Liquid crystal composition, light-absorbing anisotropic layer, laminate, and image display device.

A tailored liquid crystal composition with specific compounds and ratios forms a light-absorbing anisotropic layer with improved planarity and orientation, addressing issues in existing compositions for image display devices.

JP7848024B2Active Publication Date: 2026-04-20FUJIFILM CORP
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
FUJIFILM CORP
Filing Date
2022-03-28
Publication Date
2026-04-20

AI Technical Summary

Technical Problem

Existing liquid crystal compositions used in forming light-absorbing anisotropic layers suffer from inferior planarity and degree of orientation due to component variations.

Method used

A liquid crystal composition containing specific liquid crystal compounds represented by formulas (I) and (II) along with a dichroic substance, optimized with specific ratios and structural alignments, is used to form a light-absorbing anisotropic layer with improved planarity and orientation.

Benefits of technology

The composition enables the formation of a light-absorbing anisotropic layer with enhanced planarity and orientation, suitable for applications in image display devices.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a liquid crystal composition capable of forming a light absorption anisotropic layer with an excellent surface state and an excellent alignment degree, a light absorption anisotropic layer, a laminate, and an image display device.SOLUTION: A liquid crystal composition includes a liquid crystal compound A represented by Formula (I): Q1-V1-SP1-X1-(Ma-La)na-X2-SP2-V2-Q2, a compound B represented by Formula (II): Q1-V1-SP1-X1-(Mb-Lb)nb-SP3-(Mc-Lc)nc-X2-SP2-V2-Q2, and a dichroic substance.SELECTED DRAWING: None
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Description

[Background technology]

[0001] Traditionally, when functions such as attenuation, polarization, scattering, or light shielding of laser light or ambient light were required, devices operating on different principles were used for each function. Therefore, products corresponding to these functions were manufactured using different manufacturing processes for each function. For example, in image display devices (such as liquid crystal displays), linear or circular polarizers are used to control optical rotation or birefringence in the display. Similarly, in organic light-emitting diodes (OLEDs), circular polarizers are used to prevent reflection of ambient light.

[0002] Traditionally, iodine has been widely used as the dichroic material in these polarizers, but polarizers that use organic dyes as the dichroic material instead of iodine are also being investigated. For example, Patent Document 1 describes a light-absorbing anisotropic layer formed using a composition containing a dichroic substance having a predetermined structure ([Claim 1][Claim 14]). [Prior art documents] [Patent Documents]

[0003] [Patent Document 1] International Publication No. 2017 / 195833 [Overview of the project] [Problems that the invention aims to solve]

[0004] The present inventors investigated the composition described in Patent Document 1 and found that when a liquid crystal composition containing a liquid crystal compound together with a dichroic substance is used, the planarity and degree of orientation of the formed light-absorbing anisotropic layer may be inferior depending on the components of the liquid crystal composition.

[0005] Therefore, an object of the present invention is to provide a liquid crystal composition, a light absorption anisotropic layer, a laminate, and an image display device that can form a light absorption anisotropic layer excellent in planar shape and degree of orientation.

Means for Solving the Problems

[0006] As a result of intensive studies to achieve the above problems, the present inventors have found that when using a liquid crystal composition containing a liquid crystal compound A represented by a predetermined formula, a compound B represented by a predetermined formula, and a dichroic substance, a light absorption anisotropic layer excellent in planar shape and degree of orientation can be formed, and thus completed the present invention. That is, it has been found that the above problems can be achieved by the following configurations.

[0007] [1] A liquid crystal composition containing a liquid crystal compound A represented by formula (I) described later, a compound B represented by formula (II) described later, and a dichroic substance. [2] The liquid crystal composition according to [1], wherein at least one of the liquid crystal compound A and the compound B is a compound exhibiting a smectic liquid crystal state. [3] The liquid crystal composition according to [1] or [2], wherein the ratio of the mass of the compound B to the mass of the liquid crystal compound A is 0.001 to 0.04. [4] The liquid crystal composition according to any one of [1] to [3], wherein the structure represented by -(Ma-La)na- in formula (I) described later and the structure represented by -(Mb-Lb)nb- in formula (II) described later are the same structure. [5] The liquid crystal composition according to any one of [1] to [4], wherein the structure represented by -(Ma-La)na- in formula (I) described later and the structure represented by -(Mc-Lc)nc- in formula (II) described later are the same structure. [6] A light absorption anisotropic layer formed from the liquid crystal composition according to any one of [1] to [5]. [7] A laminate having a substrate, an alignment film provided on the substrate, and the light absorption anisotropic layer according to [6] provided on the alignment film. [8] An image display device having the light absorption anisotropic layer according to [6], or the laminate according to [7].

Effects of the Invention

[0008] According to the present invention, it is possible to provide a liquid crystal composition, a light absorption anisotropic layer, a laminate, and an image display device that can form a light absorption anisotropic layer excellent in planar shape and degree of orientation.

Mode for Carrying Out the Invention

[0009] Hereinafter, the present invention will be described in detail. The description of the constituent elements described below may be made 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 including the numerical values described before and after "~" as the lower limit value and the upper limit value. In this specification, both the liquid crystalline composition and the liquid crystal compound conceptually include those that no longer exhibit liquid crystallinity due to curing or the like. In this specification, each component may be used alone as one kind of substance corresponding to each component, or two or more kinds may be used in combination. Here, when two or more kinds of substances are used in combination for each component, the content of that component refers to the total content of the substances used in combination, unless otherwise specified. In this specification, "(meth)acrylate" is a notation representing "acrylate" or "methacrylate", "(meth)acrylic" is a notation representing "acrylic" or "methacrylic", and "(meth)acryloyl" is a notation representing "acryloyl" or "methacryloyl".

[0010] [Liquid Crystal Composition] The liquid crystal composition of the present invention is a liquid crystal composition containing a liquid crystal compound A represented by the following formula (I), a compound B represented by the following formula (II), and a dichroic substance.

[0011] In the present invention, as described above, by using a liquid crystal composition containing liquid crystal compound A represented by formula (I) described later, compound B represented by formula (II) described later, and a dichroic substance, a light-absorbing anisotropic layer with excellent planarity and orientation can be formed. Although this is not entirely clear, the inventors speculate the following: In other words, in the present invention, by incorporating compound B represented by formula (II), which will be described later, it was possible to suppress the crystallization of liquid crystal compound A represented by formula (I), which will be described later, during the formation of the light-absorbing anisotropic layer. As a result, the planarity and degree of orientation of the formed light-absorbing anisotropic layer are considered to be good. The following describes each component included in the liquid crystal composition of the present invention.

[0012] [Liquid crystal compound A] The liquid crystal composition contains liquid crystal compound A, which is represented by the following formula (I). Equation (I) Q1-V1-SP1-X1-(Ma-La)na-X2-SP2-V2-Q2

[0013] In formula (I) above, Q1 and Q2 each independently represent a hydrogen atom or a monovalent organic group. Furthermore, V1, V2, X1, and X2 each independently represent a single bond or a divalent linking group. Furthermore, SP1 and SP2 each independently represent a divalent spacer group. Furthermore, na represents an integer between 2 and 10. Furthermore, Ma represents an aromatic ring, aliphatic ring, or heterocycle, which may have substituents. However, multiple Mas may be the same or different. Furthermore, La represents a single bond or a divalent linking group. However, multiple Las may be the same or different. Also, when La between Ma represents a divalent linking group, it excludes divalent linking groups consisting of a divalent linear spacer group having 3 or more atoms constituting the main chain of the bond and 2 or more carbon atoms.

