WO2012121379A1 - 液晶表示素子用スペーサ、液晶表示素子用スペーサ分散液及び液晶表示素子 - Google Patents
液晶表示素子用スペーサ、液晶表示素子用スペーサ分散液及び液晶表示素子 Download PDFInfo
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- WO2012121379A1 WO2012121379A1 PCT/JP2012/056153 JP2012056153W WO2012121379A1 WO 2012121379 A1 WO2012121379 A1 WO 2012121379A1 JP 2012056153 W JP2012056153 W JP 2012056153W WO 2012121379 A1 WO2012121379 A1 WO 2012121379A1
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- liquid crystal
- crystal display
- display element
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- compound
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- G—PHYSICS
- G02—OPTICS
- G02F—OPTICAL 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
- G02F1/00—Devices 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
- G02F1/01—Devices 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
- G02F1/13—Devices 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
- G02F1/133—Constructional arrangements; Operation of liquid crystal cells; Circuit arrangements
- G02F1/1333—Constructional arrangements; Manufacturing methods
- G02F1/1339—Gaskets; Spacers; Sealing of cells
- G02F1/13392—Gaskets; Spacers; Sealing of cells spacers dispersed on the cell substrate, e.g. spherical particles, microfibres
-
- G—PHYSICS
- G02—OPTICS
- G02F—OPTICAL 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
- G02F1/00—Devices 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
- G02F1/01—Devices 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
- G02F1/13—Devices 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
- G02F1/133—Constructional arrangements; Operation of liquid crystal cells; Circuit arrangements
- G02F1/1333—Constructional arrangements; Manufacturing methods
- G02F1/1339—Gaskets; Spacers; Sealing of cells
- G02F1/13398—Spacer materials; Spacer properties
Definitions
- the present invention relates to a spacer for a liquid crystal display element that can prevent light leakage and generation of thread-like domains and can improve the display quality of the liquid crystal display element without disturbing the alignment of the liquid crystal.
- the present invention also relates to a liquid crystal display element spacer dispersion using the liquid crystal display element spacer and a liquid crystal display element.
- the liquid crystal display element is configured by arranging liquid crystal between two glass substrates.
- a spacer having a uniform particle diameter is used as a gap control material.
- the alignment of the liquid crystal molecules regulated by the alignment film may be irregular around the spacer.
- a phenomenon called “light omission” that transmits light from the backlight occurs around the spacer.
- the contrast of the liquid crystal display element may be lowered, or the display quality called “white spot” may be lowered.
- Such light leakage due to abnormal orientation occurs when a voltage is applied between the substrates. Even if the power of the liquid crystal display element is turned off after the voltage is applied, the light leakage phenomenon once generated is not solved.
- Patent Document 1 listed below discloses a spacer in which the surface of a microsphere is coated with an organosilane compound.
- the liquid crystal molecules are aligned perpendicular to the surface of the spacer by the organosilane compound present on the surface of the spacer. For this reason, abnormal orientation can be suppressed to some extent.
- Patent Document 2 discloses a spacer in which a graft polymer chain having a long-chain alkyl group is introduced on the surface. Patent Document 2 describes that light leakage is prevented in a liquid crystal display element using a spacer according to an embodiment of the document.
- abnormal orientation may not be sufficiently suppressed depending on the combination of the material of the microsphere and the molecular structure of the organosilane compound.
- An object of the present invention is to use a spacer for a liquid crystal display element that can prevent light leakage and occurrence of thread-like domains and can improve the display quality of the liquid crystal display element without disturbing the alignment of the liquid crystal, and the spacer for the liquid crystal display element
- the object is to provide a spacer dispersion for a liquid crystal display element and a liquid crystal display element.
- the present invention provides a spacer for a liquid crystal display element in which the aggregation of the spacer hardly occurs when a spacer dispersion is obtained by dispersing in a dispersion medium, and a spacer dispersion for a liquid crystal display element using the spacer for a liquid crystal display element It is to provide a liquid and a liquid crystal display element.
- the present invention comprises a base particle and a resin layer disposed on the surface of the base particle, the resin layer comprising a compound having an alkyl group having 24 to 30 carbon atoms, an alkylene
- a spacer for a liquid crystal display element formed using a compound having an ether structure is provided.
- the alkylene ether structure is a structure represented by the following formula (21A).
- R represents an alkylene group, and the alkylene group has 2 or more and 6 or less carbon atoms.
- the alkylene ether structure is an ethylene glycol structure.
- the resin layer contains 5 mol% or more and 30 mol% or less of a component derived from the compound having an alkyl group having 24 to 30 carbon atoms.
- the liquid crystal display element spacer according to the present invention is preferably a liquid crystal display element spacer disposed on a substrate by a wet method or an ink jet apparatus.
- the spacer for a liquid crystal display element according to the present invention is preferably a liquid crystal display element spacer used for an STN type liquid crystal display element.
- the spacer dispersion liquid for a liquid crystal display element according to the present invention includes a dispersion medium and a spacer for a liquid crystal display element that is dispersed in the dispersion medium and configured according to the present invention.
- a liquid crystal display element includes a pair of substrates constituting a liquid crystal cell, a liquid crystal sealed between the pair of substrates, and a liquid crystal disposed between the pair of substrates and configured according to the present invention. And a display element spacer.
- the resin layer disposed on the surface of the base particle is formed using a compound having an alkyl group having 24 to 30 carbon atoms and a compound having an alkylene ether structure. Therefore, it is possible to prevent light leakage and generation of thread-like domains and improve the display quality of the liquid crystal display element without disturbing the alignment of the liquid crystal.
- FIG. 1 is a cross-sectional view showing a spacer for a liquid crystal display element according to an embodiment of the present invention.
