Laminates, optical devices, and display devices

A laminate with a low-tanδ resin substrate and highly oriented dichroic anisotropic layer addresses the issue of polarization loss in stretched polarizers, enabling effective use on curved surfaces.

JP7855352B2Active Publication Date: 2026-05-08FUJIFILM CORP
View PDF 4 Cites 0 Cited by

Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
FUJIFILM CORP
Filing Date
2020-11-17
Publication Date
2026-05-08

AI Technical Summary

Technical Problem

Existing polarizers, particularly those using iodine or liquid crystal compounds, face challenges in maintaining polarization degree when stretched in directions different from or multiple directions simultaneously, especially when conforming to curved surfaces, leading to tensile stress and shape changes.

Method used

A laminate comprising a resin substrate with a tanδ peak temperature of 170°C or lower and a light-absorbing anisotropic layer with a dichroic substance orientation of 0.95 or higher, which suppresses the decrease in polarization even when stretched in multiple directions.

Benefits of technology

The laminate maintains polarization effectiveness by ensuring the dichroic substance maintains orientation, even under stress, allowing for use in curved surfaces without significant polarization loss.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007855352000048
    Figure 0007855352000048
  • Figure 0007855352000049
    Figure 0007855352000049
  • Figure 0007855352000050
    Figure 0007855352000050
Patent Text Reader

Abstract

The present invention addresses the problem of providing a layered body which includes a light absorption anisotropic layer, in which a decrease in degree of polarization is suppressed even when the layered body is stretched in a plurality of directions simultaneously, and an optical device and a display device which use the layered body. This layered body has at least a resin substrate and a light absorption anisotropic layer, the tan δ peak temperature of the resin substrate being 170°C or below, the light absorption anisotropic layer containing a crystalline compound and a dichroic substance, and the degree of orientation of the dichroic substance being 0.95 or greater.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to a laminate, an optical device, and a display device.

Background Art

[0002] Polarizers are used in various optical devices from the viewpoints of anti-reflection, stray light suppression, etc. However, for each member used, there is a demand for freedom in the shape such as a curved surface for improving design properties and ease of design. Conventionally, iodine polarizers have often been used. Iodine polarizers are produced by dissolving iodine, adsorbing it on a polymer material film such as polyvinyl alcohol (PVA), and stretching it at a high magnification in one direction. It has been difficult to sufficiently reduce the thickness. Further, as described in Patent Document 1, the stretched PVA is likely to cause a shape change over time, and it has also been difficult to use it in a curved surface shape.

[0003] In recent years, for iodine polarizers, a polarizing element in which a liquid crystal compound or a dichroic azo dye is applied on a substrate such as a transparent film and the dichroic azo dye is aligned using intermolecular interaction has been studied. For example, Patent Document 1 describes a polarizer having a thickness of 15 μm or less and having a first surface and a second surface as a polarizer used for a polarizing plate having a curved portion ([Claim 1]), and such a polarizer includes a cured product of a liquid crystal compound and a dichroic dye and a polarizing layer in which the dichroic dye is dispersed and aligned ([Claim 4]).

Prior Art Documents

Patent Documents

[0004]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0005] Incidentally, in order to use polarizers that utilize liquid crystal alignment for curved surfaces such as in-car displays and lenses, it is necessary to mold the polarizing film into a shape that conforms to the curved surface. Furthermore, such molding generates tensile stress in multiple directions. The inventors have shown that stretching in the direction of the orientation axis does not reduce the degree of polarization, while stretching in a direction different from the direction of the orientation axis does reduce the degree of polarization. Furthermore, they have shown that when stretching is performed simultaneously in two axial directions, the orientation is disrupted and the degree of polarization decreases even more significantly.

[0006] Therefore, the object of the present invention is to provide a laminate containing a light-absorbing anisotropic layer, and an optical device and display device using the same, in which a decrease in polarization degree is suppressed even when stretched in a direction different from the orientation axis direction or in multiple directions simultaneously. [Means for solving the problem]

[0007] As a result of diligent research to achieve the above objectives, the inventors of the present invention have discovered that by using a laminate having a specific resin substrate and a light-absorbing anisotropic layer in which the degree of orientation of the dichroic material is greater than or equal to a predetermined value, an absorption-type polarizing film can be realized in which the decrease in the degree of polarization is suppressed even when stretched simultaneously in multiple directions, and have completed the present invention. In other words, we found that the above problem can be solved with the following configuration.

[0008] [1] A laminate comprising at least a resin substrate and a light-absorbing anisotropic layer, The peak temperature of tanδ of the resin substrate is 170°C or lower. A laminate in which the light-absorbing anisotropic layer contains a liquid crystalline compound and a dichroic substance, and the degree of orientation of the dichroic substance is 0.95 or higher. [2] The laminate according to [1], wherein the peak temperature of the tanδ of the resin substrate is 130°C or less. [3] The laminate according to [1] or [2], wherein the storage modulus of the resin substrate at the peak temperature of tanδ is 100 kPa or less. [4] A laminate according to any one of [1] to [3], wherein a resin substrate, an adhesive layer, and a light-absorbing anisotropic layer are arranged in this order. [5] The laminate according to [4], wherein the adhesive layer is an ultraviolet-curable adhesive layer. [6] The laminate according to [5], wherein the adhesive layer is an adhesive layer comprising at least a (meth)acrylate compound. [7] A laminate according to any one of [1] to [6], further comprising an orientation layer. [8] The laminate according to [7], wherein the orientation layer is a layer formed from a composition containing a radical polymerizable compound. [9] A laminate according to any one of [1] to [8], wherein a resin substrate, an adhesive layer, a light-absorbing anisotropic layer, and an orientation layer are arranged in this order.

[10] The laminate according to [9], wherein the adhesive layer is an ultraviolet-curable adhesive layer.

[11] The laminate according to

[10] , wherein the adhesive layer is an adhesive layer comprising at least a (meth)acrylate compound.

[12] The laminate according to any one of [1] to

[11] , wherein the light-absorbing anisotropic layer is formed from a composition having a polymeric liquid crystalline compound.

[13] The laminate according to any one of [1] to

[12] , wherein the molar content of radical polymerizable groups relative to the solid weight of the composition forming the light-absorbing anisotropic layer is 0.6 mmol / g or more.

[14] A laminate according to any one of [1] to

[13] having a curved surface.

[15] An optical device having a curved surface, wherein the laminate described in

[14] is arranged to follow the curved surface.

[16] A display device having a plurality of members having curved surfaces, wherein the laminate described in

[14] is arranged to follow the viewer side of the curved surface of the member that is on the viewer side among the members having curved surfaces. [Effects of the Invention]

[0009] According to the present invention, it is possible to provide a laminate and an optical device or display device using the same, in which the decrease in polarization degree is suppressed even when stretched in a direction different from the direction of the orientation axis or in multiple directions simultaneously. [Brief explanation of the drawing]

[0010] [Figure 1] Figure 1 is a schematic cross-sectional view showing an example of the laminate of the present invention. [Figure 2] Figure 2 is a schematic cross-sectional view showing an example of the laminate of the present invention. [Figure 3] Figure 3 is a cross-sectional side view of a head-mounted display, which is an example of a display device according to the present invention. [Figure 4] Figure 4 is a cross-sectional side view of a head-mounted display, which is an example of a display device according to the present invention. [Figure 5] Figure 5 is a schematic diagram showing the orientation of the laminate according to the present invention. [Modes for carrying out the invention]

[0011] The present invention will be described in detail below. The following description of the constituent elements may be based on typical embodiments of the present invention, but the present invention is not limited to such embodiments. In this specification, a numerical range represented by "~" means a range that includes the numbers written before and after "~" as the lower and upper limits, respectively. Furthermore, in this specification, parallel, orthogonal, horizontal, and vertical do not mean parallel, orthogonal, horizontal, and vertical in the strict sense, but rather mean a range of ±10° for parallel, ±10° for orthogonal, ±10° for horizontal, and ±10° for vertical, respectively. Furthermore, in this specification, each component may be represented by a single substance or by a combination of two or more substances. When two or more substances are used in combination for each component, the content of that component refers to the total content of the combined substances unless otherwise specified. Furthermore, in this specification, "(meth)acrylate" refers to "acrylate" or "methacrylate," "(meth)acrylic" refers to "acrylic" or "methacrylic," and "(meth)acryloyl" refers to "acryloyl" or "methacryloyl."

[0012] [Laminated structure] The present invention provides a laminate comprising a resin substrate and a light-absorbing anisotropic layer, wherein the tanδ of the resin substrate is 170°C or less, the light-absorbing anisotropic layer contains a liquid crystalline compound and a dichroic substance, and the degree of orientation of the dichroic substance is 0.95 or more. The degree of orientation of the dichroic material in the light-absorbing anisotropic layer is more preferably 0.97 or higher. The higher the degree of orientation, the smaller the change in polarization degree when stretched simultaneously in multiple directions.

[0013] In the present invention, as described above, the peak temperature of tanδ of the resin substrate is 170°C or lower, and the dichroic substance in the light-absorbing anisotropic layer has a high degree of orientation of 0.95 or higher. Therefore, even when stretched in a direction different from the direction of the orientation axis, or in multiple directions simultaneously, a decrease in the degree of polarization can be suppressed. The details of this reason are still unclear, but the inventors speculate that it is due to the following reasons. First, it can be estimated that the tanδ peak temperature of the resin substrate of the optical laminate of the present invention is 170°C or lower, which allows it to be stretched in a temperature range that does not affect the orientation state of the liquid crystalline compound in the light-absorbing anisotropic layer, and that a curved shape can be imparted to it in that temperature range. Furthermore, the light-absorbing anisotropic layer of the optical laminate of the present invention contains a dichroic material, which is arranged in various directions at the molecular level. If the directions of these individual molecules are averaged, they converge in a certain direction, which is the orientation axis of the dichroic material (see Figure 5). Consider the case when a stretching stress perpendicular to the orientation axis is applied. It is estimated that molecules arranged in a direction parallel to the orientation axis will not change direction even when stretching stress is applied. On the other hand, it is estimated that molecules deviated from the direction parallel to the orientation axis will change in a direction in which the deviation from the orientation axis becomes even greater due to the stretching stress. Here, we believe that in a highly oriented, anisotropic light-absorbing layer, since most of the molecules are positioned along the orientation axis, the effect of stretching stress perpendicular to the orientation axis is small, and as a result, the change in polarization degree is also small. The following provides a detailed description of each component included in the laminate.

[0014] [Resin base material] The resin substrate used in this invention has a tanδ peak temperature of 170°C or lower. Furthermore, from the viewpoint of enabling thermal deformation treatment at low temperatures, the resin substrate is preferably such that the tanδ peak temperature is 150°C or lower, and more preferably such that the tanδ peak temperature is 130°C or lower.

[0015] Here, we will describe the method for measuring tanδ. Using a dynamic viscoelasticity measuring device (DVA-200, manufactured by IT Measurement Control Co., Ltd.), film samples that have been pre-conditioned for at least 2 hours at a temperature of 25°C and a humidity of 60% Rh are used to measure E'' (loss modulus) and E' (storage modulus) under the following conditions, and these values ​​are used to determine tanδ (= E'' / E'). Equipment: DVA-200 manufactured by IT Measurement & Control Co., Ltd. Sample: 5mm, 50mm length (20mm gap) Measurement conditions: Tensile mode Measurement temperature: -150℃~220℃ Heating conditions: 5°C / min Frequency: 1Hz In general, in optical applications, stretched resin substrates are often used, and the stretching process often alters the peak temperature of tanδ. For example, the peak temperature of tanδ for TAC (triacetylcellulose) substrates (TG40, manufactured by Fujifilm Corporation) is 180°C or higher.

[0016] The resin substrate used in the present invention can be any optical resin without limitation, as long as the peak temperature of tanδ is 170°C or lower. Examples include polyolefins such as polyethylene, polypropylene, and norbornene polymers; cyclic olefin resins; polyvinyl alcohol; polyethylene terephthalate; acrylic resins such as polymethacrylate and polyacrylic acid esters; polyethylene naphthalate; polycarbonate; polysulfone; polyethersulfone; polyetherketone; polyphenylene sulfide and polyphenylene oxide. In particular, cyclic olefin resins, acrylic resins, or polycarbonates are preferred due to their readily available market availability and excellent transparency, more preferably acrylic resins, and even more preferably polymethacrylate esters.

[0017] Commercially available resin substrates include Technoloy S001G, Technoloy S014G, Technoloy S000, Technoloy C001, Technoloy C000 (Sumika Acrylic Sales Co., Ltd.), Lumirror U-type, Lumirror FX10, Lumirror SF20 (Toray Industries, Inc.), HK-53A (Higashiyama Film Co., Ltd.), Teflex FT3 (Teijin DuPont Films Ltd.), SCSina and SCA40 (Sekisui Chemical Co., Ltd.), Zeonor Film (Optes Co., Ltd.), and Arton Film (JSR Corporation).

[0018] The resin substrate used in the present invention preferably has a storage modulus of 500 kPa or less, more preferably 100 kPa or less, and even more preferably 50 kPa or less at the peak temperature of tanδ, for the reason that it facilitates stretching. Here, the storage modulus of tanδ at its peak temperature refers to the storage modulus of E' (storage modulus) measured in the tanδ measurement method described above, specifically the storage modulus at the peak temperature of tanδ.

[0019] The thickness of the resin substrate is not particularly limited, but is preferably 5 to 300 μm, more preferably 5 to 100 μm, and even more preferably 5 to 30 μm.

[0020] [Light-absorbing anisotropic layer] The light-absorbing anisotropic layer used in the present invention contains a liquid crystalline compound and a dichroic substance, and the degree of orientation of the dichroic substance is 0.95 or higher. Such a light-absorbing anisotropic layer is preferably formed using a composition containing a liquid crystalline compound and a dichroic substance (hereinafter abbreviated as "composition for forming a light-absorbing anisotropic layer"). In particular, it is preferable that the liquid crystal compound or dichroic dye contained in the light-absorbing anisotropic layer forming composition has radical polymerizable groups, as this suppresses the decrease in polarization degree during heating. The molar content of radical polymerizable groups relative to the weight of the solids in the light-absorbing anisotropic layer-forming composition is preferably 0.6 mmol / g or more, more preferably 1.0 mmol / g or more, and even more preferably 1.5 mmol / g or more.

[0021] <Liquid crystal compounds> The composition for forming a light-absorbing anisotropic layer contains a liquid crystalline compound. For liquid crystalline compounds, those that do not exhibit dichroism in the visible region are preferred. Both low-molecular-weight liquid crystalline compounds and high-molecular-weight liquid crystalline compounds can be used as liquid crystalline compounds. Here, "low-molecular-weight liquid crystalline compounds" refer to liquid crystalline compounds that do not have repeating units in their chemical structure. "High-molecular-weight liquid crystalline compounds" refer to liquid crystalline compounds that have repeating units in their chemical structure. Examples of low-molecular-weight liquid crystalline compounds include those described in paragraphs

[0027] to

[0034] of Japanese Patent Publication No. 2013-228706. Among these, low-molecular-weight liquid crystalline compounds exhibiting smeck-tic properties are preferred. Examples of polymeric liquid crystalline compounds include the thermotropic liquid crystalline polymer described in Japanese Patent Publication No. 2011-237513. Furthermore, it is preferable that the polymeric liquid crystalline compound has crosslinkable groups (e.g., acryloyl groups and methacryloyl groups) at its terminals. Liquid crystalline compounds may be used individually or in combination of two or more. It is also preferable to use a combination of high-molecular-weight liquid crystalline compounds and low-molecular-weight liquid crystalline compounds. The content of the liquid crystalline compound is preferably 25 to 2000 parts by mass, more preferably 33 to 1000 parts by mass, and even more preferably 50 to 500 parts by mass, based on the content of the dichroic substance in the light-absorbing anisotropic layer-forming composition. Having the liquid crystalline compound content within the above range further improves the orientation of the polarizer.

