51 preferably denotes alkyl and in formula V-1 , R52 preferably denotes alkenyl, preferably -(CH2)2-CH=CH-CH3, and in formula V-2, R52 preferably denotes alkyl, -(CH2)2-CH=CH2 or -(CH2)2-CH=CH- CH3.
The liquid-crystalline media in accordance with the present invention preferably comprise one or more compounds selected from the group of the compounds of the formulae V-1 and V-2, in which R51 preferably denotes n-alkyl and, in formula V-1 , R52 preferably denotes alkenyl and, in formula V-2, R52 preferably denotes n-alkyl.
In a preferred embodiment, the liquid-crystal medium preferably comprises one or more compounds of the formula V-1 , more preferably of the sub- formula PP-n-2Vm thereof, still more preferably of the formula PP-1-2V1. The definitions of these abbreviations (acronyms) are evident from Tables A and B. In a preferred embodiment, the liquid-crystal medium preferably comprises one or more compounds of the formula V-2, more preferably of the sub- formulae PGP-n-m, PGP-n-2V and PGP-n-2Vm thereof, still more preferably of the sub-formulae PGP-3-m, PGP-n-2V and PGP-n-V1 thereof, very preferably selected from the formulae PGP-3-2, PGP-3-3, PGP-3-4, PGP-3-5, PGP-1-2V, PGP-2-2V and PGP-3-2V. The definitions of these abbreviations (acronyms) are evident from Tables A and B.
The liquid-crystalline media in accordance with the present invention preferably comprise compounds selected from the group of the compounds of the formulae I to V and more preferably of the formulae I to IV, more preferably predominantly consist, still more preferably essentially consist and very preferably completely consist thereof.
Besides the compounds of the formula I, the liquid-crystal mixtures in accordance with the present invention preferably comprise compounds of the formulae II and/or III, preferably of the formula II and of compounds of the formula 111. The liquid-crystal mixtures in accordance with the present invention particularly preferably additionally comprise one or more compounds of the formulae IV and/or V, particularly preferably of the formula IV.
The mixtures in accordance with the present invention may of course also comprise in each case one or more compounds of a plurality of the five formulae, formulae I to V, and even all five formulae, formulae I to V.
In this application, comprise in connection with compositions means that the entity in question, i.e. generally the medium, comprises the compound or compounds indicated, preferably in a total concentration of
approximately 10 % or more and very preferably approximately 20 % or more. In this connection, predominantly consist of means that the entity in question comprises approximately 55 % or more, preferably approximately 60 % or more and very preferably approximately 70 % or more of the compound or compounds indicated.
In this connection, essentially consist of means that the entity in question comprises approximately 80 % or more, preferably approximately 90 % or more and very preferably approximately 95 % or more of the compound or compounds indicated.
In this connection, completely consist of means that the entity in question comprises approximately 98 % or more, preferably approximately 99 % or more and very preferably 100.0 % of the compound or compounds indicated.
Other mesogenic compounds, such as, for example dielectric negative compounds, which are not mentioned explicitly above, can optionally and advantageously also be used in the media in accordance with the present invention. Such compounds are known to the person skilled in the art.
The compounds of formula I are preferably used in a concentration of approximately 3 % to approximately 70 %, more preferably approximately 5% to approximately 60 % and very particularly preferably approximately 10% to approximately 50% of the mixture as a whole.
The compounds of the formulae II and III are preferably used in a concentration of approximately 2 % to approximately 90 %, more preferably approximately 3 % to approximately 80 % and very particularly preferably approximately 4 % to approximately 70% of the mixture as a whole.
The compounds of the formulae IV and V are preferably used in a concentration of approximately 2 % to approximately 70 %, more preferably approximately 5 % to approximately 65 %, even more preferably approximately 10 % to approximately 60 % and very particularly preferably from approximately 10 %, preferably from approximately 15 %, to approximately 55 % of the mixture as a whole. The media according to the invention may optionally comprise further liquid-crystal compounds in order to adjust the physical properties. Such compounds are known to the person skilled in the art. Their concentration in the media in accordance with the present invention is preferably 0 % to approximately 30 %, more preferably approximately 0.1 % to
approximately 20 % and very preferably approximately 1 % to
approximately 15 %. The liquid-crystal media preferably comprise in total approximately 50 % to 100 %, more preferably approximately 70 % to 100 % and very preferably approximately 80 % to 100 % and in particular approximately 90 % to 100 % preferably predominantly consist of and very preferably entirely consist of one or more of the compounds of the formulae I, II, III, IV and V, preferably of the formulae I, II, III and IV or V.