- FIG. 2 is a cross-sectional view showing a liquid crystal display element using a liquid crystal display element spacer according to an embodiment of the present invention.
- FIG. 1 is a sectional view showing a spacer for a liquid crystal display element according to an embodiment of the present invention.
- the resin layer 3 is formed using a compound having an alkyl group having 24 to 30 carbon atoms and a compound having an alkylene ether structure.
- the liquid crystal display element spacer according to the present invention is suitably used as a liquid crystal display element spacer disposed on a substrate by a wet method or an inkjet apparatus.
- the spacer for a liquid crystal display element according to the present invention is suitably used for an STN type liquid crystal display element.
- the spacer for a liquid crystal display element according to the present invention may be used for a liquid crystal display element other than the STN type liquid crystal display element.
- the present inventor has confirmed that the filamentous domain generated in the STN type liquid crystal display element is generated so as to connect the spacer and the other spacer with a straight line, and the filamentous domain further connects the spacer and the other spacer with a straight line. It was found that this occurs because the liquid crystal molecules are abnormally oriented so as to be tied. The reason why abnormal orientation called a thread domain occurs is considered as follows.
- the liquid crystal display element usually has a liquid crystal cell in which liquid crystal is sealed between a pair of substrates arranged via a plurality of spacers.
- the liquid crystal display element is manufactured by attaching a polarizing plate or the like to the liquid crystal cell.
- the liquid crystal molecules are aligned in the direction perpendicular to the surface of the spacer around the spacer, whereas the liquid crystal molecules are aligned according to the regulating force of the alignment film at a position away from the spacer. is doing.
- a polarizing plate or the like is attached to the liquid crystal cell while applying a pressing force with a roller or the like.
- the alignment state Due to the pressing force applied at the time of pasting, a flow occurs in the aligned liquid crystal molecules according to the regulating force of the alignment film, and the alignment state is disturbed.
- the liquid crystal molecules that are sufficiently separated from the spacer return to a predetermined alignment state according to the regulating force of the alignment film when the pressing force from the roller or the like is removed.
- the liquid crystal molecules in the vicinity of the spacer are governed by the vertical alignment regulating force on the surface of the spacer, which is stronger than the regulating force of the alignment film, even if the pressing force from the roller or the like is removed.
- the present inventor uses the liquid crystal display element spacer in which the specific resin layer is disposed on the surface of the base particle, thereby causing abnormal alignment of the liquid crystal at the interface between the liquid crystal and the spacer and between the plurality of spacers.
- the present inventors have found that a liquid crystal display element having excellent display quality can be obtained because it becomes difficult to prevent light leakage and generation of thread domains.
- the spacer for a liquid crystal display element according to the present invention even when an STN type liquid crystal display element is manufactured in particular, it is possible to effectively prevent the occurrence of light leakage and the generation of thread-like domains, and the liquid crystal sufficiently excellent in display quality. A display element can be obtained.
- the spacer for a liquid crystal display element according to the present invention has base material particles and a resin layer disposed on the surface of the base material particles.
- the resin layer may be disposed on the entire region of the surface of the base particle, or may be disposed on a partial region.
- the resin layer preferably covers the surface of the base particle.
- the resin layer is preferably a coating resin layer.
- the resin layer is preferably attached to the surface of the base particle.
- the material constituting the base particle is not particularly limited.
- the material constituting the substrate particles may be an inorganic material or an organic material.
- organic material examples include epoxy resins, phenol resins, melamine resins, unsaturated polyester resins, resins obtained by polymerizing polymerizable monomers having an ethylenically unsaturated group, divinylbenzene-polyester resins, divinylbenzene- Examples thereof include styrene resin, divinylbenzene-acrylate resin, and diacryl phthalate resin.
- Examples of the inorganic material include silicate glass, borosilicate glass, lead glass, soda lime glass, alumina, and alumina silicate glass.
- the substrate particle may be a substrate particle formed only from the organic material, or may be a substrate particle formed only from the inorganic material, and both the organic material and the inorganic material.
- the base material particle which has the composite structure formed by may be sufficient.
- the base particle is formed of an organic material.
- the spacer for the liquid crystal display element has an appropriate hardness that does not damage the alignment film formed on the substrate of the liquid crystal display element, and can easily follow a change in thickness due to thermal expansion or contraction. Become.
- the preferable lower limit of the average particle diameter of the substrate particles is 1 ⁇ m, the preferable upper limit is 20 ⁇ m, and the more preferable upper limit is 10 ⁇ m.
- the average particle diameter of the substrate particles is equal to or more than the above lower limit, the cell gap of the liquid crystal display element using the spacer is not too narrow, and a liquid crystal display element that is more excellent in display quality can be obtained.
- the average particle diameter of the substrate particles is not more than the above upper limit, the cell gap of the liquid crystal display element using the spacer becomes even more uniform.
- the average particle size of the substrate particles can be obtained by statistically processing the particle size measured using an optical microscope, an electron microscope, a coulter counter, or the like.
- the CV value of the particle diameter of the substrate particles is preferably 10% or less.
- the cell gap of the liquid crystal display element using the spacer becomes more uniform, and the display quality is further improved.
- the resin layer is formed using a compound having a long-chain alkyl group having 24 to 30 carbon atoms (hereinafter sometimes referred to as compound A).
- the resin layer includes a component derived from the compound A having a long-chain alkyl group having 24 to 30 carbon atoms.
- the component is a reaction product of Compound A having a long-chain alkyl group having 24 to 30 carbon atoms.
- the resin layer is preferably formed by reacting compound A having a long-chain alkyl group having 24 to 30 carbon atoms on the surface of the base particle. By using such compound A, a long-chain alkyl group having 24 to 30 carbon atoms can be introduced on the outer surface of the resin layer.
