CN106338787A - Omnidirectional high chroma red structural color with combination metal absorber and dielectric absorber layers - Google Patents

Omnidirectional high chroma red structural color with combination metal absorber and dielectric absorber layers Download PDF

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Publication number
CN106338787A
CN106338787A CN201610395759.3A CN201610395759A CN106338787A CN 106338787 A CN106338787 A CN 106338787A CN 201610395759 A CN201610395759 A CN 201610395759A CN 106338787 A CN106338787 A CN 106338787A
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layer
absorption body
body layer
omnidirectional
redness
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CN106338787B (en
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D·班纳尔吉
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Toyota Motor Corp
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Toyota Engineering and Manufacturing North America Inc
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    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B5/00Optical elements other than lenses
    • G02B5/08Mirrors
    • G02B5/0808Mirrors having a single reflecting layer
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B5/00Optical elements other than lenses
    • G02B5/20Filters
    • G02B5/28Interference filters
    • G02B5/285Interference filters comprising deposited thin solid films
    • G02B5/286Interference filters comprising deposited thin solid films having four or fewer layers, e.g. for achieving a colour effect
    • CCHEMISTRY; METALLURGY
    • C09DYES; PAINTS; POLISHES; NATURAL RESINS; ADHESIVES; COMPOSITIONS NOT OTHERWISE PROVIDED FOR; APPLICATIONS OF MATERIALS NOT OTHERWISE PROVIDED FOR
    • C09CTREATMENT OF INORGANIC MATERIALS, OTHER THAN FIBROUS FILLERS, TO ENHANCE THEIR PIGMENTING OR FILLING PROPERTIES ; PREPARATION OF CARBON BLACK  ; PREPARATION OF INORGANIC MATERIALS WHICH ARE NO SINGLE CHEMICAL COMPOUNDS AND WHICH ARE MAINLY USED AS PIGMENTS OR FILLERS
    • C09C1/00Treatment of specific inorganic materials other than fibrous fillers; Preparation of carbon black
    • C09C1/0015Pigments exhibiting interference colours, e.g. transparent platelets of appropriate thinness or flaky substrates, e.g. mica, bearing appropriate thin transparent coatings
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B5/00Optical elements other than lenses
    • G02B5/20Filters
    • G02B5/22Absorbing filters
    • CCHEMISTRY; METALLURGY
    • C01INORGANIC CHEMISTRY
    • C01PINDEXING SCHEME RELATING TO STRUCTURAL AND PHYSICAL ASPECTS OF SOLID INORGANIC COMPOUNDS
    • C01P2006/00Physical properties of inorganic compounds
    • C01P2006/60Optical properties, e.g. expressed in CIELAB-values

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  • General Physics & Mathematics (AREA)
  • Optics & Photonics (AREA)
  • Chemical & Material Sciences (AREA)
  • Organic Chemistry (AREA)
  • Laminated Bodies (AREA)
  • Optical Filters (AREA)

Abstract

The invention discloses an omnidirectional high chroma red structural color with combination metal absorber and dielectric absorber layers. Specifically, a high-chroma omnidirectional red structural color pigment is mentioned. The omnidirectional structural color pigment is in the form of a multilayer stack that has a reflective core layer, a metal absorber layer extending across the reflective core layer and a dielectric absorber layer extending across the metal absorber layer. The multilayer stack reflects a single band of visible light with a hue between 0-40 DEG, and preferably between 10-30 DEG, on an a*b* Lab color map. The single band of visible light has a hue shift of less than 30 DEG on the a*b* Lab color map when viewed from all angles between 0-45 DEG normal to an outer surface of the multilayer stack.

Description

Omnidirectional's high chroma with the combination of Metal absorption body layer and DIELECTRIC ABSORPTION body layer is red Structure colorant
Cross-Reference to Related Applications
The application is that the part of the U.S. Patent application of Serial No. 14/607,933 that on January 28th, 2015 submits to continues (cip), Serial No. 14/607,933 U.S. Patent application is the Serial No. 14/471 of August in 2014 submission on the 28th again, The cip of 834 U.S. Patent application, Serial No. 14/471,834 U.S. Patent application is that August in 2014 is submitted on the 15th again The U.S. Patent application of Serial No. 14/460,511 cip, Serial No. 14/460,511 U.S. Patent application is again The cip of the U.S. Patent application of Serial No. 14/242,429 that on April 1st, 2014 submits to, Serial No. 14/242,429 U.S. Patent application is the cip of the U.S. Patent application of Serial No. 14/138,499 that on December 23rd, 2013 submits to again, sequence Row number is the 14/138,499 U.S. Patent application U.S. for the Serial No. 13/913,402 of on June 8th, 2013 submission again The cip of patent application, Serial No. 13/913,402 U.S. Patent application is 13/760 submitting to on 2 6th, 2013 again, 699 cip, Serial No. 13/760,699 U.S. Patent application is the Serial No. 13/ of August in 2012 submission on the 10th again The full content of above-mentioned all applications is expressly incorporated herein by the cip of 572,071 U.S. Patent application by quoting.
Invention field
The present invention relates to when be exposed to broadband electromagnetic radiation and from different perspectives observe when, show have minimum or The multiple stack structure of the high chroma red color of the inapparent gamut of person.
Background technology
It is known by the pigment that multiple structure is made.Additionally, showing or provide the face of high chroma omnidirectional schemochrome Material is also known.However, such prior art pigment needs up to 39 thin layers to obtain desired color Matter.
