Liquid crystal alignment agent, liquid crystal alignment film, and liquid crystal display element

The liquid crystal alignment agent, featuring a specific polymer component, addresses the issues of vibration bright dots and AC afterimages in liquid crystal display elements, particularly those using the IPS and FFS methods, by enhancing film strength and alignment regulating force.

WO2025121189A1PCT designated stage expired Publication Date: 2025-06-12NISSAN CHEM CORP
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Patent Information

Application Number
PCT/JP2024/041624
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2023-12-08
Filing Date
2024-11-25
Publication Date
2025-06-12

AI Technical Summary

Technical Problem

Conventional liquid crystal alignment agents fail to effectively prevent vibration bright dots and AC afterimages in large-sized liquid crystal display elements, particularly those using the IPS and FFS methods.

Method used

A liquid crystal alignment agent comprising a specific polymer component, including a polyimide precursor and a diamine component, which enhances the film strength and alignment regulating force of the liquid crystal alignment film.

Benefits of technology

The proposed liquid crystal alignment agent significantly reduces vibration bright dots and effectively suppresses AC afterimages, ensuring higher display quality and stability in liquid crystal display elements.

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Abstract

Provided is a liquid crystal alignment agent from which it is possible to obtain a liquid crystal alignment film that exhibits excellent film strength, has few vibration-induced bright spots, and prevents AC afterimages at a high level. The liquid crystal alignment agent contains a polymer (P) and a polymer (B). Polymer (P): At least one polymer selected from the group consisting of polyimide precursors and polyimides obtained by using a diamine component and a tetracarboxylic acid component containing at least one substance selected from the group consisting of tetracarboxylic dianhydrides represented by formula (1) and derivatives thereof. Polymer (B): At least one polymer selected from the group consisting of polyimide precursors and polyimides obtained by using a diamine component and a tetracarboxylic acid component containing at least one substance selected from the group consisting of tetracarboxylic dianhydrides represented by formula (T2) and derivatives thereof. (In the formula, the meaning of each symbol is as defined in the description.)
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Description

Liquid crystal alignment agent, liquid crystal alignment film, and liquid crystal display element

[0001] The present invention relates to a liquid crystal aligning agent, a liquid crystal alignment film, and a liquid crystal display element.

[0002] Liquid crystal display devices are widely used as display units for personal computers, smartphones, mobile phones, televisions, etc. Liquid crystal display devices typically include a liquid crystal layer sandwiched between a display element substrate and a color filter substrate, pixel electrodes and a common electrode that apply an electric field to the liquid crystal layer, an alignment film that controls the alignment of liquid crystal molecules in the liquid crystal layer, and thin film transistors (TFTs) that switch electric signals supplied to the pixel electrodes. Known driving methods for liquid crystal molecules include vertical electric field methods such as the TN method and the VA method, and horizontal electric field methods such as the IPS (In Plane Switching) driving method and the FFS (Fringe Field Switching) driving method.

[0003] The most widely used liquid crystal alignment films in industry are produced by rubbing the surface of a film made of polyamic acid and / or imidized polyimide formed on an electrode substrate in one direction with a cloth such as cotton, nylon, or polyester. Rubbing is a simple, highly productive, and industrially useful method. As an alternative to rubbing, a photoalignment method is known, in which liquid crystal alignment ability is imparted by irradiating with polarized radiation. Proposed photoalignment methods include those utilizing photoisomerization reactions, photocrosslinking reactions, and photodecomposition reactions (see, for example, Non-Patent Document 1, Patent Documents 1 and 2).

[0004] Japanese Patent Laid-Open No. 9-297313 Japanese Patent Laid-Open No. 2004-206091

[0005] "Functional Materials," November 1997, Vol. 17, No. 11, pp. 13-22

[0006] In recent years, the size of mother glass for liquid crystal displays has become significantly larger, currently reaching 10.5 generation (approximately 3000 mm x 3400 mm), resulting in significant deflection due to vibration during transportation. Furthermore, for applications such as mobile displays and large-screen televisions, thinner displays are becoming increasingly common, and a process of polishing and thinning completed liquid crystal display panels (also known as a slimming process) is sometimes performed. This has resulted in collisions between components within the liquid crystal display panel, resulting in abrasion of the liquid crystal alignment film, resulting in display defects such as bright spots (hereinafter also referred to as oscillating bright spots). The inventors' investigations revealed that liquid crystal display elements fabricated using conventional liquid crystal alignment agents are prone to abrasion of the liquid crystal alignment film and oscillating bright spots. Therefore, liquid crystal alignment agents containing two types of polymers were investigated. Although these agents somewhat improved the abrasion of the liquid crystal alignment film and oscillating bright spots, they were unable to find any that fully resolved these issues. Furthermore, demands for higher quality liquid crystal display elements are increasing more than ever before, and liquid crystal alignment films used in liquid crystal display elements, such as those in the IPS and FFS modes, require high alignment control power to suppress image retention (hereinafter also referred to as AC image retention) that occurs due to long-term AC driving. In light of the above, an object of the present invention is to provide a liquid crystal aligning agent capable of obtaining a liquid crystal alignment film with excellent film strength and few vibrating bright spots, a liquid crystal alignment film obtained from the liquid crystal aligning agent, and a liquid crystal display element using the liquid crystal alignment film. Another object of the present invention is to provide a liquid crystal aligning agent capable of obtaining a liquid crystal alignment film that suppresses AC image retention to a high level, the liquid crystal alignment film, and a liquid crystal display element using the liquid crystal alignment film.

[0007] The present inventors have conducted extensive research and have found that the above problems can be solved by using a liquid crystal aligning agent containing a specific polymer component, thereby completing the present invention.

[0008] Specifically, the present invention has the following aspects.

[0009] A liquid crystal aligning agent comprising the following polymer (P) and polymer (B): Polymer (P): At least one polymer selected from the group consisting of polyimide precursors obtained using a tetracarboxylic acid component containing at least one selected from the group consisting of tetracarboxylic acid dianhydrides represented by the following formula (1) and derivatives thereof and a diamine component, and polyimides which are imidized products of the polyimide precursors. Polymer (B): A polymer different from polymer (P), and at least one polymer selected from the group consisting of polyimide precursors obtained using a tetracarboxylic acid component containing at least one selected from the group consisting of tetracarboxylic acid dianhydrides represented by the following formula (T2) and derivatives thereof and a diamine component, and polyimides which are imidized products of the polyimide precursors.

[0010]

[0011] (In formula (1), R 1 ~R 4 each independently represents a hydrogen atom, a halogen atom, an alkyl group having 1 to 6 carbon atoms, an alkenyl group having 2 to 6 carbon atoms, an alkynyl group having 2 to 6 carbon atoms, a monovalent organic group having 1 to 6 carbon atoms and containing a fluorine atom, or a phenyl group; R 1 ~R 4 At least one of represents a group other than a hydrogen atom as defined above.)

[0012]

[0013] Throughout this specification, examples of halogen atoms include fluorine atoms, chlorine atoms, bromine atoms, and iodine atoms, and * represents a bond. Boc represents a tert-butoxycarbonyl group. "tert-" is also referred to as "t-". Fmoc represents a 9-fluorenylmethyloxycarbonyl group.

[0014] By using the liquid crystal aligning agent of the present invention, a liquid crystal alignment film having excellent film strength and few vibrating bright spots can be obtained, and a liquid crystal alignment film capable of suppressing AC afterimages to a high level can also be obtained.

[0015] 1 is a schematic cross-sectional view showing an example of a lateral electric field mode liquid crystal display element of the present invention, and FIG. 2 is a schematic cross-sectional view showing another example of a lateral electric field mode liquid crystal display element of the present invention.

[0016] <Polymer (P)> The liquid crystal aligning agent of the present invention contains a tetracarboxylic acid component (also referred to as a specific alicyclic tetracarboxylic acid component (p) in the present invention) containing at least one selected from the group consisting of tetracarboxylic acid dianhydrides represented by the above formula (1) and derivatives thereof, and at least one polymer (P) selected from the group consisting of polyimide precursors obtained using a diamine component and polyimides which are imidized products of the polyimide precursors. The polymer (P) may be one type or two or more types. Here, the polyimide precursor is a polymer from which a polyimide can be obtained by imidizing a polyamic acid, a polyamic acid ester, or the like.

[0017] (Tetracarboxylic Acid Component) The polyamic acid (P'), which is a polyimide precursor of the polymer (P), can be obtained, for example, by a polymerization reaction between a diamine component and a tetracarboxylic dianhydride component represented by the above formula (1). When producing the polymer (P), the tetracarboxylic acid component to be reacted with the diamine component can be not only a tetracarboxylic dianhydride but also a derivative of a tetracarboxylic dianhydride such as a tetracarboxylic acid, a tetracarboxylic dihalide, a tetracarboxylic acid dialkyl ester, or a tetracarboxylic acid dialkyl ester dihalide. The R 1 ~R 4 Specific examples of the alkyl group having 1 to 6 carbon atoms in the above R include a methyl group, an ethyl group, a propyl group, an isopropyl group, an n-butyl group, an isobutyl group, a sec-butyl group, a tert-butyl group, and an n-pentyl group. 1 ~R 4 Specific examples of the alkenyl group having 2 to 6 carbon atoms in the above R include a vinyl group, a propenyl group, and a butenyl group, which may be linear or branched. 1 ~R 4 Specific examples of the alkynyl group having 2 to 6 carbon atoms in the above R include an ethynyl group, a 1-propynyl group, a 2-propynyl group, a 1-butynyl group, a 2-butynyl group, and a 3-butynyl group. 1 ~R 4In the above formula, examples of the monovalent organic group having 1 to 6 carbon atoms and containing a fluorine atom include a fluoromethyl group, a trifluoromethyl group, a pentafluoroethyl group, a pentafluoropropyl group, a trifluoromethoxy group, a 2,2,2-trifluoroethyl group, and a 2,2,2-trifluoroethoxy group. 1 ~R 4 It is more preferable that at least two of R represent a group other than a hydrogen atom as defined above. 1 and R 4 represents a group other than a hydrogen atom, and R 2 and R 3 It is more preferable that R represents a hydrogen atom. 1 ~R 4 are each independently a hydrogen atom or a methyl group, and R 1 ~R 4 More preferably, at least one of R is a methyl group. 1 ~R 4 It is more preferred that at least two of R are methyl groups. 1 and R 4 is a methyl group, and R 2 and R 3 is a hydrogen atom.