[0014] Examples of monovalent organic groups represented by one aspect of Q1 and Q2 include alkyl groups, alkoxy groups, alkenyl groups, alkynyl groups, aryl groups, heteroaryl groups, cyano groups, nitro groups, and polymerizable groups. Of these, it is preferable that at least one of Q1 and Q2 in formula (I) is a polymerizable group, and it is more preferable that both Q1 and Q2 are polymerizable groups, for the reason that the formed light-absorbing anisotropic layer can be easily immobilized. Preferably, the polymerizable group is a radical polymerizable group (radical polymerizable group) or a cationic polymerizable group (cationic polymerizable group). As the radical polymerizable group, known radical polymerizable groups can be used, with acryloyloxy or methacryloyloxy groups being preferred. Acryloyloxy groups are known to have a faster polymerization rate, and are therefore preferred from the viewpoint of improving productivity, but methacryloyloxy groups can also be used as polymerizable groups in a similar manner. Known cationic polymerizable groups can be used as the cationic polymerizable group, including, for example, alicyclic ether groups, cyclic acetal groups, cyclic lactone groups, cyclic thioether groups, spiroorthoester groups, and vinyloxy groups. Among these, alicyclic ether groups or vinyloxy groups are preferred, and epoxy groups, oxetanyl groups, or vinyloxy groups are more preferred.

[0015] Examples of preferred polymerizable groups include those represented by the following formulas (P-1) to (P-30).

[0016] [ka]

[0017] In the above formulas (P-1) to (P-30), R PThis includes hydrogen atoms, halogen atoms, linear, branched, or cyclic alkylene groups with 1 to 10 carbon atoms, alkyl halides with 1 to 20 carbon atoms, alkoxy groups with 1 to 20 carbon atoms, alkenyl groups with 1 to 20 carbon atoms, alkynyl groups with 1 to 20 carbon atoms, aryl groups with 1 to 20 carbon atoms, heterocyclic groups, cyano groups, hydroxyl groups, nitro groups, carboxyl groups, aryloxy groups, silyloxy groups, heterocyclic oxy groups, acyloxy groups, carbamoyloxy groups, alkoxycarbonyloxy groups, aryloxycarbonyloxy groups, amino groups (including anilino groups), ammonia groups, acylamino groups, aminocarbonylamino groups, alkoxycarbonylamino groups, and aryloxy groups. Represents carbonylamino group, sulfamoylamino group, alkyl or arylsulfonylamino group, mercapto group, alkylthio group, arylthio group, heterocyclic thio group, sulfamoyl group, sulfo group, alkyl or arylsulfinyl group, alkyl or arylsulfonyl group, acyl group, aryloxycarbonyl group, alkoxycarbonyl group, carbamoyl group, aryl or heterocyclic azo group, imide group, phosphino group, phosphinyl group, phosphinyloxy group, phosphinylamino group, phosphono group, silyl group, hydrazino group, ureido group, boronic acid group (-B(OH)2), phosphat group (-OPO(OH)2), or sulfat group (-OSO3H). Multiple R P These may be the same or different. In particular, preferred radical polymerizable groups are the vinyl group represented by formula (P-1), the butadiene group represented by formula (P-2), the (meth)acrylic group represented by formula (P-3), the (meth)acryloyloxy group represented by formula (P-4), the (meth)acrylamide group represented by formula (P-5), the vinyl acetate group represented by formula (P-6), the fumarate ester group represented by formula (P-7), the styryl group represented by formula (P-8), the vinylpyrrolidone group represented by formula (P-9), the maleic anhydride group represented by formula (P-11), or the maleimide group represented by formula (P-12). Preferred cationic polymerizable groups are the vinyl ether group represented by formula (P-18), the epoxy group represented by formula (P-19), or the oxetanyl group represented by formula (P-20).

[0018] In the above formula (I), the divalent linking group represented by one aspect of V1, V2, X1, X2, and La is, for example, -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-, - Examples include SC(O)-C(Z)=C(Z')-, -C(Z)=NN=C(Z')- [where Z, Z', and Z'' each independently represent a hydrogen atom, 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-. V1, V2, X1, X2, and La may be groups formed by combining two or more of these groups. Of these divalent linking groups, it is preferable that they are -CO-, -O-, -S-, -C(=S)-, -C(Z)(Z')-, -C(Z)=C(Z')-, -N(Z)-, or a combination of two or more of these. Furthermore, among the divalent linking groups represented by one aspect of La, the La present between Ma and Ma is excluded, as mentioned above, from divalent linking groups consisting of a divalent linear spacer group having 3 or more atoms constituting the main chain of the bond and 2 or more carbon atoms (for example, -O-CH2-CH2-O-). This exclusion rule takes into consideration the distinction from compound B represented by formula (II) described later, that is, the distinction from SP3 in formula (II) described later.

[0019] In formula (I) above, the divalent spacer groups represented by SP1 and SP2 include, for example, linear, branched, or cyclic alkylene groups having 1 to 50 carbon atoms, or heterocyclic groups having 1 to 20 carbon atoms. The carbon atoms of the above alkylene group and the carbon atoms of the heterocyclic group are -O-, -Si(CH3)2-, -(Si(CH3)2O) g -, -(OSi(CH3)2) g - [where 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-, -O-C(O)O-, -N(Z)C(O)-, -C(O)N(Z)-, -C(Z)=C(Z’)-C(O)O-, -O-C(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-, -S-C(O)-C(Z)=C(Z’)-, -C(Z)=N-N=C(Z’)- [where Z, Z’ and Z” each independently represent a hydrogen atom, an alkyl group having 1 to 4 carbon atoms, a cycloalkyl group, an aryl group, a cyano group, or a halogen atom], -C≡C-, -N=N-, -S-, -C(S)-, -S(O)-, -SO2-, -(O)S(O)O-, -O(O)S(O)O-, -SC(O)-, and -C(O)S-, and may be substituted with a group formed by combining two or more of these groups. The hydrogen atoms of the above alkylene group and the hydrogen atoms of the heterocyclic group are a halogen atom, a cyano group, -Z H , -OH, -OZ H , -COOH, -C(O)Z H , -C(O)OZ H , -OC(O)Z H , -OC(O)OZ H , -NZ H Z H ’, -NZ H C(O)Z H ’, -NZ H C(O)OZ H ’, -C(O)NZ H Z H ’, -OC(O)NZ H Z H ’, -NZ H C(O)NZ H ’OZ<00><000027>”, -SH, -SZ H , -C(S)ZH -C(O)SZ H ,-SC(O)Z H , may be substituted with. Here, Z H , Z H ' and Z' independently represent an alkyl group having 1 to 10 carbon atoms, a halogenated alkyl group, or -LQ [L represents a single bond or a divalent linking group. Specific examples of divalent linking groups are the same as those for V1 described above. Q represents a crosslinking group, and examples of polymerizable groups as preferred embodiments of Q1 or Q2 above include polymerizable groups represented by formulas (P-1) to (P-30) above.]. Furthermore, the divalent spacer groups represented by SP1 and SP2 are preferably linear alkylene groups having 1 to 12 carbon atoms, branched alkylene groups having 3 to 12 carbon atoms, or divalent linking groups in which one or more of the -CH2- groups constituting these alkylene groups are substituted with -O-, -S-, -NH-, -N(Z)-, or -CO-.