It should be understood that to thin-film multilayer pigment to prepare related cost proportional with the number of required layer.As This, the cost related to preparing high chroma omnidirectional schemochrome using multilayer dielectric material stacked body can high must can't afford.Cause This, the high chroma omnidirectional structure colorant needing the thin layer of minimal amount can be desired.
In addition to the above, it will also be appreciated that with respect to other colors (for example blue, green etc.) pigment, tool The design of pigment having red color is facing to extra difficulty.Particularly, the control of the angle independence of red color is tired Difficult, since it is desired that thicker dielectric layer, this leads to higher harmonics to design again, i.e. the presence of second harmonic and possible third harmonic It is inevitable.And, kermesinus shade of color space is very narrow.So, red color multiple stack have higher Angular dispersion (angular variance).
For these reasons, the high chroma redness omnidirectional schemochrome pigment with minimum number of plies can be desired.
Content of the invention
Provide a kind of omnidirectional high chroma redness schemochrome pigment.This omnidirectional's schemochrome pigment is the shape of multiple stack Formula, this multiple stack has reflection sandwich layer, crosses the Metal absorption body layer of this reflection sandwich layer extension, and crosses this Metal absorption The DIELECTRIC ABSORPTION body layer that body layer extends.This multiple stack layer be reflected in a*b*lab color mapping on have between 0-40 ° it Between and be preferably between the single band visible ray of the tone between 10-30 °.Additionally, when from the outer surface perpendicular to multiple stack Between 0-45 ° institute angled observation when, this single band visible ray a*b*lab color map on have less than 30 ° Hue shift, and thus provide the inapparent gamut for human eye.
Reflection sandwich layer has the thickness (comprising end value) between 50-200 nanometer (nm), and can be by reflective metals (example As aluminum (al), silver-colored (ag), platinum (pt), stannum (sn) and combinations thereof etc.) make.Reflection sandwich layer also can be by colored (colorful) gold Belong to (for example golden (au), copper (cu), pyrite, bronze etc.) to make.
Metal absorption body layer can have the thickness (comprising end value) between 5-500nm, and can be by such material system Become: for example colored metal, for example, copper (cu), golden (au), bronze (cu-zn alloy), pyrite (cu-sn alloy), the silicon of amorphous (si) or colour nitride material (as titanium nitride (tin)).DIELECTRIC ABSORPTION body layer can have and (comprises between 5-500nm End value) thickness, and can by produce dielectric material make, such as but not limited to ferrum oxide (fe2o3).
Reflection sandwich layer, Metal absorption body layer and/or DIELECTRIC ABSORPTION body layer can be the layers of dry type deposition.However, dielectric is inhaled Acceptor layer can be the layer of wet deposition.Additionally, reflection sandwich layer can be foveal reflex sandwich layer and Metal absorption body layer is to cross A pair of Metal absorption body layer that the opposite side of this foveal reflex sandwich layer extends, i.e. this foveal reflex sandwich layer is clipped in this pair of metal Between absorber layers.And then, DIELECTRIC ABSORPTION body layer can be a pair of DIELECTRIC ABSORPTION body layer thus this foveal reflex sandwich layer and this one Metal absorption body layer is clipped between this pair of DIELECTRIC ABSORPTION body layer.
The method preparing such omnidirectional high chroma redness structure colorant includes: by dry type deposition of reflective sandwich layer, dry type Deposition crosses the Metal absorption body layer of this reflection sandwich layer extension, and dry type deposition or wet deposition cross this Metal absorption body layer and prolong The DIELECTRIC ABSORPTION body layer stretched is manufacturing multiple stack.By this way, the manufacture method of mixing can be used to produce and can be used for face Omnidirectional's high chroma redness structure colorant of material, coating etc..
Brief Description Of Drawings
Fig. 1 is the omnidirectional's schemochrome multiple stack being made up of dielectric layer, selectively absorbing layers (sal) and reflector layer Schematically illustrate;
Fig. 2 a is exposed to the zns dielectric in the layer zero electric field point of electromagnetic radiation (emr) that wavelength is 500nm or close to zero The schematically illustrating of electric field point;
Fig. 2 b be when to be exposed to wavelength be 300,400,500,600 and 700nm emr when Fig. 2 a shown in zns dielectric Square (| e | of the electric field absolute value of layer2) diagram to thickness;
Fig. 3 is to extend and sudden and violent with angle, θ with respect to the normal direction of dielectric layer outer surface above base material or reflector layer It is exposed to the schematically illustrating of dielectric layer of electromagnetic radiation;
Fig. 4 is for the incident emr for 434nm for the wavelength, has positioned at zns dielectric in the layer zero electric field point or connects The schematically illustrating of the zns dielectric layer of the cr absorber layers of nearly zero electric site;
Fig. 5 is to be exposed to not having the multiple stack (such as Fig. 2 a) of cr absorber layers and having cr absorber of white light The diagram of the emr wavelength to reflection for the percent reflectivity of the multiple stack (such as Fig. 4) of layer;
Fig. 6 a by by the first harmonic that shown of zns dielectric layer (such as Fig. 2 a) extending above al reflector layer and The diagram of second harmonic;
Fig. 6 b is that the zns dielectric layer having and crossing the extension of al reflector layer adds positioned at zns dielectric in the layer cr absorber The percent reflectivity of the multiple stack of layer (thus absorbing the second harmonic shown in Fig. 6 a) is to the emr wavelength reflecting Diagram;