[0022] The liquid crystalline compound is preferably a polymer liquid crystalline compound because it results in a higher degree of orientation of the resulting light-absorbing anisotropic layer, and more preferably a polymer liquid crystalline compound containing a repeating unit represented by the following formula (1) (hereinafter also abbreviated as "repeating unit (1)").

[0023] [ka]

[0024] In formula (1) above, P1 represents a repeating main chain, L1 represents a single bond or a divalent linking group, SP1 represents a spacer group, M1 represents a mesogenic group, and T1 represents a terminal group.

[0025] Specifically, the main chain of the repeating unit represented by P1 can be, for example, a group represented by the following formulas (P1-A) to (P1-D), and among these, the group represented by the following formula (P1-A) is preferred from the viewpoint of the diversity of monomers used as raw materials and ease of handling.

[0026] [ka]

[0027] In equations (P1-A) to (P1-D), "*" represents the bond position with L1 in equation (1). In equation (P1-A), R 1 R represents a hydrogen atom or a methyl group. In formula (P1-D), R 2 represents an alkyl group. The group represented by formula (P1-A) is preferably a unit of the substructure of the poly(meth)acrylic acid ester obtained by polymerization of (meth)acrylic acid ester, because it results in a higher degree of orientation of the resulting light-absorbing anisotropic layer. The group represented by formula (P1-B) is preferably an ethylene glycol unit in polyethylene glycol obtained by polymerizing ethylene glycol, because it results in a higher degree of orientation of the resulting light-absorbing anisotropic layer. The group represented by formula (P1-C) is preferably a propylene glycol unit obtained by polymerizing propylene glycol, because it results in a higher degree of orientation of the resulting light-absorbing anisotropic layer. The group represented by formula (P1-D) is preferably a siloxane unit of a polysiloxane obtained by condensation polymerization of silanol, because it results in a higher degree of orientation of the resulting light-absorbing anisotropic layer.

[0028] L1 is a single bond or a divalent linking group. The divalent linking groups represented by L1 include -C(O)O-, -OC(O)-, -O-, -S-, and -C(O)NR 3 -, -NR 3 C(O)-, -SO2-, and -NR 3 R 4 - are some examples. In the formula, R 3 and R 4 Each of these independently represents a hydrogen atom or an alkyl group having 1 to 6 carbon atoms, which may have substituents. When P1 is a group represented by formula (P1-A), L1 is preferably a group represented by -C(O)O- because it results in a higher degree of orientation of the resulting light-absorbing anisotropic layer. When P1 is a group represented by formulas (P1-B) to (P1-D), L1 is preferably a single bond because the degree of orientation of the resulting light absorption anisotropic layer becomes higher.

[0029] The spacer group represented by SP1 preferably contains at least one structure selected from the group consisting of an oxyethylene structure, an oxypropylene structure, a polysiloxane structure, and a fluoroalkylene structure because it is likely to exhibit liquid crystallinity and for reasons such as the availability of raw materials. Here, the oxyethylene structure represented by SP1 is preferably a group represented by *-(CH2-CH2O) n1 -*. In the formula, n1 represents an integer of 1 to 20, and * represents the bonding position with L1 or M1 in the above formula (1). n1 is preferably an integer of 2 to 10, more preferably an integer of 2 to 4, and most preferably 3 because the degree of orientation of the resulting light absorption anisotropic layer becomes higher. Also, the oxypropylene structure represented by SP1 is preferably a group represented by *-(CH(CH3)-CH2O) n2 -*. In the formula, n2 represents an integer of 1 to 3, and * represents the bonding position with L1 or M1. Also, the polysiloxane structure represented by SP1 is preferably a group represented by *-(Si(CH3)2-O) n3 -*. In the formula, n3 represents an integer of 6 to 10, and * represents the bonding position with L1 or M1. Also, the fluoroalkylene structure represented by SP1 is preferably a group represented by *-(CF2-CF2) n4 -*. In the formula, n4 represents an integer of 6 to 10, and * represents the bonding position with L1 or M1.

[0030] The mesogenic group represented by M1 is the group that represents the main skeleton of liquid crystal molecules that contribute to liquid crystal formation. Liquid crystal molecules exhibit liquid crystalline properties, which is an intermediate state (mesophase) between the crystalline state and the isotropic liquid state. There are no particular restrictions on the mesogenic group; for example, refer to the description in "Flussige Kristalle in Tabellen II" (VEB Deutsche Verlag fur Grundstoff Industrie, Leipzig, 1984), especially pages 7 to 16, and the description in the Liquid Crystal Handbook (Maruzen, 2000), edited by the Liquid Crystal Handbook Editorial Committee, especially Chapter 3. The mesogenic group is preferably a group having at least one cyclic structure selected from the group consisting of aromatic hydrocarbon groups, heterocyclic groups, and alicyclic groups. The mesogenic group preferably has aromatic hydrocarbon groups, more preferably has 2 to 4 aromatic hydrocarbon groups, and even more preferably has 3 aromatic hydrocarbon groups, because this results in a higher degree of orientation of the resulting light-absorbing anisotropic layer.

[0031] As for the mesogenic group, a group represented by the following formula (M1-A) or the following formula (M1-B) is preferred, and the group represented by formula (M1-B) is more preferred, from the viewpoint of exhibiting liquid crystalline properties, adjusting the liquid crystal phase transition temperature, availability of raw materials, and suitability for synthesis, as well as because it exhibits superior effects of the present invention.

[0032] [ka]

[0033] In formula (M1-A), A1 is a divalent group selected from the group consisting of aromatic hydrocarbon groups, heterocyclic groups, and alicyclic groups. These groups may be substituted with alkyl groups, alkyl fluoride groups, alkoxy groups, or substituents. The divalent group represented by A1 is preferably a 4- to 6-membered ring. Furthermore, the divalent group represented by A1 may be a monoring or a fused ring. * indicates the binding site with SP1 or T1.

[0034] Examples of the divalent aromatic hydrocarbon group represented by A1 include phenylene, naphthylene, fluorene-diyl, anthracene-diyl, and tetracene-diyl groups. From the viewpoint of the diversity of mesogenic skeleton design and the availability of raw materials, a phenylene or naphthylene group is preferred, and a phenylene group is more preferred.

[0035] The divalent heterocyclic group represented by A1 may be either aromatic or non-aromatic, but from the viewpoint of improving the degree of orientation, it is preferable that it be a divalent aromatic heterocyclic group. Atoms other than carbon that constitute a divalent aromatic heterocyclic group include nitrogen, sulfur, and oxygen atoms. If an aromatic heterocyclic group has multiple atoms other than carbon that constitute the ring, these may be the same or different. Specific examples of divalent aromatic heterocyclic groups include, for example, pyridylene (pyridine-diyl group), pyridazine-diyl group, imidazole-diyl group, thienylene (thiophene-diyl group), quinolylene (quinoline-diyl group), isoquinolylene (isoquinoline-diyl group), oxazole-diyl group, thiazole-diyl group, oxadiazole-diyl group, benzothiazole-diyl group, benzothiadiazole-diyl group, phthalimide-diyl group, thienothiazole-diyl group, thiazolothiazole-diyl group, thienothiophene-diyl group, and thienoxazole-diyl group.

[0036] Specific examples of the divalent alicyclic group represented by A1 include the cyclopentylene group and the cyclohexylene group.

[0037] In equation (M1-A), a1 represents an integer between 1 and 10. If a1 is 2 or greater, multiple A1s may be the same or different.

[0038] In formula (M1-B), A2 and A3 are each independently divalent groups selected from the group consisting of aromatic hydrocarbon groups, heterocyclic groups, and alicyclic groups. Specific examples and preferred embodiments of A2 and A3 are the same as those for A1 in formula (M1-A), so their explanation is omitted. In formula (M1-B), a2 represents an integer from 1 to 10. When a2 is 2 or greater, multiple A2s may be the same or different, multiple A3s may be the same or different, and multiple LA1s may be the same or different. a2 is preferably an integer of 2 or greater, and more preferably 2, because a2 results in a higher degree of orientation of the resulting optical absorption anisotropy layer. In formula (M1-B), when a2 is 1, LA1 is a divalent linking group. When a2 is 2 or more, each of the multiple LA1s is independently either a single bond or a divalent linking group, and at least one of the multiple LA1s is a divalent linking group. When a2 is 2, it is preferable that one of the two LA1s is a divalent linking group and the other is a single bond, because this results in a higher degree of orientation of the resulting light-absorbing anisotropic layer.

[0039] In formula (M1-B), the divalent linking group represented by LA1 is -O-, -(CH2) g -,-(CF2) g -, -Si(CH3)2-, -(Si(CH3)2O) g -,-(OSi(CH3)2) g-(g represents an integer from 1 to 10.), -N(Z)-, -C(Z)=C(Z')-, -C(Z)=N-, -N=C(Z)-, -C(Z)2- C(Z')2-, -C(O)-, -OC(O)-, -C(O)O-, -OC(O)O-, -N(Z)C(O)-, -C(O)N(Z)-, - C(Z)=C(Z')-C(O)O-, -OC(O)-C(Z)=C(Z')-, -C(Z)=N-, -N=C(Z)-, -C(Z)=C( Z')-C(O)N(Z”)-, -N(Z”)-C(O)-C(Z)=C(Z')-, -C(Z)=C(Z')-C(O)-S-, -SC( Examples include -C(O)-C(Z)=C(Z')-, -C(Z)=NN=C(Z')- (where Z, Z', and Z'' independently represent hydrogen, a C1-C4 alkyl group, a cycloalkyl group, an aryl group, a cyano group, or a halogen atom), -C≡C-, -N=N-, -S-, -S(O)-, -S(O)(O)-, -(O)S(O)O-, -O(O)S(O)O-, -SC(O)-, and -C(O)S-. Among these, -C(O)O- is preferred because it results in a higher degree of orientation of the resulting light-absorbing anisotropic layer. LA1 may also be a group formed by combining two or more of these groups.

[0040] An example of M1 is the following structure. In the example below, "Ac" represents an acetyl group.

[0041] [ka]

[0042] [ka]

[0043] Examples of terminal groups represented by T1 include hydrogen atoms, halogen atoms, cyano groups, nitro groups, hydroxyl groups, C1-C10 alkyl groups, C1-C10 alkoxy groups, C1-C10 alkylthio groups, C1-C10 alkoxycarbonyloxy groups, C1-C10 alkoxycarbonyl groups (ROC(O)-: R is an alkyl group), C1-C10 acyloxy groups, C1-C10 acylamino groups, C1-C10 alkoxycarbonylamino groups, C1-C10 sulfonylamino groups, C1-C10 sulfamoyl groups, C1-C10 carbamoyl groups, C1-C10 sulfinyl groups, and C1-C10 ureido groups and (meth)acryloyloxy group-containing groups. Examples of the (meth)acryloyloxy group-containing groups mentioned above include the group represented by -LA (where L represents a single bond or a linking group; specific examples of linking groups are the same as those for L1 and SP1 above; A represents a (meth)acryloyloxy group). T1 is preferably an alkoxy group having 1 to 10 carbon atoms, more preferably an alkoxy group having 1 to 5 carbon atoms, and even more preferably a methoxy group, because it results in a higher degree of orientation of the resulting light-absorbing anisotropic layer. These terminal groups may be further substituted with these groups or with polymerizable groups described in Japanese Patent Application Publication No. 2010-244038. The number of atoms in the main chain of T1 is preferably 1 to 20, more preferably 1 to 15, even more preferably 1 to 10, and particularly preferably 1 to 7, because this results in a higher degree of orientation of the resulting light-absorbing anisotropic layer. The degree of polarizer orientation is further improved when the number of atoms in the main chain of T1 is 20 or less. Here, "main chain" in T1 refers to the longest molecular chain bonded to M1, and hydrogen atoms are not counted in the number of atoms in the main chain of T1. For example, if T1 is an n-butyl group, the number of atoms in the main chain is 4, and if T1 is a sec-butyl group, the number of atoms in the main chain is 3.

[0044] The content of repeating units (1) is preferably 20 to 100% by mass relative to 100% by mass of the total repeating units of the polymeric liquid crystalline compound, because this results in a higher degree of orientation of the resulting light-absorbing anisotropic layer. In this invention, the content of each repeating unit in the polymeric liquid crystalline compound is calculated based on the amount (mass) of each monomer used to obtain each repeating unit. The repeating unit (1) may be present as a single unit or as two or more units in the polymeric liquid crystalline compound. In particular, it is preferable to have two types of repeating units (1) in the polymeric liquid crystalline compound because this results in a higher degree of orientation of the resulting light-absorbing anisotropic layer.

[0045] When a polymeric liquid crystalline compound contains two types of repeating units (1), it is preferable that the terminal group represented by T1 in one of the repeating units (repeating unit A) is an alkoxy group, and the terminal group represented by T1 in the other repeating unit (repeating unit B) is a group other than an alkoxy group, in order to achieve a higher degree of orientation of the resulting light-absorbing anisotropic layer. In the repeating unit B described above, the terminal group represented by T1 is preferably an alkoxycarbonyl group, a cyano group, or a (meth)acryloyloxy group-containing group, and more preferably an alkoxycarbonyl group or a cyano group, because this results in a higher degree of orientation of the resulting light-absorbing anisotropic layer. The ratio (A / B) of the content of repeating unit A in the polymeric liquid crystalline compound to the content of repeating unit B in the polymeric liquid crystalline compound is preferably 50 / 50 to 95 / 5, more preferably 60 / 40 to 93 / 7, and even more preferably 70 / 30 to 90 / 10, in order to achieve a higher degree of orientation in the resulting light-absorbing anisotropic layer.

[0046] <Repeating Unit (3-2)> The polymeric liquid crystalline compound of the present invention may further contain a repeating unit represented by the following formula (3-2) (hereinafter also referred to as "repeating unit (3-2)"). This offers advantages such as improved solubility of the polymeric liquid crystalline compound in solvents and easier adjustment of the liquid crystal phase transition temperature. The repeating unit (3-2) differs from the repeating unit (1) in that it does not have at least a mesogenic group. If the polymeric liquid crystalline compound contains repeating units (3-2), the polymeric liquid crystalline compound is a copolymer of repeating units (1) and repeating units (3-2) (and may also be a copolymer containing repeating units A and B), and may be any polymer such as a block polymer, an alternating polymer, a random polymer, or a graft polymer.

[0047] [ka]

[0048] In formula (3-2), P3 represents the repeating main chain, L3 represents a single bond or a divalent linking group, SP3 represents a spacer group, and T3 represents a terminal group. The specific examples of P3, L3, SP3, and T3 in equation (3-2) are the same as those of P1, L1, SP1, and T1 in equation (1) above. Here, in formula (3-2), T3 preferably has a polymerizable group from the viewpoint of improving the intensity of the light-absorbing anisotropic layer.