- a liquid crystal display element free from light leakage derived from a long-chain alkyl group having 24 to 30 carbon atoms can be obtained.
- the conventional surface-treated spacer has a pressing force that causes abnormal alignment, and a polarizing plate is applied by a roller or the like. Even when applied, for example, when the pressing force is removed, the liquid crystal molecules return to a predetermined alignment state in accordance with the regulating force of the alignment film, and it is difficult for the liquid crystal display element to form thread domains.
- the spacer for a liquid crystal display element of the present invention even if a thread-like domain is generated, the original state without the thread-like domain can be obtained by performing treatment with ultrasonic waves or the like.
- the carbon number of the long chain alkyl group is 24-30. When the carbon number of the alkyl group of the compound having a long-chain alkyl group is less than 24, light leakage occurs. A preferable lower limit of the carbon number of the long-chain alkyl group is 26. A compound having a long-chain alkyl group having 30 or less carbon atoms can be easily obtained.
- the compound A having a long-chain alkyl group having 24 to 30 carbon atoms is preferably a monomer, and more preferably a (meth) acrylate monomer.
- the compound A is preferably a long chain alkyl group-containing monomer having 24 to 30 carbon atoms, and more preferably a long chain alkyl group-containing (meth) acrylate monomer having 24 to 30 carbon atoms.
- a long-chain alkyl group-containing monomer having 30 or less carbon atoms can be easily obtained.
- the compound A having a long chain alkyl group having 24 to 30 carbon atoms is preferably a compound having a long chain alkyl group having 24 to 30 carbon atoms and a (meth) acryloyl group.
- the said (meth) acrylate shows an acrylate and a methacrylate.
- the (meth) acryloyl group represents an acryloyl group and a methacryloyl group.
- Examples of the long-chain alkyl group-containing monomer having 24 to 30 carbon atoms include tetracosyl (meth) acrylate having 24 alkyl atoms, pentacosyl (meth) acrylate having 25 carbon atoms, and 26 carbon atoms. Hexacosyl (meth) acrylate, heptacosyl (meth) acrylate having 27 carbon atoms, octacosyl (meth) acrylate having 28 carbon atoms, nonacosyl (meth) acrylate having 29 carbon atoms, and triacontyl having 30 carbon atoms (Meth) acrylate etc. are mentioned.
- the preferable lower limit of the content of the component derived from the compound A having a long-chain alkyl group having 24 to 30 carbon atoms in the resin layer is 5 mol%, and the preferable upper limit is 30 mol%.
- the content of the component derived from the compound A having a long-chain alkyl group having 24 to 30 carbon atoms is equal to or more than the above lower limit, light leakage is more difficult to occur.
- the content of the compound A having a long-chain alkyl group having 24 to 30 carbon atoms is not more than the above upper limit, a thread domain is more difficult to occur.
- content of the component derived from the said compound A represents the preparation amount at the time of forming the said resin layer. That is, in order to form the resin layer, the preferable lower limit of the charged amount of the compound A is 5 mol%, and the preferable upper limit is 30 mol%.
- the resin layer is formed using a compound having an alkylene ether structure (hereinafter sometimes referred to as compound B) together with a compound having an alkyl group having 24 to 30 carbon atoms.
- Compound B preferably has an alkylene glycol skeleton.
- the resin layer includes a component derived from the compound B having an alkylene ether structure. This component is a reaction product of Compound B having an alkylene ether structure.
- the resin layer is preferably formed by reacting compound B having an alkylene ether structure on the surface of the base particle. By using such compound B, an alkylene ether structure can be introduced on the outer surface of the resin layer.
- compound B can effectively suppress aggregation of spacers for liquid crystal display elements in the dispersion medium due to the alkylene ether structure.
- aggregation of spacers for liquid crystal display elements can be significantly suppressed in a dispersion medium containing water.
- the spacers can be hardly aggregated. For this reason, the spacer can be accurately arranged on the substrate by a wet method or an inkjet apparatus.
- the spacer for a liquid crystal display element in which the resin layer is formed using the compound A and the compound B the aggregation of the spacer in the dispersion liquid can be suppressed in the spacer dispersion liquid due to the alkylene ether structure of the compound B.
- the above-mentioned effects can be obtained due to the alkyl group having 24 to 30 carbon atoms of the compound A, the light leakage and the generation of thread domains can be prevented, and the liquid crystal display element can be prevented without disturbing the alignment of the liquid crystal. Display quality can be improved. This is because the alkylene ether structure exhibits a relatively high hydrophilicity, and in the dispersion, the structure having a relatively high hydrophilicity affects, whereas the long-chain alkyl group having 24 to 30 carbon atoms has a high hydrophobicity, This is considered to be due to the influence of this highly hydrophobic group in the liquid crystal.
- the alkylene ether structure is a structure represented by the following formula (21).
- R represents an alkylene group.
- the alkylene group may be linear or have a branched structure. Carbon number of this alkylene group becomes like this. Preferably it is 2 or more, Preferably it is 6 or less, More preferably, it is 4 or less.
- the alkylene ether structure is not particularly limited, and examples thereof include an ethylene glycol structure, a propylene glycol structure, a tetramethylene glycol structure, a pentamethylene glycol structure, and a hexamethylene glycol structure.
- the alkylene ether structure is preferably a structure represented by the following formula (21A).
- R represents an alkylene group, and the alkylene group has 2 or more and 6 or less carbon atoms. More preferably, the alkylene group has 4 or less carbon atoms.
- the alkylene group may be linear or have a branched structure.
- the alkylene ether structure is preferably an ethylene glycol structure, a propylene glycol structure, or a tetramethylene glycol structure.
- the alkylene ether structure is more preferably an ethylene glycol structure or a propylene glycol structure, and further preferably an ethylene glycol structure.