[0020] In formula (I) above, MA represents an aromatic ring, aliphatic ring, or heterocycle, which may have substituents, and is preferably a 4- to 15-membered ring. MA may be a monoring or a fused ring, and multiple MAs may be the same or different. Examples of aromatic rings represented by MA include phenylene groups, naphthylene groups, fluorene-diyl groups, anthracene-diyl groups, and tetracene-diyl groups. From the viewpoint of diversity in the design of the mesogenic skeleton and the availability of raw materials, phenylene groups and naphthylene groups are preferred. Examples of aliphatic rings represented by MA include cyclopentylene and cyclohexylene groups, and carbon atoms may be substituted with -O-, -Si(CH3)2-, -N(Z)- [where Z represents a hydrogen atom, a C1-C4 alkyl group, a cycloalkyl group, an aryl group, a cyano group, or a halogen atom], -C(O)-, -S-, -C(S)-, -S(O)-, and -SO2-, or groups formed by combining two or more of these groups. Other atoms that constitute the heterocycle represented by MA include nitrogen, sulfur, and oxygen atoms. When a heterocycle has multiple atoms that constitute the ring other than carbon, these may be the same or different. Specific examples of heterocycles include, for example, pyridylene groups (pyrididine-diyl groups), pyridazine-diyl groups, imidazole-diyl groups, thienylene (thiophene-diyl groups), quinolylene groups (quinoline-diyl groups), isoquinolylene groups (isoquinoline-diyl groups), oxazole-diyl groups, thiazole-diyl groups, oxadiazole-diyl groups, benzothiazole-diyl groups, benzothiadiazole-diyl groups, phthalimide-diyl groups, thienothiazole-diyl groups, thiazolothiazole-diyl groups, thienothiophene-diyl groups, and thienoxazole-diyl groups, as well as structures (II-1) to (II-4) below.

[0021] [ka]

[0022] In equations (II-1) to (II-4), D1 is -S-, -O-, or NR 11 - represents R 11 This represents a hydrogen atom or an alkyl group having 1 to 6 carbon atoms. Y1 represents an aromatic hydrocarbon group with 6 to 12 carbon atoms, or an aromatic heterocyclic group with 3 to 12 carbon atoms. Z1, Z2, and Z3 are, independently, a hydrogen atom or an aliphatic hydrocarbon group having 1 to 20 carbon atoms, an alicyclic hydrocarbon group having 3 to 20 carbon atoms, a monovalent aromatic hydrocarbon group having 6 to 20 carbon atoms, a halogen atom, a cyano group, a nitro group, or -NR. 12 R 13 , or SR 12 This represents Z 1 and Z 2 These may bond to each other to form an aromatic ring or an aromatic heterocycle, R 12 and R 13 Each of these independently represents either a hydrogen atom or an alkyl group having 1 to 6 carbon atoms. A1 and A2 are independently -O- and -NR, respectively.21 -(R 21 represents a hydrogen atom or substituent. It represents a group selected from the group consisting of -S- and -CO-. E represents a nonmetallic atom of Groups 14-16 that may have a hydrogen atom or a substituent attached to it. Ax represents an organic group having 2 to 30 carbon atoms and having at least one aromatic ring selected from the group consisting of aromatic hydrocarbon rings and aromatic heterocycles. Ay represents a C2-C30 organic group having a hydrogen atom, a C1-C6 alkyl group which may have substituents, or at least one aromatic ring selected from the group consisting of aromatic hydrocarbon rings and aromatic heterocycles. The aromatic rings of Ax and Ay may have substituents, and Ax and Ay may be bonded together to form a ring. D2 represents a hydrogen atom or an alkyl group having 1 to 6 carbon atoms, which may have substituents.

[0023] In formula (II-2), if Y1 is an aromatic hydrocarbon group having 6 to 12 carbon atoms, it may be monocyclic or polycyclic. If Y1 is an aromatic heterocyclic group having 3 to 12 carbon atoms, it may be monocyclic or polycyclic. In equation (II-2), A1 and A2 are -NR 21 When representing -, R 21 As for substituents, for example, refer to the description in paragraphs 0035 to 0045 of Japanese Patent Publication No. 2008-107767, which is incorporated into the present specification. In formula (II-2), if X is a nonmetal atom of group 14 to 16 which may have substituents attached, then =O, =S, =NR', and =C(R')R' are preferred. R' represents a substituent, and as a substituent, for example, refer to paragraphs

[0035] to

[0045] of Japanese Patent Application Publication No. 2008-107767, a nitrogen atom is preferred.

[0024] Regarding MA in formula (I) above, examples of substituents that the aromatic ring, aliphatic ring, or heterocycle may have include halogen atoms, C1-C20 alkyl groups, C1-C20 halogenated alkyl groups, C1-C20 cycloalkyl groups, C1-C20 alkoxy groups, C1-C20 alkenyl groups, C1-C20 alkynyl groups, C1-C20 aryl groups, heterocyclic groups (also called heterocyclic groups), cyano groups, hydroxyl groups, nitro groups, carboxyl groups, aryloxy groups, silyloxy groups, heterocyclic oxy groups, acyloxy groups, carbamoyloxy groups, alkoxycarbonyloxy groups, aryloxycarbonyloxy groups, amino groups (including anilino groups), ammonia groups, acylamino groups, aminocarbonylamino groups, and alkoxy groups. Examples include xycarbonylamino groups, aryloxycarbonylamino groups, sulfamoylamino groups, alkyl or arylsulfonylamino groups, mercapto groups, alkylthio groups, arylthio groups, heterocyclic thio groups, sulfamoyl groups, sulfo groups, alkyl or arylsulfinyl groups, alkyl or arylsulfonyl groups, acyl groups, aryloxycarbonyl groups, alkoxycarbonyl groups, carbamoyl groups, aryl or heterocyclic azo groups, imide groups, phosphino groups, phosphinyl groups, phosphinyloxy groups, phosphinylamino groups, phosphono groups, silyl groups, hydrazino groups, ureido groups, boronic acid groups (-B(OH)2), phosphat groups (-OPO(OH)2), sulfat groups (-OSO3H), and other known substituents. Further details regarding the substituents are described in paragraph

[0023] of Japanese Patent Publication No. 2007-234651.

[0025] In the above formula (I), na represents an integer between 2 and 10, preferably an integer between 2 and 8, and more preferably an integer between 2 and 5.

[0026] Examples of liquid crystal compound A include, but are not limited to, the compounds described in paragraphs

[0033] to

[0039] of Japanese Patent Publication No. 2008-19240, and the structures shown below.

[0027] [ka] [ka] [ka] [ka] [ka] [ka] In the five structural formulas above, the notation for a methyl group whose substitution position on the central benzene ring is not specified indicates a mixture of positional isomers in which the methyl group is substituted at the ortho or meta position of the benzene ring. Similarly, the notation for a group adjacent to an acryloyloxy group that contains a methyl group whose substitution position is not specified represents a propylene group (a group in which a methyl group is substituted for an ethylene group), and indicates a mixture of positional isomers in which the methyl group is in a different position. These notations are also used in the specific example of compound B described later.

[0028] The content of liquid crystal compound A is preferably 50 to 99% by mass, and more preferably 60 to 95% by mass, relative to the total solid content (100% by mass) of the liquid crystal composition.

[0029] [Compound B] The liquid crystal composition contains compound B, which is represented by the following formula (II). Formula (II) Q1-V1-SP1-X1-(Mb-Lb)nb-SP3-(Mc-Lc)nc-X2-SP2-V2-Q2

[0030] In formula (II) above, Q1 and Q2 each independently represent a hydrogen atom or a monovalent organic group. Furthermore, V1, V2, X1, and X2 each independently represent a single bond or a divalent linking group. Furthermore, SP1 and SP2 each independently represent a divalent spacer group. Furthermore, SP3 represents a divalent linear spacer group in which the number of atoms constituting the main chain of the bond is 3 or more, and the number of carbon atoms is 2 or more. Furthermore, nb and nc each independently represent integers between 2 and 10. Furthermore, Mb and Mc each independently represent an aromatic ring, aliphatic ring, or heterocycle, which may have substituents. However, multiple Mb and multiple Mc elements may be the same or different. Furthermore, Lb and Lc each independently represent a single bond or a divalent linking group. However, multiple Lb and Lc groups may be the same or different.