In the following conditions for the liquid-crystalline media according to preferred embodiments of the present invention are given. These preferred conditions may be fulfilled individually or, preferably in
combinations with each other. Binary combinations thereof are preferred, whereas ternary or higher combinations thereof are particularly preferred.
The liquid-crystalline medium in accordance with the present invention optionally comprises further compounds, for example stabilisers, antioxidants, and/or as mentioned above self-alignment agents. They are preferably employed in a concentration of 0% to approximately 30%, particularly preferably 0 % to approximately 15%, and very particularly preferably 0 % to approximately 5%. In accordance with the invention, the liquid-crystalline medium preferably exhibits positive values for the dielectric anisotropy Δε. In this case, Δε preferably has a value of approximately > 3, more preferably
approximately≥ 5, even more preferably approximately > 8. The liquid-crystal media in accordance with the present invention preferably have a clearing point of approximately 65°C or more, more preferably approximately 70°C or more, still more preferably 80°C or more, particularly preferably approximately 85°C or more and very particularly preferably approximately 90°C or more. The nematic phase of the media according to the invention preferably extends at least from approximately 0°C or less to approximately 65°C or more, more preferably at least from approximately 20°C or less to approximately 70°C or more, very preferably at least from approximately 30°C or less to approximately 70°C or more and in particular at least from approximately 40°C or less to approximately 90°C or more. In individual preferred embodiments, it may be necessary for the nematic phase of the media according to the invention to extend to a temperature of
approximately 100°C or more and even to approximately 110°C or more. The Δη of a suitable liquid-crystal media is preferably as high as possible. Typically, the Δη of the liquid-crystal media in accordance with the present invention, at 589 nm (NaD) and 20°C, is preferably in the range from approximately 0.10 or more to approximately 0.35 or more, more preferably in the range from approximately 0.12 or more to approximately 0.35 or more, even more preferably in the range from approximately 0.15 or more to approximately 0.35 or more and very particularly preferably in the range from approximately 0.17 or more to approximately 0.35 or more.
The liquid-crystal media used in the light modulation element according to the present invention preferably have an elastic constant Kn of
approximately 18 pN or more, more preferably of approximately 20 pN or more, and even more preferably of approximately 25 pN or more.
The liquid-crystal media used in the light modulation element according to the present invention preferably have an elastic constant K33 of
approximately 30 pN or less, more preferably of approximately 15 pN or less, and even more preferably of approximately 10 pN or less.
The rotational viscosity of a suitable liquid-crystal media is preferably as low as possible. Typically, the media according to the present invention, exhibit a rotational viscosity of approximately 90 mPas or less, preferably of approximately 80 mPas or less.
The liquid-crystal media utilized in the light modulation element according to the present invention are prepared in a manner conventional per se. In general, the desired amount of the components used in lesser amount is dissolved in the components making up the principal constituent, preferably at elevated temperature. It is also possible to mix solutions of the components in an organic solvent, for example in acetone, chloroform or methanol, and to remove the solvent again, for example by distillation, after thorough mixing. It is furthermore possible to prepare the mixtures in other conventional manners, for example using pre-mixes, for example homologue mixtures, or using so-called "multibottle" systems.
The functional principle of the device according to the invention will be explained in detail below. It is noted that no restriction of the scope of the claimed invention, which is not present in the claims, is to be derived from the comments on the assumed way of functioning.
In a preferred embodiment of the invention, the light modulation element comprises two or more polarisers, at least one of which is arranged on one side of the layer of the liquid-crystalline medium and at least one of which is arranged on the opposite side of the layer of the liquid-crystalline medium. The layer of the liquid-crystalline medium and the polarisers here are preferably arranged parallel to one another.
The polarisers can be linear polarisers. Preferably, precisely two polarisers are present in the light modulation element. In this case, it is furthermore preferred for the polarisers either both to be linear polarisers. If two linear polarisers are present in the light modulation element, it is preferred in accordance with the invention for the polarisation directions of the two polarisers to be crossed.