[0049] When repeating units (3-2) are present, the content is preferably 0.5 to 40% by mass, and more preferably 1 to 30% by mass, relative to 100% by mass of the total repeating units of the polymeric liquid crystalline compound. The repeating unit (3-2) may be present alone or in combination of two or more types in the polymeric liquid crystalline compound. When two or more types of repeating units (3-2) are present, it is preferable that their total amount is within the above range.

[0050] (Weight average molecular weight) The weight-average molecular weight (Mw) of the polymeric liquid crystalline compound is preferably between 1,000 and 500,000, and more preferably between 2,000 and 300,000, because this results in a higher degree of orientation of the resulting light-absorbing anisotropic layer. If the Mw of the polymeric liquid crystalline compound falls within this range, the polymeric liquid crystalline compound becomes easier to handle. In particular, from the viewpoint of suppressing cracks during coating, the weight-average molecular weight (Mw) of the polymeric liquid crystalline compound is preferably 10,000 or more, and more preferably between 10,000 and 300,000. Furthermore, from the viewpoint of the temperature latitude of the degree of orientation, the weight-average molecular weight (Mw) of the polymeric liquid crystalline compound is preferably less than 10,000, and preferably between 2,000 and less than 10,000. Here, the weight-average molecular weight and number-average molecular weight in this invention are values ​​measured by gel permeation chromatography (GPC). • Solvent (eluent): N-methylpyrrolidone ·Device name: TOSOH HLC-8220GPC • Column: Three TOSOH TSKgelSuperAWM-H (6mm x 15cm) columns connected together are used. • Column temperature: 25℃ • Sample concentration: 0.1% by mass ·Flow rate: 0.35mL / min • Calibration curve: A calibration curve was used based on 7 samples of TOSOH TSK standard polystyrene with Mw=2,800,000 to 1,050 (Mw / Mn=1.03 to 1.06).

[0051] (Content) In the present invention, the content of the liquid crystalline compound is preferably 50 to 99% by mass of the solid content in the light-absorbing anisotropic layer forming composition, and more preferably 70 to 96% by mass. Here, "solid content in a composition for forming a light-absorbing anisotropic layer" refers to the components excluding the solvent. Specific examples of solid content include the liquid crystalline compound mentioned above, the dichroic substance described later, polymerization initiators, and interface modifiers.

[0052] <Dichroic substances> The light-absorbing anisotropic layer-forming composition used in the present invention contains a dichroic substance. Dichroic materials are not particularly limited and include visible light absorbing materials (dichroic dyes), luminescent materials (fluorescent materials, phosphorescent materials), ultraviolet absorbing materials, infrared absorbing materials, nonlinear optical materials, carbon nanotubes, inorganic materials (e.g., quantum rods), and conventionally known dichroic materials (dichroic dyes) can be used. Specifically, for example, paragraphs

[0067] to

[0071] of JP 2013-228706, paragraphs

[0008] to

[0026] of JP 2013-227532, paragraphs

[0008] to

[0015] of JP 2013-209367, paragraphs

[0045] to

[0058] of JP 2013-14883, paragraphs

[0012] to

[0029] of JP 2013-109090, and paragraph

[000] of JP 2013-101328. Paragraphs 9] to 0017, paragraphs 0051 to 0065 of JP 2013-37353, paragraphs 0049 to 0073 of JP 2012-63387, paragraphs 0016 to 0018 of JP 11-305036, paragraphs 0009 to 0011 of JP 2001-133630, paragraphs 0030 to 0169 of JP 2011-215337, and paragraphs 0021 to 0018 of JP 2010-106242. Paragraph

[0075] , paragraphs

[0011] to

[0025] of JP 2010-215846, paragraphs

[0017] to

[0069] of JP 2011-048311, paragraphs

[0013] to

[0133] of JP 2011-213610, paragraphs

[0074] to

[0246] of JP 2011-237513, paragraphs

[0005] to

[0051] of JP 2016-006502,

[0005] of WO2016 / 060173 Examples include paragraphs

[0041] to

[008] to

[0062] of WO2016 / 136561, paragraphs

[0014] to

[0033] of International Publication No. 2017 / 154835, paragraphs

[0014] to

[0033] of International Publication No. 2017 / 154695, paragraphs

[0013] to

[0037] of International Publication No. 2017 / 195833, and paragraphs

[0014] to

[0034] of International Publication No. 2018 / 164252.

[0053] In the present invention, two or more dichroic materials may be used in combination. For example, from the viewpoint of making the resulting light-absorbing anisotropic layer closer to black, it is preferable to use at least one dichroic material having a maximum absorption wavelength in the range of 370 to 550 nm and at least one dichroic material having a maximum absorption wavelength in the range of 500 to 700 nm in combination. In this case, the light-absorbing anisotropic layer containing the dichroic material can also be used as a polarizer.

[0054] The above-mentioned dichroic substance may have crosslinking groups. In particular, having crosslinking groups is preferable from the viewpoint of suppressing changes in the degree of polarization during heating. Examples of the above crosslinkable groups include (meth)acryloyl groups, epoxy groups, oxetanyl groups, and styryl groups, with (meth)acryloyl groups being preferred.

[0055] (Content) The content of the dichroic substance in the light-absorbing anisotropic layer-forming composition is preferably 1 to 400 parts by mass, more preferably 2 to 100 parts by mass, and even more preferably 5 to 30 parts by mass, per 100 parts by mass of the liquid crystalline compound, because this results in a higher degree of orientation of the dichroic substance.

[0056] <Surfactants> The surfactant contained in the light-absorbing anisotropic layer-forming composition can be a conventionally known surfactant, but a copolymer having repeating units containing alkyl fluoride (hereinafter also abbreviated as "repeating unit F") and repeating units containing a ring structure (hereinafter also abbreviated as "repeating unit M") is preferred.

[0057] The Hansen solubility parameter was calculated using HSPiP (Ver. 5.1.08) by inputting the compound's structural formula. The dispersion term δD is a term resulting from van der Waals forces. In the case of copolymers, δD and volume were calculated using structural formulas in which the bonds of each repeating unit were replaced with hydrogen atoms, and the average value based on the volume ratio was adopted. High-temperature aging at 80°C to 140°C is required to orient the liquid crystals, and during high-temperature aging, the viscosity of the composition decreases, which can cause repulsion failures. The inventors' investigations revealed a correlation between the δD of the surfactant and repulsion failures. Specifically, a δD of 15.5 to 17.5 is preferred for the surfactant, and 15.8 to 17.0 is more preferred.

[0058] (Repeating unit F) The repeating unit F of the above copolymer is preferably a repeating unit represented by the following formula (a). [ka]

[0059] In the above formula (a), R a1 R represents a hydrogen atom or an alkyl group having 1 to 20 carbon atoms. a2 This represents an alkyl group having 1 to 20 carbon atoms or an alkenyl group having 2 to 20 carbon atoms, in which at least one carbon atom has a fluorine atom as a substituent.

[0060] In the above formula (a), R a2 For the reason that orientation defects in the resulting light-absorbing anisotropic layer are more suppressed, a C1-C10 alkyl group or a C2-C10 alkenylene group is preferred, and a C1-C10 alkyl group is more preferred, R a2 It is particularly preferable that more than half of the carbon atoms contained therein have fluorine atoms as substituents.

[0061] In the present invention, the repeating unit F of the copolymer is more preferably a repeating unit represented by the following formula (b). [ka]

[0062] In the above formula (b), R a1represents a hydrogen atom or an alkyl group having 1 to 20 carbon atoms, ma and na each independently represent a non-negative integer, and X represents a hydrogen atom or a fluorine atom. Here, ma is preferably an integer between 1 and 10, and na is preferably between 4 and 12.

[0063] Specifically, examples of monomers that form the repeating unit F of the above copolymer (hereinafter also abbreviated as "fluoroalkyl group-containing monomers") include 2,2,2-trifluoroethyl (meth)acrylate, 2,2,3,3,3-pentafluoropropyl (meth)acrylate, 2-(perfluorobutyl)ethyl (meth)acrylate, 2-(perfluorohexyl)ethyl (meth)acrylate, 2-(perfluorooctyl)ethyl (meth)acrylate, 2-(perfluorodecyl)ethyl (meth)acrylate, 2-(perfluoro-3-methylbutyl)ethyl (meth)acrylate, 2-(perfluoro-5-methylhexyl)ethyl (meth)acrylate, 2-(perfluoro-7-methyloctyl)ethyl (meth)acrylate, 1H,1H,3H-tetrafluoropropyl (meth)acrylate, and 1H,1H,5H-octafluoro Examples include lopentyl (meth)acrylate, 1H,1H,7H-dodecafluoroheptyl (meth)acrylate, 1H,1H,9H-hexadecafluorononyl (meth)acrylate, 1H-1-(trifluoromethyl)trifluoroethyl (meth)acrylate, 1H,1H,3H-hexafluorobutyl (meth)acrylate, 3-perfluorobutyl-2-hydroxypropyl (meth)acrylate, 3-perfluorohexyl-2-hydroxypropyl (meth)acrylate, 3-perfluorooctyl-2-hydroxypropyl (meth)acrylate, 3-(perfluoro-3-methylbutyl)-2-hydroxypropyl (meth)acrylate, 3-(perfluoro-5-methylhexyl)-2-hydroxypropyl (meth)acrylate, and 3-(perfluoro-7-methyloctyl)-2-hydroxypropyl (meth)acrylate.

[0064] In the present invention, the proportion of copolymerized fluoroalkyl group-containing monomers is preferably 0.01 to 100 moles, more preferably 0.1 to 50 moles, and even more preferably 1 to 30 moles, per mole of the mesogenic group-containing monomer described later, from the viewpoint of reactivity and surface modification effect.

[0065] (Repeat unit M) The repeating unit M of the copolymer described above may be any unit that includes a ring structure. A ring structure refers to at least one ring structure selected from the group consisting of, for example, aromatic hydrocarbon groups, heterocyclic groups, and alicyclic groups. From the viewpoint of suppressing orientation defects, it is preferable to have two or more ring structures.

[0066] In the present invention, the repeating unit F of the copolymer is more preferably a repeating unit represented by the following formula (c). [ka]

[0067] In the above formula (c), R a1 L1 represents a hydrogen atom or an alkyl group with 1 to 20 carbon atoms, L4 and L5 represent a single bond or an alkylene group with 1 to 8 carbon atoms, G1 and G2 represent a divalent cyclic group, and T1 represents a terminal group. n represents an integer from 0 to 4.

[0068] For the alkylene groups represented by L4 and L5, one or more -CH2- groups constituting the alkylene group are single bonds, -O-, -S-, and -NR. 31 -, -C(=O)-, -C(=S)-, -CR 32 =CR 32 -, -C≡C-, -SiR 33 R 34 -, -N=N-, -CR 35 =NN=CR 36 -, -CR 37 R may be replaced by at least one group selected from the group consisting of =N- and -SO2-, 31 ~R 37Each of these independently represents a hydrogen atom, a halogen atom, a cyano group, a nitro group, or a linear or branched alkyl group having 1 to 10 carbon atoms. Furthermore, when L represents an alkylene group, the hydrogen atoms contained in one or more -CH2- groups constituting the alkylene group may be replaced by at least one group selected from the group consisting of halogen atoms, cyano groups, nitro groups, hydroxyl groups, linear alkyl groups having 1 to 10 carbon atoms, and branched alkyl groups having 1 to 10 carbon atoms. In particular, for L4, an alkylene oxy group with 4 to 6 carbon atoms and an oxygen terminal is preferred, and for L5, an ester group is most preferred.

[0069] The divalent cyclic groups represented by G1 and G2 each independently represent a divalent alicyclic hydrocarbon group or aromatic hydrocarbon group having 5 to 8 carbon atoms, and one or more of the -CH2- groups constituting the alicyclic hydrocarbon group may be substituted with -O-, -S-, or -NH-. Furthermore, multiple alicyclic hydrocarbon groups or aromatic hydrocarbon groups may be single-bonded. Among these, a benzene ring is preferred.

[0070] The terminal group represented by T4 includes hydrogen atoms, halogen atoms, cyano groups, nitro groups, hydroxyl groups, C1-C10 alkyl groups, C1-C10 alkoxy groups, C1-C10 alkylthio groups, C1-C10 alkoxycarbonyloxy groups, C1-C10 alkoxycarbonyl groups (ROC(O)-: R is an alkyl group), C1-C10 acyloxy groups, C1-C10 acylamino groups, C1-C10 alkoxycarbonylamino groups, C1-C10 sulfonylamino groups, C1-C10 sulfamoyl groups, C1-C10 carbamoyl groups, C1-C10 sulfinyl groups, and C1-C10 ureido groups and (meth)acryloyloxy group-containing groups. Among these, hydrogen atoms and cyano groups are the most preferred.

[0071] The molar ratio of repeating units F to the total is preferably 50 mol% or more from the viewpoint of orientation, and preferably 70 mol% or less from the viewpoint of repellency.

[0072] (Content) In the present invention, the amount of the surfactant described above is preferably 0.05 to 15 parts by mass, more preferably 0.08 to 10 parts by mass, and even more preferably 0.1 to 5 parts by mass, per 100 parts by mass of the liquid crystalline compound, for the reason that the degree of orientation of the resulting light-absorbing anisotropic layer is higher.

[0073] <Polymerization initiator> The composition for forming a light-absorbing anisotropic layer preferably contains a polymerization initiator. There are no particular restrictions on the polymerization initiator, but it is preferable that it be a photosensitive compound, i.e., a photopolymerization initiator. Various compounds can be used as photopolymerization initiators without particular limitations. Examples of photopolymerization initiators include α-carbonyl compounds (US Patent Nos. 2,367,661 and 2,367,670), acyloin ethers (US Patent No. 2,448,828), α-hydrocarbon-substituted aromatic acyloin compounds (US Patent No. 2,722,512), polynuclear quinone compounds (US Patent Nos. 3,046,127 and 2,951,758), and combinations of triarylimidazole dimers and p-aminophenyl ketones (US Patent No. 3,549,367). Examples include acridine and phenazine compounds (Japanese Patent Publication No. 60-105667 and U.S. Patent No. 4239850), oxadiazole compounds (U.S. Patent No. 4212970), o-acyloxime compounds (Japanese Patent Publication No. 2016-27384

[0065] ), and acylphosphine oxide compounds (Japanese Patent Publication No. 63-40799, Japanese Patent Publication No. 5-29234, Japanese Patent Publication No. 10-95788 and Japanese Patent Publication No. 10-29997). Commercially available photopolymerization initiators can also be used, including BASF's Irgacure-184, Irgacure-907, Irgacure-369, Irgacure-651, Irgacure-819, Irgacure-OXE-01, and Irgacure-OXE-02.

[0074] When the composition for forming a light-absorbing anisotropic layer contains a polymerization initiator, the amount of polymerization initiator is preferably 0.01 to 30 parts by mass, and more preferably 0.1 to 15 parts by mass, based on 100 parts by mass of the total of the dichroic substance and the liquid crystalline compound in the composition for forming a light-absorbing anisotropic layer. A polymerization initiator content of 0.01 parts by mass or more results in good durability of the light-absorbing anisotropic film, while a content of 30 parts by mass or less results in better orientation of the light-absorbing anisotropic film. Polymerization initiators may be used individually or in combination of two or more. When two or more polymerization initiators are included, it is preferable that their total amount is within the above range.