[0031] Here, Q1 and Q2 in formula (II) are the same as those described for Q1 and Q2 in formula (I). In particular, for the reason that the planar surface of the formed light-absorbing anisotropic layer is better, it is preferable that Q1 and Q2 in formula (II) are the same substituent, and it is more preferable that both Q1 and Q2 are alkyl groups or polymerizable groups. Furthermore, V1, V2, X1, and X2 are the same as those described in V1, V2, X1, and X2 in equation (I) above. Furthermore, SP1 and SP2 are the same as those described in SP1 and SP2 in equation (I) above. Furthermore, Mb and Mc are the same as those described for Ma in equation (I) above.

[0032] In formula (II) above, with respect to SP3, which represents a "divalent linear spacer group having 3 or more atoms constituting the main chain of the bond and 2 or more carbon atoms," the "number of atoms constituting the main chain of the bond" refers to the number of atoms that make up the main chain of the bond of the divalent linear spacer group. For example, if the divalent linear spacer group is "-CH2-CH2-OC(=O)-CH2-CH2-C(=O)-O-CH2-CH2-", the number of atoms constituting the main chain of the bond is counted as 10, and the hydrogen atoms of the ethylene group and the oxygen atoms of the carbonyl group are not counted because they do not constitute the main chain.

[0033] Such divalent linear spacer groups are preferably groups containing at least an ethylene group (-CH2-CH2-), and examples include linear alkylene groups having 2 to 12 carbon atoms, and divalent linking groups in which one or more non-consecutive -CH2- groups constituting the linear alkylene groups having 2 to 12 carbon atoms are substituted with -O-, -S-, -NH-, -N(Z)-, or -CO- (however, limited to those with 2 or more carbon atoms after substitution).

[0034] In formula (II) above, nb and nc each independently represent an integer between 2 and 10, and it is preferable that the sum of nb and nc represents an integer between 6 and 20, and more preferably an integer between 6 and 12. Furthermore, nb and nc each preferably represent an integer between 3 and 10, and more preferably an integer between 3 and 6.

[0035] In formula (II) above, the divalent linking groups represented by one aspect of Lb and Lc are the same as those described in V1, etc., in formula (I) above. Furthermore, as mentioned above, La in formula (I) has an exclusion clause that "excludes divalent linking groups consisting of a divalent linear spacer group having 3 or more atoms constituting the main chain of the bond and 2 or more carbon atoms, when La between Ma and Ma represents a divalent linking group." However, Lb and Lc in formula (II) do not have such an exclusion clause.

[0036] For example, see paragraph of Japanese Patent Publication No. 2008-214269.

[0037] Examples of compounds, such as those described in paragraphs

[0033] to

[0040] of Japanese Patent Publication No. 2006-215437, and the structures shown below, can be cited, but are not limited to these.

[0037] [ka] [ka] [ka]

[0038] In the present invention, it is preferable that at least one of the above-mentioned liquid crystal compounds A and B is a compound that exhibits a liquid crystal state in the smectic phase, in order to achieve a higher degree of orientation of the formed light-absorbing anisotropic layer.

[0039] Examples of smectic phases include smectic phase A and smectic phase C, but higher-order smectic phases (for example, smectic phase B, smectic phase E, smectic phase F, smectic phase G, smectic phase H, smectic phase I, smectic phase J, smectic phase K, smectic phase L, etc.) may also be used. In addition to the smectic phase, a nematic phase may also be expressed.

[0040] Furthermore, for the reason that the degree of orientation of the formed light-absorbing anisotropy layer is further increased, it is preferable that at least one of the above-mentioned liquid crystal compound A and compound B is a compound that exhibits one of the liquid crystal states of smectic B phase, E phase, F phase, G phase, H phase, I phase, J phase, K phase, and L phase.

[0041] In the present invention, the ratio of the mass of compound B to the mass of liquid crystal compound A is preferably 0.001 to 0.04, and more preferably 0.002 to 0.035, for the reason that the planar surface of the formed light-absorbing anisotropic layer is better and the degree of orientation is higher. That is, the content of compound B is preferably 0.1 to 4% by mass, and more preferably 0.2 to 3.5% by mass, relative to the mass of liquid crystal compound A.

[0042] In the present invention, it is preferable that the structure represented by -(Ma-La)na- in formula (I) and the structure represented by -(Mb-Lb)nb- in formula (II) are the same structure, in order to obtain a better planar surface of the formed light-absorbing anisotropic layer. Furthermore, for similar reasons, it is preferable that the structure represented by -(Ma-La)na- in formula (I) and the structure represented by -(Mc-Lc)nc- in formula (II) are the same structure. Furthermore, it is preferable that the structure represented by -(Ma-La)na- in formula (I) and the structures represented by -(Mb-Lb)nb- and -(Mc-Lc)nc- in formula (II) are identical in order to further improve the planar structure of the formed light-absorbing anisotropic layer.

[0043] <Dichroic substances> The liquid crystal composition further contains a dichroic substance. In this invention, a dichroic substance refers to a dye whose absorbance differs depending on the direction. The dichroic substance may or may not exhibit liquid crystalline properties.

[0044] 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, and inorganic materials (e.g., quantum rods). Conventionally known dichroic materials (dichroic dyes) can be used. Specifically, for example, paragraphs

[0067] to

[0071] of Japanese Patent Publication No. 2013-228706, paragraphs

[0008] to

[0026] of Japanese Patent Publication No. 2013-227532, paragraphs

[0008] to

[0015] of Japanese Patent Publication No. 2013-209367, and Japanese Patent Publication No. 2013-14883

[0045] ~

[0058] paragraph, paragraphs

[0012] ~

[0029] of JP 2013-109090, paragraphs

[0009] ~

[0017] of JP 2013-101328, paragraphs

[0051] ~

[0065] of JP 2013-37353, paragraphs

[0049] ~

[0073] of JP 2012-63387, paragraphs

[0016] ~

[0018] of JP Hei 11-305036, paragraphs

[0009] ~

[0011] of JP 2001-133630, JP 2011-215337

[0030] to

[0169] , paragraphs

[0021] to

[0075] of JP 2010-106242, 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, JP 2018-0531 Paragraphs

[0014] to

[0032] of Japanese Patent Publication No. 67, Paragraphs

[0014] to

[0033] of Japanese Patent Publication No. 2020-11716, Paragraphs

[0005] to

[0041] of International Publication No. 2016 / 060173, Paragraphs

[0008] to

[0062] of International Publication No. 2016 / 136561, Paragraphs

[0014] to

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

[0014] to

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

[0013] to

[0037] of International Publication No. 2017 / 195833. Examples include paragraphs

[0014] to

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

[0021] to

[0030] of International Publication No. 2018 / 186503, paragraphs

[0043] to

[0063] of International Publication No. 2019 / 189345, paragraphs

[0043] to

[0085] of International Publication No. 2019 / 225468, paragraphs

[0050] to

[0074] of International Publication No. 2020 / 004106, and paragraphs

[0015] to

[0038] of International Publication No. 2021 / 044843.

[0045] In the present invention, two or more dichroic materials may be used in combination. For example, from the viewpoint of making the formed optical anisotropic layer closer to black, it is preferable to use in combination 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.