Fig. 6 c is that the zns dielectric layer having and crossing the extension of al reflector layer adds positioned at zns dielectric in the layer cr absorber The percent reflectivity of the multiple stack of layer (thus absorbing the first harmonic shown in Fig. 6 a) is to the emr wavelength reflecting Diagram;
Fig. 7 a is that the dependent electric field of electric field angle being exposed to 0 and 45 degree and showing cr absorber layers during incident illumination is put down The diagram to medium thickness for side's value;
Fig. 7 b is (0 ° is vertical with the surface) cr when the normal with respect to outer surface is exposed to white light with 0 ° with 45° angle degree The diagram of the emr wavelength to reflection for the percent recovery of absorber layers;
Fig. 8 a is schematically illustrating of the red omnidirectional's schemochrome multiple stack according to one side disclosed herein;
When Fig. 8 b is exposed to the multiple stack shown in Fig. 8 a for white light with the angle of incidence of 0 ° and 45 °, institute in Fig. 8 a The diagram of the emr wavelength to reflection for the percent recovery of the cu absorber layers shown;
Fig. 9 is that the red omnidirectional schemochrome multiple stack of Proof of Concept is exposed to percentage ratio during white light with 0 ° of angle of incidence The comparison diagram of the calculating/between analog data and test data of the emr wavelength to reflection for the reflectance;
Figure 10 is the percent reflectivity of the omnidirectional's schemochrome multiple stack according to one side disclosed herein to wavelength Diagram;
Figure 11 is the percent reflectivity of the omnidirectional's schemochrome multiple stack according to one side disclosed herein to wavelength Diagram;
Figure 12 is the diagram of a part for the a*b* color mapping using cielab (lab) colour space, often wherein compares Rule coating and the colourity of coating prepared by the pigment according to one side disclosed herein and hue shift (sample (b));
Figure 13 is schematically illustrating of the red omnidirectional's schemochrome multiple stack according to another aspect disclosed herein;
Figure 14 is the diagram to wavelength for the percent reflectivity of the aspect shown in Figure 13.
Figure 15 is the diagram to wavelength for the percent recovery of the aspect shown in Figure 13.
Figure 16 be the aspect shown in Figure 13 percent reflectivity to wavelength the diagram to visual angle.
Figure 17 is the diagram to visual angle of colourity and tone of the aspect shown in Figure 13.
Figure 18 is the diagram that the color that the aspect shown in Figure 13 reflects maps with respect to a*b*lab color;With
Figure 19 is the method according to one side disclosed herein for manufacturing omnidirectional's redness schemochrome multiple stack Schematically illustrate.
Specific embodiment
Provide a kind of omnidirectional high chroma redness schemochrome pigment.Omnidirectional's high chroma redness structure colorant is multiple stack Form, this multiple stack has reflection sandwich layer, Metal absorption body layer and DIELECTRIC ABSORPTION body layer.Metal absorption body layer crosses reflection Sandwich layer extends, and in some cases, directly abuts reflection sandwich layer or be located at the top reflecting sandwich layer.DIELECTRIC ABSORPTION body layer crosses Metal absorption body layer extends, and in some cases, directly abuts Metal absorption body layer or the top positioned at Metal absorption body layer. Multiple stack can be symmetrical stacked body, i.e. reflection sandwich layer is by the foveal reflex core of a pair of Metal absorption body layer constraint Layer, and this pair of Metal absorption body layer constrain by a pair of DIELECTRIC ABSORPTION body layer.
Multiple stack reflection has the single band visible ray of red color, and this single band visible ray is in a*b*lab color The tone have in mapping between 0-40 °, being preferably between 10-30 °.Additionally, when from Jie perpendicular to its outer surface Between 0-45 ° institute angled observation this multiple stack when, the hue shift of this single band visible ray is in a*b*lab color In mapping it is preferably smaller than 20 ° less than 30 °, and more preferably less than 10 °.So, the hue shift of the single band visible ray of reflection Can be in 0-40 ° of region in a*b*lab mapping and/or 10-30 ° of region.
Reflection sandwich layer can be the layer of the dry type deposition with the thickness (comprising end value) between 50-200nm.Term " dry type deposition " means such as to include electron beam deposition, the physical vapour deposition (PVD) (pvd) of sputtering, chemical vapor deposition (cvd), The dry type depositing operation such as plasmaassisted cvd.In some cases, reflection sandwich layer is by reflective metals (such as al, ag, pt, sn And combinations thereof etc.) make.In other cases, reflection sandwich layer is by colored metal (such as au, cu, pyrite, bronze and combinations thereof Deng) make.It should be understood that term " pyrite " and " bronze " refer to copper-zinc alloy well known by persons skilled in the art respectively and copper-stannum closes Gold.
Metal absorption body layer can also be the layer of the dry type deposition depositing on reflection sandwich layer.In alternative, reflection Sandwich layer can be deposited on Metal absorption body layer.Metal absorption body layer can have the thickness (comprising end value) between 5-500nm, And can be made up of colored metal (silicon (si) of such as cu, bronze, pyrite or material such as amorphous, germanium (ge), tin etc.).Ying Li Solution, for the purpose of present invention, term " Metal absorption body layer " includes being usually not considered as the material of metal, such as Si, ge, tin of amorphous etc..