- the alkylene ether structure is preferably a propylene glycol structure or a tetramethylene glycol structure, preferably a propylene glycol structure, A methylene glycol structure is preferred.
- Compound B preferably has a polyalkylene ether structure, more preferably a polyethylene glycol structure, a polypropylene glycol structure or a polytetramethylene glycol structure, more preferably a polyethylene glycol structure or a polypropylene glycol structure, More preferably, it has a structure.
- the preferable lower limit of the content of the component derived from the compound B having the alkylene ether structure in the resin layer is 0.1 mol%, and the preferable upper limit is 20 mol%.
- the content of the component derived from the compound B is not less than the above lower limit, the aggregation of the spacers in the dispersion can be further suppressed. If the content of the compound B is not more than the above upper limit, light leakage and generation of thread domains can be further prevented, and the display quality of the liquid crystal display element can be further improved without disturbing the alignment of the liquid crystal.
- content of the component derived from the said compound B represents the preparation amount at the time of forming the said resin layer. That is, in order to form the resin layer, the preferable lower limit and the preferable upper limit of the charged amount of the compound B are the values described above.
- Specific examples of the compound B having the alkylene ether structure include polyethylene glycol monomethacrylate, methoxypolyethylene glycol monomethacrylate, polyethylene glycol polytetramethylene glycol monomethacrylate, polyethylene glycol polypropylene glycol monooctanol methacrylate, and the like.
- the other compound constituting the resin layer is not particularly limited.
- a compound having a hydroxyl group can be used.
- the compound having a hydroxyl group include hydroxyethyl (meth) acrylate and methoxypolyethylene glycol (meth) acrylate.
- alkyl (meth) acrylate When hydrophobicity is imparted to the resin layer of the spacer for liquid crystal display elements, alkyl (meth) acrylate, fluorine-containing (meth) acrylate, styrene derivatives such as styrene and p-chlorostyrene, glycidyl (meth) having a reactive site Acrylate, (meth) acrylic acid, (meth) acrylamide and the like can be used.
- alkyl (meth) acrylate include butyl (meth) acrylate and stearyl (meth) acrylate.
- fluorine-containing (meth) acrylate examples include trifluoroethyl (meth) acrylate and pentafluoropropyl (meth) acrylate.
- the above compound having a hydroxyl group a compound having an epoxy group such as glycidyl (meth) acrylate, a monomer having a carboxyl group, or the like may be used. It can.
- these other compounds only 1 type may be used and 2 or more types may be used together.
- other polymerizable monomers copolymerizable with the monomers may be used.
- the thickness of the resin layer is appropriately determined in consideration of the particle diameter of the substrate particles, the type and composition of the material constituting the resin layer, and the like.
- the preferable lower limit of the thickness of the resin layer is 5 nm, and the preferable upper limit is 300 nm.
- the thickness of the resin layer is 5 nm or more, the ability to prevent abnormal orientation is further enhanced, and light leakage is less likely to occur around the spacer in the liquid crystal display element.
- the thickness of the resin layer is 300 nm or less, it is difficult for a plurality of spacers for liquid crystal display elements to be bonded to each other, and further, the resin layer is hardly deformed, so that the cell gap of the liquid crystal display element is made more uniform. can do.
- a more preferable lower limit of the resin layer is 10 nm, and a more preferable upper limit is 100 nm.
- the resin layer may be disposed on the entire region of the surface of the substrate particle, or may be disposed only on a part of the region. Even when the resin layer is disposed only in a part of the region, compared to the case where the resin layer is not present, in the portion where the resin layer is present, light leakage and generation of thread domains are prevented, and the alignment of the liquid crystal is prevented. The display quality of the liquid crystal display element can be improved without being disturbed.
- the resin layer is disposed only on a partial region of the surface of the base particle, the surface area of the base particle in which the resin layer is disposed in 100% of the total surface area of the base particle. A preferred lower limit of the proportion is 0.15%. When the ratio of the surface area on which the resin layer is disposed is 0.15% or more, light leakage can be sufficiently prevented and the effect of preventing the occurrence of thread domains is sufficiently exhibited.
- the spacer for a liquid crystal display element of the present invention for example, in the presence of a cerium-based catalyst such as ceric ammonium nitrate in the functional group on the surface of the base material particle, the length of 24 to 30 carbon atoms is used.
- a method of reacting compound A having a chain alkyl group (Ce method), and introducing a polymerizable functional group by reacting an isocyanate having a polymerizable functional group such as methacryloxyethyl isocyanate with the functional group on the surface of the base material particle. Thereafter, a method (polymerization method) of reacting the compound A having a long-chain alkyl group having 24 to 30 carbon atoms with the compound A may be used.
- the compound B may be reacted with the compound A, the compound B may be reacted after the reaction of the compound A, and the compound B is reacted before the reaction of the compound A. B may be reacted.
- the compound A and the compound B may not be reacted, and the compound A and the compound B may be reacted.
- the functional group on the surface of the base material particles is partially crosslinked with the organic material. It is entangled with the structure or adsorbed on the surface of the base particle. For this reason, polyvinyl alcohol exists on the surface of the substrate particles. The polyvinyl alcohol on the surface of the substrate particles is not removed even after the substrate particles are sufficiently washed while being heated.
- the spacer for a liquid crystal display element of the present invention can be produced by the Ce method or the polymerization method starting from a hydroxyl group derived from polyvinyl alcohol on the surface of the substrate particle.
- substrate particles having a hydroxyl group on the surface are preferably used.
- the liquid crystal display element spacer according to the present invention is preferably a liquid crystal display element spacer disposed on a substrate by a wet method or an ink jet apparatus.