It is furthermore preferred in the case where two circular polarisers are pre-sent in the light modulation element for these to have the same polarisation direction, i.e. either both are right-hand circular-polarised or both are left-hand circular-polarised. The polarisers can be reflective or absorptive polarisers. A reflective polariser in the sense of the present application reflects light having one polarisation direction or one type of circular-polarised light, while being transparent to light having the other polarisation direction or the other type of circular-polarised light. Correspondingly, an absorptive polariser absorbs light having one polarisation direction or one type of circular- polarised light, while being transparent to light having the other
polarisation direction or the other type of circular-polarised light. The reflection or absorption is usually not quantitative; meaning that complete polarisation of the light passing through the polariser does not take place.
For the purposes of the present invention, both absorptive and reflective polarisers can be employed. Preference is given to the use of polarisers, which are in the form of thin optical films. Examples of reflective polarisers which can be used in the light modulation element according to the invention are DRPF (diffusive reflective polariser film, 3M), DBEF (dual brightness enhanced film, 3M), DBR (layered-polymer distributed Bragg reflectors, as described in US 7,038,745 and US 6,099,758) and APF (advanced polariser film, 3M).
Examples of absorptive polarisers, which can be employed in the light modulation elements according to the invention, are the Itos XP38 polariser film and the Nitto Denko GU-1220DUN polariser film. An example of a circular polariser, which can be used in accordance with the invention, is the APNCP37-035-STD polariser (American Polarizers). A further example is the CP42 polariser (ITOS).
In a preferred embodiment of the invention, the layer of the liquid- crystalline medium is arranged between two substrate layers.
In accordance with the invention, the two substrate layers may consist, inter alia, each and independently from another of a polymeric material, of metal oxide, for example ITO and of glass, preferably each and
independently of another of glass and/or ITO, in particular glass/glass. ln a preferred embodiment, the substrates are arranged with a separation in the range from approximately 1 pm to approximately 50 pm from one another, preferably in the range from approximately 2 pm to approximately 40 pm from one another, and more preferably in the range from
approximately 3 pm to approximately 30 pm from one another. The layer of the liquid-crystalline medium is thereby located in the interspace.
The substrate layers can be kept at a defined separation from one another, for example, by spacers or electrodes, which extend through the full cell thickness or projecting structures in the layer. Typical spacer materials are commonly known to the expert, as for example spacers made of plastic, silica, epoxy resins, etc.
The light modulation element may furthermore have one or more alignment layers, which are in direct contact with the layer of the liquid- crystalline medium, and preferably induce a homeotropic alignment throughout the entire liquid-crystalline medium. The alignment layers may also serve as substrate layers, so that substrate layers are not necessary in the light modulation element. If substrate layers are additionally present, the alignment layers are in each case arranged between the substrate layer and the layer of the liquid-crystalline medium. Typical alignment layer materials are commonly known to the expert, such as, for example, layers made of polyimide, alkoxysilanes, alkyltrichlorosilanes, CTAB, and chromium based Werner complexes, such as, for example, commercially available Quilon©C from Zaclon.
It is likewise possible in accordance with the present invention and advantageous under certain conditions for the light modulation element to comprise no alignment layers adjacent to the layer of the liquid-crystalline medium. In this case, a homeotropical alignment can be achieved by adding to the liquid-crystalline medium one or more so called "self alignment agents". Suitable self alignment agents are, for example, described by Shie-Chang Jeng et al. Optics Letters (2009), 34, 455-457 or Shug-June Hwang et al. J. Phys D. Appl. Phys 2009, 42, 025102 or the self alignment agents disclosed in US 2008/0198301 , JP 2010-170090 A, EP 2 593 529 A1 or EP 2 606 101 A1. The light modulation element may furthermore comprise filters, which block light of certain wavelengths, for example, UV filters. In accordance with the invention, further functional layers commonly known to the expert may also be present, such as, for example, protective films and/or compensation films.
In a preferred embodiment, the light modulation element comprises a pattern of parallel electrodes, which are capable to allow the application of an electric field, which is substantially parallel to the substrates or the liquid-crystal layer.
Depending on the utilized electrode structure, preferably both substrates carry patterns of opposing electrodes on their facing surfaces with the intervening liquid crystal medium there between. A suitable electrode structures is, for example, a comb-like electrode arrangement. Further preferred electrode structures are, for example, IPS, or FFS electrode structures. in another preferred embodiment, a through cell electrode structure is utilized, which serves as both spacer and electrode. Other suitable electrode structures are commonly known to the expert.
Suitable electrode materials are commonly known to the expert, as for example electrodes made of metal or metal oxides, such as, for example transparent indium tin oxide (ITO), which is preferred according to the present invention.