[0018] Specific preferred examples of the tetracarboxylic acid dianhydride represented by the formula (1) or a derivative thereof include 1,2-dimethyl-1,2,3,4-cyclobutanetetracarboxylic acid dianhydride, 1,3-dimethyl-1,2,3,4-cyclobutanetetracarboxylic acid dianhydride, 1,3-dichloro-1,2,3,4-cyclobutanetetracarboxylic acid dianhydride, 1,2,3,4-tetramethyl-1,2,3,4-cyclobutanetetracarboxylic acid dianhydride, 1,3-difluoro-1,2,3,4-cyclobutanetetracarboxylic acid dianhydride, 1,3-bis(trifluoromethyl)-1,2,3,4-cyclobutanetetracarboxylic acid dianhydride, or derivatives thereof. The proportion of the specific alicyclic tetracarboxylic acid component (p) used is more preferably 10 mol% or more, even more preferably 20 mol% or more, and most preferably 50 mol% or more, relative to 1 mol of all tetracarboxylic acid components used in the polymer (P). The tetracarboxylic acid component used in the production of the polymer (P) may contain a tetracarboxylic acid component other than the specific alicyclic tetracarboxylic acid component (p) (hereinafter, also referred to as other tetracarboxylic acid component (p)).

[0019] When other tetracarboxylic acid components (p) are used in combination with the specific alicyclic tetracarboxylic acid component (p), the content of the specific alicyclic tetracarboxylic acid component (p) is preferably 95 mol% or less, and even more preferably 90 mol% or less, relative to 1 mol of all tetracarboxylic acid components used in the polymer (P). The content of the other tetracarboxylic acid components (p) is more preferably 5 mol% to 90 mol%, even more preferably 10 to 80 mol%, and most preferably 10 to 50 mol%, relative to 1 mol of all tetracarboxylic acid components used in the polymer (P). Examples of the other tetracarboxylic acid components (p) include acyclic aliphatic tetracarboxylic acid dianhydrides, alicyclic tetracarboxylic acid dianhydrides other than the tetracarboxylic acid dianhydride represented by formula (1), aromatic tetracarboxylic acid dianhydrides, and derivatives thereof. The acyclic aliphatic tetracarboxylic acid dianhydride is an acid dianhydride obtained by intramolecular dehydration of four carboxy groups bonded to a chain hydrocarbon structure. However, it is not necessary for the chain hydrocarbon structure to be composed solely of a chain hydrocarbon structure; it may also contain an alicyclic structure or an aromatic ring structure as part of the chain hydrocarbon structure.

[0020] The alicyclic tetracarboxylic acid dianhydride is an acid dianhydride obtained by intramolecular dehydration of four carboxy groups, including at least one carboxy group bonded to an alicyclic structure. However, none of these four carboxy groups are bonded to an aromatic ring. Furthermore, it is not necessary for the structure to be composed solely of an alicyclic structure, and it may also have a chain hydrocarbon structure or an aromatic ring structure as part of it. The aromatic tetracarboxylic acid dianhydride is not particularly limited as long as it is an acid dianhydride obtained by intramolecular dehydration of four carboxy groups, including at least one carboxy group bonded to an aromatic ring. The acyclic aliphatic or alicyclic tetracarboxylic acid dianhydride or a derivative thereof is preferably a tetracarboxylic acid dianhydride having at least one partial structure selected from the group consisting of a cyclopentane ring structure and a cyclohexane ring structure, or a derivative thereof, from the viewpoint of enhancing liquid crystal alignment. The aromatic tetracarboxylic acid dianhydride or a derivative thereof is preferably a tetracarboxylic acid dianhydride having a benzene ring structure, or a derivative thereof, from the viewpoint of enhancing liquid crystal alignment.

[0021] Specific examples of the tetracarboxylic acid dianhydride or a derivative thereof that can be used in the other tetracarboxylic acid component (p) include the following: 1,2,3,4-butanetetracarboxylic acid dianhydride, or (Q) 2 -A (Q represents a monovalent succinic anhydride structure, and A represents -CH 2 -, an alkylene group having 2 to 18 carbon atoms, or -CH contained in the alkylene group 2represents a divalent organic group in which a portion of - is replaced by at least one group selected from the group consisting of a phenylene group, -O-, -NR- (R represents a hydrogen atom or a methyl group), -C(=O)-NR- (R represents a hydrogen atom or a methyl group), -C(=O)-O-, and -O-C(=O)-.acyclic aliphatic tetracarboxylic acid dianhydrides such as 1,2,3,4-cyclobutane tetracarboxylic acid dianhydride, 1,2,3,4-cyclopentane tetracarboxylic acid dianhydride, 1,2,4,5-cyclohexane tetracarboxylic acid dianhydride, 3,3',4,4'-dicyclohexyl tetracarboxylic acid dianhydride, 2,3,5-tricarboxycyclopentyl acetic acid dianhydride, 4-(2,5-dioxotetrahydrofuran-3-yl)tetrahydronaphthalene-1,2-dicarboxylic acid anhydride, 5-(2,5-dioxotetrahydrofuran- 5-(2,5-dioxotetrahydrofuran-3-yl)-8-methyl-3a,4,5,9b-tetrahydronaphtho[1,2-c]furan-1,3-dione, 5-(2,5-dioxotetrahydrofuran-3-yl)-8-methyl-3a,4,5,9b-tetrahydronaphtho[1,2-c]furan-1,3-dione, bicyclo[2.2.2]oct-7-ene-2,3,5,6-tetracarboxylic dianhydride, bicyclo[2.2.2]octane-2,3,5,6-tetracarboxylic dianhydride, 2,4,6,8-tetracarboxybicyclo[3.3.0]octane-2:4,6:8-dianhydride Alicyclic tetracarboxylic dianhydrides such as pyromellitic dianhydride, 3,3',4,4'-benzophenonetetracarboxylic dianhydride, 3,3',4,4'-diphenylsulfonetetracarboxylic dianhydride, 1,4,5,8-naphthalenetetracarboxylic dianhydride, 2,3,6,7-naphthalenetetracarboxylic dianhydride, 3,3',4,4'-diphenylethertetracarboxylic dianhydride, 3,3',4,4'-biphenyltetracarboxylic dianhydride, 2,2',3,3'-biphenyltetracarboxylic dianhydride, 4,4 aromatic tetracarboxylic acid dianhydrides such as 4,4'-bis(3,4-dicarboxyphenoxy)-2,2-diphenylpropane dianhydride, ethylene glycol bisanhydrotrimellitate, 4,4'-(hexafluoroisopropylidene)diphthalic anhydride, 4,4'-carbonyldiphthalic anhydride, 4,4'-(1,4-phenylenedioxy)bis(phthalic anhydride), or 4,4'-(1,4-phenylenedimethylene)bis(phthalic anhydride); and also tetracarboxylic acid dianhydrides described in JP 2010-97188 A.

[0022] (Diamine Component) The diamine component used in the production of the polymer (P) contains a compound having at least two amino groups in the molecule (hereinafter also referred to as diamine (p)). The content of diamine (p) in the diamine component is preferably 5 mol% or more, and more preferably 10 mol% or more, per mole of the diamine component used in the production of the polymer (P). Furthermore, the content of diamine (p) in the diamine component may be 95 mol% or less, 90 mol% or less, or 85 mol% or less, per mole of the diamine component used in the production of the polymer (P).