DIELECTRIC ABSORPTION body layer can also be the layer of the layer of the dry type deposition or wet deposition depositing on Metal absorption body layer. In alternative, Metal absorption body can be deposited on DIELECTRIC ABSORPTION body layer.DIELECTRIC ABSORPTION body layer can have between 5- The thickness (comprising end value) between 500nm, and can be by dielectric material (such as ferrum oxide (fe2o3) etc.) make.In addition, term is " wet Formula deposition " mean wet deposition technique, such as dissolving gel process, spin coating proceeding, wet chemical deposition process etc..
The integral thickness of multiple stack can be less than 3 microns, preferably smaller than 2 microns, more preferably less than 1.5 microns, and Still more preferably less than or equal to 1.0 microns.Additionally, total number of plies that multiple stack has is less equal than 9, preferably total layer Number is less equal than 7, and more preferably total number of plies is less equal than 5.
With reference to Fig. 1, show a kind of design, wherein following reflector layer (rl) has and crosses the extension of this reflector layer First dielectric materials layer dl1With cross this dl1The selectively absorbing layers sal that layer extends.Furthermore it is possible to providing or can not providing Another dl1Layer and its can cross this selectively absorbing layers extend or can not cross this selectively absorbing layers extend.At this In figure also show reflected by this multiple structure or all of incidence electromagnetic radiation of selective absorbing explanation.
As being illustrated in Figure 1, such design is corresponding to for designing and manufacturing desired multiple stack not Same approach.Especially, underneath with the thickness of the point with the zero energy point discussing for dielectric layer or close to zero energy.
For example, Fig. 2 a is schematically illustrating of zns dielectric layer, and it crosses al reflector sandwich layer and extends.This zns dielectric layer has Have the gross thickness of 143nm, and for wavelength is for the incidence electromagnetic radiation of 500nm, zero energy point or close to zero energy Point is present at 77nm.In other words, the incidence electromagnetic radiation (emr) for 500nm for wavelength, zns dielectric layer is anti-from al Zero electric field or the electric field close to zero is shown at beam layer 77nm distance.Additionally, Fig. 2 b provides for several different incidences For emr wavelength, across the diagram of the energy field of zns dielectric layer.As shown in the figure, for 500nm wavelength, dielectric layer exists There is at 77nm thickness zero electric field, but for 300,400,600 and 700nm emr wavelength, at 77nm thickness, there is non-zero Electric field.
The calculating of the electric field point with regard to 1 electric field point or close to zero, Fig. 3 illustrates with gross thickness " d ", incremental thickness " d " With the dielectric layer 4 of refractive index " n ", it is located at has refractive index nsBase material or sandwich layer 2 on.Incident illumination with respect to perpendicular to The line 6 of outer surface 5 is irradiated to the outer surface 5 of dielectric layer 4 with angle, θ, and is reflected from outer surface 5 with identical angle, θ.Incident illumination It is transmitted through outer surface 5 and with respect to line 6 with angle, θfEnter in dielectric layer 4, and with angle, θsIt is irradiated to the table of substrate layer 2 Face 3.
For single dielectric layer, θsfAnd energy/electric field (e) can be expressed as e (z) as z=d.According to wheat Ke Siwei (maxwell) equation, for s polarization, electric field can be expressed as:
And for p-polarization, can be expressed as:
WhereinAnd λ is the desired wavelength that will reflect.Additionally, α=nssin θs, wherein " s " correspondence Base material in Fig. 5, andIt is the dielectric constant of the described layer of function as z.So, s is polarized
|e(d)|2=| u (z) |2exp(2ikαy)|Z=d(3)
And for p-polarization
| e ( d ) | 2 = [ | u ( z ) | 2 + | α n v ( z ) | 2 ] exp ( 2 i k α y ) | z = d - - - ( 4 ) .
It should be understood that electric field can be by calculating unknown parameter u (z) and v along the change on the z direction of dielectric layer 4 Z () estimating, it can be shown as:
Naturally, " i " is -1 square root.Using boundary condition u |Z=0=1, v |Z=0=qs, and following relational expression:
For s polarization, qs=nscosθs(6)
For p-polarization, qs=ns/cosθs(7)
For s polarization, q=n cos θf(8)
For p-polarization, q=n/cos θf(9)
U (z) and v (z) can be expressed as:
With
Therefore, forS polarization:
And for p-polarization:
Wherein:
α=nssinθs=n sin θf(15)
q s = n s cosθ s - - - ( 16 )
With
q s = n cosθ f - - - ( 17 )
Accordingly, for θf=0 or the simple scenario of vertical incidence,And α=0:
| the e (d) | of s polarization2=p-polarization
It allows to solve thickness " d ", and that is, dielectric layer internal electric field is zero position or place.
With reference now to Fig. 4, calculate the zns shown in fig. 2 a when being exposed to the emr that wavelength is 434nm using formula 19 1 electric field point in dielectric layer or close to zero electric field point.Calculate this zero electric field point or close to zero electric field point be 70nm (for 500nm wavelength, instead of 77nm).Additionally, from al reflector sandwich layer 70nm thickness or with a distance from the thick cr of insertion 15nm absorb Body layer, to provide zero electric field or the electric field zns-cr interface close to zero.Such inventive structure allows the light that wavelength is 434nm to lead to Cross cr-zns interface, but absorb the light without 434nm wavelength.In other words, cr-zns interface for wavelength for 434nm's Light has zero electric field or the electric field close to zero, and therefore 434nm light passes through this interface.However, cr-zns interface is for wavelength It is not that the light of 434nm does not have zero electric field or the electric field close to zero, and therefore, such light is by cr absorber layers and/or cr- Zns Interface Absorption, and will not be reflected by al reflector layer.