- the liquid crystal display element spacer according to the present invention is preferably used by being dispersed in a dispersion medium. By dispersing the liquid crystal display element spacer in the dispersion medium, a liquid crystal display element spacer dispersion can be obtained.
- the dispersion medium is not particularly limited.
- a conventionally known dispersion medium used for the spacer dispersion liquid can be used.
- the dispersion medium include isopropyl alcohol, water, methanol, and ethanol.
- the dispersion medium preferably contains water, preferably contains alcohol, and preferably contains water and alcohol.
- the alcohol is preferably isopropyl alcohol.
- As for the said dispersion medium only 1 type may be used and 2 or more types may be used together.
- the solid content concentration of the spacer in the spacer dispersion for the liquid crystal display element is preferably 0.01% by weight or more, more preferably 0.1% by weight or more, preferably 10% by weight or less, more preferably 3% by weight or less. is there.
- the solid content concentration is equal to or higher than the lower limit, an appropriate gap can be easily secured by a spacer in the liquid crystal display element.
- the solid content concentration is less than or equal to the above upper limit, aggregates are further hardly generated in the spacer dispersion.
- a liquid crystal display element includes a pair of substrates constituting a liquid crystal cell, a liquid crystal sealed between the pair of substrates, and the liquid crystal display element spacer disposed between the pair of substrates.
- the liquid crystal display element according to the present invention preferably includes a polarizing plate laminated on the outer surfaces of a pair of substrates.
- the liquid crystal display element according to the present invention is preferably an STN type liquid crystal display element.
- FIG. 2 is a cross-sectional view of a liquid crystal display element using a liquid crystal display element spacer according to an embodiment of the present invention.
- the liquid crystal display element 11 shown in FIG. 2 has a pair of transparent glass substrates 12.
- the transparent glass substrate 12 has an insulating film (not shown) on the opposing surface. Examples of the material for the insulating film include SiO 2 .
- a transparent electrode 13 is formed on the insulating film in the transparent glass substrate 12. Examples of the material of the transparent electrode 13 include ITO.
- the transparent electrode 13 can be formed by patterning, for example, by photolithography.
- An alignment film 14 is formed on the transparent electrode 13 on the surface of the transparent glass substrate 12. Examples of the material of the alignment film 14 include polyimide.
- a liquid crystal 15 is sealed between the pair of transparent glass substrates 12.
- a plurality of liquid crystal display element spacers 1 are arranged between the pair of transparent glass substrates 12. The distance between the pair of transparent glass substrates 12 is regulated by the plurality of liquid crystal display element spacers 1.
- a sealing agent 16 is disposed between the edges of the pair of transparent glass substrates 12. The sealing agent 16 prevents the liquid crystal 15 from flowing out.
- a preferable lower limit of the arrangement density of spacers for liquid crystal display elements per 1 mm 2 is 10 pieces / mm 2
- a preferable upper limit is 1000 pieces / mm 2 .
- the arrangement density is 10 pieces / mm 2 or more, the cell gap becomes even more uniform.
- the arrangement density is 1000 / mm 2 or less, the contrast of the liquid crystal display element is further improved.
- the liquid crystal display element of the present invention can be manufactured by a conventionally known method except that the spacer for liquid crystal display element of the present invention is used.
- Example 1 (1) Preparation of substrate particle A 5 parts by weight of carbon black, 100 parts by weight of divinylbenzene and 2 parts by weight of benzoyl peroxide are added to 800 parts by weight of a 3% by weight aqueous polyvinyl alcohol solution, and the mixture is stirred with a homogenizer. The particle size was adjusted. Then, it heated up to 80 degreeC under nitrogen stream, stirring, and reacted for 15 hours, and obtained microparticles
- the 432 g of (meth) acrylic acid ester monomer mixture used was 91 g (8 mol%) triacontyl methacrylate, 233 g (73 mol%) isobutyl methacrylate, 36 g (16 mol%) methyl methacrylate, and 72 g (3 mol%) methoxypolyethylene glycol monomethacrylate. ).
- the average particle diameter of the obtained spacer for a liquid crystal display element was measured, and the thickness of the coating resin layer was determined from the difference from the average particle diameter of the base particle A. As a result, the thickness of the coating resin layer was 0.03 ⁇ m.
- the (meth) acrylic acid ester monomer mixed solution contains 241 g (30 mol%) triacontyl methacrylate, 115 g (51 mol%) isobutyl methacrylate, 25 g (16 mol%) methyl methacrylate, and 51 g (3 mol%) methoxypolyethylene glycol monomethacrylate.
- a liquid crystal display element spacer was obtained in the same manner as in Example 1 except that the liquid mixture was changed.
- the (meth) acrylic acid ester monomer mixture liquid contains 317 g (50 mol%) triacontyl methacrylate, 55 g (31 mol%) isobutyl methacrylate, 20 g (16 mol%) methyl methacrylate, and 40 g (3 mol%) methoxypolyethylene glycol monomethacrylate.
- a liquid crystal display element spacer was obtained in the same manner as in Example 1 except that the liquid mixture was changed.
- the (meth) acrylic acid ester monomer mixed solution contains 100 g (10 mol%) of hexacosyl methacrylate, 225 g (71 mol%) of isobutyl methacrylate, 36 g (16 mol%) of methyl methacrylate, and 71 g (3 mol%) of methoxypolyethylene glycol monomethacrylate.
- a liquid crystal display element spacer was obtained in the same manner as in Example 1 except that the liquid mixture was changed.
- the (meth) acrylic acid ester monomer mixed solution contains 307 g (50 mol%) of hexacosyl methacrylate, 60 g (31 mol%) of isobutyl methacrylate, 22 g (16 mol%) of methyl methacrylate, and 44 g (3 mol%) of methoxypolyethylene glycol monomethacrylate.