[0046] The content of the dichroic substance is preferably 2 to 60% by mass, more preferably 3 to 50% by mass, and even more preferably 5 to 40% by mass, relative to the total solid content (100% by mass) of the liquid crystal composition, because this results in a higher degree of orientation of the formed light-absorbing anisotropic layer. When multiple dichroic substances are used in combination, it is preferable that the total amount of the multiple dichroic substances is within the above range.

[0047] <Solvent> From the viewpoint of workability and other factors, the liquid crystal composition preferably contains a solvent. As solvents, for example, ketones (e.g., acetone, 2-butanone, methyl isobutyl ketone, cyclopentanone, cyclohexanone, acetylacetone, etc.), ethers (e.g., dioxane, tetrahydrofuran, tetrahydropyran, dioxolane, tetrahydrofurfuryl alcohol, cyclopentyl methyl ether, dibutyl ether, etc.), aliphatic hydrocarbons (e.g., hexane, etc.), alicyclic hydrocarbons (e.g., cyclohexane, etc.), aromatic hydrocarbons (e.g., benzene, toluene, xylene, tetralin, trimethylbenzene, etc.), halogenated carbons (e.g., dichloromethane, trichloromethane (chloroform), dichloroethane, dichlorobenzene, 1,1,2,2-tetrachloroethane, chlorotoluene, etc.), esters (e.g., methyl acetate, ethyl acetate, butyl acetate, diethyl carbonate, ethyl acetoethyl acetate, n-pentyl acetate, ethyl benzoate, benzyl benzoate, butyl carbitol acetate, diethylene glycol monoethyl ether acetate) Organic solvents such as ethanol (e.g., isoamyl acetate), alcohols (e.g., ethanol, isopropanol, butanol, cyclohexanol, furfuryl alcohol, 2-ethylhexanol, octanol, benzyl alcohol, ethanolamine, ethylene glycol, propylene glycol, diethylene glycol, diethylene glycol monomethyl ether, diethylene glycol monoethyl ether, diethylene glycol monobutyl ether, etc.), phenols (e.g., phenol, cresol, etc.), cellosolves (e.g., methyl cellosolve, ethyl cellosolve, and 1,2-dimethoxyethane, etc.), cellosolve acetates, sulfoxides (e.g., dimethyl sulfoxide, etc.), amides (e.g., dimethylformamide and dimethylacetamide, N-methylpyrrolidone, N-ethylpyrrolidone, 1,3-dimethyl-2-imidazolidinone, etc.), and heterocyclic compounds (e.g., pyridine, 2,6-lutidine, etc.), as well as water. These solvents may be used individually or in combination of two or more.

[0048] If the liquid crystal composition contains a solvent, the solvent content is preferably 60 to 99.5% by mass, more preferably 70 to 99% by mass, and particularly preferably 75 to 98% by mass, based on the total mass (100% by mass) of the liquid crystal composition.

[0049] <Polymerization initiator> The liquid crystal composition may contain 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.

[0050] When the liquid crystal composition contains a polymerization initiator, the content of the polymerization initiator is preferably 0.01 to 30% by mass, and more preferably 0.1 to 15% by mass, based on the total solid content (100% by mass) of the liquid crystal composition.

[0051] <Interface modifier> The liquid crystal composition may contain an interface modifier. There are no particular restrictions on the interface modifier; polymer-based interface modifiers and low-molecular-weight interface modifiers can be used, and compounds described in paragraphs

[0253] to

[0293] of Japanese Patent Application Publication No. 2011-237513 can be used. Furthermore, as an interface modifier, fluorine (meth)acrylate polymers described in sections

[0018] to

[0043] of Japanese Patent Publication No. 2007-272185 can also be used. Furthermore, as interface modifiers, the compounds described in paragraphs

[0079] to

[0102] of Japanese Patent Publication No. 2007-069471, polymerizable liquid crystal compounds represented by formula (4) described in Japanese Patent Publication No. 2013-047204 (particularly the compounds described in paragraphs

[0020] to

[0032] ), polymerizable liquid crystal compounds represented by formula (4) described in Japanese Patent Publication No. 2012-211306 (particularly the compounds described in paragraphs

[0022] to

[0029] ), and liquid crystal alignment promoters represented by formula (4) described in Japanese Patent Publication No. 2002-129162 (particularly Compounds described in paragraphs

[0076] to

[0078] and paragraphs

[0082] to

[0084] , compounds represented by formulas (4), (II), and (III) described in Japanese Patent Application Publication No. 2005-099248 (particularly the compounds described in paragraphs

[0092] to

[0096] ), compounds described in paragraphs

[0013] to

[0059] of Japanese Patent No. 4385997, compounds described in paragraphs

[0018] to

[0044] of Japanese Patent No. 5034200, and compounds described in paragraphs

[0019] to

[0038] of Japanese Patent No. 4895088 can also be used. The interface modifier may be used alone or in combination of two or more types.

[0052] When a liquid crystal composition contains an interface modifier, the content of the interface modifier is preferably 0.005 to 15% by mass, more preferably 0.01 to 5% by mass, and even more preferably 0.015 to 3% by mass, relative to the total solid content (100% by mass) of the liquid crystal composition. When multiple interface modifiers are used in combination, it is preferable that the total amount of the multiple interface modifiers is within the above range.

[0053] [Light-absorbing anisotropic layer] The light-absorbing anisotropic layer of the present invention is a light-absorbing anisotropic layer formed from the liquid crystal composition of the present invention described above, and is preferably a layer in which the orientation state of the liquid crystal compound and dichroic substance described above is fixed.

[0054] In the present invention, the structure of the liquid crystal compound contained in the liquid crystal composition or the light-absorbing anisotropic layer of the present invention can be identified by, but is not particularly limited to, high-performance liquid chromatography (HPLC) measurement or liquid chromatography-mass spectrometry (LC / MS) analysis using a solution of the liquid crystal composition, a solution obtained by dissolving a laminate having a light-absorbing anisotropic layer, or an extract obtained by immersing a laminate having a light-absorbing anisotropic layer in a solvent; measurement of the nuclear magnetic resonance (NMR) spectrum of compounds extracted from these solutions or extracts; or by thermal decomposition gas chromatography, elemental analysis, thermal heating direct mass spectrometry, or thermal desorption analysis of the light-absorbing anisotropic layer itself. Quantification can be performed by using the substance contained in the light-absorbing anisotropic layer as a standard sample. Furthermore, the region of the light-absorbing anisotropic layer in a laminate having a light-absorbing anisotropic layer can be identified by cross-sectional information obtained using time-of-flight secondary ion mass spectrometry (TOF-SIMS) or by cross-sectional observation using a scanning electron microscope (SEM), but the method is not particularly limited.

[0055] [Method for forming a light-absorbing anisotropic layer] The method for forming the light-absorbing anisotropic layer of the present invention is not particularly limited, and includes a method comprising, in this order, a step of applying the above-described liquid crystal composition (hereinafter also referred to as the "composition for forming a light-absorbing anisotropic layer") to form a coated film (hereinafter also referred to as the "coated film formation step"), and a step of aligning the liquid crystal compound and dichroic substance contained in the coated film (hereinafter collectively abbreviated as the "liquid crystal components") (hereinafter also referred to as the "orientation step").

[0056] <Coating film formation process> The coating film formation process involves applying a light-absorbing anisotropic layer-forming composition 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 or other means, it becomes easier to apply the light-absorbing anisotropic layer-forming composition. 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.

[0057] <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 become oriented by the coating film formation process or drying treatment described above. For example, in an embodiment 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 layer) 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.

[0058] 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.

[0059] 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 the heat treatment suitable for use as a light-absorbing anisotropic layer. 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.