[0023] Examples of diamine (p) include, but are not limited to, the following. The diamine (p) may be used singly, in combination of two or more, or in combination of three or more. Phenylenediamines such as p-phenylenediamine, 2,3,5,6-tetramethyl-p-phenylenediamine, 2,5-dimethyl-p-phenylenediamine, m-phenylenediamine, 2,4-dimethyl-m-phenylenediamine, 2,5-diaminotoluene, and 2,6-diaminotoluene; 2,2'-dimethyl-4,4'-diaminobiphenyl; 3,3'-dimethyl-4,4'-diaminobiphenyl; 3,3'-dimethoxy-4,4'-diaminobiphenyl; 3,3'-dihydroxy-4,4'- diaminobiphenyl compounds such as diaminobiphenyl, 2,2'-difluoro-4,4'-diaminobiphenyl, 3,3'-difluoro-4,4'-diaminobiphenyl, 2,2'-bis(trifluoromethyl)-4,4'-diaminobiphenyl, 3,3'-bis(trifluoromethyl)-4,4'-diaminobiphenyl, 3,4'-diaminobiphenyl, 4,4'-diaminobiphenyl, 3,3'-diaminobiphenyl, 2,2'-diaminobiphenyl, and 2,3'-diaminobiphenyl; AL ) (preferably, a diamine represented by the following formula (d AL -1) to (d AL-8), 1,7-bis(4-aminophenoxy)heptane, 1,7-bis(3-aminophenoxy)heptane, 1,8-bis(4-aminophenoxy)octane, 1,8-bis(3-aminophenoxy)octane, 1,9-bis(4-aminophenoxy)nonane, 1,9-bis(3-aminophenoxy)nonane, 1,10-bis(4-aminophenoxy)decane, 1,10-bis(3-aminophenoxy)decane, decane, 1,11-bis(4-aminophenoxy)undecane, 1,11-bis(3-aminophenoxy)undecane, 1,12-bis(4-aminophenoxy)dodecane, 1,12-bis(3-aminophenoxy)dodecane, 1,2-bis(6-amino-2-naphthyloxy)ethane, 1,2-bis(6-amino-2-naphthyl)ethane, or 6-[2-(4-aminophenoxy)ethoxy]-2-naphthylamine), a compound represented by the following formula (d BZ -1) to (d BZdiamines having a diphenyl ether structure such as 1,4-bis(4-aminophenoxy)benzene, 1,3-bis(4-aminophenoxy)benzene, 1,4-bis(4-aminophenyl)benzene, 1,3-bis(4-aminophenyl)benzene, 4,4'-bis(4-aminophenoxy)biphenyl, 4,4'-bis(4-aminophenoxy)diphenyl ether, and 1,4-bis[4-(4-aminophenoxy)phenoxy]benzene (hereinafter, these are collectively referred to as first diamines having a tetracarboxylic acid diimide structure, such as N,N'-bis(4-aminophenyl)-cyclobutane-(1,2,3,4)-tetracarboxylic acid diimide, N,N'-bis(4-aminophenyl)-1,3-dimethylcyclobutane-(1,2,3,4)-tetracarboxylic acid diimide, and N,N'-bis(2,2'-bis(trifluoromethyl)-4'-amino-1,1'-biphenyl-4-yl)-cyclobutane-(1,2,3,4)-tetracarboxylic acid diimide;aromatic diamines having an azobenzene structure such as 4,4'-diaminoazobenzene, aromatic diamines having a stilbene structure such as 4,4'-diaminostilbene, aromatic diamines having a tolan structure such as diaminotlan, aromatic diamines having a chalcone structure such as 4,4'-diaminochalcone, aromatic diamines having a phenylbenzoate structure such as 1,4-phenylenebis(4-aminobenzoate), 1,4-phenylenebis(3-aminobenzoate), 1,3-phenylenebis(4-aminobenzoate), 1,3-phenylenebis(3-aminobenzoate), bis(4-aminophenyl)terephthalate, bis(3-aminophenyl)terephthalate, bis(4-aminophenyl)isophthalate, bis(3-aminophenyl)isophthalate, or (E)-4-aminophenyl 3-(4-aminophenyl)acrylate, (E)-4-amino-2-methylphenyl 3-(4-aminophenyl)acrylate, (E)-4-aminophenethyl Diamines having a photoalignment group, typified by aromatic diamines having a cinnamate structure, such as 3-(4-aminophenyl)acrylate, (E,E)-bis-(4'-aminophenyl) 1,3-benzenediacrylate, (E,E)-bis-(4'-aminophenyl) 1,4-benzenediacrylate, or 4-aminophenyl (2E)-3-(4-aminophenyl)-2-methyl-2-propenoate; diamines having a photopolymerizable group at the terminal, such as 2-(2,4-diaminophenoxy)ethyl methacrylate or 2,4-diamino-N,N-diallylaniline; 1-(4-(2-(2,4-diaminophenoxy)ethoxy)phenyl)-2-hydroxy-2-methylpropanone, 2-(4-(2-hydroxy-2-methylpropanoyl)phenoxy)ethyl Diamines having a radical polymerization initiator function, such as 3,5-diaminobenzoate; diamines having an amide bond, such as 4,4'-diaminobenzanilide; and diamines having a urea bond, such as 1,3-bis(4-aminophenyl)urea, 1,3-bis(4-aminobenzyl)urea, and 1,3-bis(4-aminophenethyl)urea;2,2-bis[4-(4-aminophenoxy)phenyl]propane, 2,2-bis[4-(4-aminophenoxy)phenyl]hexafluoropropane, 2,2-bis(4-aminophenyl)hexafluoropropane, 2,2-bis(3-aminophenyl)hexafluoropropane, 2,2-bis(3-amino-4-methylphenyl)hexafluoropropane, 2,2-bis(4-aminophenyl)propane, 2,2-bis(3-aminophenyl)propane, 2,2-bis(3-aminophenyl)propane N-(4-methylphenyl)propane, 4,4'-diaminobenzophenone; 2,6-diaminopyridine, 3,4-diaminopyridine, 2,4-diaminopyrimidine, 3,6-diaminocarbazole, N-methyl-3,6-diaminocarbazole, 1,4-bis-(4-aminophenyl)-piperazine, 3,6-diaminoacridine, N-ethyl-3,6-diaminocarbazole, N-phenyl-3,6-diaminocarbazole, N-[3-(1H-imidazol-1-yl)propyl] Heterocycle-containing diamines such as 3,5-diaminobenzamide, 4-[4-[(4-aminophenoxy)methyl]-4,5-dihydro-4-methyl-2-oxazolyl]-benzenamine, or diamines represented by the following formulas (z-1) to (z-13), or 4,4'-diaminodiphenylamine, 4,4'-diaminodiphenyl-N-methylamine, diamines represented by the following formula (z-14), N,N'-bis(4-aminophenyl)-benzidine, N,N'-bis(4-aminophenyl)-N,N'-dimethylbenzidine, or N diamines having at least one nitrogen atom-containing structure selected from the group consisting of a nitrogen atom-containing heterocycle, a secondary amino group, and a tertiary amino group (hereinafter also referred to as a specific nitrogen atom-containing structure, provided that the specific nitrogen atom-containing structure is a functional group other than the two amino groups involved in the polycondensation reaction), typified by diamines having a diphenylamine structure such as N,N'-bis(4-aminophenyl)-N,N'-dimethyl-1,4-benzenediamine (provided that the molecule does not have an amino group bonded with a protecting group that is cleaved by heating and replaced with a hydrogen atom);2,4-diaminophenol, 3,5-diaminophenol, 3,5-diaminobenzyl alcohol, 2,4-diaminobenzyl alcohol, 4,6-diaminoresorcinol, 4,4'-diamino-3,3'-dihydroxybiphenyl; 2,4-diaminobenzoic acid, 2,5-diaminobenzoic acid, 3,5-diaminobenzoic acid, 4,4'-diaminobiphenyl-3-carboxylic acid, 4,4'-diaminodiphenylmethane-3-carboxylic acid, 1,2-bis(4-aminophenyl)ethane-3-carboxylic acid, 4,4'-diaminobiphenyl-3,3'-dicarboxylic acid diamines having a carboxy group such as 4,4'-diaminobiphenyl-2,2'-dicarboxylic acid, 3,3'-diaminobiphenyl-4,4'-dicarboxylic acid, 3,3'-diaminobiphenyl-2,4'-dicarboxylic acid, 4,4'-diaminodiphenylmethane-3,3'-dicarboxylic acid, 1,2-bis(4-aminophenyl)ethane-3,3'-dicarboxylic acid, 4,4'-diaminodiphenylether-3,3'-dicarboxylic acid; 4-(2-(methylamino)ethyl)aniline, 4-(2-aminoethyl)aniline, 1-(4-aminophenyl)-1, 3,3-trimethyl-1H-indan-5-amine, 1-(4-aminophenyl)-2,3-dihydro-1,3,3-trimethyl-1H-inden-6-amine; diamines having the group "-N(D)-" (D represents a protecting group which is eliminated by heating and replaced with a hydrogen atom, preferably a carbamate protecting group, more preferably a tert-butoxycarbonyl group) such as those of the following formulae (5-1) to (5-9), cholestanyloxy-3,5-diaminobenzene, cholestanyloxy-3,5-diaminobenzene, cholestanyloxy-2,4-diaminobenzene diamines having a steroid skeleton such as zene, cholestanyl 3,5-diaminobenzoate, cholestenyl 3,5-diaminobenzoate, lanostannyl 3,5-diaminobenzoate, and 3,6-bis(4-aminobenzoyloxy)cholestane, diamines represented by the following formulas (V-1) to (V-2); aromatic diamines typified by diamines having a fluorene skeleton such as 2,7-diaminofluorene or 9,9-bis(4-aminophenyl)fluorene; diamines having a siloxane bond such as 1,3-bis(3-aminopropyl)-tetramethyldisiloxane;acyclic aliphatic diamines typified by metaxylylenediamine, 1,3-propanediamine, tetramethylenediamine, pentamethylenediamine, hexamethylenediamine, etc.; alicyclic diamines typified by 1,3-bis(aminomethyl)cyclohexane, 1,4-diaminocyclohexane, 4,4'-methylenebis(cyclohexylamine), etc., as well as diamines in which two amino groups are bonded to a group represented by any one of formulas (Y-1) to (Y-167) described in WO2018 / 117239;

[0024]

[0025] (Ar 1 , and Ar 1’ represents a benzene ring, a biphenyl structure, or a naphthalene ring, and one or more hydrogen atoms on the benzene ring, the biphenyl structure, or the naphthalene ring may be substituted with a monovalent group. 1 and L 1’ respectively represent a single bond, —O—, —C(═O)—, or —O—C(═O)—. A is —CH 2 A represents an alkylene group having 2 to 12 carbon atoms, or a divalent organic group in which at least one of -O-, -C(=O)-O-, and -O-C(=O)- is inserted between the carbon-carbon bonds of the alkylene group. Any hydrogen atom possessed by A may be substituted with a halogen atom.

[0026] The above Ar 1 and Ar 1’ One or more hydrogen atoms on the benzene ring, biphenyl structure, or naphthalene ring may be substituted with a monovalent group, and examples of the monovalent group include a halogen atom, an alkyl group having 1 to 3 carbon atoms, an alkenyl group having 2 to 3 carbon atoms, an alkoxy group having 1 to 3 carbon atoms, a fluoroalkyl group having 1 to 3 carbon atoms, a fluoroalkenyl group having 2 to 3 carbon atoms, a fluoroalkoxy group having 1 to 3 carbon atoms, an alkyloxycarbonyl group having 2 to 3 carbon atoms, a cyano group, and a nitro group.