- a liquid crystal display element spacer was obtained in the same manner as in Example 1 except that the liquid mixture was changed.
- the (meth) acrylic acid ester monomer mixed solution contains 95 g (10 mol%) of tetracosyl methacrylate, 228 g (71 mol%) of isobutyl methacrylate, 36 g (16 mol%) of methyl methacrylate, and 72 g (3 mol%) of methoxypolyethylene glycol monomethacrylate.
- a liquid crystal display element spacer was obtained in the same manner as in Example 1 except that the liquid mixture was changed.
- the (meth) acrylic acid ester monomer mixed solution contains tetracosyl methacrylate 301 g (50 mol%), isobutyl methacrylate 63 g (31 mol%), methyl methacrylate 23 g (16 mol%), and methoxypolyethylene glycol monomethacrylate 46 g (3 mol%).
- a liquid crystal display element spacer was obtained in the same manner as in Example 1 except that the liquid mixture was changed.
- the (meth) acrylic acid ester monomer mixed liquid contains 181 g (30 mol%) of tetracosyl methacrylate, 104 g (51 mol%) of isobutyl methacrylate, 23 g (16 mol%) of methyl methacrylate, and 46 g (3 mol%) of methoxypolyethylene glycol monomethacrylate.
- a liquid crystal display element spacer was obtained in the same manner as in Example 1 except that the liquid mixture was changed.
- Example 9 A (meth) acrylic acid ester monomer mixed solution containing 60 g (10 mol%) tetracosyl methacrylate, 104 g (71 mol%) isobutyl methacrylate, 23 g (16 mol%) methyl methacrylate, and 35 g (3 mol%) polypropylene glycol monomethacrylate A liquid crystal display element spacer was obtained in the same manner as in Example 1 except that the liquid was changed.
- Example 10 A (meth) acrylic acid ester monomer mixed liquid is mixed containing 24 g (30 mol%) triacontyl methacrylate, 104 g (51 mol%) isobutyl methacrylate, 23 g (16 mol%) methyl methacrylate, and 35 g (3 mol%) polypropylene glycol monomethacrylate.
- a liquid crystal display element spacer was obtained in the same manner as in Example 1 except that the liquid was changed.
- Example 11 The (meth) acrylic acid ester monomer mixture was mixed with 60 g (10 mol%) of tetracosyl methacrylate, 144 g (71 mol%) of isobutyl methacrylate, 23 g (16 mol%) of methyl methacrylate, and 37 g (3 mol%) of polypropylene glycol tetramethylene glycol monomethacrylate.
- a spacer for a liquid crystal display element was obtained in the same manner as in Example 1 except that the mixture was changed to a mixed solution containing.
- Example 12 The (meth) acrylic acid ester monomer mixture was mixed with 241 g (30 mol%) of triacontyl methacrylate, 104 g (51 mol%) of isobutyl methacrylate, 26 g (16 mol%) of methyl methacrylate, and 37 g (3 mol%) of polypropylene glycol tetramethylene glycol monomethacrylate.
- a spacer for a liquid crystal display element was obtained in the same manner as in Example 1 except that the mixture was changed to a mixed solution containing.
- An SiO 2 film was deposited on one surface of a pair of transparent glass plates (length 50 mm, width 50 mm, thickness 0.4 mm) by a CVD method, and then an ITO film was formed on the entire surface of the SiO 2 film by sputtering.
- a polyimide alignment film composition (SE3510, manufactured by Nissan Chemical Industries, Ltd.) was applied to the obtained glass substrate with an ITO film by spin coating, and baked at 280 ° C. for 90 minutes to form a polyimide alignment film. After the rubbing treatment for the alignment film, the liquid crystal display element spacers were wet-sprayed on the alignment film side of one substrate so that the number of spacers for a liquid crystal display element was 100 to 200 per 1 mm 2 .
- this substrate and the substrate on which the spacers were spread were placed opposite to each other so that the rubbing direction was 90 °, and both were bonded together. Then, it processed at 160 degreeC for 90 minute (s), the sealing agent was hardened, and the empty cell (screen which does not contain a liquid crystal) was obtained. An STN type liquid crystal containing a chiral agent (made by DIC) was injected into the obtained empty cell, and then the injection port was closed with a sealant, followed by heat treatment at 120 ° C. for 30 minutes to produce an STN type liquid crystal display element. Obtained.
- Time-of-flight secondary ion mass spectrometry TOF-SIMS analysis Time-of-flight secondary ion mass spectrometry TOF-SIMS (TOF-SIMS type 5 manufactured by ION-TOF) for all polymers on the surface of spacers for liquid crystal display elements The spectral intensity ratio of the long chain alkyl polymer was measured.