The spacing between the electrodes is preferably in the range from approximately 1 pm to approximately 1000 μιτι, more preferably in the range from approximately 10 pm to approximately 1000 μητι, and even more preferably in the range from approximately 20 pm to approximately 1000 pm, in particular in the range from approximately 30 pm to
approximately 200 pm. Preferably, the electrodes of the light modulation element are associated with a switching element, such as a thin film transistor (TFT) or thin film diode (TFD). The light transmission of the device according to the invention is
dependent on the applied electric field. In a preferred embodiment, the light transmission of the device is high when an electric field is applied and low in the initial state when no electric field is applied. In a preferred embodiment, the device according to the invention has a boundary state A and a boundary state B. For the purposes of the present application, the term boundary state is taken to mean a state in which the transmission reaches a maximum or minimum value and changes no further or virtually no further on a further reduction or increase in the of the applied electric field.
The light modulation element preferably has the boundary state A with a transmission TA when no electrical field is applied, the so called off state, in which the liquid crystal medium is essentially homeotropically aligned.
The light modulation element preferably has another boundary state B when an electric field is applied, the so called "on state", in which the liquid crystal medium is increasingly distorted away from the vertical towards the bend state, whereby the LC medium is initially homeotropically aligned and then becomes bent.
TA < TB.
The light modulation element preferably exhibits an induced retardation in the "on"-state in the range from approximately 1 nm to approximately
300nm, more preferably from approximately 1nm to approximately 275nm, even more preferably from approximately 1nm to approximately 260nm.
The low applied electric fields required to switch the light modulation elements according to the present invention have several advantages. The inter-electrode spacing is substantially larger than the inter-electrode spacing found in current IPS devices. Accordingly, lower cost patterning of the electrodes, improved yields, increased optical apertures and lower driving voltages are some benefits from the light modulation element according to the present invention.
The homeotropic "off state" of the device provides excellent optical extinction and therefore a favourable contrast.
The optics of the device are to some degree self-compensating (similar to a conventional pi-cell) and provide better viewing angle than a
conventional light modulation element according to the VA mode.
The required applied electric field strength is mainly dependent on the electrode gap and the concentration of compounds of formula I as well as the Δβ of the host mixture. The applied electric field strengths are typically lower than approximately 0.5 V/pm" , preferably lower than approximately 0.2 V/pm"1 and more preferably lower than approximately 0.1 V/pm"1.
Preferably, the applied driving voltage is in the range from 0 V to
approximately 10 V, more preferably in the range from approximately 1 V to approximately 7V, and even more preferably in the range from
approximately 1.5 V to approximately 4.V.
The nature of the switching can also be inferred from the behaviour of the device under slow square wave driving. The switched state resulting from a Freedericksz transition has no polarity sensitivity, and the optical change as the voltage is reversed, is minimal. The bend state, however, changes the direction of its distortion in response to the applied voltage and the cell becomes optically extinct and then regains its previous appearance when the polarity changes. This provides a simple check on the nature of the distortion occurring in a particular cell/voltage combination.
In preferred embodiment, three distinct switching regimes can be observed in a light modulation element according to the present invention: 1. At low applied electric fields, the induced retardation increases as a result from the induced flexoelectric bend distortion,
2. At fields approaching the Freedericksz critical field, the transmission increases rapidly. Even at fields appreciably above the Freedericksz threshold, the induced flexoelectric bend distortion remains a polarity dependent bend mode,
3. At still higher fields, a Freedericksz distortion grows into the cell from the electrodes. This results in a large increase in retardation, and the cell no longer responds to polarity changes.
Accordingly, at low applied electric fields, the induced retardation increases as a result from the distinct flexoelectric switching regime and at higher applied electric fields approaching the Freedericksz critical field, the transmission increases rapidly as a result from the distinct dielectric switching regime.
The light modulation element according to the present invention can be operated with a conventional driving waveform as commonly known by the expert.
However, in a preferred embodiment according to the present invention an alternative driving waveform can be utilized. Therefore, a short duration 'kick' or pre-pulse that is a number of times larger than the amplitude of the DC pulse required to obtain the desired amplitude of switching can be used to simulate the presence of a higher voltage, thus allowing a faster switching speed to be obtained. A typical process for the production of a light modulation element according to the invention comprises the following steps:
cutting and cleaning glass substrates, on which the electrodes are arranged,
coating the substrates with an alignment layer agent,
assembling the cell using a UV curable adhesive, and filling the cell with the liquid-crystalline medium.