[0027]

[0028] (Formula (d AL In formula (d-1), k is an integer of 1 to 2. ALIn formula (d-2), the sum of l, m, and n is 1 to 12. AL In formula (d-5), the sum of m1, m2 and n is 1 to 12. AL In formula (d-7), the sum of m1, m2 and n is 3 to 12. AL In the formula (d-8), the sum of l, m, and n is 3 to 12. AL -1) to (d AL In -8), one or more hydrogen atoms on the benzene ring may be substituted with a monovalent group, and specific examples of the monovalent group include the above-mentioned Ar 1 and Ar 1’ Examples of the monovalent groups include those exemplified in

[0029]

[0030]

[0031]

[0032]

[0033]

[0034] In the formula (V-1), m and n are integers of 0 to 3, and satisfy the relationship 1≦m+n≦4. j is an integer of 0 or 1. X 1 is -(CH 2 ) a -(a is an integer of 1 to 15), -CONH-, -NHCO-, -CO-N(CH 3 )-, -NH-, -O-, -CH 2 O-, -CH 2 represents —OCO—, —COO—, or —OCO—. 1 represents a monovalent group such as a fluorine atom, a fluorine atom-containing alkyl group having 1 to 10 carbon atoms, a fluorine atom-containing alkoxy group having 1 to 10 carbon atoms, an alkyl group having 1 to 10 carbon atoms, an alkoxy group having 1 to 10 carbon atoms, or an alkoxyalkyl group having 2 to 10 carbon atoms. 2 is -O-, -CH 2 O-, -CH 2 m, n, and X represent —OCO—, —COO—, or —OCO—. 1 , R 1When two occur, each independently has the above definition.

[0035] Examples of the nitrogen-containing heterocycle that may be contained in the diamine having the specific nitrogen-containing structure include pyrrole, imidazole, pyrazole, triazole, pyridine, pyrimidine, pyridazine, pyrazine, indole, benzimidazole, purine, quinoline, isoquinoline, naphthyridine, quinoxaline, phthalazine, triazine, carbazole, acridine, piperidine, piperazine, pyrrolidine, and hexamethyleneimine. Among these, pyridine, pyrimidine, pyrazine, piperidine, piperazine, quinoline, carbazole, and acridine are preferred. From the viewpoint of obtaining a liquid crystal alignment film that suppresses AC image retention, it is preferable to use a diamine (p) selected from the group consisting of the first diamine, a diamine having a tetracarboxylic acid diimide structure, the diamine having an amide bond, the diamine having a urea bond, and a diamine having the group "-N(D)-". When two or more other diamines are contained, the content of each diamine constituting each of the other diamines may be 30 mol % or less.

[0036] <Polymer (B)> The liquid crystal aligning agent of the present invention contains at least one polymer (B) selected from the group consisting of a tetracarboxylic acid component (also referred to as a specific alicyclic tetracarboxylic acid component (b) in the present invention) containing at least one selected from the group consisting of tetracarboxylic acid dianhydrides represented by the above formula (T2) and derivatives thereof, and a diamine component. The polymer (B) may be one or more polymers selected from the group consisting of polyimide precursors obtained using the tetracarboxylic acid component and polyimides obtained by imidizing the polyimide precursor. The polymer (B) may be a single polymer or a polyamic acid ester. The polyimide precursor is a polymer that can be imidized to obtain a polyimide. When producing the polymer (B), the tetracarboxylic acid component to be reacted with the diamine component may be not only a tetracarboxylic acid dianhydride, but also a derivative of a tetracarboxylic acid dianhydride, such as a tetracarboxylic acid dihalide, a tetracarboxylic acid dialkyl ester, or a tetracarboxylic acid dialkyl ester dihalide. The proportion of the specific alicyclic tetracarboxylic acid component (b) used is more preferably 10 mol % or more, and even more preferably 20 mol % or more, per mol of all tetracarboxylic acid components used in the polymer (B).

[0037] The tetracarboxylic acid component used in the production of polymer (B) may contain a tetracarboxylic acid component other than the specific alicyclic tetracarboxylic acid component (b) (hereinafter also referred to as other tetracarboxylic acid component (b)). When the other tetracarboxylic acid component (b) is used in combination with the specific alicyclic tetracarboxylic acid component (b), the content of the specific alicyclic tetracarboxylic acid component (b) is more preferably 95 mol% or less, and even more preferably 90 mol% or less, based on 1 mol of all tetracarboxylic acid components used in polymer (B). Furthermore, the content of the other tetracarboxylic acid component (b) is more preferably 5 mol% to 90 mol%, and even more preferably 10 to 80 mol%, based on 1 mol of all tetracarboxylic acid components used in polymer (B).

[0038]

[0033] Specific preferred examples of the other tetracarboxylic acid component (b) include acyclic aliphatic tetracarboxylic acid dianhydrides, alicyclic tetracarboxylic acid dianhydrides other than the tetracarboxylic acid dianhydride represented by the formula (T2), aromatic tetracarboxylic acid dianhydrides, and derivatives thereof, and more preferred examples include the acyclic aliphatic tetracarboxylic acid dianhydrides, alicyclic tetracarboxylic acid dianhydrides, aromatic tetracarboxylic acid dianhydrides, and derivatives thereof exemplified for polymer (P). The other tetracarboxylic acid component (b) used in the production of polymer (B) preferably contains a tetracarboxylic acid dianhydride having at least one partial structure selected from the group consisting of a benzene ring, a cyclobutane ring, a cyclopentane ring, and a cyclohexane ring, or a derivative thereof.

[0039] Examples of diamine components for obtaining polymer (B) include the diamines exemplified for polymer (P) above. Among them, it is preferable to include at least one diamine selected from the group consisting of diamines having a urea bond, diamines having an amide bond, diamines having the specific nitrogen atom-containing structure, diamines having a carboxy group, 4-(2-(methylamino)ethyl)aniline, and 4-(2-aminoethyl)aniline (in the present invention, these are also referred to as specific diamine (b)). As the diamine component, one diamine may be used alone, or two or more diamines may be used in combination.

[0040] When the specific diamine (b) is used, its content is preferably 10 mol% or more, more preferably 20 mol% or more, of the total diamine components used in the production of polymer (B). When a diamine other than the specific diamine (b) is used, the content of the specific diamine (b) is preferably 90 mol% or less, more preferably 80 mol% or less, per mole of the total diamine components used in the production of polymer (B). From the viewpoint of optimally achieving the effects of the present invention, the mass ratio of the content of polymer (P) to the content of polymer (B) (content of polymer (P) / content of polymer (B)) is preferably 10 / 90 to 90 / 10, more preferably 20 / 80 to 90 / 10, and even more preferably 20 / 80 to 80 / 20.

[0041] (Production of Polyamic Acid) Polyamic acid is produced by reacting a diamine component with a tetracarboxylic acid component in an organic solvent. The ratio of the tetracarboxylic acid component and the diamine component used in the reaction for producing polyamic acid is preferably such that 0.5 to 2 equivalents of acid anhydride groups in the tetracarboxylic acid component are present per equivalent of amino groups in the diamine component, and more preferably 0.8 to 1.2 equivalents. As in a typical polycondensation reaction, the closer the equivalent of acid anhydride groups in the tetracarboxylic acid component is to 1 equivalent, the higher the molecular weight of the resulting polyamic acid.

[0042] The reaction temperature in the production of polyamic acid is preferably −20 to 150° C., more preferably 0 to 100° C. The reaction time is preferably 0.1 to 24 hours, more preferably 0.5 to 12 hours. The production of polyamic acid can be carried out at any concentration, but the concentration of polyamic acid is preferably 1 to 50% by mass, more preferably 5 to 30% by mass. The reaction can be carried out at a high concentration in the early stages, and then a solvent can be added.

[0043] Specific examples of the organic solvent include cyclohexanone, cyclopentanone, N-methyl-2-pyrrolidone, N-ethyl-2-pyrrolidone, γ-butyrolactone, N,N-dimethylformamide, N,N-dimethylacetamide, dimethyl sulfoxide, and 1,3-dimethyl-2-imidazolidinone. Furthermore, when the polymer has high solvent solubility, solvents such as methyl ethyl ketone, cyclohexanone, cyclopentanone, 4-hydroxy-4-methyl-2-pentanone, propylene glycol monomethyl ether, ethylene glycol monomethyl ether, ethylene glycol monoethyl ether, ethylene glycol monopropyl ether, diethylene glycol monomethyl ether, and diethylene glycol monoethyl ether can be used.

[0044] (Production of Polyamic Acid Ester) The polyamic acid ester can be obtained by known methods such as [I] a method of reacting the polyamic acid obtained by the above method with an esterifying agent, [II] a method of reacting a tetracarboxylic acid diester with a diamine, or [III] a method of reacting a tetracarboxylic acid diester dihalide with a diamine.

[0045] (Production of Polyimide) Polyimide can be obtained by ring-closing (imidization) a polyimide precursor such as the polyamic acid or polyamic acid ester. The imidization ratio in this specification refers to the ratio of imide groups to the total amount of imide groups derived from tetracarboxylic dianhydride or its derivatives and carboxyl groups (or their derivatives). The imidization ratio does not necessarily have to be 100% and can be adjusted as desired depending on the application and purpose.

[0046] Methods for imidizing the polyimide precursor include thermal imidization, in which a solution of the polyimide precursor is heated as is, and catalytic imidization, in which a catalyst is added to a solution of the polyimide precursor.