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Abstract
Description
(1)基材粒子Aの作製
3重量%ポリビニルアルコール水溶液800重量部に、カーボンブラック5重量部と、ジビニルベンゼン100重量部と、過酸化ベンゾイル2重量部とを加え、ホモジナイザーにて撹拌して粒度調整を行った。その後、撹拌しながら窒素気流下にて80℃まで昇温し15時間反応を行い、微粒子を得た。得られた微粒子を熱イオン交換水及びメタノールにて洗浄した後、分級操作を行うことにより基材粒子Aを得た。得られた基材粒子Aの平均粒子径は6.0μm、CV値は5%であった。
セパラブルフラスコに、得られた基材粒子A100g、N,N-ジメチルホルムアミド220g、及び、(メタ)アクリル酸エステルモノマー混合液432gを加え、撹拌した。
(メタ)アクリル酸エステルモノマー混合液を、トリアコンチルメタクリレート241g(30mol%)、イソブチルメタクリレート115g(51mol%)、メチルメタクリレート25g(16mol%)、及びメトキシポリエチレングリコールモノメタクリレート51g(3mol%)を含む混合液に変更したこと以外は、実施例1と同様にして液晶表示素子用スペーサを得た。
(メタ)アクリル酸エステルモノマー混合液を、トリアコンチルメタクリレート317g(50mol%)、イソブチルメタクリレート55g(31mol%)、メチルメタクリレート20g(16mol%)、及びメトキシポリエチレングリコールモノメタクリレート40g(3mol%)を含む混合液に変更したこと以外は、実施例1と同様にして液晶表示素子用スペーサを得た。
(メタ)アクリル酸エステルモノマー混合液を、ヘキサコシルメタクリレート100g(10mol%)、イソブチルメタクリレート225g(71mol%)、メチルメタクリレート36g(16mol%)、及びメトキシポリエチレングリコールモノメタクリレート71g(3mol%)を含む混合液に変更したこと以外は、実施例1と同様にして液晶表示素子用スペーサを得た。
(メタ)アクリル酸エステルモノマー混合液を、ヘキサコシルメタクリレート307g(50mol%)、イソブチルメタクリレート60g(31mol%)、メチルメタクリレート22g(16mol%)、及びメトキシポリエチレングリコールモノメタクリレート44g(3mol%)を含む混合液に変更したこと以外は、実施例1と同様にして液晶表示素子用スペーサを得た。
(メタ)アクリル酸エステルモノマー混合液を、テトラコシルメタクリレート95g(10mol%)、イソブチルメタクリレート228g(71mol%)、メチルメタクリレート36g(16mol%)、及びメトキシポリエチレングリコールモノメタクリレート72g(3mol%)を含む混合液に変更したこと以外は、実施例1と同様にして液晶表示素子用スペーサを得た。
(メタ)アクリル酸エステルモノマー混合液を、テトラコシルメタクリレート301g(50mol%)、イソブチルメタクリレート63g(31mol%)、メチルメタクリレート23g(16mol%)、及びメトキシポリエチレングリコールモノメタクリレート46g(3mol%)を含む混合液に変更したこと以外は、実施例1と同様にして液晶表示素子用スペーサを得た。
(メタ)アクリル酸エステルモノマー混合液を、テトラコシルメタクリレート181g(30mol%)、イソブチルメタクリレート104g(51mol%)、メチルメタクリレート23g(16mol%)、及びメトキシポリエチレングリコールモノメタクリレート46g(3mol%)を含む混合液に変更したこと以外は、実施例1と同様にして液晶表示素子用スペーサを得た。
(メタ)アクリル酸エステルモノマー混合液を、テトラコシルメタクリレート60g(10mol%)、イソブチルメタクリレート104g(71mol%)、メチルメタクリレート23g(16mol%)、及びポリプロピレングリコールモノメタクリレート35g(3mol%)を含む混合液に変更したこと以外は、実施例1と同様にして液晶表示素子用スペーサを得た。
(メタ)アクリル酸エステルモノマー混合液を、トリアコンチルメタクリレート24g(30mol%)、イソブチルメタクリレート104g(51mol%)、メチルメタクリレート23g(16mol%)、及びポリプロピレングリコルモノメタクリレート35g(3mol%)を含む混合液に変更したこと以外は、実施例1と同様にして液晶表示素子用スペーサを得た。
(メタ)アクリル酸エステルモノマー混合液を、テトラコシルメタクリレート60g(10mol%)、イソブチルメタクリレート144g(71mol%)、メチルメタクリレート23g(16mol%)、及びポリプロピレングリコールテトラメチレングリコールモノメタクリレート37g(3mol%)を含む混合液に変更したこと以外は、実施例1と同様にして液晶表示素子用スペーサを得た。
(メタ)アクリル酸エステルモノマー混合液を、トリアコンチルメタクリレート241g(30mol%)、イソブチルメタクリレート104g(51mol%)、メチルメタクリレート26g(16mol%)、及びポリプロピレングリコールテトラメチレングリコールモノメタクリレート37g(3mol%)を含む混合液に変更したこと以外は、実施例1と同様にして液晶表示素子用スペーサを得た。
(メタ)アクリル酸エステルモノマー混合液を、ドコシルメタクリレート294g(50mol%)、イソブチルメタクリレート66g(31mol%)、メチルメタクリレート24g(16mol%)、及びメトキシポリエチレングリコールモノメタクリレート48g(3mol%)を含む混合液に変更したこと以外は、実施例1と同様にして液晶表示素子用スペーサを得た。
実施例及び比較例で得られた液晶表示素子用スペーサを用いて、STN型液晶表示素子を作製し、光抜け、糸状ドメイン及び湿式散布性を、下記の評価方法を用いて評価した。
イソプロピルアルコール70重量部と水30重量部とを含む分散媒に、得られるスペーサ分散液100重量%中で液晶表示素子用スペーサを固形分濃度が2重量%となるように添加し、撹拌し、液晶表示素子用スペーサ分散液を得た。
得られたSTN型液晶表示素子を、ノーマリーブラック表示モードになるように配置した偏光フィルムで挟み込み、7V、17V、30V及び50Vの電圧を印加した。その後、顕微鏡で200倍に拡大した写真を撮り、光抜けの状態(液晶の配向状態)を観察した。その結果、スペーサ周囲に液晶の異常配向発生がない場合を「◎」、スペーサ周囲のごく一部に液晶の異常配向発生が認められた場合を「○」、スペーサ周囲の全周に液晶の異常配向発生が認められた場合を「×」と評価した。