The light modulation element of the present invention can be used in various types of optical and electro-optical devices.
Said optical and electro optical devices include, without limitation electrooptical displays, liquid crystal displays (LCDs), non-linear optic (NLO) devices, and optical information storage devices.
Especially preferred features of the invention are summarized in form of a numbered list:
1. Light modulation element comprising a flexoelectric polarisable liquid-crystalline medium, characterized in that the switching from a boundary state A to a boundary state B involves a combination of a flexoelectric switching regime and a dielectric switching regime upon application of an electric field.
2. The light modulation element according to note 1 , characterized in that the liquid-crystalline medium which is sandwiched between at least two substrates, is homeotropically aligned to both substrate surfaces in the boundary state A.
3. The light modulation element according to note 1 or 2, wherein the liquid-crystalline medium comprises a bent core liquid-crystalline compound having an absolute value of the bend flexoelectric coefficient | β31 in the range from 1 pCm"1 to 60 pCm"1
4. The light modulation element according to one or more of notes 1 to 3, wherein the liquid crystal medium comprises at least one bent core compound selected from the compounds of formula I
R1-M -Y1-B-Y2-M2-R2 I wherein the parameters R1, M1, Y1, B, Y2, M2 and R2 have the same meanings as given above for formula I. The light modulation element according to one or more of notes 1 to 4, wherein the amount of compounds of formula I in the liquid- crystalline medium as a whole is in the range from 3 to 70 %.
The light modulation element according to one or more of notes 1 to 5, wherein the liquid-crystalline medium comprises one or more compounds of formulae II and III,
Figure imgf000066_0001
wherein the parameters have the same meaning as given above for formulae II and III. The light modulation element according to one or more of notes 1 to 6, wherein the liquid-crystalline medium comprises one or more compounds of formula IV
Figure imgf000066_0002
wherein the parameters have the same meaning as given above for formula IV.
The light modulation element according to one or more of notes 1 to 7, wherein the liquid-crystalline medium comprise one or more compounds of the formula V,
Figure imgf000067_0001
wherein the parameters have the same meaning as given above for formula V.
9. The light modulation element according to one or more of notes 1 to 8, wherein the amount of compounds of the formulae II and/or
III in the liquid-crystalline medium as a whole is in the range from 2 to 90 %.
10. The light modulation element according to one or more of notes 1 to 9, wherein the amount of compounds of the formulae IV and/or j- V in the liquid-crystalline medium as a whole is in the range from 2 to 70 %.
11. The light modulation element according to one or more of notes 1 to 10, wherein the liquid-crystalline medium exhibits a dielectric positive anisotropy of > 3.
0
12. The light modulation element according to one or more of notes 1 to 1 1 , wherein the liquid-crystalline medium exhibits a birefringence in the range from 0.10 or more to 0.35 or more.
13. The light modulation element according to one or more of notes 1^ to 12, wherein the light modulation is induced by an applied in- plane electric field
14. The light modulation element according to one or more of notes 1 to 13, wherein the flexoelectric switching occurs at applied electricQ field strength lower than 0.5 V/μπνΙ .
15. The light modulation element according to one or more of notes 1 to 14, wherein the induced retardation in the "on-state" is in the range from 1 nm to 300 nm. 5 16. Method for production of a light modulation element according to one or more of notes 1 to 15, comprising at least the step of filling the liquid-crystalline medium into a cell.
17. Use of a light modulation element according to one or more of notes 1 to 15 in an electro-optical device.
18. Electro-optical device comprising the light modulation element according to one or more of claims 1 to 15.
It will be appreciated that variations to the foregoing embodiments of the invention can be made while still falling within the scope of the invention. Each feature disclosed in this specification, unless stated otherwise, may be replaced by alternative features serving the same, equivalent, or similar purpose. Thus, unless stated otherwise, each feature disclosed is one example only of a generic series of equivalent or similar features.
All of the features disclosed in this specification may be combined in any combination, except combinations where at least some of such features and/or steps are mutually exclusive. In particular, the preferred features of the invention are applicable to all aspects of the invention and may be used in any combination. Likewise, features described in non-essential combinations may be used separately (not in combination). It will be appreciated that many of the features described above, particularly of the preferred embodiments, are inventive in their own right and not just as part of an embodiment of the present invention.