[0047] When the polyimide precursor is thermally imidized in a solution, the temperature is preferably 100 to 400°C, more preferably 120 to 250°C, and it is preferable to carry out the imidization while removing water produced by the imidization reaction from the system.

[0048] Catalytic imidization of polyimide precursors can be carried out by adding a basic catalyst and an acid anhydride to a solution of the polyimide precursor and stirring the mixture at preferably -20 to 250°C, more preferably 0 to 180°C. The amount of the basic catalyst is preferably 0.5 to 30 times, more preferably 2 to 20 times, the molar ratio of the amic acid groups, and the amount of the acid anhydride is preferably 1 to 50 times, more preferably 3 to 30 times, the molar ratio of the amic acid groups. Examples of basic catalysts include pyridine, triethylamine, trimethylamine, tributylamine, and trioctylamine. Of these, pyridine is preferred because it has adequate basicity for promoting the reaction. Examples of acid anhydrides include acetic anhydride, trimellitic anhydride, and pyromellitic anhydride. Of these, acetic anhydride is preferred because it facilitates purification after the reaction. The imidization rate by catalytic imidization can be controlled by adjusting the catalyst amount, reaction temperature, and reaction time.

[0049] When recovering the produced polyimide precursor or polyimide from a reaction solution of a polyimide precursor or polyimide, the reaction solution may be precipitated by pouring the reaction solution into a solvent. Examples of solvents used for precipitation include methanol, ethanol, isopropyl alcohol, acetone, hexane, butyl cellosolve, heptane, methyl ethyl ketone, methyl isobutyl ketone, toluene, benzene, and water. The polymer precipitated by pouring into the solvent can be recovered by filtration and then dried at room temperature or by heating under atmospheric or reduced pressure. Furthermore, the recovered polymer can be redissolved in an organic solvent and reprecipitated and recovered 2 to 10 times to reduce the amount of impurities in the polymer. Examples of solvents used in this process include alcohols, ketones, and hydrocarbons. Using three or more solvents selected from these solvents is preferred because it further increases the efficiency of purification.

[0050] In producing the polyimide precursor or polyimide of the present invention, a terminal-capping polymer may be produced using a tetracarboxylic acid component containing a tetracarboxylic acid dianhydride or a derivative thereof, a diamine component containing a diamine, and an appropriate terminal-capping agent. The terminal-capping polymer has the effect of improving the film hardness of the liquid crystal alignment film obtained by coating and improving the adhesion properties between the sealant and the liquid crystal alignment film.

[0051] Examples of the terminals of the polyimide precursor or polyimide in the present invention include an amino group, a carboxy group, an acid anhydride group, or a group derived from an end-capping agent described below. The amino group, carboxy group, and acid anhydride group can be obtained by a conventional condensation reaction or by blocking the terminals with the following end-capping agents.

[0052] Examples of the end-capping agent include acid anhydrides such as acetic anhydride, maleic anhydride, nadic anhydride, phthalic anhydride, itaconic anhydride, 1,2-cyclohexanedicarboxylic anhydride, 3-hydroxyphthalic anhydride, trimellitic anhydride, 3-(3-trimethoxysilyl)propyl)-3,4-dihydrofuran-2,5-dione, 4,5,6,7-tetrafluoroisobenzofuran-1,3-dione, and 4-ethynylphthalic anhydride; dicarbonate diester compounds such as di-tert-butyl dicarbonate and diallyl dicarbonate; chlorocarbonyl compounds such as acryloyl chloride, methacryloyl chloride, and nicotinic acid chloride; Examples of the amino acid include monoamine compounds such as aniline, 2-aminophenol, 3-aminophenol, 4-aminosalicylic acid, 5-aminosalicylic acid, 6-aminosalicylic acid, 2-aminobenzoic acid, 3-aminobenzoic acid, 4-aminobenzoic acid, cyclohexylamine, n-butylamine, n-pentylamine, n-hexylamine, n-heptylamine, and n-octylamine; and isocyanates having an unsaturated bond such as ethyl isocyanate, phenyl isocyanate, naphthyl isocyanate, 2-acryloyloxyethyl isocyanate, and 2-methacryloyloxyethyl isocyanate.

[0053] The proportion of the end-capping agent used is preferably 0.01 to 20 parts by mole, and more preferably 0.01 to 10 parts by mole, per 100 parts by mole of the total of the diamine components used.

[0054] The polystyrene-equivalent weight average molecular weight (Mw) of the polyimide precursor and polyimide measured by gel permeation chromatography (GPC) is preferably 1,000 to 500,000, more preferably 2,000 to 300,000. The molecular weight distribution (Mw / Mn), expressed as the ratio of Mw to the polystyrene-equivalent number average molecular weight (Mn) measured by GPC, is preferably 15 or less, more preferably 10 or less. By having the molecular weight within this range, good liquid crystal alignment properties can be ensured in liquid crystal display elements.

[0055] (Liquid Crystal Aligning Agent) The liquid crystal aligning agent of the present invention is a liquid composition obtained by dispersing or dissolving the polymer (P), the polymer (B) and other components used as needed, preferably in a suitable solvent.

[0056] The liquid crystal aligning agent of the present invention may contain a polymer other than the polymer (P) and the polymer (B). Specific examples of the other polymer include at least one polymer selected from the group consisting of polyimide precursors and polyimides which are imidized products of the polyimide precursors, polysiloxanes, polyesters, polyamides, polyureas, polyorganosiloxanes, cellulose derivatives, polyacetals, polystyrene derivatives, poly(styrene-maleic anhydride) copolymers, poly(isobutylene-maleic anhydride) copolymers, poly(vinyl ether-maleic anhydride) copolymers, poly(styrene-phenylmaleimide) derivatives, and polymers selected from the group consisting of poly(meth)acrylates.

[0057] Specific examples of poly(styrene-maleic anhydride) copolymers include SMA1000, SMA2000, and SMA3000 (manufactured by Cray Valley Corporation), and GSM301 (manufactured by Gifu Ceramics Manufacturing Co., Ltd.), and a specific example of poly(isobutylene-maleic anhydride) copolymer is ISOBAN-600 (manufactured by Kuraray Co., Ltd.). A specific example of poly(vinyl ether-maleic anhydride) copolymer is Gantrez AN-139 (methyl vinyl ether maleic anhydride resin, manufactured by Ashland). The above other polymers may be used alone or in combination of two or more. The content ratio of the other polymer is preferably 90 parts by mass or less, more preferably 10 to 90 parts by mass, and even more preferably 20 to 80 parts by mass, relative to 100 parts by mass of the total polymers contained in the liquid crystal aligning agent.

[0058] The organic solvent contained in the liquid crystal aligning agent according to the present invention is not particularly limited as long as it can uniformly dissolve the polymer (P), the polymer (B), and other polymers added as needed. Examples of the organic solvent include N,N-dimethylformamide, N,N-dimethylacetamide, N,N-dimethyllactamide, N,N-dimethylpropionamide, tetramethylurea, N,N-diethylformamide, N-methyl-2-pyrrolidone, N-ethyl-2-pyrrolidone, dimethyl sulfoxide, γ-butyrolactone, γ-valerolactone, 1,3-dimethyl-2-imidazolidinone, methyl ethyl ketone, cyclohexanone, cyclopentanone, 3-methoxy-N,N-dimethylpropanamide, and the like. Examples of suitable solvents include N-(n-propyl)-2-pyrrolidone, N-isopropyl-2-pyrrolidone, N-(n-butyl)-2-pyrrolidone, N-(tert-butyl)-2-pyrrolidone, N-(n-pentyl)-2-pyrrolidone, N-methoxypropyl-2-pyrrolidone, N-ethoxyethyl-2-pyrrolidone, N-methoxybutyl-2-pyrrolidone, and N-cyclohexyl-2-pyrrolidone (collectively referred to as "good solvents"). Among these, N-methyl-2-pyrrolidone, N-ethyl-2-pyrrolidone, 3-methoxy-N,N-dimethylpropanamide, 3-butoxy-N,N-dimethylpropanamide, and γ-butyrolactone are preferred. The content of the good solvent is preferably 20 to 99% by mass, more preferably 20 to 90% by mass, and particularly preferably 30 to 80% by mass of the total solvent contained in the liquid crystal aligning agent.

[0059] Furthermore, the organic solvent contained in the liquid crystal aligning agent is preferably a mixed solvent containing, in addition to the above solvent, a solvent (also referred to as a poor solvent) that improves the coatability and surface smoothness of the coating film when the liquid crystal aligning agent is applied. Specific examples of poor solvents are listed below, but are not limited to these. The content of the poor solvent is preferably 1 to 80 mass %, more preferably 10 to 80 mass %, and particularly preferably 20 to 70 mass %, of the total solvent contained in the liquid crystal aligning agent. The type and content of the poor solvent are appropriately selected depending on the coater, coating conditions, coating environment, etc. of the liquid crystal aligning agent.