シリコン製ラバーを貼り付けたローラーをプッシュプルゲージに取り付け、プッシュプルゲージをローラー回転方向が地面に対して水平方向を向くようにスタンドへ固定した。このプッシュプルゲージは、地面に対して垂直方向へ移動させることができる。ローラーの下へ、スライド式ステージを置き、STN型液晶表示素子を固定できるようにした。スライド式ステージの上にSTN型液晶表示素子を置き、固定したプッシュプルゲージを下方へ移動させ、STN型液晶表示素子へ圧力を加えた。ローラーで加圧されたSTN型液晶表示素子をスライドさせた後、パネル内における糸状ドメインの発生の有無を、100倍の倍率で、偏光顕微鏡で確認した。徐々にSTN型液晶表示素子へ加える圧力を高くして、糸状ドメインが発生したときの圧力(糸状ドメイン発生圧力、N)を測定した。
イソプロピルアルコール70重量部と水30重量部とを含む分散媒に、得られるスペーサ分散液100重量%中で液晶表示素子用スペーサを固形分濃度が2重量%となるように添加し、撹拌し、液晶表示素子用スペーサ分散液を得た。12時間放置した後の液晶表示素子用スペーサを、面積450cm2のガラス基板上に150個/mm2の散布密度で湿式散布し、ガラス基板上に液晶表示素子用スペーサを付着させた。その後、6.3mm2当たりに3個、4個及び5個以上のスペーサが凝集した塊の個数を計数した。
飛行時間型二次イオン質量分析TOF-SIMS(ION-TOF社製 TOF-SIMS 5型)により、液晶表示素子用スペーサ表面における全ポリマーに対する長鎖アルキルポリマーのスペクトル強度比を測定した。TOF-SIMSにより負の電荷を帯びたイオン長鎖アルキルポリマー、イソブチルメタクリレートポリマー、メチルメタクリレートポリマー、メトキシポリエチレングリコールモノメタクリレートポリマー、ポリプロピレングリコールモノメタクリレートポリマー及びポリプロピレングリコールテトラメチレングリコールモノメタクリレートポリマーを分析し、導入率を測定した。
2…基材粒子
2a…表面
3…樹脂層
11…液晶表示素子
12…透明ガラス基板
13…透明電極
14…配向膜
15…液晶
16…シール剤
Claims (8)
- 基材粒子と、
前記基材粒子の表面上に配置された樹脂層とを備え、
前記樹脂層は、炭素数24~30のアルキル基を有する化合物と、アルキレンエーテル構造を有する化合物とを用いて形成されている、液晶表示素子用スペーサ。 - 前記アルキレンエーテル構造はエチレングリコール構造である、請求項2に記載の液晶表示素子用スペーサ。
- 前記樹脂層は、前記炭素数24~30のアルキル基を有する化合物に由来する成分を5mol%以上、30mol%以下含む、請求項1~3のいずれか1項に記載の液晶表示素子用スペーサ。
- 湿式法又はインクジェット装置により基板上に配置される液晶表示素子用スペーサである、請求項1~4のいずれか1項に記載の液晶表示素子用スペーサ。
- STN型液晶表示素子に用いられる液晶表示素子用スペーサである、請求項1~5のいずれか1項に記載の液晶表示素子用スペーサ。
- 分散媒と、
前記分散媒中に分散された請求項1~6のいずれか1項に記載の液晶表示素子用スペーサとを含む、液晶表示素子用スペーサ分散液。 - 液晶セルを構成する一対の基板と、
前記一対の基板間に封入された液晶と、
前記一対の基板間に配置された請求項1~6のいずれか1項に記載の液晶表示素子用スペーサとを備える、液晶表示素子。
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| CN201280002863.1A CN103097950B (zh) | 2011-03-09 | 2012-03-09 | 液晶显示元件用间隔物、液晶显示元件用间隔物分散液及液晶显示元件 |
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| JP2018132740A (ja) * | 2017-02-17 | 2018-08-23 | 積水化学工業株式会社 | 粒子及び液晶表示素子 |
| CN111019050A (zh) * | 2019-12-20 | 2020-04-17 | 镇江爱邦电子科技有限公司 | 一种干喷机用单分散聚合物微球 |
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| JP2000321582A (ja) * | 1999-05-10 | 2000-11-24 | Sekisui Chem Co Ltd | 液晶表示素子用スペーサ及び液晶表示素子 |
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| US5503932A (en) * | 1993-11-17 | 1996-04-02 | Nippon Shokubai Co., Ltd. | Organic-inorganic composite particles and production process therefor |
| US6187440B1 (en) * | 1998-09-14 | 2001-02-13 | Rohm And Haas Company | Polymer particles |
| CN100500703C (zh) * | 2004-09-28 | 2009-06-17 | 积水化学工业株式会社 | 球状树脂微粒、球状树脂微粒的制造方法以及液晶显示元件用隔片 |
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| JP2000206540A (ja) * | 1999-01-12 | 2000-07-28 | Sekisui Chem Co Ltd | 液晶表示素子用スペ―サ及びその製造方法、並びに、液晶表示素子 |
| JP2000321582A (ja) * | 1999-05-10 | 2000-11-24 | Sekisui Chem Co Ltd | 液晶表示素子用スペーサ及び液晶表示素子 |
| JP2005181918A (ja) * | 2003-12-24 | 2005-07-07 | Hayakawa Rubber Co Ltd | 液晶セルスペーサ及び液晶パネル |
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| JP2018132740A (ja) * | 2017-02-17 | 2018-08-23 | 積水化学工業株式会社 | 粒子及び液晶表示素子 |
| CN111019050A (zh) * | 2019-12-20 | 2020-04-17 | 镇江爱邦电子科技有限公司 | 一种干喷机用单分散聚合物微球 |
| CN111019050B (zh) * | 2019-12-20 | 2022-08-19 | 镇江爱邦电子科技有限公司 | 一种干喷机用单分散聚合物微球 |
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| CN103097950A (zh) | 2013-05-08 |
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