[0060] 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 layer 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.

[0061] <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 liquid crystal film hardens by radical polymerization, exposure under a nitrogen atmosphere is preferable because it reduces the inhibition of polymerization by oxygen.

[0062] The thickness of the optically anisotropic layer is preferably 0.1 to 5.0 μm, and more preferably 0.3 to 1.5 μm. Depending on the concentration of the liquid crystal compound in the liquid crystal composition, an optically anisotropic layer with excellent absorbance can be obtained if the thickness is 0.1 μm or more, and an optically anisotropic layer with excellent transmittance can be obtained if the thickness is 5.0 μm or less.

[0063] [Laminated structure] The laminate of the present invention comprises a substrate, an orientation film provided on the substrate, and a light-absorbing anisotropic layer of the present invention provided on the orientation film. Furthermore, the laminate of the present invention may have a λ / 4 plate in the light-absorbing anisotropic layer, or it may have a barrier layer on the light-absorbing anisotropic layer. Furthermore, the laminate of the present invention may have both a λ / 4 plate and a barrier layer, in which case it is preferable to have a barrier layer between the light-absorbing anisotropic layer and the λ / 4 plate. The following describes each layer that constitutes the laminate of the present invention.

[0064] [Base material] The substrate can be selected according to the application of the light-absorbing anisotropic layer, and examples include glass and polymer films. The light transmittance of the substrate is preferably 80% or higher. When using a polymer film as a substrate, it is preferable to use an optically isotropic polymer film. Specific examples of polymers and preferred embodiments can be found in paragraph

[0013] of Japanese Patent Application Publication No. 2002-22942. Furthermore, even with conventionally known polymers that readily exhibit birefringence, such as polycarbonate and polysulfone, it is possible to use those whose birefringence is reduced by modifying them with the molecules described in International Publication No. 2000 / 26705.

[0065] [Orientation film] The alignment layer can be any layer as long as it can bring the liquid crystal compounds contained in the liquid crystal composition of the present invention into a desired orientation state on the alignment layer. This can be achieved by means such as rubbing treatment of an organic compound (preferably a polymer) onto the film surface, oblique deposition of an inorganic compound, formation of a layer having microgrooves, or accumulation of an organic compound (e.g., ω-tricosanoic acid, dioctadecylmethylammonium chloride, methyl stearylate) by the Langmuir-Bludget method (LB film). Furthermore, orientation films that exhibit orientation function upon application of an electric field, magnetic field, or light irradiation are also known. Among these, in the present invention, orientation films formed by rubbing treatment are preferred from the viewpoint of ease of controlling the pre-tilt angle of the orientation film, and photo-alignment films formed by light irradiation are also preferred from the viewpoint of uniformity of orientation. Furthermore, the alignment layer may function as a barrier layer, as will be described later.

[0066] <Rubbing-treated orientation film> Numerous polymer materials are described in various publications and many commercially available products can be used for the orientation film formed by the rubbing process. In this invention, polyvinyl alcohol or polyimide, and their derivatives are preferably used. For the orientation film, refer to the description on pages 43, line 24 to 49, line 8 of International Publication No. 2001 / 88574A1. The thickness of the orientation film is preferably 0.01 to 10 μm, and more preferably 0.01 to 1 μm.

[0067] <Photoalignment film> Numerous publications describe photo-alignment materials used in alignment films formed by light irradiation. In this invention, for example, azo compounds described in Japanese Patent Publication No. 2006-285197, Japanese Patent Publication No. 2007-76839, Japanese Patent Publication No. 2007-138138, Japanese Patent Publication No. 2007-94071, Japanese Patent Publication No. 2007-121721, Japanese Patent Publication No. 2007-140465, Japanese Patent Publication No. 2007-156439, Japanese Patent Publication No. 2007-133184, Japanese Patent Publication No. 2009-109831, Japanese Patent No. 3883848, Japanese Patent No. 4151746, and Japanese Patent Publication No. 2002-229039 are used. Preferred examples include the aromatic ester compounds described, maleimide and / or alkenyl-substituted nadiimide compounds having photo-orienting units as described in Japanese Patent Publication No. 2002-265541 and Japanese Patent Publication No. 2002-317013, photocrosslinkable silane derivatives as described in Japanese Patent No. 4205195 and Japanese Patent No. 4205198, photocrosslinkable polyimides, polyamides, or esters as described in Japanese Patent Publication No. 2003-520878 and Japanese Patent Publication No. 2004-529220, or photocrosslinkable polyimides, polyamides, or esters as described in Japanese Patent No. 4162850. More preferably, the materials are azo compounds, photocrosslinkable polyimides, polyamides, or esters.

[0068] A photo-alignment film is manufactured by irradiating a photo-alignment film formed from the above materials with linearly polarized or unpolarized light. In this specification, "linearly polarized irradiation" and "unpolarized irradiation" refer to operations for causing a photoreaction in a photo-oriented material. The wavelength of light used varies depending on the photo-oriented material used and is not particularly limited as long as it is the wavelength necessary for the photoreaction. The peak wavelength of the light used for irradiation is preferably 200 nm to 700 nm, and ultraviolet light with a peak wavelength of 400 nm or less is more preferred.

[0069] Light sources used for light irradiation include commonly used light sources such as lamps like tungsten lamps, halogen lamps, xenon lamps, xenon flash lamps, mercury lamps, mercury xenon lamps, and carbon arc lamps; various lasers [e.g., semiconductor lasers, helium-neon lasers, argon ion lasers, helium-cadmium lasers, and YAG (yttrium-aluminum-garnet) lasers]; light-emitting diodes; and cathode ray tubes.

[0070] Methods for obtaining linearly polarized light include using polarizers (e.g., iodine polarizers, dichroic dye polarizers, and wire grid polarizers), using prism-type elements (e.g., Grant-Thomson prisms) or reflective polarizers utilizing the Brewster angle, or using light emitted from a polarized laser light source. Alternatively, filters or wavelength conversion elements may be used to selectively irradiate only the light of the required wavelength.

[0071] When linearly polarized light is used, the light is irradiated from the top or back surface of the alignment film, perpendicular or oblique to the surface of the alignment film. The angle of incidence of the light varies depending on the photo-alignment material, but is preferably 0 to 90° (perpendicular), and preferably 40 to 90°. In the case of non-polarized light, the orientation film is irradiated with non-polarized light from an oblique angle. The incident angle is preferably 10 to 80°, more preferably 20 to 60°, and even more preferably 30 to 50°. The irradiation time is preferably 1 to 60 minutes, and more preferably 1 to 10 minutes.

[0072] If patterning is required, a method can be employed in which light irradiation using a photomask is performed the number of times necessary to create the pattern, or a method can be employed in which the pattern is written by laser scanning.

[0073] [Light-absorbing anisotropic layer] As explained above, the light-absorbing anisotropic layer is omitted from this explanation.

[0074] [λ / 4 plate] A "λ / 4 plate" is 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). For example, a single-layer structure of the λ / 4 plate can be a stretched polymer film or a phase difference film on which a light-absorbing anisotropic layer having λ / 4 functionality is provided on a support. A multi-layer structure of the λ / 4 plate can be a broadband λ / 4 plate formed by laminating a λ / 4 plate and a λ / 2 plate. The λ / 4 plate and the light-absorbing anisotropic layer may be in contact with each other, or other layers may be provided between the λ / 4 plate and the light-absorbing anisotropic layer. Examples of such layers include adhesive or bonding layers for ensuring adhesion, and barrier layers.