It should be understood that the light of some percentage ratios in the range of +/- 10nm of desired 434nm will be by cr-zns circle Face.However, it will also be appreciated that such narrow-band reflected light, such as 434+/- 10nm, still dazzling knot can be provided to human eye Structure color.
It is illustrated in Figure 5 the result of the cr absorber layers in the multiple stack in Fig. 4, there is shown with percent reflectivity Emr wavelength to reflection.As shown by a dotted line, it is situated between corresponding to the zns not having cr absorber layers shown in the diagram Electric layer, narrow reflection peak is present at about 400nm, but much broader peak is present at about 550+nm.Additionally, in 500nm Wavelength region, however it remains substantial amounts of reflected light.So, existing prevents multiple stack to have or shows the double of schemochrome Peak.
By comparison, the solid line in Fig. 5 corresponds to the structure of the presence cr absorber layers that figure 4 illustrates.As in figure Shown, there is sharp peak at about 434nm and provide the reflectance for the wavelength more than 434nm by cr absorber layers Drastically decline.It should be understood that dazzling/schemochrome is visually presented as by the sharp peak that solid line represents.Additionally, Fig. 5 retouches State the measurement of the width of reflection peak or frequency band, at 50% reflectance of maximum reflection wavelength, determine width (its of frequency band It is also known as half width (fwhm)).
With regard to omnidirectional's behavior of multiple structure shown in the diagram, the thickness that can design or set zns dielectric layer makes The first harmonic of reflected light is only provided.It should be understood that this is enough for " blue " color, however, " red " color Produce and need other conditions.For example, the control of the angle independence of red color is difficult, since it is desired that thicker dielectric Layer, this leads to higher harmonics to design again, i.e. the presence of second harmonic and possible third harmonic is inevitable.And, dark red Color shade of color space is very narrow.So, red color multiple stack has higher angular dispersion.
In order to overcome the higher angular dispersion of red color, this application discloses a kind of unique design with novelty/ Structure, it provides the red color not relying on angle.For example, Fig. 6 a illustrates when 0 He from the normal with respect to outer surface Show the dielectric layer of first harmonic and second harmonic for incident white light during the outer surface of 45 ° of observation dielectric layers.As By diagrammatically shown go out, to provide low angle dependency (little δ λ by the thickness of dielectric layerc), however, such multilamellar heap Stack has Blue (first harmonic) and the combination of red color (second harmonic), and is therefore not particularly suited for desired " only red " color.Therefore, have developed the concept/knot using absorber layers unwanted harmonic series to absorb Structure.Fig. 6 a also illustrates reflective band centre wavelength (λ for the reflection peak providingc) position example, and when from 0 The dispersion of centre wavelength or skew (δ λ when observing sample with 45 °c).
Turning now to Fig. 6 b, absorbed in Fig. 6 a with cr absorber layers at appropriate medium thickness (such as 72nm) place The second harmonic illustrating, and provide dazzling Blue.Additionally, Fig. 6 c describes by different medium thicknesses (such as 125nm) place cr absorber absorbs first harmonic provides red color.However, Fig. 6 c also illustrates cr absorber layers Use may result in more than the desired dependence of angle of multiple stack, that is, than desired δ λcGreatly.
It should be understood that for red color, compared with Blue, relatively large λcSkew is due to kermesinus Shade of color space is very narrow and the fact: cr absorber layers absorb the wavelength related to non-zero electric field, do not inhale Receive when electric field be zero or close to zero when light.So, Fig. 7 a describes zero point or non-zero points for the light under incidence angles degree It is different for wavelength.Such factor leads to dependence of angle shown in fig .7b to absorb, that is, in 0 ° and 45 ° of absorbances Difference in curve.Therefore, in order to refine multiple stack design and angle independence performance further, for example blue using absorbing The absorber layers of light, regardless of whether whether electric field is zero or is not zero.
Especially, Fig. 8 a illustrates the multiple stack with cu absorber layers, and this cu absorber layers substitutes cr absorber layers, Cross dielectric zns layer to extend.Illustrated in figure 8b using such " colour " or the result of " selectivity " absorber layers, its Demonstrate gathering of for the multiple stack shown in Fig. 8 a " tightr " of 0 ° and 45 ° Absorption Line.So, Fig. 8 b Comparative illustration and Fig. 7 b between absorbance angle when using selective absorbing body layer rather than neutral absorber layer The significantly improving of independence.
Based on the above, design and be prepared for the multiple stack structure of Proof of Concept.Additionally, compared for for concept Calculating/the analog result of sample of checking and actual tests data.Especially, and by, shown in the curve chart in Fig. 9, producing Give birth to dazzling red color (wavelength more than 700nm typically will not be seen by human eye), and in calculating/simulation with by reality Very good concordance is obtained between the tentative light data that border sample obtains.In other words, calculate/simulate and can be used for And/or it is used for simulating the multiple stack design according to one or more embodiment disclosed herein and/or prior art The result of multiple stack.
Figure 10 illustrates when the normal of the outer surface with respect to reflector is exposed to white light with the angle of 0 ° and 45 ° another The curve chart of the emr wavelength to reflection for the percent reflectivity of omnidirective reflector design.As shown in this graph, 0 ° and 45 ° of songs Line all illustrates the low-down reflectance being provided for the wavelength less than 550nm by omnidirective reflector (e.g., less than 10%).However, as shown in the graph, reflector is providing the drastically increasing of reflectance at the wavelength between 560-570nm Plus, and reach about 90% maximum at 700nm.It should be understood that the portion of the figure on the right-hand side (ir side) of this curve Point or the ir part of reflective band that provided by reflector of region representation.