Independent protection may be sought for these features in addition to or alternative to any invention presently claimed.
In the present application and in the examples below, the structures of the liquid-crystal compounds are indicated by means of acronyms, with the transformation into chemical formulae taking place in accordance with Tables A and B below. All radicals CnH2n+1 and CmH2m+1 are straight- chain alkyl radicals having n and m C atoms respectively; n, m and k are integers and preferably denote 0, 1 , 2, 3, 4, 5, 6, 7, 8, 9, 10, 11 or 12. The coding in Table B is self-evident. In Table A, only the acronym for the parent structure is indicated. In individual cases, the acronym for the parent structure is followed, separated by a dash, by a code for the substituents R1*, R2*, L1* and L2*:
Code for R1*, R R2* L * L2*
R2*, L , L2*, L3*
Figure imgf000069_0001
nOm CnH2n+1 OCmH2m+1 H H nO.m OCnH2n+1 CmH2m+1 H H
Figure imgf000069_0002
nN.F CnH2n+1 CN F H
Figure imgf000069_0003
nF CnH2n+1 F H H nCI CnH2n+1 CI H H nOF OCnH2n+1 F H H nF.F CnH2n+1 F F H nF.F.F CnH2n+1 F F F
Figure imgf000069_0004
nOCF3.F CnH2n+1 OCF3 F H n-Vm CnH2n+1 -CH=CH-CmH2m+i H H nV-Vm CnH2n+1"CH=CH- -CH=CH-CmH2m+i H H
Preferred mixture components are found in Tables A and B.
Figure imgf000069_0005
PYP PYRP
Figure imgf000070_0001
CCPC
35
Figure imgf000071_0001
Figure imgf000071_0002
Figure imgf000071_0003
Figure imgf000071_0004
Figure imgf000071_0005

Table B
Figure imgf000072_0001
Figure imgf000073_0001
CDU-n-F DCU-n-F
Figure imgf000073_0002
CGG-n-F CPZG-n-OT
Figure imgf000073_0003
CC-nV-Vm
Figure imgf000073_0004
CCP-Vn-m CCG-V-F
Figure imgf000073_0005
CCP-nV-m CC-n-V
Figure imgf000073_0006
CCQU-n-F CC-n-Vm
Figure imgf000073_0007
CPPC-nV-Vm
Figure imgf000073_0008
CCQG-n-F CQU-n-F
Figure imgf000074_0001
Figure imgf000074_0002
Figure imgf000074_0003
Figure imgf000074_0004
CCOC-n-m
Figure imgf000074_0005
PGU-n-F CGZP-n-OT
Figure imgf000075_0001
Figure imgf000075_0002
Figure imgf000075_0003
Figure imgf000075_0004
CCCQU-n-F
Figure imgf000075_0005
CGUQU-n-F
Figure imgf000075_0006
CPGU-n-OT
Figure imgf000076_0001
CVCP-1V-OT GGP-
Figure imgf000076_0002
PGUQU-n-F
Figure imgf000077_0001
Figure imgf000077_0002
Figure imgf000077_0003
Figure imgf000077_0004
SPUQU-n-F
In a preferred embodiment of the present invention, the LC media according to the invention comprise one or more compounds selected from the group consisting of compounds from Tables A and B. Table C
Table C indicates possible stabilizers, which can be added to the LC media according to the invention.
Figure imgf000078_0001
Figure imgf000079_0001
Figure imgf000080_0001
Figure imgf000081_0001
30
35
Figure imgf000082_0001
The LC media preferably comprise 0 to 10% by weight, in particular 0.01 to 5% by weight and particularly preferably 0.1 to 3% by weight, of dopants. The LC media preferably comprise one or more dopants selected from the group consisting of compounds from Table C.
Examples
A cell is prepared by the following method: Two glass substrates are cleaned in deionised water in an ultrasound bath for 10 minutes, dried in a stream of air and immersed for 60 seconds in a solution of 20% KOH in deionised water. The substrates are rinsed in deionised water, dried under a stream of air, and dipped into a solution of a Quilon C, Chrome Complex solution for 60 seconds. The treated substrates are rinsed briefly in deionised water and dried at 150°C for 60 minutes. Subsequently, two strips of aluminium foil of 30 pm thickness were cut and placed parallel to each other on one of the substrates with a narrow gap of approximately 1mm between the electrodes.