[0075] [Barrier layer] When the laminate of the present invention has a barrier layer, it is preferable that the barrier layer be provided between the light-absorbing anisotropic layer and the λ / 4 plate. However, if there is another layer other than the barrier layer (for example, an adhesive layer or bonding layer) between the light-absorbing anisotropic layer and the λ / 4 plate, the barrier layer can be provided, for example, between the light-absorbing anisotropic layer and the other layer. The barrier layer, also known as the gas barrier layer (oxygen barrier layer), has the function of protecting the light-absorbing anisotropic layer from gases such as oxygen in the atmosphere, moisture, or compounds contained in adjacent layers. For information regarding the barrier layer, please refer to 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.

[0076] [Application] The laminate of the present invention can be used as a polarizing element (polarizing plate), and can be used, for example, as a linear polarizing plate or a circular polarizing plate. If the laminate of the present invention does not have the above-mentioned λ / 4 plate, the laminate can be used as a linear polarizing plate. On the other hand, if the laminate of the present invention has the above-mentioned λ / 4 plate, the laminate can be used as a circular polarizing plate.

[0077] [Image display device] The image display device of the present invention has the above-described light-absorbing anisotropic layer of the present invention or the above-described laminate of the present invention. The display elements used in the image display device of the present invention are not particularly limited, and examples include liquid crystal cells, organic electroluminescent (hereinafter abbreviated as "EL") display panels, and plasma display panels. Of these, a liquid crystal cell or an organic EL display panel is preferred, and a liquid crystal cell is more preferred. In other words, the image display device of the present invention is preferably a liquid crystal display device using a liquid crystal cell as a display element, and preferably an organic EL display device using an organic EL display panel as a display element, and more preferably a liquid crystal display device.

[0078] [Liquid crystal display device] A preferred example of a liquid crystal display device, which is an image display device of the present invention, is one having the above-described light-absorbing anisotropic layer and a liquid crystal cell. More preferably, it is a liquid crystal display device having the above-described laminate (however, excluding the λ / 4 plate) and a liquid crystal cell. In this invention, it is preferable to use the light-absorbing anisotropic layer (laminated structure) of the present invention as the polarizing element on the front side of the light-absorbing anisotropic layer (laminated structure) provided on both sides of the liquid crystal cell, and it is more preferable to use the light-absorbing anisotropic layer (laminated structure) of the present invention as the polarizing elements on both the front and rear sides. The following provides a detailed description of the liquid crystal cells that make up a liquid crystal display device.

[0079] <Liquid crystal cell> The liquid crystal cells used in liquid crystal display devices are preferably in VA (Vertical Alignment) mode, OCB (Optically Compensated Bend) mode, IPS (In-Plane-Switching) mode, or TN (Twisted Nematic) mode, but are not limited to these. In TN mode liquid crystal cells, when no voltage is applied, the rod-shaped liquid crystal molecules are substantially horizontally oriented and further twisted to a 60-120° angle. TN mode liquid crystal cells are the most widely used in color TFT (Thin Film Transistor) liquid crystal display devices and are described in numerous publications. In VA mode liquid crystal cells, rod-shaped liquid crystalline molecules are substantially oriented vertically when no voltage is applied. VA mode liquid crystal cells include (1) narrowly defined VA mode liquid crystal cells in which rod-shaped liquid crystalline molecules are substantially oriented vertically when no voltage is applied and substantially oriented horizontally when voltage is applied (described in Japanese Patent Publication No. 2-176625), (2) multi-domain liquid crystal cells (MVA mode) in which the VA mode is multi-domain to expand the viewing angle (described in SID97, Digest of tech.Papers (Proceedings) 28 (1997) 845), (3) liquid crystal cells in a mode (n-ASM mode) in which rod-shaped liquid crystalline molecules are substantially oriented vertically when no voltage is applied and twisted multi-domain orientation when voltage is applied (described in the Proceedings of the Japan Liquid Crystal Symposium 58-59 (1998)), and (4) SURVIVAL mode liquid crystal cells (presented at LCD International 98). Furthermore, it may be any of the following types: PVA (Patterned Vertical Alignment), Optical Alignment, or PSA (Polymer-Sustained Alignment). Details of these modes are described in detail in Japanese Patent Publication No. 2006-215326 and Japanese Patent Publication No. 2008-538819. In IPS mode liquid crystal cells, rod-shaped liquid crystal molecules are oriented substantially parallel to the substrate, and when an electric field parallel to the substrate surface is applied, the liquid crystal molecules respond in a planar manner. In IPS mode, black is displayed when no electric field is applied, and the absorption axes of the pair of upper and lower polarizers are orthogonal. Methods for reducing light leakage when displaying black at an oblique angle and improving the viewing angle using an optical compensation sheet are disclosed in Japanese Patent Publication No. 10-54982, Japanese Patent Publication No. 11-202323, Japanese Patent Publication No. 9-292522, Japanese Patent Publication No. 11-133408, Japanese Patent Publication No. 11-305217, and Japanese Patent Publication No. 10-307291, among others.

[0080] [Organic EL display device] As an example of an organic EL display device, which is an image display device of the present invention, a preferred embodiment is one in which, from the viewing side, a light-absorbing anisotropic layer, a λ / 4 plate, and an organic EL display panel are arranged in this order. More preferably, the laminate having the above-described laminate having a λ / 4 plate and an organic EL display panel are arranged in this order from the viewing side. In this case, the laminate is arranged in the following order from the viewing side: a substrate, an alignment film provided as needed, a light-absorbing anisotropy layer, a barrier layer provided as needed, and a λ / 4 plate. Furthermore, an organic EL display panel is a display panel constructed using an organic EL element in which an organic light-emitting layer (organic electroluminescent layer) is sandwiched between electrodes (between the cathode and the anode). The configuration of the organic EL display panel is not particularly limited, and known configurations can be adopted. [Examples]

[0081] 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.

[0082] [Example 1] [Fabrication of alignment films] A 40 μm thick TAC substrate (TG40, manufactured by Fujifilm Corporation) that had undergone saponification treatment was coated with an alignment film coating solution 1 of the following composition using a #17 wire bar. Subsequently, a polyvinyl alcohol (PVA) oriented film was obtained on the TAC substrate by drying with hot air at 110°C for 2 minutes. Modified polyvinyl alcohol was added to the orientation film coating solution so that the solid content concentration was 4% by mass. ------------------------------------------------------------------ Composition of alignment film coating solution 1 ------------------------------------------------------------------ • Modified vinyl alcohol (PVA-1 below) 2.00 parts by mass ·Water 74.08 parts by mass • Methanol 23.86 parts by mass • Photopolymerization initiator (IRGACURE2959, manufactured by BASF) 0.06 parts by mass ------------------------------------------------------------------

[0083] Modified polyvinyl alcohol [ka]

[0084] [Fabrication of light-absorbing anisotropic layers] The obtained orientation film was subjected to a rubbing treatment once (roller rotation speed: 1000 rpm / spacer thickness 1.8 mm, stage speed 1.8 m / min), and then the light-absorbing anisotropic layer formation composition 1 with the following composition was applied with a #7 wire bar to form the coated film 1. Next, the coated film 1 was heated at 140°C for 30 seconds, and then cooled to 60°C. Subsequently, using a high-pressure mercury lamp at 60°C, the illuminance was 28 mW / cm². 2 A light-absorbing anisotropic layer 1 was fabricated on the oriented film by irradiating it for 60 seconds under the specified irradiation conditions. ------------------------------------------------------------------ Composition of composition 1 for forming a light-absorbing anisotropic layer ------------------------------------------------------------------ • 11.994 parts by mass of the following liquid crystal compound A1 • Compound B1 (listed below): 0.121 parts by mass • The following dichroic substance Y1: 0.337 parts by mass • The following dichroic substance M1: 0.337 parts by mass • The following dichroic substance C1: 0.337 parts by mass • 0.067 parts by mass of the following interface modifier F1 • Polymerization initiator I1 (IRGACURE369, manufactured by BASF) 0.808 parts by mass Tetrahydrofuran 43,000 parts by mass Cyclopentanone 43,000 parts by mass ------------------------------------------------------------------

[0085] [Examples 2-9] Light-absorbing anisotropic layers 2 to 9 were prepared in the same manner as in Example 1, except that light-absorbing anisotropic layer-forming compositions 2 to 9 were used, which were obtained by changing the composition of light-absorbing anisotropic layer-forming composition 1 to the compositions shown in Table 1 below.