The reflectance being provided by omnidirective reflector sharply increase the uv lateral edges being characterised by every curve by wavelength Antiradar reflectivity less than 550nm extends partially into high reflectance part (being greater than 70%).The linear segment 200 of uv lateral edges Tilted with the angle (β) more than 60 ° with respect to x-axis, there is on reflectance axle about 40 length l and 1.4 slope.One In the case of a little, linear segment is tilted with the angle more than 70 ° with respect to x-axis, and in other cases, β is more than 75 °.In addition, it is anti- Radio frequency band has the visible fwhm less than 200nm, and has the visible fwhm less than 150nm in some cases, and There is in the case of other the visible fwhm less than 100nm.Additionally, the center by such as illustrated in Fig. 10 visible reflectance frequency band Wavelength XcIt is defined as equidistant wavelength between the uv lateral edges and the ir edge of ir spectrum of the reflective band at visible fwhm.
It should be understood that term " visible fwhm " means the reflection between curve uv lateral edges and the edge of ir spectral region The width of frequency band, beyond this width, the reflection being provided by omnidirective reflector is sightless to human eye.By this way, herein Invention disclosed design and multiple stack using electromagnetic radiation spectrum invisible ir partly providing dazzling color or schemochrome. In other words, despite the presence of the fact, that is, reflector can reflect the electromagnetism spoke of the broad frequency band extending in ir region Penetrate, but omnidirective reflector disclosed herein is using the reflection to provide narrow-band of invisible ir part of electromagnetic radiation spectrum Visible ray.
With reference now to Figure 11, show when white light being exposed to the angle of 0 ° and 45 ° with respect to reflector surface, another The curve chart to wavelength for the percent reflectivity of individual seven layers of design omnidirective reflector.Further there is illustrated by omnidirectional disclosed herein The definition of omni-directional nature or sign that reflector provides.Especially, and when the reflector by the present invention reflective band providing When to have maximum as depicted be peak value, every curve has centre wavelength (λc), it is defined as showing or experiences The wavelength of maximum reflectivity.The wavelength of term maximum reflection can be additionally used in λc.
As shown in figure 11, when from 45 ° of (λ of anglec(45 °)) observe the outer surface of omnidirective reflector, such as outer surface relatively When the human eye observing this surface tilts 45 °, with the angle (λ from 0 °c(0 °)), i.e. perpendicular to when observing this surface in this surface Compare, there is λcSkew or displacement.λcThis skew (δ λc) provide the measuring of omni-directional nature of omnidirective reflector.From So, zero offset can be perfect omnidirective reflector entirely without skew.However, omnidirective reflector disclosed herein can provide δ λ less than 50nmc, it can show as the surface of seemingly reflector for human eye and not change color, and therefore From the perspective of reality, this reflector is omnidirectional.In some cases, omnidirective reflector disclosed herein can provide little δ λ in 40nmc, the δ λ less than 30nm can be provided in other casesc, and also can provide in other cases and be less than The δ λ of 20nmc, and the δ λ less than 15nm also can be provided in other casesc.δλcSuch skew can be by anti- The actual reflectance of beam to determine to the curve chart of wavelength, and/or alternately, if it is known that material and thickness degree, then Can be by being modeled determining to reflector.
Another definition of the omni-directional nature of reflector or sign can be by one group of given angle reflection frequency bands The skew of lateral edges is determining.For example, and with reference to Figure 11, with for the reflectance (s from 45 ° of observation identical reflectorsuv (45 °)) for uv lateral edges compare, for from 0 ° observation omnidirective reflector reflectance (suv(0 °)) for uv lateral edges Skew or displacement (δ suv) provide the measuring of omni-directional nature of omnidirective reflector.It should be understood that surveying at visible fwhm Skew (the δ s of amount uv lateral edgesuv), and/or skew (the δ s that uv lateral edges can be measured at visible fwhmuv).
Naturally, zero offset is i.e. entirely without skew (δ suv=0nm) perfect omnidirective reflector can be characterized.However, herein Disclosed omnidirective reflector can provide the δ s less than 50nmuv, it can show as the table of seemingly reflector for human eye Face does not change color, and therefore for actual angle, this reflector is omnidirectional.In some cases, public herein The omnidirective reflector opened can provide the δ s less than 40nmuv, the δ s less than 30nm can be provided in other casesuv, and δ s less than 20nm also can be provided in other casesuv, and the δ less than 15nm also can be provided in other cases suv.δsuvSuch skew by the actual reflectance of reflector, the curve chart of wavelength can be determined, and/or can replace Dai Di, if it is known that material and thickness degree, then can be by being modeled determining to reflector.
The skew to measure omnidirectional's reflection can also be offset by low key tone.For example, (for example joining as shown in Figure 12 See δ θ1), it is 30 ° or less by the hue shift of the pigment of the multiple stack preparation according to one side disclosed herein, and And in some cases, hue shift is 25 ° or less, preferably smaller than 20 °, more preferably less than 15 °, and even more preferably less than 10°.By comparison, traditional pigment displays go out 45 ° or bigger of hue shift (for example, see δ θ2).It should be understood that with δθ1Related hue shift generally corresponds to red color, but for by schemochrome pigment institute of mixing omnidirectional disclosed herein For any color of reflection, low hue shift is related.