[0075] <Solvent> The colored composition for forming a light-absorbing anisotropic layer of the present invention preferably contains a solvent from the viewpoint of workability and other factors. Examples of solvents include ketones (e.g., acetone, 2-butanone, methyl isobutyl ketone, cyclopetantanone, cyclohexanone, etc.), ethers (e.g., dioxane, tetrahydrofuran, 2-methyltetrahydrofuran, cyclopentyl methyl ether, tetrahydropyran, dioxolane, etc.), aliphatic hydrocarbons (e.g., hexane, etc.), alicyclic hydrocarbons (e.g., cyclohexane, etc.), aromatic hydrocarbons (e.g., benzene, toluene, xylene, trimethylbenzene, etc.), halogenated carbons (e.g., dichloromethane, trichloromethane, dichloroethane, dichlorobenzene, chlorotoluene, etc.), and esters (e.g., acetic acid). Examples of solvents include organic solvents such as methyl, ethyl acetate, butyl acetate, ethyl lactate, etc., alcohols (e.g., ethanol, isopropanol, butanol, cyclohexanol, isopentyl alcohol, neopentyl alcohol, diacetone alcohol, benzyl alcohol, etc.), cellosolves (e.g., methyl cellosolve, ethyl cellosolve, 1,2-dimethoxyethane, etc.), cellosolve acetates, sulfoxides (e.g., dimethyl sulfoxide, etc.), amides (e.g., dimethylformamide, dimethylacetamide, N-methylpyrrolidone, N-ethylpyrrolidone, etc.), and heterocyclic compounds (e.g., pyridine, etc.), as well as water. These solvents may be used individually or in combination of two or more. Of these solvents, ketones (especially cyclopentanone and cyclohexanone), ethers (especially tetrahydrofuran, cyclopentyl methyl ether, tetrahydropyran, and dioxolane), and amides (especially dimethylformamide, dimethylacetamide, N-methylpyrrolidone, and N-ethylpyrrolidone) are preferred from the viewpoint of taking advantage of their excellent solubility.

[0076] If the light-absorbing anisotropic layer-forming composition contains a solvent, the solvent content is preferably 80 to 99% by mass, more preferably 83 to 97% by mass, and particularly preferably 85 to 95% by mass, based on the total mass of the light-absorbing anisotropic layer-forming composition. The solvent may be used alone or in combination of two or more. When two or more solvents are included, it is preferable that their total amount is within the above range.

[0077] <Method for forming a light-absorbing anisotropic layer> The method for forming the light-absorbing anisotropic layer is not particularly limited, and examples include a method comprising, in this order, a step of applying the above-mentioned light-absorbing anisotropic layer forming composition onto an alignment layer described later to form a coated film (hereinafter also referred to as the "coated film formation step"), and a step of aligning the liquid crystalline components and dichroic substances contained in the coated film (hereinafter also referred to as the "alignment step"). Furthermore, the term "liquid crystallinity component" includes not only the liquid crystallinity compounds mentioned above, but also, if the dichroic substance mentioned above also possesses liquid crystallinity, the component also includes the dichroic substance that is liquid crystallinity.

[0078] (Coating film formation process) The coating film formation process involves applying a light-absorbing anisotropic layer formation composition onto an orientation layer, which will be described later, to form a coating film. By using a light-absorbing anisotropic layer-forming composition containing the aforementioned solvent, or by using a light-absorbing anisotropic layer-forming composition that has been made into a liquid such as a molten liquid by heating, it becomes easier to coat the light-absorbing anisotropic layer-forming composition onto the orientation layer described later. Specific examples of known methods for applying the light-absorbing anisotropic layer-forming composition include, for example, roll coating, gravure printing, spin coating, wire bar coating, extrusion coating, direct gravure coating, reverse gravure coating, die coating, spray coating, and inkjet coating.

[0079] (Orientation process) The orientation process is a step in which the liquid crystalline components contained in the coated film are oriented. This results in a light-absorbing anisotropic layer. The orientation step may include a drying process. The drying process can remove components such as solvents from the coating film. The drying process may be carried out by leaving the coating film at room temperature for a predetermined time (e.g., natural drying), or by heating and / or blowing air. Here, the liquid crystalline components contained in the light-absorbing anisotropic layer-forming composition may be oriented by the coating film formation process or drying treatment described above. For example, in embodiments in which the light-absorbing anisotropic layer-forming composition is prepared as a coating solution containing a solvent, a coating film with light-absorbing anisotropy (i.e., a light-absorbing anisotropic film) is obtained by drying the coating film to remove the solvent from the coating film. If the drying process is carried out at a temperature above the transition temperature of the liquid crystalline components in the coated film to the liquid crystal phase, the heat treatment described later may not be necessary.

[0080] The transition temperature of the liquid crystalline component in the coated film to the liquid crystal phase is preferably 10 to 250°C, and more preferably 25 to 190°C, from the viewpoint of manufacturing suitability. A transition temperature of 10°C or higher is preferable because it eliminates the need for cooling treatment to lower the temperature to the temperature range in which the liquid crystal phase is observed. Furthermore, a transition temperature of 250°C or lower is preferable because it eliminates the need for high temperatures even when creating an isotropic liquid state at a temperature higher than the temperature range in which the liquid crystal phase is observed, thereby reducing the waste of thermal energy and the deformation and deterioration of the substrate.

[0081] The orientation step preferably includes a heat treatment. This allows the liquid crystalline components contained in the coated film to be oriented, making the coated film after heat treatment suitable for use as a light-absorbing anisotropic film. For heat treatment, a temperature of 10 to 250°C is preferred, and 25 to 190°C is more preferred, from the standpoint of suitability for manufacturing. The heating time is preferably 1 to 300 seconds, and 1 to 60 seconds is more preferred.

[0082] The orientation step may include a cooling process performed after the heat treatment. The cooling process involves cooling the heated coating film to room temperature (approximately 20-25°C). This fixes the orientation of the liquid crystalline components contained in the coating film. The cooling method is not particularly limited and can be carried out by known methods. By following the above steps, a light-absorbing anisotropic film can be obtained. In this embodiment, drying treatment and heat treatment are mentioned as methods for aligning the liquid crystalline components contained in the coating film, but the method is not limited to these, and can be carried out by known orientation treatments.

[0083] (Other processes) The method for forming a light-absorbing anisotropic layer may include a step of curing the light-absorbing anisotropic layer after the orientation step (hereinafter also referred to as the "curing step"). The curing process is carried out by heating and / or light irradiation (exposure), for example, if the light-absorbing anisotropic layer has crosslinkable groups (polymerizable groups). Among these, it is preferable that the curing process be carried out by light irradiation. Various light sources can be used for curing, such as infrared light, visible light, or ultraviolet light, but ultraviolet light is preferred. Furthermore, ultraviolet light may be irradiated while heating during curing, or ultraviolet light may be irradiated through a filter that transmits only specific wavelengths. When exposure is performed while heating, the heating temperature during exposure is preferably 25 to 140°C, although this also depends on the transition temperature of the liquid crystalline components in the liquid crystal film to the liquid crystal phase. Furthermore, exposure may be performed under a nitrogen atmosphere. When the curing of the liquid crystal film progresses by radical polymerization, exposure under a nitrogen atmosphere is preferable because it reduces the inhibition of polymerization by oxygen.

[0084] The thickness of the light-absorbing anisotropic layer is not particularly limited, but from the viewpoint of flexibility when the laminate of the present invention, described later, is used as a polarizing element, it is preferably 100 to 8000 nm, and more preferably 300 to 5000 nm.

[0085] [Vertical orientation light absorption anisotropy layer] The light-absorbing anisotropic layer of the present invention may have the dichroic material oriented horizontally or vertically. The vertically oriented light-absorbing anisotropic layer has the characteristic of absorbing polarized light incident at an oblique angle, and can be used in privacy films and the like to control the viewing angle. From the viewpoint of vertically aligning dichroic substances and liquid crystal compounds, it is preferable to use the following vertical alignment agents.

[0086] (Vertical alignment agent) Examples of vertical orientation agents include boronic acid compounds and onium salts.

[0087] As the boronic acid compound, the compound represented by formula (30) is preferred.

[0088] Formula (30) [ka]

[0089] In formula (30), R 1 and R 2 Each of these independently represents a hydrogen atom, a substituted or unsubstituted aliphatic hydrocarbon group, a substituted or unsubstituted aryl group, or a substituted or unsubstituted heterocyclic group. R 3 This represents a substituent containing a (meth)acrylic group. Specific examples of boronic acid compounds include the boronic acid compounds represented by general formula (I) described in paragraphs 0023 to 0032 of Japanese Patent Publication No. 2008-225281. The following compounds are also preferred as boronic acid compounds.

[0090] [ka]

[0091] As the onium salt, the compound represented by formula (31) is preferred.

[0092] Formula (31) [ka]

[0093] In formula (31), ring A represents a quaternary ammonium ion consisting of a nitrogen-containing heterocycle. X represents an anion. 1 This represents a divalent linking group. 2 This represents a single bond or a divalent linking group. 1 represents a divalent linking group having a 5 or 6-membered ring as a substructure. Z represents a divalent linking group having 2 to 20 alkylene groups as a substructure. P 1 and P 2 Each of these independently represents a monovalent substituent having a polymerizable ethylenically unsaturated bond. Specific examples of onium salts include the onium salts described in paragraphs 0052 to 0058 of Japanese Patent Publication No. 2012-208397, the onium salts described in paragraphs 0024 to 0055 of Japanese Patent Publication No. 2008-026730, and the onium salts described in Japanese Patent Publication No. 2002-37777.

[0094] The content of the vertical alignment agent in the composition is preferably 0.1 to 400% by mass, and more preferably 0.5 to 350% by mass, based on the total mass of the liquid crystalline compound. Vertical alignment agents may be used individually or in combination of two or more types. When two or more vertical alignment agents are used, it is preferable that their total amount is within the above range.

[0095] (Leveling agent suitable for vertical orientation) In the case of vertical orientation, it is preferable to include the following leveling agents. When the composition contains leveling agents, planar roughness caused by drying air on the surface of the light-absorbing anisotropic layer is suppressed, and the dichroic substances are oriented more uniformly. The leveling agent is not particularly limited, but a leveling agent containing a fluorine atom (fluorine-based leveling agent) or a leveling agent containing a silicon atom (silicon-based leveling agent) is preferred, and a fluorine-based leveling agent is more preferred.

[0096] Examples of fluorine-based leveling agents include fatty acid esters of polycarboxylic acids in which a portion of the fatty acid is substituted with a fluoroalkyl group, and polyacrylates having fluoro substituents. In particular, when rod-shaped compounds are used as the dichroic substance and liquid crystalline compound, leveling agents containing repeating units derived from the compound represented by formula (40) are preferred because they promote the vertical orientation of the dichroic substance and liquid crystalline compound.

[0097] Formula (40) [ka]

[0098] R 0 This represents a hydrogen atom, a halogen atom, or a methyl group. L represents a divalent linking group. L is preferably an alkylene group having 2 to 16 carbon atoms, and any non-adjacent -CH2- in the alkylene group may be substituted with -O-, -COO-, -CO-, or -CONH-. n represents an integer between 1 and 18.

[0099] A leveling agent having repeating units derived from a compound represented by formula (40) may further contain other repeating units. Other repeating units include those derived from compounds represented by formula (41).

[0100] Formula (41) [ka]

[0101] R 11 This represents a hydrogen atom, a halogen atom, or a methyl group. X is an oxygen atom, a sulfur atom, or -N(R 13 ) represents R 13 This represents a hydrogen atom or an alkyl group having 1 to 8 carbon atoms. R 12represents a hydrogen atom, an optionally substituted alkyl group, or an optionally substituted aromatic group. The alkyl group preferably has 1 to 20 carbon atoms. The alkyl group may be linear, branched, or cyclic. Furthermore, examples of substituents that the alkyl group may have include a poly(alkylene oxy) group and a polymerizable group. The definition of a polymerizable group is as described above.

[0102] When the leveling agent contains repeating units derived from the compound represented by formula (40) and repeating units derived from the compound represented by formula (41), the content of the repeating units derived from the compound represented by formula (40) is preferably 10 to 90 mol%, and more preferably 15 to 95 mol%, relative to the total repeating units contained in the leveling agent. When the leveling agent contains repeating units derived from the compound represented by formula (40) and repeating units derived from the compound represented by formula (41), the content of the repeating units derived from the compound represented by formula (41) is preferably 10 to 90 mol%, and more preferably 5 to 85 mol%, relative to the total repeating units contained in the leveling agent.

[0103] Furthermore, as a leveling agent, a leveling agent containing repeating units derived from the compound represented by formula (42) can also be mentioned, instead of the repeating units derived from the compound represented by formula (40) described above.

[0104] Formula (42) [ka]

[0105] R 2 This represents a hydrogen atom, a halogen atom, or a methyl group. L 2 This represents a divalent linking group. n represents an integer between 1 and 18.

[0106] Specific examples of leveling agents include the compounds exemplified in paragraphs 0046 to 0052 of Japanese Patent Publication No. 2004-331812, and the compounds described in paragraphs 0038 to 0052 of Japanese Patent Publication No. 2008-257205.

[0107] The content of the leveling agent in the composition is preferably 10 to 80% by mass, and more preferably 20 to 60% by mass, relative to the total mass of the liquid crystalline compound. Leveling agents may be used individually or in combination of two or more types. When two or more leveling agents are used, it is preferable that their total amount is within the above range.

[0108] [Oriented layer] The laminate of the present invention preferably has an alignment layer to align the liquid crystals as described above. Methods for forming an orientation layer include, for example, rubbing treatment of the film surface with an organic compound (preferably a polymer), oblique deposition of an inorganic compound, formation of a layer having microgrooves, and accumulation of an organic compound (e.g., ω-tricosanoic acid, dioctadecylmethylammonium chloride, methyl stearylate, etc.) by the Langmuir-Bludget method (LB film). Furthermore, orientation layers that exhibit orientation function upon application of an electric field, magnetic field, or light irradiation are also known. In particular, in the present invention, an orientation layer formed by rubbing treatment (rubbing-treated orientation layer) is preferred in terms of ease of controlling the pre-tilt angle of the orientation layer. However, in terms of orientation uniformity, which is important for the present invention, an orientation layer formed from a composition containing a radical polymerizable compound (for example, a compound containing a group having an ethylenically unsaturated double bond) is more preferred, and a photo-oriented orientation layer formed by light irradiation is even more preferred. When using such an orientation layer, the laminate of the present invention may remain with the orientation layer intact, or it may be in a state where the orientation layer has been peeled off.

[0109] <Rubbing-treated orientation layer> Numerous polymer materials are described in various publications and many commercially available products can be used for the orientation layer formed by the rubbing process. In this invention, polyvinyl alcohol or polyimide, and their derivatives are preferably used. For the orientation layer, refer to the description on pages 43, line 24 to 49, line 8 of International Publication No. 2001 / 88574A1. The thickness of the orientation layer is preferably 0.01 to 10 μm, and more preferably 0.01 to 2 μm.

[0110] <Photoalignment layer> The photo-alignment layer that the laminate of the present invention may have is not particularly limited, and known photo-alignment layers can be used. The material used to form the photo-alignment layer is not particularly limited, but typically a compound having a photo-aligning group is used. The compound may be a polymer having repeating units containing a photo-aligning group. The above-mentioned photo-orienting groups are functional groups that can impart anisotropy to a film upon light irradiation. More specifically, they are groups in which a change in the molecular structure within the group can occur upon irradiation with light (e.g., linearly polarized light). Typically, they refer to groups in which irradiation with light (e.g., linearly polarized light) triggers at least one photoreaction selected from photoisomerization, photodimerization, and photodegradation. Among these photo-directing groups, groups that undergo photoisomerization (groups having a structure that undergoes photoisomerization) and groups that undergo photodimerization (groups having a structure that undergoes photodimerization) are preferred, with groups that undergo photodimerization being more preferred.