A thin bead of Norland Optical Adhesive #65 is applied around the outside of the electrodes and the formed cell is subjected to pressure and Norland Optical Adhesive #65 was exposed to UV light (350 nm) to glue the cell together and to seal the edges leaving two gaps to allow filling with liquid crystal mixture. Example 1
A mixture containing 30% of compound (1) in ZLI-1132 (70%) is prepared and introduced into the cell by capillary filling at 80°C.
Figure imgf000083_0001
The cell is held at 60°C for 30 minutes and cooled down to ambient temperature. Wires are attached to the aluminium foil electrodes using conductive adhesive (RS 186-3600, silver-loaded electrically conductive paint) and clips. A dc voltage is applied and the transmission of the cell is recorded using a standard photodiode on a polarising microscope. The transmission as a function of voltage is shown in table 1.
Applied Field [Vpm~1] Transmission [%]
0.0000 0.2
0.0133 0.0
0.0263 0.3
0.0396 3.5
0.0459 7.8
0.0525 17.8
0.0584 36.5
0.0645 66.7
Table 1 : Transmission of the cell as a function of the applied electric field.
As can be seen from the table, at low applied electric fields, the induced retardation increases as a result from the induced flexoelectric bend distortion.
At fields approaching the Freedericksz critical field of 0.75 Vpm"1, the transmission increases rapidly. Even at fields appreciably above the Freedericksz threshold, the induced flexoelectric bend distortion remains a polarity dependent bend mode,
At still higher fields above 0.75 Vpm" , a Freedericksz distortion grows into the cell from the electrodes. This results in a large increase in retardation, and the cell no longer responds to polarity changes.
Example 2
A mixture containing 63.6 % ZLI-1132, 27.3 % of compound (1) and 9.1% of compound (2) is prepared.
Figure imgf000085_0001
The cell is held at 60°C for 30 minutes and cooled down to ambient temperature. Wires are attached to the aluminium foil electrodes using conductive adhesive (RS 186-3600, silver-loaded electrically conductive paint) and clips. A dc voltage is applied and the transmission of the cell is recorded using a standard photodiode on a polarising microscope (table 2). Applied FieldA/pm"1 Transmission %
0.000 0.00
0.034 0.15
0.056 0.58
0.068 0.90 0.079 1.60
0.090 2.44
0.102 4.00
0.113 6.38
Table 2: Transmission of the cell as a function of the applied electric field.

Claims

Patent Claims
Light modulation element comprising a flexoelectric polarisable liquid-crystalline medium, characterized in that the switching from a boundary state A to a boundary state B comprises a combination of a flexoelectric switching regime and a dielectric switching regime upon application of an electric field.
The light modulation element according to claim 1, wherein the liquid- crystalline medium, which is sandwiched between at least two substrates, is homeotropically aligned to both substrate surfaces in the boundary state A.
The light modulation element according to claim 1 or 2, wherein the liquid-crystalline medium comprises a bent core liquid-crystalline compound having an absolute value of the bend flexoelectric coefficient | β31 in the range from 1 pCm"1 to 60 pCm" .
The light modulation element according to one or more of claims 1 to 3, wherein the liquid crystal medium comprises at least one bent core compound selected from the compounds of formula I,
R^M ^B-Y^IV -R2 I wherein
Y1 and Y2 are in each case independently -0-, -S-, -CO-,
-COO-, -OCO-, -OCO-O-, -CO-NR0-, -NR0-CO-,
-OCH2-, -CH2O-, -SCH2-, -CH2S-, -CH=CH-COO-, -OOC-CH=CH- or a single bond,
R° is H or alkyl with 1 to 4 C atoms,
M1 and M2 are independently of each other a mesogenic group,
B is a bivalent ring group that imparts a bent structure to the compound, and denote, each and independently from another, H, F, CI, CN, OCN, SCN, SF5, NO2 or a straight-chain or branched alkyl radical with up to 25 C atoms which may be unsubstituted, mono- or polysubstituted by halogen or CN, it being also possible for one or more non- adjacent CH2 groups to be replaced, in each case independently from one another, by -0-, -S-, -NH-, -N(CH3)-, -CO-, -COO-, -OCO-, -OCO-O-, -S-CO-, -CO- S-, -CH=CH- or -C≡C- in such a manner that oxygen atoms are not linked directly to one another.