The signal of the omnidirectional's multiple stack according to another aspect disclosed herein is shown with reference 10 in fig. 13 Property explanation.This multiple stack 10 has ground floor 110 and the second layer 120.May include optional reflector layer 100.For anti- The exemplary materials of beam layer 100 (sometimes referred to as reflector sandwich layer) may include but be not limited to al, ag, pt, cr, cu, zn, au, Sn and combinations thereof or its alloy.So, this reflector layer 100 can be metallicity reflector layer, but this is optional.Separately Outward, the exemplary thickness of core reflector layer is between 30 to 200nm.
Symmetrical a pair layer may be located on the opposite side of reflector layer 100, and that is, reflector layer 100 can have and first Layer 110 another ground floor positioned opposite, thus reflector layer 100 is clipped between a pair of ground floor.Additionally, another second layer 120 can be relatively arranged in reflector layer 100, thus providing five-layer structure.It is to be understood, therefore, that it is provided herein many The discussion of layer stacked body also includes the enantiomorphous probability with regard to one or more central cores.So, Figure 13 can be five The explanation of the half of layer multi-layer stacked body.
With respect to aspects discussed above, ground floor 110 can be absorber layers, for example, has between 5-500nm The Metal absorption body layer of the thickness of (comprising end value).And, the second layer can be to have the thickness (comprising end value) between 5-500nm The DIELECTRIC ABSORPTION body layer of degree.Metal absorption body layer 110 can be made up of colored metal material such as cu, bronze, pyrite, or Si, ge, tin by material such as amorphous and combinations thereof makes.DIELECTRIC ABSORPTION body layer 120 can be by fe2o3Make.
Aspect that is as shown in figure 13 and having size as shown in the following Table 1 shows the reflectivity spectral shown in Figure 14.As Shown in this figure, there is the cu of thickness shown in table 1 or its alloy or other colored reflector such as tin layer 110 and fe2o3Dielectric is inhaled Acceptor layer 120 provides such reflectivity spectral, be wherein less than general 550-575nm wavelength have anti-less than 10-15% Penetrate rate, and the wavelength more than general 575-600nm corresponds in the mapping of a*b*lab color between 0-40 °, is preferably between Tone between 10-30 °.Additionally, the colourity of the reflective band of visible ray be more than 70, preferably greater than 80, and more preferably be equal to or More than 90.
Table 1
Layer Material Thickness (nm)
100 al 80.0
110 Cu or alloy such as pyrite, bronze etc. 184.5
120 fe2o3 28.6
The visual angle for 0 ° and 45 ° is schematically illustrated, as shown in fig. 13 that such multiple stack in Figure 14 Reflectance spectrum.As shown in the drawing, skew (δ s at fwhm for the uv lateral edgesuv=suv(0°)–suv(45 °)) it is less than 50nm, preferably Less than 30nm, and still more preferably it is less than 20nm, and still more preferably less than 10nm.Width in conjunction with the frequency band in visible spectrum Degree, between the reflection between angle 0 and 45 ° frequency band skew corresponding to color change inapparent for human eye.
Figure 15 shows the absorption of the design shown in Figure 13 to wavelength.As shown in the drawing, multiple stack 10 is for straight The visible light more than 80% for the wavelength absorption to about 575nm.Additionally, this aspect 10 absorbs all ripples until about 660nm Long more than 40%.So, the combination of metal absorption layer 110 and DIELECTRIC ABSORPTION layer 120 provides visible reflectance frequency band, and it is in a* Have between 0-40 ° in the b*lab colour space and be preferably between the tone between 10-30 °, i.e. in red color spectrum The wavelength of reflection.
Figure 16 shows the diagram of this aspect 10, the wavelength as percent reflectivity, being reflected and the letter of viewing angle Number.As shown in this 3d isogram, reflectance is very low, i.e. for the wavelength between 400-550-575nm and between Under visual angle between 0 to 45-50 °, reflectance is less than 20%.However, having hundred at the wavelength between about 550-600nm Divide sharply increasing than reflectance.
Describing the other method of the omni-directional nature of the multiple stack of the present invention disclosed by the invention or technology is as Figure 17 The shown colourity and tone curve chart to visual angle.Figure 17 shows the reflection characteristic of the aspect shown in Figure 13, wherein between 0 He The tone of the angle between 45 ° is between 20-30, and has less than 10 °, preferably smaller than 5 ° of change or skew.Additionally, it is right In all visual angles between 0-45 °, between 80-90, wherein colourity (c*) is defined as colourityA* and b* is when being exposed to broadband electromagnetic radiation (such as white light), by multiple stack Coordinate in the lab colour space or mapping for the color of reflection.
Figure 18 shows or has marked and drawed tone on a*b*lab Hue space mapping for the aspect shown in Figure 13 (referring to arrow institute The data point referring to).Region between 15-40 ° be also show on this mapping.It should be understood that this two points are used for 0 ° of visual angle of the normal of the bright outer surface with respect to multiple stack.Additionally, it should be understood that between 0-45 ° of visual angle, The tone of this aspect does not move to outside 15-40 ° of hue regions as shown in fig. 13 that.In other words, this aspect indicate low Hue shift, e.g., less than 30 °, preferably smaller than 20 °, and still more preferably less than 10 °.Also it is further to be understood that Figure 13 institute This aspect shown can also be designed thus providing the single band visible ray with the tone between 0-40 °, and can draw song Line is in Figure 18, and preferably has the single band visible ray of the tone between 10-30 °.