[0111] The above-mentioned photoisomerization reaction refers to a reaction that causes stereoisomerization or structural isomerization through the action of light. Examples of substances that undergo such photoisomerization reactions include those with an azobenzene structure (K. Ichimura et al., Mol.Cryst.Liq.Cryst., 298, page 221 (1997)), those with a hydrazono-β-ketoester structure (S. Yamamura et al., Liquid Crystals, vol. 13, No. 2, page 189 (1993)), those with a stilbene structure (JGVictor and JMTorkelson, Macromolecules, 20, page 2241 (1987)), those with a cinnamic acid (cinnamoyl) structure (skeleton), and those with a spiropyran structure (K. Ichimura et al., Chemistry Letters, page 1063 (1992); K.Ichimura et al., Thin Solid Films, vol. 235, page 101 (1993)). The groups that undergo the above photoisomerization reaction are preferably groups that undergo photoisomerization reactions and contain a C=C bond or an N=N bond. Examples of such groups include groups having an azobenzene structure (skeleton), a hydrazono-β-ketoester structure (skeleton), a stilbene structure (skeleton), a cinnamic acid (cinnamoyl) structure (skeleton), and a spiropyran structure (skeleton). Among these groups, groups having a cinnamoyl structure and groups having a coumarin structure are preferred, and groups having a cinnamoyl structure are more preferred.

[0112] The above-mentioned photodimerization reaction refers to a reaction in which an addition reaction occurs between two groups due to the action of light, typically forming a ring structure. Examples of substances that undergo such photodimerization include substances with a cinnamic acid structure (M. Schadt et al., J. Appl. Phys., vol. 31, No. 7, page 2155 (1992)), substances with a coumarin structure (M. Schadt et al., Nature., vol. 381, page 212 (1996)), substances with a chalcone structure (Toshihiro Ogawa et al., Proceedings of the Liquid Crystal Symposium, 2AB03 (1997)), and substances with a benzophenone structure (YK Jang et al., SID Int. Symposium Digest, P-53 (1997)). Examples of groups that undergo the above photodimerization reaction include groups having a cinnamic acid (cinnamoyl) structure (skeleton), a coumarin structure (skeleton), a chalcone structure (skeleton), a benzophenone structure (skeleton), and an anthracene structure (skeleton). Among these groups, groups having a cinnamoyl structure and groups having a coumarin structure are preferred, and groups having a cinnamoyl structure are more preferred.

[0113] Furthermore, the compound having the above-mentioned photo-orienting group is preferably also having a crosslinking group. Preferably, the crosslinkable group is a thermal crosslinkable group that undergoes a curing reaction by the action of heat, or a photocrosslinkable group that undergoes a curing reaction by the action of light. A crosslinkable group having both thermal and photocrosslinkable properties may also be used. Examples of the crosslinkable groups include at least one selected from the group consisting of epoxy groups, oxetanyl groups, groups represented by -NH-CH2-OR (where R represents a hydrogen atom or an alkyl group having 1 to 20 carbon atoms), radical polymerizable groups (groups having an ethylenically unsaturated double bond), and blocked isocyanate groups. Among these, epoxy groups, oxetanyl groups, and groups having an ethylenically unsaturated double bond are preferred. Furthermore, a three-membered cyclic ether group is also called an epoxy group, and a four-membered cyclic ether group is also called an oxetanyl group. Furthermore, specific examples of radical polymerizable groups (groups having an ethylenically unsaturated double bond) include vinyl groups, allyl groups, styryl groups, acryloyl groups, and methacryloyl groups, with acryloyl groups or methacryloyl groups being preferred.

[0114] One preferred embodiment of the above-mentioned photo-alignment layer is a photo-alignment layer formed using a photo-alignment layer forming composition comprising a polymer A having repeating units a1 containing cinnamate groups, and a low-molecular-weight compound B having cinnamate groups and having a smaller molecular weight than polymer A.

[0115] Herein, in this specification, a cinnamate group means a group having a cinnamic acid structure that includes cinnamic acid or a derivative thereof as its basic skeleton, and is represented by the following formula (I) or formula (II).

[0116] [ka]

[0117] In the formula, R 1 R represents a hydrogen atom or a monovalent organic group. 2 represents a monovalent organic group. In formula (I), a represents an integer from 0 to 5, and in formula (II), a represents 0 to 4. If a is 2 or greater, multiple R 1 These can be identical or different. * indicates a combination.

[0118] Polymer A is not particularly limited as long as it is a polymer having repeating units a1 containing cinnamate groups, and conventionally known polymers can be used. The weight-average molecular weight of polymer A is preferably 1,000 to 500,000, more preferably 2,000 to 300,000, and even more preferably 3,000 to 200,000. Here, the weight-average molecular weight is defined as the polystyrene (PS) equivalent value obtained by gel permeation chromatography (GPC) measurement. In this invention, GPC measurement can be performed using an HLC-8220GPC (manufactured by Tosoh Corporation) and TSKgel Super HZM-H, HZ4000, or HZ2000 as the column.

[0119] Examples of repeating units a1 containing cinnamate groups in polymer A include repeating units represented by the following formulas (A1) to (A4).

[0120] [ka]

[0121] Here, in equations (A1) and (A3), R 3 R represents a hydrogen atom or a methyl group, and in formulas (A2) and (A4), 4 This represents an alkyl group with 1 to 6 carbon atoms. In formulas (A1) and (A2), L 1 represents a single bond or a divalent linking group, a represents an integer from 0 to 5, and R 1 represents a hydrogen atom or a monovalent organic group. In formulas (A3) and (A4), L 2 represents a divalent linking group, R 2 This represents a monovalent organic group. Also, L 1 Specifically, for example, -CO-O-Ph-, -CO-O-Ph-Ph-, -CO-O-(CH2) n -,-CO-O-(CH2) n -Cy-, and -(CH2) n Examples include -Cy-. Here, Ph represents a divalent benzene ring which may have substituents (e.g., a phenylene group), Cy represents a divalent cyclohexane ring which may have substituents (e.g., a cyclohexane-1,4-diyl group), and n represents an integer from 1 to 4. Also, L 2 Specifically, for example, -O-CO-, -O-CO-(CH2)m Examples include -O-. Here, m represents an integer from 1 to 6. Also, R 1 Examples of monovalent organic groups include linear or cyclic alkyl groups having 1 to 20 carbon atoms, alkoxy groups having 1 to 20 carbon atoms, and aryl groups having 6 to 20 carbon atoms, which may have substituents. Also, R 2 Examples of monovalent organic groups include linear or cyclic alkyl groups having 1 to 20 carbon atoms, and aryl groups having 6 to 20 carbon atoms, which may have substituents. Furthermore, it is preferable that a is 1, R 1 It is preferable that it is located in the para position. Furthermore, examples of substituents that the above-mentioned Ph, Cy, and aryl groups may have include alkyl groups, alkoxy groups, hydroxyl groups, carboxyl groups, and amino groups.

[0122] From the standpoint of further improving the orientation of the light-absorbing anisotropic layer and further improving the adhesion of the light-absorbing anisotropic layer, it is preferable that polymer A further has repeating units a2 containing crosslinkable groups. The definition of a crosslinkable group and preferred embodiments are as described above. In particular, among the repeating units a2 containing crosslinkable groups, repeating units having epoxy groups, oxetanyl groups, and groups having ethylenically unsaturated double bonds are preferred.

[0123] Preferred examples of repeating units having epoxy groups, oxetanyl groups, and groups having ethylenically unsaturated double bonds include the following repeating units. 3 and R 4 These are, respectively, the formula (A1) and the R in formula (A1) described above. 3 and R 4 It is synonymous with [the above].

[0124] [ka]

[0125] Polymer A may have other repeating units besides the repeating units a1 and a2 described above. Other monomers that form repeating units include, for example, acrylic acid ester compounds, methacrylic acid ester compounds, maleimide compounds, acrylamide compounds, acrylonitrile, maleic anhydride, styrene compounds, and vinyl compounds.

[0126] The content of polymer A in the photo-alignment layer forming composition is preferably 0.1 to 50 parts by mass, and more preferably 0.5 to 10 parts by mass, per 100 parts by mass of solvent, when an organic solvent described later is included.

[0127] Low molecular weight compound B is a compound that has a cinnamate group and a smaller molecular weight than polymer A. By using low molecular weight compound B, the orientation of the resulting photo-oriented layer is improved. For the reason that the orientation of the photo-aligned layer is further improved, the molecular weight of the low molecular weight compound B is preferably 200 to 500, and more preferably 200 to 400. Examples of low molecular weight compound B include the compound represented by the following formula (B1).

[0128] [ka]

[0129] In equation (B1), a represents an integer from 0 to 5, and R 1 R represents a hydrogen atom or a monovalent organic group. 2 represents a monovalent organic group. If a is 2 or more, multiple R 1 These may be the same or different. Also, R 1Examples of monovalent organic groups include linear or cyclic alkyl groups having 1 to 20 carbon atoms, alkoxy groups having 1 to 20 carbon atoms, and aryl groups having 6 to 20 carbon atoms, which may have substituents. Among these, alkoxy groups having 1 to 20 carbon atoms are preferred, alkoxy groups having 1 to 6 carbon atoms are more preferred, and methoxy or ethoxy groups are even more preferred. Also, R 2 Examples of monovalent organic groups include linear or cyclic alkyl groups having 1 to 20 carbon atoms, and aryl groups having 6 to 20 carbon atoms, which may have substituents. Among these, linear alkyl groups having 1 to 20 carbon atoms are preferred, and branched alkyl groups having 1 to 10 carbon atoms are more preferred. Furthermore, it is preferable that a is 1, R 1 It is preferable that it is located in the para position. Furthermore, examples of substituents that the aryl group may have include alkyl groups, alkoxy groups, hydroxyl groups, carboxyl groups, and amino groups.

[0130] The content of the low molecular weight compound B in the photo-alignment layer forming composition is preferably 10 to 500% by mass, and more preferably 30 to 300% by mass, relative to the mass of the constituent unit a1 of polymer A.

[0131] For the photo-alignment layer formation composition, it is preferable to include a crosslinking agent C having a crosslinking group, in addition to polymer A having a structural unit a2 containing a crosslinking group, in order to further improve the orientation. The molecular weight of the crosslinking agent C is preferably 1000 or less, and more preferably 100 to 500. Examples of the crosslinking agent C include compounds having two or more epoxy groups or oxetanyl groups in the molecule, blocked isocyanate compounds (compounds having protected isocyanate groups), and compounds containing alkoxymethyl groups. Of these, compounds having two or more epoxy groups or oxetanyl groups in the molecule, or blocked isocyanate compounds are preferred.

[0132] When the photo-alignment layer forming composition contains the above-mentioned crosslinking agent C, the content of the crosslinking agent C is preferably 1 to 1000 parts by mass, and more preferably 10 to 500 parts by mass, per 100 parts by mass of the constituent unit a1 of polymer A.

[0133] The composition for forming the photo-alignment layer preferably contains a solvent from the viewpoint of ease of production of the photo-alignment layer. Examples of solvents include water and organic solvents. Examples of organic solvents include, for example, ketones (e.g., acetone, 2-butanone, methyl isobutyl ketone, cyclohexanone, and cyclopentanone), ethers (e.g., dioxane and tetrahydrofuran), aliphatic hydrocarbons (e.g., hexane), alicyclic hydrocarbons (e.g., cyclohexane), aromatic hydrocarbons (e.g., toluene, xylene, and trimethylbenzene), halogenated carbons (e.g., dichloromethane, dichloroethane, dichlorobenzene, chlorotoluene), esters (e.g., methyl acetate, ethyl acetate, and butyl acetate), alcohols (e.g., ethanol, isopropanol, butanol, and cyclohexanol), cellosolves (e.g., methyl cellosolve and ethyl cellosolve), cellosolve acetates, sulfoxides (e.g., dimethyl sulfoxide), and amides (e.g., dimethylformamide and dimethylacetamide). These may be used individually or in combination of two or more.

[0134] The photo-alignment layer formation composition may also contain other components besides those mentioned above, such as crosslinking catalysts, adhesion improvers, leveling agents, surfactants, and plasticizers.

[0135] <Method for forming a photophosphoric layer> The method for forming the photo-alignment layer is not particularly limited. For example, it can be produced by a manufacturing method comprising a coating step of applying the above-described photo-alignment layer forming composition to the surface of a support, and a light irradiation step of irradiating the coating film of the photo-alignment layer forming composition with polarized light or unpolarized light from an oblique direction to the surface of the coating film.

[0136] [λ / 4 plate] In the present invention, when the above-described light-absorbing anisotropic layer functions as a circular polarizer, it is preferable that the laminate has a λ / 4 plate. Here, a "λ / 4 plate" refers to a plate that has λ / 4 functionality, specifically a plate that has the function of converting linearly polarized light of a certain wavelength into circularly polarized light (or circularly polarized light into linearly polarized light). Examples of embodiments in which the λ / 4 plate has a single-layer structure include, for example, a phase difference film having an optical anisotropic layer that exhibits refractive index anisotropy in liquid crystal orientation and has λ / 4 functionality. Furthermore, specific examples of the multilayer structure of the λ / 4 plate include, for example, a broadband λ / 4 plate formed by laminating a λ / 4 plate and a λ / 2 plate, an ultra-broadband λ / 4 plate formed by further laminating a λ / 2 plate on a broadband λ / 4 plate, and a broadband λ / 4 plate combining a phase difference plate using liquid crystal with inverse dispersion wavelength characteristics, a torsion alignment layer, and a positive C plate. The λ / 4 plate and the light-absorbing anisotropic layer may be laminated together, or other layers may be provided between the λ / 4 plate and the liquid crystal film. Such layers include adhesive layers for ensuring adhesion.

[0137] [Barrier layer] The laminate of the present invention preferably has a barrier layer along with a light-absorbing anisotropic layer. Here, the barrier layer is also called a gas barrier layer (oxygen barrier layer) and has the function of protecting the polarizing element of the present invention from gases such as oxygen in the atmosphere, moisture, or compounds contained in adjacent layers. For information regarding the barrier layer, see, for example, paragraphs

[0014] to

[0054] of Japanese Patent Publication No. 2014-159124, paragraphs

[0042] to

[0075] of Japanese Patent Publication No. 2017-121721, paragraphs

[0045] to

[0054] of Japanese Patent Publication No. 2017-115076, paragraphs

[0010] to

[0061] of Japanese Patent Publication No. 2012-213938, and paragraphs

[0021] to

[0031] of Japanese Patent Publication No. 2005-169994.

[0138] [Hardened layer] In the laminate of the present invention, the above-mentioned light-absorbing anisotropic layer contains a dichroic material, and when used as a circular polarizer for the purpose of anti-reflection, internal reflection due to the high refractive index of the light-absorbing anisotropic layer may be a problem. In such cases, it is preferable to have the cured layer described below. The cured layer is a layer positioned in contact with the light-absorbing anisotropic layer, formed from a composition containing a crosslinkable group, and having an in-plane average refractive index of 1.55 to 1.70 at a wavelength of 550 nm. It is preferably a refractive index adjustment layer for so-called index matching.