[0060] Examples of poor solvents include diisopropyl ether, diisobutyl ether, diisobutyl carbinol (2,6-dimethyl-4-heptanol), ethylene glycol dimethyl ether, ethylene glycol diethyl ether, ethylene glycol dibutyl ether, 1,2-dibutoxyethane, diethylene glycol dimethyl ether, diethylene glycol diethyl ether, 4-hydroxy-4-methyl-2-pentanone, diethylene glycol methyl ethyl ether, diethylene glycol dibutyl ether, 3-ethoxybutyl acetate, 1-methylpentyl acetate, 2-ethylbutyl acetate, 2-ethylhexyl acetate, ethylene glycol monoacetate, ethylene glycol diacetate, propylene carbonate, ethylene carbonate, ethylene glycol monobutyl ether, ethylene glycol monoisoamyl ether, ethylene glycol monohexyl ether, propylene glycol monomethyl ether, propylene glycol monobutyl ether, 1-(2-butoxyethoxy)-2-propanol ethanol, 2-(2-butoxyethoxy)-1-propanol, propylene glycol monomethyl ether acetate, dipropylene glycol monomethyl ether, dipropylene glycol monoethyl ether, dipropylene glycol dimethyl ether, ethylene glycol monobutyl ether acetate, diethylene glycol monopropyl ether, diethylene glycol monoethyl ether acetate, diethylene glycol monobutyl ether acetate, 2-(2-ethoxyethoxy)ethyl acetate, diethylene Glycol acetate, propylene glycol diacetate, n-butyl acetate, propylene glycol monoethyl ether acetate, cyclohexyl acetate, 4-methyl-2-pentyl acetate, methyl 3-methoxypropionate, ethyl 3-ethoxypropionate, ethyl 3-methoxypropionate, propyl 3-methoxypropionate, butyl 3-methoxypropionate, n-butyl lactate, isoamyl lactate, diethylene glycol monoethyl ether, diisobutyl ketone (2,6-dimethyl-4-heptanone), and the like.

[0061] Of these, diisobutyl carbinol, propylene glycol monobutyl ether, propylene glycol diacetate, diethylene glycol diethyl ether, dipropylene glycol monomethyl ether, dipropylene glycol dimethyl ether, 4-hydroxy-4-methyl-2-pentanone, ethylene glycol monobutyl ether, ethylene glycol monobutyl ether acetate, or diisobutyl ketone is preferred.

[0062] Preferred solvent combinations of a good solvent and a poor solvent include N-methyl-2-pyrrolidone and ethylene glycol monobutyl ether, N-methyl-2-pyrrolidone, γ-butyrolactone and ethylene glycol monobutyl ether, N-methyl-2-pyrrolidone, γ-butyrolactone and propylene glycol monobutyl ether, N-ethyl-2-pyrrolidone and propylene glycol monobutyl ether, N-ethyl-2-pyrrolidone and 4-hydroxy-4-methyl-2-pentanone, and N-ethyl-2-pyrrolidone and propylene glycol monobutyl ether. Coal diacetate, N,N-dimethyl lactamide and diisobutyl ketone, N-methyl-2-pyrrolidone and ethyl 3-ethoxypropionate, N-ethyl-2-pyrrolidone and ethyl 3-ethoxypropionate, N-methyl-2-pyrrolidone, ethyl 3-ethoxypropionate and dipropylene glycol monomethyl ether, N-ethyl-2-pyrrolidone, ethyl 3-ethoxypropionate and propylene glycol monobutyl ether, N-methyl-2-pyrrolidone, ethyl 3-ethoxypropionate and diethylene glycol mono propyl ether, N-ethyl-2-pyrrolidone, ethyl 3-ethoxypropionate, and diethylene glycol monopropyl ether, N-methyl-2-pyrrolidone and ethylene glycol monobutyl ether acetate, N-ethyl-2-pyrrolidone and dipropylene glycol dimethyl ether, N,N-dimethyl lactamide and ethylene glycol monobutyl ether, N,N-dimethyl lactamide and propylene glycol diacetate, N-ethyl-2-pyrrolidone and diethylene glycol diethyl ether, N-ethyl-2 -pyrrolidone, diethylene glycol monoethyl ether, and butyl cellosolve acetate, N-methyl-2-pyrrolidone, diethylene glycol monomethyl ether, and butyl cellosolve acetate, N,N-dimethyl lactamide and diethylene glycol diethyl ether, N-methyl-2-pyrrolidone, γ-butyrolactone, 4-hydroxy-4-methyl-2-pentanone, and diethylene glycol diethyl ether, N-ethyl-2-pyrrolidone, N-methyl-2-pyrrolidone, and 4-hydroxy-4-methyl-2-pentanone,N-ethyl-2-pyrrolidone, 4-hydroxy-4-methyl-2-pentanone, and propylene glycol monobutyl ether, N-methyl-2-pyrrolidone, 4-hydroxy-4-methyl-2-pentanone, and diisobutyl ketone, N-methyl-2-pyrrolidone, 4-hydroxy-4-methyl-2-pentanone, and dipropylene glycol monomethyl ether, N-methyl-2-pyrrolidone, 4-hydroxy-4-methyl-2-pentanone, and propylene glycol monobutyl ether, N-methyl-2-pyrrolidone, 4-hydroxy-4-methyl-2-pentanone, and dipropylene glycol monomethyl ether Methyl-2-pentanone and propylene glycol diacetate, N-ethyl-2-pyrrolidone, 4-hydroxy-4-methyl-2-pentanone and dipropylene glycol dimethyl ether, γ-butyrolactone, 4-hydroxy-4-methyl-2-pentanone and diisobutyl ketone, γ-butyrolactone, 4-hydroxy-4-methyl-2-pentanone and propylene glycol diacetate, N-methyl-2-pyrrolidone, γ-butyrolactone, propylene glycol monobutyl ether and diisobutyl ketone, N-methyl-2-pi rolidone, γ-butyrolactone, propylene glycol monobutyl ether, and diisopropyl ether, N-methyl-2-pyrrolidone, γ-butyrolactone, propylene glycol monobutyl ether, and diisobutylcarbinol, N-methyl-2-pyrrolidone, γ-butyrolactone, and dipropylene glycol dimethyl ether, N-methyl-2-pyrrolidone, propylene glycol monobutyl ether, and dipropylene glycol dimethyl ether, N-ethyl-2-pyrrolidone, propylene glycol monobutyl ether, and dipropylene glycol pyrene glycol monomethyl ether, N-ethyl-2-pyrrolidone, diethylene glycol diethyl ether, and dipropylene glycol monomethyl ether, N-ethyl-2-pyrrolidone, propylene glycol monobutyl ether, and propylene glycol diacetate, N-ethyl-2-pyrrolidone, propylene glycol monobutyl ether, and diisobutyl ketone, N-ethyl-2-pyrrolidone, γ-butyrolactone, and diisobutyl ketone, N-ethyl-2-pyrrolidone, N,N-dimethyl lactamide, and diisobutyl ketone,Examples include N-methyl-2-pyrrolidone, ethylene glycol monobutyl ether, and ethylene glycol monobutyl ether acetate, γ-butyrolactone, ethylene glycol monobutyl ether acetate, and dipropylene glycol dimethyl ether, N-ethyl-2-pyrrolidone, ethylene glycol monobutyl ether acetate, and propylene glycol dimethyl ether, N-methyl-2-pyrrolidone, 4-methyl-2-pentyl acetate, and ethylene glycol monobutyl ether, N-ethyl-2-pyrrolidone, cyclohexyl acetate, and 4-hydroxy-4-methyl-2-pentanone, cyclohexanone, and propylene glycol monomethyl ether, cyclopentanone, and propylene glycol monomethyl ether, and N-methyl-2-pyrrolidone, cyclohexanone, and propylene glycol monomethyl ether.

[0063] (Liquid Crystal Aligning Agent) The liquid crystal aligning agent of the present invention contains the above polymer (P), polymer (B), and, if necessary, the above other polymers and the above organic solvent. The total content of the polymers contained in the liquid crystal aligning agent of the present invention can be appropriately changed depending on the thickness of the coating film to be formed, but is preferably 1% by mass or more from the viewpoint of forming a uniform, defect-free coating film, and is preferably 10% by mass or less from the viewpoint of storage stability of the solution. A particularly preferred total polymer content is 2 to 8% by mass.

[0064] The total content of the polymer (P) and polymer (B) used in the present invention is preferably 1 to 100% by mass, more preferably 10 to 100% by mass, and particularly preferably 20 to 100% by mass, relative to the total amount of polymers contained in the liquid crystal aligning agent. In addition to the polymer (P), polymer (B), the other polymers, and the organic solvent, the liquid crystal aligning agent of the present invention may contain other components (hereinafter also referred to as additive components). Examples of such additive components include at least one crosslinking compound selected from the group consisting of a crosslinking compound having at least one substituent selected from an oxiranyl group, an oxetanyl group, a blocked isocyanate group, an oxazoline group, a cyclocarbonate group, a hydroxyalkyl group, and an alkoxy group, and a crosslinking compound having a polymerizable unsaturated group; a functional silane compound; a metal chelate compound; a curing accelerator; a surfactant; an antioxidant; a sensitizer; a preservative; a compound for adjusting the dielectric constant or electrical resistance of the resulting liquid crystal alignment film; and a compound for promoting imidization.