[0086] [Comparative Examples 1-3] Light-absorbing anisotropic layers 1C to 3C were prepared in the same manner as in Example 1, except that light-absorbing anisotropic layer-forming compositions 1C to 3C were used, which were obtained by changing the composition of light-absorbing anisotropic layer-forming composition 1 to the compositions shown in Table 1 below.

[0087] [evaluation] [Surface shape] With a linear polarizer inserted into the light source side of an optical microscope (Nikon Corporation, product name "ECLIPSE E600 POL"), the anisotropic light-absorbing layers of the examples and comparative examples were set on the sample stage. The set anisotropic light-absorbing layers were observed using a microscope with a 10x objective lens. For each anisotropic light-absorbing layer, observations were performed at 10 arbitrarily selected locations, and the planar surface of the anisotropic light-absorbing layer was evaluated based on the evaluation criteria below. The results are shown in Table 1 below. <Evaluation Criteria> A: Defects were observed in 3 or fewer of the 10 locations observed. B: Defects were observed in 4 to 8 out of the 10 locations observed. C: Defects were observed in 9 or more of the 10 locations observed.

[0088] [Orientation degree] With a linear polarizer inserted into the light source side of an optical microscope (Nikon Corporation, product name "ECLIPSE E600 POL"), the optical absorption anisotropy layers of the examples and comparative examples were set on the sample stage. Using a multi-channel spectrometer (Ocean Optics, product name "QE65000"), the absorbance of each optical absorption anisotropy layer in the wavelength range of 380 to 780 nm was measured at 1 nm intervals. The degree of orientation of each optical absorption anisotropy layer in the 400 to 700 nm range was calculated using the following formula, and the degree of orientation of the optical absorption anisotropy layers was evaluated based on the evaluation criteria below. The results are shown in Table 1 below. Orientation degree: S=((Az0 / Ay0)-1) / ((Az0 / Ay0)+2) Az0: Absorbance of the dye film for polarization in the direction of absorption axis Ay0: Absorbance of the dye film for polarization in the direction of polarization axis. In the above formula, "Az0" represents the absorbance for polarization in the direction of the polarizer's absorption axis, and "Ay0" represents the absorbance for polarization in the direction of the polarizer's polarization axis. <Evaluation Criteria> A: Orientation level is 0.89 or higher B: Orientation level is 0.83 or higher, and less than 0.89. C: Orientation degree is less than 0.83

[0089] [Table 1]

[0090] The components indicated by symbols in Table 1 above are shown below.

[0091] Liquid crystal compound A1 [ka]

[0092] Liquid crystal compound A2

change

[0093] Liquid crystal compound A3

change

[0094] Compound B1

change

[0095] Compound B2

change

[0096] Compound B3

change

[0097] Compound B4

change

[0098] Compound B5

change

[0099] Compound B6

change

[0100] Dichroic substance Y1

change

[0101] Dichroic substance Y2

change

[0102] Dichroic substance M1

change

[0103] Dichroic substance M2

change

[0104] Dichroic substance M3

change

[0105] Dichroic substance M4

change

[0106] dichroic substance C1

change

[0107] dichroic substance C2

change

[0108] dichroic substance C3

change

[0109] Interface improvement F1 [ka]

[0110] From the results shown in Table 1 above, it was found that when compound B was a compound that did not have the SP3 structure in formula (II) above, both the planarity and degree of orientation of the light absorption anisotropy layer were inferior (Comparative Examples 1-3). In contrast, when compound B, represented by formula (II), is combined with liquid crystal compound A, represented by formula (I), it was found that both the planarity and orientation of the light-absorbing anisotropy layer are good (Examples 1-9). In particular, a comparison of Examples 1 to 3 revealed that when the structure represented by -(Ma-La)na- in formula (I) and the structures represented by -(Mb-Lb)nb- and -(Mc-Lc)nc- in formula (II) are identical, the planar surface of the light-absorbing anisotropy layer is improved. Furthermore, a comparison of Examples 4 to 6 revealed that when the ratio of the mass of compound B to the mass of liquid crystal compound A (mass ratio) is 0.001 to 0.04, the planar surface of the formed light-absorbing anisotropic layer is better and the degree of orientation is higher. Furthermore, a comparison between Example 8 and Example 9 revealed that when both Q1 and Q2 in formula (II) are polymerizable groups, the planar surface of the formed light-absorbing anisotropic layer is improved.

Claims

1. A liquid crystal composition comprising liquid crystal compound A represented by the following formula (I), compound B represented by the following formula (II), and a dichroic substance. Q1-V1-SP1-X1-(Ma-La)na-X2-SP2-V2-Q2 (I) Q1-V1-SP1-X1-(Mb-Lb)nb-SP3-(Mc-Lc)nc-X2-SP2-V2-Q2 (II) Here, in equations (I) and (II), Q1 and Q2 each independently represent a hydrogen atom or a monovalent organic group. V1, V2, X1, and X2 each independently represent a single bond or a divalent linking group. SP1 and SP2 each independently represent a divalent spacer group. SP3 represents a divalent linear spacer group having three or more atoms constituting the main chain of the bonding and two or more carbon atoms. na, nb, and nc each independently represent an integer between 2 and 10. Ma, Mb, and Mc each independently represent an aromatic ring, aliphatic ring, or heterocycle, which may have substituents. However, multiple Mas may be the same or different, multiple Mbs may be the same or different, and multiple Mcs may be the same or different. La represents a single bond or a divalent linking group. However, multiple Las may be the same or different. Furthermore, when La between Mas represents a divalent linking group, it excludes divalent linking groups consisting of a divalent linear spacer group having 3 or more atoms constituting the main chain of the bond and 2 or more carbon atoms. Lb and Lc each independently represent a single bond or a divalent linking group. However, multiple Lb and Lc may be the same or different.

2. The liquid crystal composition according to claim 1, wherein at least one of the liquid crystal compound A and the compound B is a compound that exhibits a liquid crystal state in the smectic phase.

3. The liquid crystal composition according to claim 1 or 2, wherein the ratio of the mass of compound B to the mass of liquid crystal compound A is 0.001 to 0.

04.

4. The liquid crystal composition according to any one of claims 1 to 3, wherein the structure represented by -(Ma-La)na- in formula (I) and the structure represented by -(Mb-Lb)nb- in formula (II) are the same structure.

5. The liquid crystal composition according to any one of claims 1 to 4, wherein the structure represented by -(Ma-La)na- in formula (I) and the structure represented by -(Mc-Lc)nc- in formula (II) are the same structure.

6. A light-absorbing anisotropic layer formed from the liquid crystal composition according to any one of claims 1 to 5.

7. A laminate comprising a substrate, an orientation film provided on the substrate, and a light-absorbing anisotropic layer according to claim 6 provided on the orientation film.

8. An image display device having the light-absorbing anisotropic layer described in claim 6, or the laminate described in claim 7.

Citation Information

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