[0139] The in-plane average refractive index of the refractive index adjustment layer may be within the above range, but is preferably 1.58 to 1.70, and more preferably 1.60 to 1.70.

[0140] The thickness of the refractive index adjustment layer is not particularly limited, but from the viewpoint of miniaturization, it is preferably 0.01 to 2.00 μm, more preferably 0.01 to 0.80 μm, and even more preferably 0.01 to 0.15 μm.

[0141] The types of components constituting the refractive index adjustment layer are not particularly limited as long as they contain compounds having crosslinking groups. The presence of crosslinking groups ensures the strength within the layer. Compounds that harden with light or heat, such as polymerizable compounds having (meth)acryloyl groups or epoxy groups, are preferred. Polymerizable liquid crystalline compounds are also preferred because they can obtain a high in-plane average refractive index. Furthermore, polymerizable liquid crystalline compounds have high potential for refractive index optimization with light-absorbing anisotropic layers that have in-plane refractive index anisotropy, as they allow for control of the refractive index anisotropy within the plane.

[0142] The refractive index adjusting layer may contain particles along with a compound having a crosslinking group. Examples of particles include organic particles, inorganic particles, and organic-inorganic composite particles containing organic and inorganic components. Examples of organic particles include styrene resin particles, styrene-divinylbenzene copolymer particles, acrylic resin particles, methacrylic resin particles, styrene-acrylic copolymer particles, styrene-methacrylic copolymer particles, melamine resin particles, and resin particles containing two or more of these. The components constituting inorganic particles include metal oxides, metal nitrides, metal oxynitrides, and elemental metals. Examples of metal atoms contained in the above-mentioned metal oxides, metal nitrides, metal oxynitrides, and elemental metals include titanium atoms, silicon atoms, aluminum atoms, cobalt atoms, and zirconium atoms. Specific examples of inorganic particles include alumina particles, alumina hydrate particles, silica particles, zirconia particles, and inorganic oxide particles such as clay minerals (e.g., smectite). Zirconia particles are preferred because they provide a high refractive index.

[0143] The average particle diameter is preferably 1 to 300 nm, and more preferably 10 to 200 nm. Within the above range, a cured product (transparent resin layer) can be obtained that exhibits excellent particle dispersibility, as well as superior high-temperature durability, moist heat durability, and transparency. Here, the average particle diameter can be determined from photographs obtained by observation using a TEM (transmission electron microscope) or SEM (scanning electron microscope). Specifically, the projected area of ​​the particle is determined, and the corresponding equivalent circle diameter (diameter of the circle) is taken as the average particle diameter. In this invention, the average particle diameter is the arithmetic mean of the equivalent circle diameters obtained for 100 particles. The particles may be spherical, needle-shaped, fibrous, columnar, or plate-shaped, among other shapes. The particle content in the refractive index adjustment layer is not particularly limited, but it is preferably 1 to 50% by mass, and more preferably 1 to 30% by mass, relative to the total mass of the refractive index adjustment layer, as this makes it easier to adjust the in-plane average refractive index of the refractive index adjustment layer.

[0144] The method for forming the refractive index adjustment layer is not particularly limited, but one method involves applying a refractive index adjustment layer-forming composition onto a polarizer and, if necessary, curing the coating film. The refractive index adjustment layer forming composition contains components that can constitute the refractive index adjustment layer, such as resins, monomers, and particles. Examples of resins and particles are as described above. Examples of monomers include photocurable compounds and thermosetting compounds (e.g., thermosetting resins). Preferred monomers are monofunctional polymerizable compounds containing one polymerizable group per molecule, and polyfunctional polymerizable compounds containing two or more identical or different polymerizable groups per molecule. The polymerizable compound may be a monomer, an oligomer, or a polymer such as a prepolymer. Examples of polymerizable groups include radical polymerizable groups and cationic polymerizable groups, with radical polymerizable groups being preferred. Examples of radical polymerizable groups include ethylenically unsaturated bonding groups. Examples of cationic polymerizable groups include epoxy groups and oxetane groups.

[0145] The refractive index adjustment layer forming composition may contain at least one of an interface modifier, a polymerization initiator, and a solvent. Examples of these components include the compounds exemplified as components that may be included in the liquid crystalline composition.

[0146] The method for applying the refractive index adjustment layer composition is not particularly limited, and the above-described method for applying the liquid crystalline composition is one example.

[0147] After applying the refractive index adjustment layer-forming composition, the coating film may be dried if necessary. Furthermore, if the refractive index adjustment layer forming composition contains a curable compound such as a monomer, the coating film may be cured after the refractive index adjustment layer forming composition has been applied. Curing treatments include photocuring and thermocuring, and the optimal conditions are selected depending on the material used.

[0148] When using polymerizable liquid crystalline compounds, the compounds are not particularly limited. Generally, liquid crystalline compounds can be classified into rod-shaped and disc-shaped types based on their shape. Furthermore, each of these types can be divided into low-molecular-weight and high-molecular-weight types. High-molecular-weight compounds generally refer to those with a degree of polymerization of 100 or more (Polymer Physics and Phase Transition Dynamics, by Masao Doi, p. 2, Iwanami Shoten, 1992). In the present invention, any liquid crystalline compound can be used, but it is preferable to use a rod-shaped liquid crystalline compound (hereinafter also abbreviated as "CLC") or a discotic liquid crystalline compound (hereinafter also abbreviated as "DLC"), and it is more preferable to use a rod-shaped liquid crystalline compound. Furthermore, two or more rod-shaped liquid crystalline compounds, two or more disc-shaped liquid crystalline compounds, or a mixture of rod-shaped liquid crystalline compounds and disc-shaped liquid crystalline compounds may also be used.

[0149] In the present invention, it is necessary to use a liquid crystalline compound having polymerizable groups for the immobilization of the above-mentioned liquid crystalline compound, and it is even more preferable that the liquid crystalline compound has two or more polymerizable groups in one molecule. If the liquid crystalline compound is a mixture of two or more types, it is preferable that at least one of the liquid crystalline compounds has two or more polymerizable groups in one molecule. Furthermore, after the liquid crystalline compound has been immobilized by polymerization, it is no longer necessary for it to exhibit liquid crystalline properties.

[0150] Furthermore, the type of polymerizable group is not particularly limited, but functional groups capable of addition polymerization are preferred, and polymerizable ethylenically unsaturated groups or cyclic polymerizable groups are preferred. More specifically, (meth)acryloyl groups, vinyl groups, styryl groups, and allyl groups are preferred, with (meth)acryloyl groups being more preferred. Note that (meth)acryloyl group refers to either a methacryloyl group or an acryloyl group.

[0151] As rod-shaped liquid crystalline compounds, for example, those described in claim 1 of Japanese Patent Publication No. 11-513019 or paragraphs

[0026] to

[0098] of Japanese Patent Application Publication No. 2005-289980 can be preferably used, and as discotic liquid crystalline compounds, for example, those described in paragraphs

[0020] to

[0067] of Japanese Patent Application Publication No. 2007-108732 or paragraphs

[0013] to

[0108] of Japanese Patent Application Publication No. 2010-244038 can be preferably used, but are not limited to these.

[0152] <Other ingredients> Other components included in the refractive index adjustment layer formation composition include, specifically, the polymerization initiator, surfactant, and solvent described above in the composition containing the dichroic azo dye compound (composition for forming a light-absorbing anisotropic layer).

[0153] <Formation method> The method for forming a light-absorbing anisotropic layer using the above-described light-absorbing anisotropic layer-forming composition is not particularly limited, and includes a method comprising, in this order, a step of forming a coated film by applying the above-described light-absorbing anisotropic layer-forming composition onto an alignment film described later or the above-described light-absorbing anisotropic layer, depending on the layer configuration (hereinafter also referred to as the "coated film formation step"), and a step of aligning the liquid crystalline components contained in the coated film (hereinafter also referred to as the "alignment step"). Here, the coating film formation step and orientation step are the same steps as those described in the method for forming the light-absorbing anisotropic layer described above.

[0154] [Adhesive layer] As shown in the layer configuration described later, the laminate of the present invention may have an adhesive layer between the resin substrate and the light-absorbing anisotropic layer. Here, the adhesive contained in the adhesive layer is not particularly limited as long as it exhibits adhesive properties through drying or reaction after bonding. For example, polyvinyl alcohol-based adhesives (PVA-based adhesives) develop their adhesive properties upon drying, making it possible to bond materials together. Furthermore, specific examples of curing adhesives that exhibit adhesive properties through reaction include active energy ray curing adhesives such as (meth)acrylate-based adhesives and cationic polymerization curing adhesives. Examples of curing components in (meth)acrylate adhesives include compounds having a (meth)acryloyl group and compounds having a vinyl group. Furthermore, compounds having epoxy groups or oxetanyl groups can also be used as cationic polymerization-curing adhesives. Compounds having epoxy groups are not particularly limited as long as they have at least two epoxy groups in their molecule, and various generally known curable epoxy compounds can be used. Examples of preferred epoxy compounds include compounds having at least two epoxy groups and at least one aromatic ring in their molecule (aromatic epoxy compounds), and compounds having at least two epoxy groups in their molecule, at least one of which is formed between two adjacent carbon atoms constituting an alicyclic ring (alicyclic epoxy compounds). In the present invention, from the viewpoint of heat deformation resistance, an ultraviolet-curing adhesive that hardens upon ultraviolet irradiation is preferably used. Furthermore, when bonding a light-absorbing anisotropic layer to a resin substrate, a (meth)acrylate adhesive is preferred from the viewpoint of adhesion to the resin substrate. Among these, a solvent-free (meth)acrylate adhesive is most preferred.

[0155] [Layer composition] The laminate of the present invention preferably has a layer configuration in which a resin substrate 1 with a tanδ peak temperature of 170°C or less, an orientation layer 2, and a light-absorbing anisotropic layer 3 are arranged in this order, as shown in Figure 1. Furthermore, the laminate of the present invention preferably has a layer structure in which a resin substrate with a tanδ peak temperature of 170°C or lower, an adhesive layer, and a light-absorbing anisotropic layer are arranged in this order. Furthermore, as shown in Figure 2, the laminate of the present invention preferably has a layer structure in which a resin substrate 1 with a tanδ peak temperature of 170°C or less, an adhesive layer 4, a light-absorbing anisotropic layer 3, and an orientation layer 2 are arranged in this order.

[0156] In order to achieve a high degree of orientation of the dichroic substance in the light absorption anisotropic layer, it is preferable to perform high-temperature aging at 140°C or higher. Therefore, in the step of forming the light absorption anisotropic layer, as the support, it is desirable to use a resin substrate with little dimensional change even at high temperatures, for example, stretched TAC with a tanδ of 180°C or higher. On the other hand, from the perspective of performing curved surface forming on the laminate of the present invention, when performing thermoforming at a temperature below 140°C, there is a risk of breakage with stretched TAC having a peak temperature of tanδ of 180°C or higher, and the degree of freedom in forming processing is small. Therefore, after forming the alignment layer and then the light absorption anisotropic layer using a resin substrate with little dimensional change even at high temperatures, a resin substrate with a peak temperature of tanδ of 170°C or lower is bonded by an adhesive, and further, by peeling off the resin substrate with little dimensional change even at high temperatures, a laminate in which the resin substrate with a peak temperature of tanδ of 170°C or lower, the adhesive layer, the light absorption anisotropic layer, and the alignment layer are arranged in this order can be created.

[0157] 〔Curved Surface Forming〕 The laminate of the present invention preferably has a curved surface, and more preferably has a three-dimensional curved surface. Here, the three-dimensional curved surface refers to a non-developable surface. A developable surface is a surface that can be developed into a plane without stretching or shrinking, and refers to a surface that can be created by bending or cutting a plane. As a method for forming a curved surface on the laminate of the present invention, there are insert molding as described in JP-A-2004-322501, vacuum molding as described in WO2010 / 1867, injection molding, pressure air molding, vacuum coating molding, in-mold transfer, die pressing, etc. as described in JP-A-2012-116094. It is also preferable to heat during molding, preferably 80°C to 170°C, more preferably 100°C to 150°C, and even more preferably 110°C to 140°C. In addition, after molding the laminate, there may be a process in which, for example, a lens or the like is injection molded. In this case, the laminate is required to have resistance to a heating process of several minutes or more.

[0158] [Surface unevenness] The laminate of the present invention preferably has a smooth surface. In particular, when the laminate of the present invention is applied to lenses or the like, even slight surface irregularities can lead to image distortion due to the image magnification effect of the lens, so it is desirable that the surface be free of irregularities. Specifically, the average arithmetic roughness Ra of the surface is preferably 50 nm or less, more preferably 30 nm or less, even more preferably 10 nm or less, and most preferably 5 nm or less. Furthermore, the height difference of surface irregularities within a 1 square millimeter area on the surface of the laminate is preferably 100 nm or less, more preferably 50 nm or less, and even more preferably 20 nm or less. To achieve the above-mentioned smoothness, it is preferable that the surface of the light-absorbing anisotropic layer of the present invention is also smooth. Specifically, the average arithmetic roughness Ra of the surface is preferably 50 nm or less, more preferably 30 nm or less, even more preferably 10 nm or less, and most preferably 5 nm or less. Furthermore, on the surface of the laminate, the height difference of surface irregularities within a range of 1 square millimeter is preferably 100 nm or less, more preferably 50 nm or less, and even more preferably 20 nm or less. Surface roughness and average arithmetic roughness can be measured using a roughness meter or interferometer. For example, it can be measured using the "vertscan" interferometer manufactured by Ryoka Systems Co., Ltd.

[0159] [Application] The laminate of the present invention can be used as a polarizing element (polarizing plate) in various articles having curved surfaces. For example, it can be used in curved automotive displays, sunglasses lenses, goggles lenses for image display devices, etc. In this embodiment, the polarizing plate or circular polarizing plate can be bonded to a curved surface or integrally molded with resin, thus contributing to improved design. It is also preferable to use it for the purpose of suppressing stray light in optical systems such as in-vehicle display optics including head-up displays, AR (Augmented Reality) glasses, VR (Virtual Reality) glasses, and optical sensors such as LiDAR (Light Detection and Ranging), facial recognition systems, and polarization imaging. Furthermore, it is also preferable to use it in combination with a phase difference plate for the purpose of anti-reflection.

[0160] [Optical device] The optical device of the present invention is an optical device having a curved surface, wherein the laminate of the present invention having a curved surface is arranged to follow the curved surface of the optical device. Examples of such optical devices include portable electronic devices such as mobile phones, smartphones, and tablet PCs; in-vehicle electronic devices such as infrared sensors, near-infrared sensors, millimeter-wave radar, LED spot lighting devices, near-infrared LED lighting devices, mirror monitors, meter panels, head-mounted displays, and head-up displays.

[0161] [Display device] The present invention is a display device having a plurality of members having curved surfaces, wherein the laminate of the present invention having curved surfaces is arranged to follow the viewer side of the curved surface of the member that is on the most visible side among the members having curved surfaces.

[0162] Figures 3 and 4 are cross-sectional side views of a head-mounted display, which is an example of a display device according to the present invention. Specifically, Figures 3 and 4 are cross-sectional side views of the head-mounted display 10, showing how the optical system 20 and the display system 40 can be supported by the head-mounted support structure, such as the housing 12 of the head-mounted display 10. The housing 12 may have the shape of a pair of eyeglass frames (for example, the head-mounted display 10 may resemble eyeglasses), the shape of a helmet (for example, the eyeglasses 10 may form a helmet-mounted display), the shape of goggles, or any other suitable housing shape that allows the housing 12 to be mounted on the user's head. Furthermore, it is preferable that the housing 12 supports the optical system 20 and the display system 40 in front of the user's eyes (e.g., eyes 46) when the user is viewing the system 20 and the display system 40 in direction 48.