[0065] Specific preferred examples of the crosslinkable compound include ethylene glycol diglycidyl ether, polyethylene glycol diglycidyl ether, propylene glycol diglycidyl ether, tripropylene glycol diglycidyl ether, polypropylene glycol diglycidyl ether, neopentyl glycol diglycidyl ether, 1,6-hexanediol diglycidyl ether, glycerin diglycidyl ether, dibromoneopentyl glycol diglycidyl ether, 1,3,5,6-tetraglycidyl ether, bisphenol A type epoxy resins such as Epicoat 828 (manufactured by Mitsubishi Chemical Corporation), bisphenol F type epoxy resins such as Epicoat 807 (manufactured by Mitsubishi Chemical Corporation), hydrogenated bisphenol A type epoxy resins such as YX-8000 (manufactured by Mitsubishi Chemical Corporation), biphenyl skeleton-containing epoxy resins such as YX6954BH30 (manufactured by Mitsubishi Chemical Corporation), phenol novolac type epoxy resins such as EPPN-201 (manufactured by Nippon Kayaku Co., Ltd.), (o, m, p-) epoxy resins such as EOCN-102S (manufactured by Nippon Kayaku Co., Ltd.), azole novolac type epoxy resins, triglycidyl isocyanurates such as TEPIC (manufactured by Nissan Chemical Industries, Ltd.), alicyclic epoxy resins such as Celloxide 2021P (manufactured by Daicel Corporation), compounds containing a tertiary nitrogen atom such as N,N,N',N'-tetraglycidyl-m-xylylenediamine, 1,3-bis(N,N-diglycidylaminomethyl)cyclohexane, or N,N,N',N'-tetraglycidyl-4,4'-diaminodiphenylmethane, and oxiranyl such as tetrakis(glycidyloxymethyl)methane. compounds having two or more oxetanyl groups described in paragraphs

[0170] to

[0175] of WO 2011 / 132751; compounds having two or more oxetanyl groups; Coronate AP Stable M, Coronate 2503, 2515, 2507, 2513, 2555, Millionate MS-50 (all manufactured by Tosoh Corporation), Takenate B-830, B-815N, B-820NSU, B-842N, B-846N, B-870N, B-874N, B-882N (all manufactured by Mitsui Chemicals, Inc.);Compounds having an oxazoline group such as 2,2'-bis(2-oxazoline), 2,2'-bis(4-methyl-2-oxazoline), 2,2'-bis(5-methyl-2-oxazoline), 1,2,4-tris(2-oxazolinyl)-benzene, and EPOCROS (manufactured by Nippon Shokubai Co., Ltd.); compounds having a cyclocarbonate group described in paragraphs

[0025] to

[0030] and

[0032] of WO2011 / 155577; N,N,N',N'-tetrakis(2-hydroxyethyl)adipamide, 2,2-bis(4-hydroxy-3,5-dihydroxymethylphenyl)propane, 2,2-bis(4-hydroxy-3,5-dimethoxyphenyl)propane, 2,2-bis(4-hydroxy-3,5-dihydro compounds having a hydroxy group or an alkoxy group, such as (hydroxymethylphenyl)-1,1,1,3,3,3-hexafluoropropane; and compounds represented by glycerin mono(meth)acrylate, glycerin di(meth)acrylate (1,2-,1,3-dimer mixture), glycerin tris(meth)acrylate, glycerin 1,3-diglycerolate di(meth)acrylate, pentaerythritol tri(meth)acrylate, diethylene glycol mono(meth)acrylate, triethylene glycol mono(meth)acrylate, tetraethylene glycol mono(meth)acrylate, pentaethylene glycol mono(meth)acrylate, and hexaethylene glycol mono(meth)acrylate;

[0066] The content of the crosslinkable compound is preferably 0.1 to 30 parts by mass, more preferably 0.1 to 20 parts by mass, based on 100 parts by mass of the polymer component contained in the liquid crystal aligning agent.

[0067] Examples of the compound for adjusting the dielectric constant or electrical resistance include monoamines having a nitrogen atom-containing aromatic heterocycle such as 3-picolylamine. The content of the monoamine having a nitrogen atom-containing aromatic heterocycle is preferably 0.1 to 30 parts by mass, more preferably 0.1 to 20 parts by mass, per 100 parts by mass of the polymer component contained in the liquid crystal aligning agent.

[0068] Specific preferred examples of the functional silane compound include 3-aminopropyltrimethoxysilane, 3-aminopropyltriethoxysilane, 3-aminopropyldiethoxymethylsilane, 2-aminopropyltrimethoxysilane, 2-aminopropyltriethoxysilane, N-(2-aminoethyl)-3-aminopropyltrimethoxysilane, N-(2-aminoethyl)-3-aminopropylmethyldimethoxysilane, 3-ureidopropyltrimethoxysilane, 3-ureidopropyltriethoxysilane, vinyltrimethoxysilane, vinyltriethoxysilane, 2-(3,4-epoxycyclohexyl)ethyltrimethoxysilane, and 3-glycidoxypropylmethyldimethoxysilane. , 3-glycidoxypropyltrimethoxysilane, 3-glycidoxypropylmethyldiethoxysilane, 3-glycidoxypropyltriethoxysilane, p-styryltrimethoxysilane, 3-methacryloxypropylmethyldimethoxysilane, 3-methacryloxypropyltrimethoxysilane, 3-methacryloxypropylmethyldiethoxysilane, 3-methacryloxypropyltriethoxysilane, 3-acryloxypropyltrimethoxysilane, tris[3-(trimethoxysilyl)propyl]isocyanurate, 3-mercaptopropylmethyldimethoxysilane, 3-mercaptopropyltrimethoxysilane, 3-isocyanatopropyltriethoxysilane, etc. The content of the functional silane compound is preferably 0.1 to 30 parts by mass, more preferably 0.1 to 20 parts by mass, per 100 parts by mass of the polymer component contained in the liquid crystal alignment agent.

[0069] The compound for promoting the imidization is preferably a compound having a basic site (e.g., a primary amino group, an aliphatic heterocycle (e.g., a pyrrolidine skeleton), an aromatic heterocycle (e.g., an imidazole ring, an indole ring), or a guanidino group) (excluding the crosslinkable compounds and compounds for adjusting the dielectric constant or electrical resistance of the liquid crystal alignment film), or a compound that generates the basic site upon baking. A more preferred example is a compound that generates the basic site upon baking, and preferred specific examples include amino acids in which some or all of the basic sites of the amino acid are protected. Examples of protecting groups for the basic sites of the amino acids include carbamate-based protecting groups such as a Boc group. Specific examples of the amino acids include glycine, alanine, cysteine, methionine, asparagine, glutamine, valine, leucine, phenylalanine, tyrosine, tryptophan, proline, hydroxyproline, arginine, histidine, lysine, and ornithine. A more preferred specific example of the compound for promoting imidization is N-α-(9-fluorenylmethoxycarbonyl)-N-τ-(tert-butoxycarbonyl)-L-histidine. The content of the compound for promoting imidization contained in the liquid crystal aligning agent of the present invention is preferably 0.1 to 30 parts by mass, more preferably 0.1 to 20 parts by mass, and even more preferably 5 to 20 parts by mass, relative to 100 parts by mass of the polymer component contained in the liquid crystal aligning agent.

[0070] The solid content concentration in the liquid crystal aligning agent (the ratio of the total mass of the components other than the solvent of the liquid crystal aligning agent to the total mass of the liquid crystal aligning agent) is appropriately selected in consideration of viscosity, volatility, etc., and is preferably 1 to 10 mass%.

[0071] The particularly preferred range of solid content varies depending on the method used to apply the liquid crystal aligning agent to the substrate. For example, when using a spin coating method, a solid content of 1.5 to 6.0 mass% is particularly preferred. When using a printing method, a solid content of 3 to 9 mass% is particularly preferred, thereby resulting in a solution viscosity of 12 to 50 mPa·s. When using an inkjet method, a solid content of 1 to 5 mass% is particularly preferred, thereby resulting in a solution viscosity of 3 to 15 mPa·s. The temperature when preparing the liquid crystal aligning agent is preferably 10 to 50°C, more preferably 20 to 30°C.

[0072] <Liquid Crystal Alignment Film / Liquid Crystal Display Element> A liquid crystal alignment film can be produced by using the liquid crystal aligning agent. The liquid crystal aligning agent is preferably used to form a liquid crystal alignment film that is imparted with liquid crystal alignment ability by a photoalignment treatment method. The liquid crystal display element of the present invention comprises the liquid crystal alignment film. The operation mode of the liquid crystal display element of the present invention is not particularly limited, and it can be applied to various operation modes, such as TN mode, STN (Super Twisted Nematic) mode, vertical alignment mode (including VA-MVA mode, VA-PVA mode, etc.), IPS mode, FFS mode, and optically compensated bend mode (OCB mode). The liquid crystal alignment film of the present invention is particularly suitable for liquid crystal display elements of horizontal alignment mode, such as IPS mode or FFS mode.

[0073] The liquid crystal display element of the present invention can be produced, for example, by a method including the following steps (1) to (3), a method including steps (1) to (4), a method including steps (1) to (3), (3b) and (4), a method including steps (1) to (2) and (4), a method including steps (1) to (3), (4) and (5), or a method including steps (1) to (3), (4) and (6). <Step (1): Step of applying a liquid crystal aligning agent to at least one of the first substrate and the second substrate> Step (1) is a step of applying the liquid crystal aligning agent of the present invention onto a substrate. Specific examples of step (1) are as follows.

[0074] The liquid crystal aligning agent of the present invention is applied to at least one surface of a substrate (hereinafter also referred to as the first substrate) having a patterned transparent conductive film and an opposing substrate (hereinafter also referred to as the second substrate) of the first substrate by an appropriate application method, such as a roll coater method, a spin coat method, a printing method, or an inkjet method. The substrate is not particularly limited as long as it is highly transparent. In addition to glass substrates and silicon nitride substrates, plastic substrates such as acrylic substrates and polycarbonate substrates can also be used. In addition, in reflective liquid crystal display elements, an opaque material such as a silicon wafer can be used for only one substrate. In this case, a light-reflecting material such as aluminum can also be used for the electrode. Furthermore, when manufacturing an IPS or FFS liquid crystal display element, a substrate having an electrode made of a comb-shaped patterned transparent conductive film or metal film and an opposing substrate without an electrode are used. The transparent conductive film can be formed by a known method using, for example, indium tin oxide (ITO), indium zinc oxide (IZO), or a mixture thereof.

[0075] Examples of a method for applying the liquid crystal alignment agent to a substrate and forming a film include screen printing, offset printing, flexographic printing, an inkjet method, and a spray method. Among these, the application and film formation method by the inkjet method is preferably used.