Turning now to Figure 19, illustrate in general the side for manufacturing omnidirectional's high chroma redness structure colorant with reference 20 Method.Method 20 includes, in step 202 dry type deposition of reflective sandwich layer, then depositing to Metal absorption body layer dry type in step 210 On the reflection sandwich layer of dry type deposition.Then, in step 220, DIELECTRIC ABSORPTION body layer dry type is deposited or wet deposition is to Metal absorption On body layer.It should be understood that repeatable step 210 and 220 produces other layer with the reflection sandwich layer that deposits in dry type.This Outward, the reflection sandwich layer that dry type deposits can be deposited on Metal absorption body layer, also can be by the dielectric layer deposition of wet deposition to gold Belong in absorber layers.
Embodiments above and aspect only for illustrative purposes, and change, change etc. for those skilled in the art For will be apparent from, and remain on and fall within the scope of the present invention.So, the scope of the present invention is by claim and its institute The equivalent form of value is had to define.

Claims (19)

1. omnidirectional's high chroma redness structure colorant, comprises:
Multiple stack, it has:
Reflection sandwich layer;
Cross the Metal absorption body layer that described reflection sandwich layer extends;With
Cross the DIELECTRIC ABSORPTION body layer that described Metal absorption body layer extends;
Described multiple stack be reflected in have in the mapping of a*b*lab color tone between 0-40 ° single band visible Light, when from the outer surface perpendicular to described multiple stack between 0-45 ° institute angled observation when, described single band Visible ray has the hue shift in described 0-40 ° on described a*b*lab color maps.
2. omnidirectional's high chroma redness structure colorant of claim 1, wherein, described tone is between 10-30 °, and described color Tuningout shifting is in the mapping of described a*b*lab color in described 10-30 °.
3. the omnidirectional high chroma redness structure colorant of claim 1, wherein, described reflection sandwich layer have between 50-200 nanometer it Between thickness, comprise end value.
4. omnidirectional's high chroma redness structure colorant of claim 3, wherein, described reflection sandwich layer is by selected from following reflective metals Make: al, ag, pt, sn and combinations thereof.
5. omnidirectional's high chroma redness structure colorant of claim 3, wherein, described reflection sandwich layer is by the gold selected from following colour Genus is made: au, cu, pyrite, bronze and combinations thereof.
6. omnidirectional's high chroma redness structure colorant of claim 3, wherein, described Metal absorption body layer has to be received between 5-500 Thickness between rice, comprises end value.
7. omnidirectional's high chroma redness structure colorant of claim 6, wherein, described Metal absorption body layer is made up of following material: Cu, bronze, pyrite, si, ge, tin of amorphous and combinations thereof.
8. omnidirectional's high chroma redness structure colorant of claim 6, wherein, described DIELECTRIC ABSORPTION body layer has between 5-500nm Between thickness, comprise end value.
9. omnidirectional's high chroma redness structure colorant of claim 8, wherein, described DIELECTRIC ABSORPTION body layer is by fe2o3Make.
10. omnidirectional's high chroma redness structure colorant of claim 6, wherein, described reflection sandwich layer is foveal reflex sandwich layer and institute Stating Metal absorption body layer is to cross a pair of Metal absorption body layer that the opposite side of described foveal reflex sandwich layer extends, and described center is anti- Core shooting layer is clipped between the pair of Metal absorption body layer.
Omnidirectional's high chroma redness structure colorant of 11. claim 10, wherein, described DIELECTRIC ABSORPTION body layer is a pair of DIELECTRIC ABSORPTION Body layer, described foveal reflex sandwich layer and the pair of Metal absorption body layer are clipped between the pair of DIELECTRIC ABSORPTION body layer.
12. are used for the method preparing omnidirectional's high chroma redness structure colorant, and the method includes:
By following manufacture multiple stack:
Dry type deposition of reflective sandwich layer;
Dry type deposition crosses the Metal absorption body layer of this reflection sandwich layer extension;
Dry type or wet deposition cross the DIELECTRIC ABSORPTION body layer that this Metal absorption body layer extends;And
This multiple stack is reflected in the visible ray in the mapping of a*b*lab color with tone between 0-40 °, and when from Perpendicular to this multiple stack outer surface between 0-45 ° institute angled observation when, this a*b*lab color mapping On there is the hue shift in this 0-40 °.
The method of 13. claim 12, wherein, this multiple stack is reflected in be had between 10- in the mapping of this a*b*lab color The visible ray of the tone between 30 °, and the hue shift between this 10-30 ° is had on the mapping of this a*b*lab color.
The method of 14. claim 12, wherein, this reflection sandwich layer has the thickness between 50-200 nanometer, comprises end value.
The method of 15. claim 14, wherein, described reflection sandwich layer is made by selected from following reflective metals: al, ag, pt, sn And combinations thereof.
The method of 16. claim 14, wherein, this reflection sandwich layer is made up of the metal selected from following colour: au, cu, pyrite, Bronze and combinations thereof.
The method of 17. claim 14, wherein, this Metal absorption body layer has the thickness between 5-500 nanometer, comprises to hold Value.
The method of 18. claim 17, wherein, this Metal absorption body layer is made up of following material: cu, bronze, pyrite, amorphous Si, ge, tin and combinations thereof.
The method of 19. claim 17, wherein, this DIELECTRIC ABSORPTION body layer has the thickness between 5-500 nanometer, comprises to hold Value, and by fe2o3Make.
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