[0163] The display system 40 shown in Figures 3 and 4 may include an image source such as an image display panel 500. The image display panel 500 may include a two-dimensional array of pixels P that emit image light (e.g., organic light-emitting diode pixels, light-emitting diode pixels formed from semiconductor dies, liquid crystal display pixels with backlights, liquid crystal pixels on silicon with frontlights, etc.). Polarizers such as the linear polarizer B400 may be placed in front of the image display panel 500, or they may be stacked on the image display panel 500. The display system 40 also includes a waveplate such as a second λ / 4 plate 399, which can provide circularly polarized image light. The slow axis of the second λ / 4 plate 399 can be aligned at a 45-degree angle with respect to the transmission axis of the linear polarizer B400. The second λ / 4 plate 399 can be mounted in front of the linear polarizer B400 (between the linear polarizer B400 and the optical system 20). If desired, the second λ / 4 plate 399 can be attached to the linear polarizer B400 (and the image display panel 500).

[0164] The optical system 20 shown in Figures 3 and 4 may include lens elements. Furthermore, the optical system can incorporate optical structures such as partial reflection coatings, waveplates, reflective linear polarizers, reflective circular polarizers, linear polarizers, and anti-reflective coatings. For example, the optical system 20 shown in Figure 3 has a linear polarizer A100, a reflective linear polarizer 200, a first quarter-wave plate 201, and a half-mirror 300. The optical system 20 shown in Figure 4 has a linear polarizer A100, a first quarter-wave plate 101, a reflective circular polarizer 600, and a half-mirror 300. It is preferable to use a liquid crystal cured film in which a rod-shaped liquid crystal compound is cholesterically oriented as the reflective circular polarizer. Furthermore, the display device of the present invention can employ the curved laminate of the present invention as the linear polarizer A100 of the optical system 20. [Examples]

[0165] The present invention will be described in more detail below based on the following examples. The materials, amounts used, proportions, processing content, and processing procedures shown in the following examples can be modified as appropriate without departing from the spirit of the present invention. Therefore, the scope of the present invention should not be interpreted as being limited by the following examples.

[0166] [Example 1] <Preparation of Cellulose Acrylate Film 1> (Preparation of cellulose acylate-doped core layer) The following compositions were placed in a mixing tank and stirred to dissolve each component, preparing a cellulose acetate solution to be used as a cellulose acylate dope for the core layer. ------------------------------------------------------------------ Core layer cellulose acylate doped ------------------------------------------------------------------ • 100 parts by mass of cellulose acetate with an acetyl substitution degree of 2.88 • Examples in Japanese Patent Publication No. 2015-227955 12 parts by mass of the listed polyester compound B • Compound F below: 2 parts by mass · Methylene chloride (first solvent): 430 parts by mass · Methanol (second solvent): 64 parts by mass ―――――――――――――――――――――――――――――――――

[0167] Compound F

Chemical formula

[0168] (Preparation of outer cellulose acylate dope) 10 parts by mass of the following matting agent solution was added to 90 parts by mass of the above core layer cellulose acylate dope to prepare a cellulose acetate solution to be used as the outer layer cellulose acylate dope.

[0169] ――――――――――――――――――――――――――――――――― Matting agent solution ――――――――――――――――――――――――――――――――― · Silica particles with an average particle size of 20 nm (AEROSIL R972, manufactured by Nippon Aerosil Co., Ltd.) 2 parts by mass · Methylene chloride (first solvent): 76 parts by mass · Methanol (second solvent): 11 parts by mass · The above core layer cellulose acylate dope: 1 part by mass ―――――――――――――――――――――――――――――――――

[0170] (Preparation of cellulose acylate film 1) The above core layer cellulose acylate dope and the above outer layer cellulose acylate dope were filtered through filter paper with an average pore size of ३४ μm and a sintered metal filter with an average pore size of 10 μm, and then the above core layer cellulose acylate dope and the outer layer cellulose acylate dope on both sides thereof were simultaneously cast from a casting nozzle onto a drum at 20 °C (band casting machine). Next, the film was peeled off with a solvent content of approximately 20% by mass, and both ends in the width direction of the film were fixed with tenter clips. The film was then dried while being stretched transversely at a stretching ratio of 1.1 times. Subsequently, the film was further dried by transporting it between the rolls of a heat treatment apparatus to produce an optical film with a thickness of 40 μm, which was designated as cellulose acylate film 1. The in-plane retardation of the obtained cellulose acylate film 1 was 0 nm. Furthermore, the tanδ peak temperature of cellulose acylate film 1 was over 170°C.

[0171] <Formation of the photophosphoric layer> The orientation layer forming coating liquid PA1, described later, was continuously applied onto the cellulose acylate film 1 using a wire bar. The support with the coated film was dried with 140°C hot air for 120 seconds, and then polarized ultraviolet light (10 mJ / cm²) was irradiated onto the coating film. 2 By using an ultra-high pressure mercury lamp, a photo-alignment layer PA1 was formed, and a TAC film with a photo-alignment layer was obtained. The film thickness was 0.3 μm.

[0172] ------------------------------------------------------------------ (PA1 coating solution for forming an orientation layer) ------------------------------------------------------------------ 100.00 parts by mass of the polymer PA-1 described below The following acid generator PAG-1: 5.00 parts by mass The following acid generator CPI-110TF: 0.005 parts by mass Xylene 1220.00 parts by mass Methyl isobutyl ketone 122.00 parts by mass ------------------------------------------------------------------

[0173] Polymer PA-1 [ka]

[0174] Acid Generator PAG-1 [ka]

[0175] Acid Generator CPI-110F [ka]

[0176] <Formation of light-absorbing anisotropic layer P1> The following light-absorbing anisotropic layer-forming composition P1 was continuously applied to the obtained orientation layer PA1 using a wire bar to form a coated layer P1. Next, the coated layer P1 was heated at 140°C for 30 seconds, and then cooled to room temperature (23°C). Next, it was heated at 90°C for 60 seconds and then cooled again to room temperature. Subsequently, an illuminance of 200 mW / cm was measured using an LED lamp (center wavelength 365 nm). 2 By irradiating for 2 seconds under the specified irradiation conditions, a light-absorbing anisotropic layer P1 was fabricated on the orientation layer PA1. The film thickness was 1.6 μm. The surface roughness of the obtained light-absorbing anisotropic layer P1 showed a maximum height difference of 30 nm within a range of 1 square millimeter. The average arithmetic roughness Ra was 5 nm. This was designated as laminate 1B.

[0177] ------------------------------------------------------------------ Composition P1 for forming a light-absorbing anisotropic layer ------------------------------------------------------------------ • 0.25 parts by mass of the following dichroic substance D-1 • The following dichroic substance D-2: 0.36 parts by mass • The following dichroic substance D-3: 0.59 parts by mass • 2.21 parts by mass of the following polymeric liquid crystalline compound P-1 • 1.36 parts by mass of the following low-molecular-weight liquid crystalline compound M-1 ·重合 initiator IRGACURE OXE - 02 (manufactured by BASF) 0.200 parts by mass ·The following surfactant F - 1 0.026 parts by mass ·Cyclopentanone 46.00 parts by mass ·Tetrahydrofuran 46.00 parts by mass ·Benzyl alcohol 3.00 parts by mass ―――――――――――――――――――――――――――――――――

[0178] D - 1

Chemical formula

[0179] D - 2

Chemical formula

[0180] D - 3

Chemical formula

[0181] Polymer liquid crystalline compound P - 1

Chemical formula

[0182] Low - molecular liquid crystalline compound M - 1

Chemical formula

[0183] Surfactant F - 1

Chemical formula

[0184] <Preparation of UV adhesive>​​​───────────────────────────────── UV adhesive composition ------------------------------------------------------------------ • CEL2021P (manufactured by Daicel Corporation) 70 parts by mass 1,4-butanediol diglycidyl ether 20 parts by mass 2-Ethylhexylglycidyl ether 10 parts by mass ·CPI-100P 2.25 parts by mass ─────────────────────────────────

[0185] CPI-100P [ka]

[0186] <Create Laminate 1> The above UV agent was used to bond Technoloy S001G (methacrylic resin, 50 μm thick, tanδ peak temperature 121°C, storage modulus at tanδ peak temperature 17 kPa, Sumika Acrylic Sales Co., Ltd.) as the resin substrate S1. Subsequently, only the cellulose acylate film 1 was peeled off to create a laminate 1 in which the resin substrate / adhesive layer / light-absorbing anisotropic layer / orientation layer were arranged in this order. The thickness of the UV adhesive layer was 2 μm.

[0187] [Example 2] In the same manner as in Example 1, the laminate of Example 2 was prepared by replacing the light-absorbing anisotropic layer-forming composition P1 with P2 shown below. The thickness of the light-absorbing anisotropic layer was changed to 2.7 μm. In Example 2, the surface roughness of the light-absorbing anisotropic layer obtained showed a maximum height difference of 22 nm within a range of 1 square millimeter. The average arithmetic roughness Ra was 4 nm.

[0188] ------------------------------------------------------------------ Composition P2 for forming a light-absorbing anisotropic layer ------------------------------------------------------------------ • 0.14 parts by mass of the above dichroic substance D-1 • 0.21 parts by mass of the above dichroic substance D-2 • 0.35 parts by mass of the above dichroic substance D-3 • 2.97 parts by mass of the above polymeric liquid crystalline compound P-1 • 1.10 parts by mass of the above low molecular weight liquid crystalline compound M-1 • Polymerization initiator IRGACUREOXE-02 (manufactured by BASF) 0.200 parts by mass • 0.026 parts by mass of the above surfactant F-1 Cyclopentanone 46.00 parts by mass • Tetrahydrofuran 46.00 parts by mass Benzyl alcohol 3.00 parts by mass ------------------------------------------------------------------

[0189] [Example 3] In the same manner as in Example 1, the laminate of Example 3 was prepared by replacing the light-absorbing anisotropic layer-forming composition P1 with P3 shown below. In Example 3, the surface roughness of the light-absorbing anisotropic layer obtained showed a maximum height difference of 40 nm within a range of 1 square millimeter. The average arithmetic roughness Ra was 5 nm.

[0190] ------------------------------------------------------------------ Composition P3 for forming a light-absorbing anisotropic layer ------------------------------------------------------------------ • 0.25 parts by mass of the above dichroic substance D-1 • The following dichroic substance D-4: 0.36 parts by mass • The following dichroic substance D-5: 0.59 parts by mass • 2.21 parts by mass of the above polymeric liquid crystalline compound P-1 • 1.36 parts by mass of the above low molecular weight liquid crystalline compound M-1 • Polymerization initiator IRGACUREOXE-02 (manufactured by BASF) 0.200 parts by mass • 0.026 parts by mass of the above surfactant F-1 Cyclopentanone 46.00 parts by mass • Tetrahydrofuran 46.00 parts by mass Benzyl alcohol 3.00 parts by mass ------------------------------------------------------------------

[0191] D-4 [ka]

[0192] D-5 [ka]

[0193] [Example 4] In the same manner as in Example 1, the laminate of Example 4 was prepared by replacing the light-absorbing anisotropic layer-forming composition P1 with P4 shown below. In Example 4, the surface roughness of the light-absorbing anisotropic layer obtained showed a maximum height difference of 42 nm within a range of 1 square millimeter. The average arithmetic roughness Ra was 6 nm.

[0194] ------------------------------------------------------------------ Composition P4 for forming a light-absorbing anisotropic layer ------------------------------------------------------------------ • 0.25 parts by mass of the following dichroic substance D-6 • 0.36 parts by mass of the above dichroic substance D-2 • 0.59 parts by mass of the above dichroic substance D-3 • 1.98 parts by mass of the above polymeric liquid crystalline compound P-1 • 1.59 parts by mass of the above low-molecular-weight liquid crystalline compound M-1 • Polymerization initiator IRGACUREOXE-02 (manufactured by BASF) 0.200 parts by mass • 0.026 parts by mass of the above surfactant F-1 Cyclopentanone 46.00 parts by mass • Tetrahydrofuran 46.00 parts by mass Benzyl alcohol 3.00 parts by mass ------------------------------------------------------------------

[0195] D-6 [ka]

[0196] [Example 5] In the same manner as in Example 1, the laminate of Example 5 was prepared by replacing the light-absorbing anisotropic layer-forming composition P1 with P5 shown below. In Example 5, the surface roughness of the light-absorbing anisotropic layer obtained showed a maximum height difference of 45 nm within a range of 1 square millimeter. The average arithmetic roughness Ra was 5 nm.

[0197] ------------------------------------------------------------------ Composition P5 for forming a light-absorbing anisotropic layer ------------------------------------------------------------------ • 0.25 parts by mass of the above dichroic substance D-6 • 0.36 parts by mass of the above dichroic substance D-2 • 0.59 parts by mass of the above dichroic substance D-3 • 3.12 parts by mass of the following polymeric liquid crystalline compound P-2 • 0.45 parts by mass of the above low molecular weight liquid crystalline compound M-1 • Polymerization initiator IRGACUREOXE-02 (manufactured by BASF) 0.200 parts by mass • 0.026 parts by mass of the above surfactant F-1 Cyclopentanone 46.00 parts by mass • Tetrahydrofuran 46.00 parts by mass Benzyl alcohol 3.00 parts by mass ------------------------------------------------------------------

[0198] Polymer liquid crystal compound P-2 [ka]

[0199] [Example 6] To the surface of the light-absorbing anisotropic layer of laminate 1B, Technoloy C000 (polycarbonate resin, 50 μm thick, tanδ peak temperature 156°C, storage modulus at tanδ peak temperature 31 kPa, Sumika Acrylic Sales Co., Ltd.) was bonded as a resin substrate S2 using the above UV agent. Subsequently, only the cellulose acylate film 1 was peeled off to create laminate 6 in which the resin substrate / adhesive layer / light-absorbing anisotropic layer / orientation layer were arranged in this order. The thickness of the UV adhesive layer was 2 μm.