The light modulation element according to one or more of claims 1 to
4, wherein the amount of compounds of formula I in the liquid- crystalline medium as a whole is in the range from 3 to 70 %.
The light modulation element according to one or more of claims 1 to
5, wherein the liquid-crystalline medium comprises one or more compounds of formulae II and III,
Figure imgf000087_0001
in which
R 21 denotes alkyl, alkoxy, fluorinated alkyl or fluorinated alkoxy having 1 to 7 C atoms, alkenyl, alkenyloxy, alkoxyalkyl or fluorinated alkenyl having 2 to 7 C atoms,
Figure imgf000088_0001
on each appearance, independently of one another, denote
Figure imgf000088_0002
denotes halogen, haiogenated alkyl or alkoxy having 1 to 3 C atoms or haiogenated alkenyl or alkenyloxy having 2 or 3 C atoms, denotes 0, 1 , 2 or 3, denotes alkyl, alkoxy, fluorinated alkyl or fluorinated alkoxy having 1 to 7 C atoms, alkenyl, alkenyloxy, alkoxyalkyi or fluorinated alkenyl having 2 to 7 C atoms,
Figure imgf000089_0001
on each appearance, independently of one another, are
Figure imgf000089_0002
independently of one another, denote H or F, denotes halogen, halogenated alkyl or alkoxy having 1 to 3 C atoms or halogenated alkenyl or alkenyloxy having 2 or 3 C atoms, denotes -CH2CH2-, -CF2CF2-, -COO-, trans-CH=C -, fra/?s-CF=CF-, -CH20- or a single bond, and n denotes 0, 1 , 2 or 3.
7. The light modulation element according to one or more of claims 1 to 6, wherein the liquid-crystalline medium comprises one or more compounds of formula IV
Figure imgf000090_0001
in which
R and R independently of one another, have the meaning indicated above for R21 under formula II,
i occurs twice,
Figure imgf000090_0002
also these independently of one another, denote
Figure imgf000090_0003
Figure imgf000091_0001
independently of one another and, if Z occurs twice, also these independently of one another,
denote -CH2CH2-, -COO-, trans-CH=C -, trans- CF=CF-, -CH2O-, -CF2O-, -C≡C- or a single bond, and0
denotes 0, 1 or 2.
The light modulation element according to one or more of claims 1 to 7, wherein the liquid-crystalline medium comprise one or more compounds of the formula V,
Figure imgf000091_0002
n
υ in which independently of one another, have the meanings indi cated above for R21 under formula II,
Figure imgf000091_0003
on each appearance, independently of one another, denotes
Figure imgf000091_0004
5
Figure imgf000092_0001
Z5 and Z52 independently of one another and, if Z51 occurs twice also these independently of one another,
denote -CH2CH2-, -COO-, frans-CH=CH-, trans- CF=CF-, -CH2O-, -CF2O- or a single bond, and r denotes 0, 1 or 2.
9. The light modulation element according to one or more of claims 1 to 8, wherein the amount of compounds of the formulae II and/or III in the liquid-crystalline medium as a whole is in the range from 2 to 90 %.
The light modulation element according to one or more of claims 1 to 9, wherein the amount of compounds of the formulae IV and/or V in the liquid-crystalline medium as a whole is in the range from 2 to
70 %.
11. The light modulation element according to one or more of claims 1 to
10, wherein the liquid-crystalline medium exhibits a dielectric positive anisotropy of≥ 3.
12. The light modulation element according to one or more of claims 1 to
11 , wherein the liquid-crystalline medium exhibits a birefringence in the range from 0.10 or more to 0.35 or more.
13. The light modulation element according to one or more of claims 1 to
12, wherein the light modulation is induced by an applied in-plane electric field
14. The light modulation element according to one or more of claims 1 to
13, wherein the flexoelectric switching occurs at applied electric field strength lower than 0.5 V/μιη-Ι .
15. The light modulation element according to one or more of claims 1 to
14, wherein the induced retardation in the "on"-state is in the range from 1 nm to 300 nm.
16. Method for production of a light modulation element according to one or more of claims 1 to 15, comprising at least the step of filling the cell with the liquid-crystalline medium. 7. Use of a light modulation element according to one or more of claims 1 to 15 in an electro-optical device.
18. Electro-optical device comprising the light modulation element
according to one or more of claims 1 to 15.
PCT/EP2014/003192 2013-12-19 2014-11-28 Light modulation element WO2015090511A1 (en)

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