[0200] [Example 7] <Preparation of photoalignment layer forming composition PA2> Composition E1 for photo-alignment layer formation was prepared with the following composition, dissolved for 1 hour with stirring, and filtered through a 0.45 μm filter. ------------------------------------------------------------------ Photoalignment layer forming composition PA2 ------------------------------------------------------------------ • 5.0 parts by mass of the following photoactive compound E-4 Cyclopentanone 95.0 parts by mass ------------------------------------------------------------------

[0201] Photoactive compound E-4 [ka]

[0202] <Preparation of Composition P6 for Forming a Light-Absorbing Anisotropic Layer> Composition P6 for forming a light-absorbing anisotropic layer was prepared with the following composition, dissolved by heating at 80°C for 2 hours with stirring, and filtered through a 0.45 μm filter. The molar content of radical polymerizable groups was 1.98 mmol / g. ------------------------------------------------------------------ Composition P6 for forming a light-absorbing anisotropic layer ------------------------------------------------------------------ • 2.5 parts by mass of the dichroic dye D-7 below • 2.5 parts by mass of the dichroic dye D-8 below • 2.5 parts by mass of the dichroic dye D-9 below • 100.0 parts by mass of the following liquid crystal compound M-2 • Polymerization initiator IRGACURE369E (BASF) 6.0 parts by mass • BYK361N (manufactured by BYChemie Japan Co., Ltd.) 1.2 parts by mass • Orthoxylene 400.0 parts by mass ------------------------------------------------------------------

[0203] Dichroic dye D-7 [ka]

[0204] Dichroic dye D-8 [ka]

[0205] Dichroic dye D-9 [ka]

[0206] Liquid crystal compound M-2 (compound A / compound B = 75 / 25 mixture)

[0207] (Compound A) [ka]

[0208] (Compound B) [ka]

[0209] The above-mentioned photo-alignment layer-forming composition PA2 was applied to the cellulose triacetate film 1 and dried at 80°C for 2 minutes. Then, the resulting coating was exposed to linearly polarized ultraviolet light (100 mJ / cm²) using a polarized ultraviolet exposure apparatus. 2 The photo-aligned layer PA2 was fabricated by irradiating it with ). The above-mentioned light-absorbing anisotropic layer-forming composition P6 was applied to the obtained photo-alignment layer PA2 using a wire bar. Next, the resulting coating was heated at 110°C for 180 seconds and then cooled to room temperature. Subsequently, a high-pressure mercury lamp was used to expose the area at an exposure dose of 2000 mJ / cm². 2 By irradiating with ultraviolet light, a 2.0 μm thick light-absorbing anisotropic layer P6 was formed. Furthermore, it was confirmed that the liquid crystal in the light-absorbing anisotropic layer is the smectic B phase. This was designated as laminate 7B.

[0210] <Creation of Laminate 7> Technoloy S001G (methacrylic resin, 50 μm thick, tanδ peak temperature 121°C, Sumika Acrylic Sales Co., Ltd.) was bonded to the light-absorbing anisotropic layer surface of laminate 7B using the above UV agent. Subsequently, the cellulose acylate film 1 and the orientation layer were peeled off to create laminate 7 in which the resin substrate / adhesive layer / light-absorbing anisotropic layer was arranged in this order. The thickness of the UV adhesive layer was 2 μm.

[0211] [Example 8] To the surface of the light-absorbing anisotropic layer of laminate 1B, CosmoShine A4300 (biaxially oriented PET resin, 38 μm thick, tanδ peak temperature 111°C, storage modulus at tanδ peak temperature 1710 kPa, Toyobo Co., Ltd.) was bonded as the resin substrate S3 using the above UV agent. Subsequently, only the cellulose acylate film 1 was peeled off to create laminate 8 in which the resin substrate / adhesive layer / light-absorbing anisotropic layer / orientation layer were arranged in this order. The thickness of the UV adhesive layer was 2 μm.

[0212] [Example 9] The above-mentioned UV agent was used to bond CosmoShine SRF (uniaxially oriented PET resin, 80 μm thick, tanδ peak temperature 119°C, storage modulus at tanδ peak temperature 2170 kPa, Toyobo Co., Ltd.) as the resin substrate S4. Subsequently, only the cellulose acylate film 1 was peeled off to create a laminate 9 in which the resin substrate / adhesive layer / light-absorbing anisotropic layer / orientation layer were arranged in this order. The thickness of the UV adhesive layer was 2 μm.

[0213] <Evaluation of Orientation> With a linear polarizer inserted into the light source side of an optical microscope (Nikon Corporation, product name "ECLIPSE E600 POL"), each of the anisotropic light-absorbing layers of the examples and comparative examples was set on the sample stage. The absorbance of the anisotropic light-absorbing layers in the wavelength range of 400 to 700 nm was measured using a multi-channel spectrometer (Ocean Optics, product name "QE65000"), and the degree of orientation was calculated using the following formula. The results for laminates 1 to 9 are shown in Table 1 below. Orientation degree: S=[(Az0 / Ay0)-1] / [(Az0 / Ay0)+2] Az0: Absorbance of polarization in the absorption axis direction of the light absorption anisotropy layer Ay0: Absorbance of the polarization in the polarization axis direction of the light absorption anisotropy layer

[0214] <Biaxial stretching> Laminates 1-9 were cut into 120mm x 120mm squares and simultaneously biaxially stretched under the following conditions. Experimental equipment: Biaxial stretching machine EX-10 (Toyo Seiki Seisakusho) Stretching temperature: 125℃ Stretching speed: 30% / min Stretching ratio: MD / TD 4% / 4%

[0215] <Evaluation of Polarization Degree Change Rate> The degree of polarization was evaluated before and after the simultaneous biaxial stretching described above, and the evaluation was performed based on the rate of change in the degree of polarization, as shown in Table 1. A: Polarization degree change rate is less than 0.5% B: Polarization degree change rate is 0.5% or more and less than 1.0% C: Polarization degree change rate is 1.0% or more The degree of polarization was measured as follows. With a linear polarizer inserted into the light source side of an optical microscope (Nikon Corporation, product name "ECLIPSE E600 POL"), each laminate of the example and comparative example was set on the sample stage, and the transmittance of each laminate was measured using a multichannel spectrometer (Ocean Optics, product name "QE65000"), and the degree of polarization was calculated using the following formula. Polarization degree: P=√[(Ty0-Tz0) / (Ty0+Tz0)] Tz0: Transmittance of polarization in the absorption axis direction of the laminate. Ty0: Transmittance of polarization in the transmission axis direction of the laminate

[0216] <Evaluation of heat resistance> Laminates 1-9 were heated for 4 minutes under two conditions, 130°C and 100°C, and evaluated as follows based on the rate of change in polarization degree before and after heating. The results are shown in Table 1 below. AA: Polarization degree change rate is less than 0.3% A: Polarization degree change rate is 0.3% or more and less than 0.5% B: Polarization degree change rate is 0.5% or more and less than 1.0%

[0217] [Table 1]

[0218] Furthermore, while the laminate in Example 1 could be stretched even at a stretching temperature of 100°C, the laminate in Example 6 could not be sufficiently stretched at 100°C. If the peak temperature of tanδ is 130°C or lower, molding at low temperatures is also possible. Furthermore, in the laminates of creation examples 8 and 9, stretching at 125°C resulted in slippage at the chuck portion that secures the laminate, making stretching difficult. Furthermore, laminate 1B (cellulose acylate film 1 / light-absorbing anisotropic layer) fractured upon stretching, making it impossible to stretch.

[0219] [Example 10] A light-absorbing anisotropic layer with dyes oriented vertically was created as shown below. This layer can absorb polarized light incident from an oblique direction and is effective for controlling the field of view, etc.

[0220] <Fabrication of transparent support 1> The orientation layer forming coating liquid 1, described later, was continuously applied to a cellulose acylate film 2 (TAC substrate with a thickness of 40 μm; TG40, Fujifilm Corporation) using a wire bar. The support with the coated film was dried with 60°C hot air for 60 seconds, and then with 100°C hot air for 120 seconds to form an orientation layer, obtaining a TAC film with an orientation layer. The film thickness was 1.0 μm.

[0221] -------------------------------------------------- (Coating solution for forming an orientation layer 1) -------------------------------------------------- • 3.80 parts by mass of the following modified polyvinyl alcohol • Initiator Irg2959 0.20 parts by mass ·Water 70 parts by mass • Methanol 30 parts by mass --------------------------------------------------

[0222] Modified polyvinyl alcohol [ka]

[0223] <Formation of light-absorbing anisotropic layer P1> The following light-absorbing anisotropic layer-forming composition P7 was continuously applied to the obtained orientation layer PA1 using a wire bar to form the coated layer P7. Next, the coated layer P7 was heated at 140°C for 30 seconds, and then cooled to room temperature (23°C). Next, it was heated at 90°C for 60 seconds and then cooled again to room temperature. Subsequently, an illuminance of 200 mW / cm was measured using an LED lamp (center wavelength 365 nm). 2 By irradiating under these conditions for 2 seconds, a light-absorbing anisotropic layer P7 was fabricated on the orientation layer 1. The film thickness was 2.1 μm, and the degree of orientation was 0.96. The molar content of radical polymerizable groups was 1.16 mmol / g. This was designated as laminate 10B.

[0224] ------------------------------------------------------------------ Composition P7 for forming a light-absorbing anisotropic layer ------------------------------------------------------------------ • 0.40 parts by mass of the above dichroic substance D-1 • 0.15 parts by mass of the above dichroic substance D-4 • 0.63 parts by mass of the above dichroic substance D-5 • 2.15 parts by mass of the above polymeric liquid crystalline compound P-2 • 1.36 parts by mass of the above low molecular weight liquid crystalline compound M-1 • Polymerization initiator IRGACUREOXE-02 (BASF) 0.140 parts by mass • Compound E-1 (listed below): 0.060 parts by mass • Compound E-2 (listed below): 0.060 parts by mass • Surfactant F-2 (listed below): 0.010 parts by mass • Surfactant F-3 (listed below): 0.015 parts by mass Cyclopentanone 46.00 parts by mass • Tetrahydrofuran 46.00 parts by mass Benzyl alcohol 3.00 parts by mass ------------------------------------------------------------------

[0225] Compound E-1 [ka]

[0226] Compound E-2 [ka]

[0227] Surfactant F-2 [ka]

[0228] Surfactant F-3 [ka]

[0229] <Create laminated structure 10> Technoloy S001G (methacrylic resin, 50 μm thick, tanδ peak temperature 128°C, Sumika Acrylic Sales Co., Ltd.) was bonded to the surface of the light-absorbing anisotropic layer of laminate 10B using the above UV agent. Subsequently, only the cellulose acylate film 2 was peeled off to create an absorption polarizing film in which the resin substrate / adhesive layer / light-absorbing anisotropic layer / orientation layer were arranged in this order. The thickness of the UV adhesive layer was 2 μm. The same biaxial stretching evaluation as for laminates 1-9 was performed to confirm the effects of the present invention.

[0230] [Example 11] <Preparation of acrylate-based UV adhesive> The following acrylate-based UV adhesive compositions were prepared. ───────────────────────────────── Acrylate-based UV adhesive composition ------------------------------------------------------------------ • Arronix M220 (manufactured by Toagosei Co., Ltd.) 18 parts by mass 4-Hydroxybutyl acrylate (manufactured by Tokyo Chemical Industry Co., Ltd.) 40 parts by mass 2-hydroxyethyl acrylate (manufactured by Tokyo Chemical Industry Co., Ltd.) 40 parts by mass • Irgacure 907 (manufactured by BASF) 2 parts by mass ─────────────────────────────────

[0231] <Create Laminate 11> Except for using the above-mentioned acrylate-based UV adhesive and using Technoloy S000 (methacrylic resin, 75 μm thick, tanδ peak temperature 120°C, Sumika Acrylic Sales Co., Ltd.) as the resin substrate, the resin substrate was bonded to the surface of the light-absorbing anisotropic layer of laminate 1B in the same manner as in Preparation Example 1. Subsequently, only the cellulose acylate film 1 was peeled off to create laminate 11 in which the resin substrate / adhesive layer / light-absorbing anisotropic layer / orientation layer were arranged in this order. The thickness of the UV adhesive layer was 2 μm. Furthermore, because an acrylate-based UV agent was used, the laminate 11 had a very strong bond between the light-absorbing anisotropic layer and the resin substrate. When peeling off the cellulose acylate film 1, it could be easily removed without the light-absorbing anisotropic layer tearing or peeling off from the resin substrate.

[0232] <Shaping of lens shape> The laminate 11 was cut to 200 mm x 300 mm, and vacuum forming was performed using a convex lens with a diameter of 50 mm and a thickness of 10 mm as a mold, according to the method described in Japanese Patent Application Publication No. 2012-116094. The forming temperature was 110°C. The change in polarization degree before and after molding was less than 0.5% even at the point of greatest change, confirming that the decrease in polarization degree was very well suppressed. [Explanation of Symbols]

[0233] 100, 200 laminated Optical or display device having a 300-degree curved surface 1. Resin substrate 2. Orientation layer 3 Optical absorption layer 4 Adhesive layer 10 Head-mounted displays 12 cabinets 20 Optical Systems 40 Display Systems 46th 48 directions 100 Linear polarizer A (Laminated material of the present invention) 101 First quarter-wave plate 200 reflective linear polarizer 201 First quarter-wave plate 300 Half Mirror 399 Second λ / 4 plate 400 Linear polarizer B 500 Image Display Panel 600 Reflecting circular polarizer

Claims

1. A laminate comprising at least a resin substrate, an orientation layer, and a light-absorbing anisotropic layer, The peak temperature of tanδ, determined by the following measurement method for the aforementioned resin substrate, is 170°C or lower. The orientation layer is a layer formed using a composition containing a polymer having photo-orienting groups and crosslinking groups, wherein the polymer has repeating units represented by the following formula (A1), A laminate in which the light-absorbing anisotropic layer contains a liquid crystalline compound and a dichroic substance, and the degree of orientation of the dichroic substance is 0.95 or higher. Measurement method: Using a dynamic viscoelasticity measuring device, the resin substrate, which has been pre-conditioned for at least two hours at a temperature of 25°C and a humidity of 60% Rh, is used to measure E'' (loss modulus) and E' (storage modulus) under the following conditions, and the value obtained from these measurements is used to determine tanδ (= E'' / E'). Sample: 5 mm, 50 mm in length (20 mm gap) Measurement conditions: Tensile mode Measurement temperature: -150℃~220℃ Temperature increase conditions: 5°C / min Frequency: 1 Hz 【Chemistry 1】 In the above formula (A1), R 3 L represents a hydrogen atom or a methyl group. 1 represents a divalent linking group containing -C(O)NH-, a represents an integer from 0 to 5, R 1 represents a hydrogen atom or a monovalent organic group.

2. The laminate according to claim 1, wherein the peak temperature of the tanδ of the resin substrate is 130°C or less.

3. The laminate according to claim 1 or 2, wherein the storage modulus of the resin substrate at the peak temperature of tanδ is 100 kPa or less.

4. The laminate according to any one of claims 1 to 3, wherein the resin substrate, adhesive layer, light-absorbing anisotropic layer, and orientation layer are arranged in this order.

5. The laminate according to claim 4, wherein the adhesive layer is an ultraviolet-curable adhesive layer.

6. The laminate according to claim 5, wherein the adhesive layer is an adhesive layer containing at least a (meth)acrylate compound.

7. The laminate according to claim 1, wherein the light-absorbing anisotropic layer is formed from a composition having a polymeric liquid crystalline compound.

8. The laminate according to claim 1, wherein the molar content of radical polymerizable groups relative to the solid weight of the composition forming the light-absorbing anisotropic layer is 0.6 mmol / g or more.

9. The laminate according to claim 1, having a curved surface.

10. An optical device having a curved surface, An optical device in which the laminate according to claim 9 is arranged to follow the curved surface.

11. A display device having multiple members having curved surfaces, A display device in which the laminate according to claim 9 is arranged so as to be even more visible on the curved side of the curved surface of the member that is on the most visible side among the members having a curved surface.

12. An optical system having multiple members having curved surfaces, The laminate according to claim 9 is arranged such that, among the plurality of members having a curved surface, the member located on the most visible side is further aligned with the visible side of the curved surface. An optical system comprising a plurality of curved members, including a reflective linear polarizer or a reflective circular polarizer, a quarter-wave plate, and a half-mirror.

Citation Information

Patent Citations

  • Head mount display

    JP2018106160A

  • Optical laminate and image display device

    JP2019120949A

  • Polarizing plate

    JP2019194685A

  • Composition for photo-alignment films, photo-alignment film, optical laminate and image display device

    WO2017069252A1