[0076] <Step (2): Step of Baking the Applied Liquid Crystal Alignment Agent> Step (2) is a step of baking the liquid crystal alignment agent applied to the substrate to form a film. Specific examples of step (2) are as follows. After applying the liquid crystal alignment agent to the substrate in step (1), the solvent can be evaporated or the polyamic acid or polyamic acid ester can be thermally imidized using a heating means such as a hot plate, a heat circulation oven, or an IR (infrared) oven. The drying and baking steps after applying the liquid crystal alignment agent of the present invention can be performed at any temperature and for any time, and may be performed multiple times. The temperature for reducing the solvent in the liquid crystal alignment agent can be, for example, 40 to 180°C. From the perspective of shortening the process, the baking can be performed at 40 to 150°C. The baking time is not particularly limited, but may be 1 to 10 minutes or 1 to 5 minutes. When thermal imidization of polyamic acid or polyamic acid ester is performed, a step of baking at a temperature range of, for example, 150 to 300°C or 150 to 250°C (hereinafter also referred to as a main baking step) may be added after the above step. The baking time in the main baking step is not particularly limited, but examples include baking times of 5 to 40 minutes or 5 to 30 minutes. The main baking step may be performed after step (3) described below, or step (3b) described below may be the main baking step.

[0077] If the film-like material after baking is too thin, the reliability of the liquid crystal display device may decrease, so the film thickness is preferably 5 to 300 nm, more preferably 10 to 200 nm.

[0078] <Step (3): Alignment Treatment of the Film Obtained in Step (2)> Step (3) is a step of, in some cases, aligning the film obtained in Step (2). That is, in horizontal alignment type liquid crystal display devices such as IPS or FFS modes, the coating film is subjected to an alignment ability imparting treatment. On the other hand, in vertical alignment type liquid crystal display devices such as VA or PSA modes, the formed coating film can be used as a liquid crystal alignment film as is, but the coating film may also be subjected to an alignment ability imparting treatment. Alignment treatment methods for liquid crystal alignment films include rubbing treatment and photo-alignment treatment, and more preferably photo-alignment treatment. Photo-alignment treatment methods include irradiating the surface of the film with radiation (more preferably polarized radiation) to impart liquid crystal alignment (also referred to as liquid crystal alignment ability). The radiation can be ultraviolet light or visible light having a wavelength of 100 to 800 nm. Among these, ultraviolet light having a wavelength of 100 to 400 nm is preferred, more preferably 200 to 400 nm. The rubbing treatment may involve rubbing the coating film in a certain direction with a roll wrapped with a cloth made of fibers such as nylon, rayon, or cotton.

[0079] In the photo-alignment treatment method, when the radiation is polarized, it may be linearly polarized or partially polarized. When the radiation used is linearly polarized or partially polarized, the radiation may be irradiated from a direction perpendicular to the substrate surface, from an oblique direction, or a combination of these. When irradiating with unpolarized radiation, the irradiation direction is preferably oblique.

[0080] The radiation dose is 1 to 10,000 mJ / cm 2 More preferably, 100 to 1,000 mJ / cm 2 is more preferably 100 to 500 mJ / cm 2 is most preferred.

[0081] When radiation is irradiated in the photo-alignment treatment, in order to improve the liquid crystal alignment, the substrate having the film-like material may be irradiated while being heated at, for example, 50 to 250° C. The liquid crystal alignment film prepared in this manner can stably align liquid crystal molecules in a certain direction.

[0082] <Step (3b): Step of Heat Treatment> The coating film irradiated with the radiation may be subjected to a heat treatment. The temperature for such heat treatment is preferably 50 to 300° C., more preferably 120 to 250° C. The time for the heat treatment is preferably 1 to 30 minutes.

[0083] <Step (4): Step of Producing a Liquid Crystal Cell by Arranging a Liquid Crystal Layer Between the First Substrate and the Second Substrate so as to Be Adjacent to the Alignment-Treated Film> Step (4) is a step of producing a liquid crystal cell by arranging a liquid crystal layer between the first substrate and the second substrate so as to be adjacent to the alignment-treated film. The following describes an example in which a liquid crystal alignment film is formed on each of the first substrate and the second substrate. Specifically, the following two methods can be mentioned. In the first method, the two substrates are first arranged opposite each other with a gap (cell gap) between them so that the liquid crystal alignment films face each other. Next, the peripheries of the two substrates are bonded together using a sealant, and a liquid crystal composition is injected into the substrate surfaces and the cell gap defined by the sealant to contact the film surface, and then the injection hole is sealed.

[0084] The second method is called the ODF (One Drop Fill) method. For example, a UV-curable resin composition (hereinafter also referred to as a sealant) is applied to a predetermined location on one of two substrates on which a liquid crystal alignment film has been formed, and a liquid crystal composition is then dropped onto several predetermined locations on the liquid crystal alignment film surface. The other substrate is then attached so that the liquid crystal alignment film faces the other substrate, and the liquid crystal composition is spread over the entire surface of the substrate and brought into contact with the film surface. Next, the entire surface of the substrate is irradiated with UV light to cure the sealant. In either method, it is desirable to further heat the substrate to a temperature at which the liquid crystal composition is in an isotropic phase, and then slowly cool it to room temperature to remove flow alignment that occurs during liquid crystal filling.

[0085] When the coating films are subjected to rubbing treatment, the two substrates are placed opposite each other so that the rubbing directions of the coating films are at a predetermined angle, for example, perpendicular or anti-parallel to each other.

[0086] The sealing agent may be, for example, an epoxy resin containing a curing agent and aluminum oxide spheres as spacers. The liquid crystal composition is not particularly limited, and any liquid crystal composition containing at least one liquid crystal compound (liquid crystal molecule) and having a positive or negative dielectric anisotropy may be used. Hereinafter, a liquid crystal composition having a positive dielectric anisotropy will be referred to as a positive liquid crystal, and a liquid crystal composition having a negative dielectric anisotropy will be referred to as a negative liquid crystal.

[0087] The liquid crystal composition may contain a liquid crystal compound having a fluorine atom, a hydroxy group, an amino group, a fluorine atom-containing group (e.g., a trifluoromethyl group), a cyano group, an alkyl group, an alkoxy group, an alkenyl group, an isothiocyanate group, a heterocycle, a cycloalkane, a cycloalkene, a steroid skeleton, a benzene ring, or a naphthalene ring, or may contain a compound having two or more rigid moieties (mesogenic skeletons) that exhibit liquid crystallinity within the molecule (e.g., a bimesogenic compound in which two rigid biphenyl structures or terphenyl structures are linked by an alkylene group).

[0088] The liquid crystal composition may be a liquid crystal composition exhibiting a nematic phase, a liquid crystal composition exhibiting a smectic phase, or a liquid crystal composition exhibiting a cholesteric phase.

[0089] The liquid crystal composition may further contain an additive from the viewpoint of improving the liquid crystal alignment property, such as a photopolymerizable monomer having a polymerizable group, an optically active compound (e.g., S-811 manufactured by Merck Ltd.), an antioxidant, an ultraviolet absorber, a dye, an antifoaming agent, a polymerization initiator, or a polymerization inhibitor.

[0090] Examples of positive liquid crystals include ZLI-2293, ZLI-4792, MLC-2003, MLC-2041, MLC-3019, and MLC-7081 manufactured by Merck Co., Ltd.; and PA-1492 manufactured by DIC Corporation.

[0091] Examples of negative liquid crystals include MLC-6608, MLC-6609, MLC-6610, and MLC-7026-100 manufactured by Merck.

[0092] Furthermore, an example of a liquid crystal containing a compound having a polymerizable group is MLC-3023 manufactured by Merck.

[0093] The liquid crystal aligning agent of the present invention is also preferably used for a liquid crystal display element (PSA type liquid crystal display element) manufactured through a step (hereinafter, this step may be referred to as step (5)) of having a liquid crystal layer between a pair of substrates provided with electrodes, and disposing a liquid crystal composition containing a polymerizable compound that is polymerized by at least one of active energy rays and heat between the pair of substrates, and polymerizing the polymerizable compound by at least one of irradiation with active energy rays and heating while applying a voltage between the electrodes.

[0094] The liquid crystal aligning agent of the present invention is also preferably used for a liquid crystal display element (SC-PVA type liquid crystal display element) which has a liquid crystal layer between a pair of substrates provided with electrodes, and is produced through a step of disposing a liquid crystal alignment film containing a polymerizable group that is polymerized by at least one of active energy rays and heat between the pair of substrates, and applying a voltage between the electrodes (hereinafter, this step is also referred to as step (6)).

[0095] A liquid crystal display element can be obtained by attaching a polarizing plate to the outer surface of the liquid crystal cell as needed. Examples of the polarizing plate to be attached to the outer surface of the liquid crystal cell include a polarizing film called an "H film" made by stretching and aligning polyvinyl alcohol and absorbing iodine, sandwiched between cellulose acetate protective films, and a polarizing plate made of the H film itself.

[0096] An IPS substrate, which is a comb-tooth electrode substrate used in the IPS system, has a base material, a plurality of linear electrodes formed on the base material and arranged in a comb-tooth pattern, and a liquid crystal alignment film formed on the base material so as to cover the linear electrodes.

[0097] The FFS substrate, which is a comb-tooth electrode substrate used in the FFS method, has a base material, a surface electrode formed on the base material, an insulating film formed on the surface electrode, a plurality of linear electrodes formed on the insulating film and arranged in a comb-tooth shape, and a liquid crystal alignment film formed on the insulating film so as to cover the linear electrodes.

[0098] FIG. 1 is a schematic cross-sectional view showing an example of a lateral electric field type liquid crystal display element of the present invention, which is an example of an IPS type liquid crystal display element.

[0099] In the in-plane switching mode liquid crystal display element 1 illustrated in Fig. 1, liquid crystal 3 is sandwiched between a comb-tooth electrode substrate 2 having a liquid crystal alignment film 2c and a counter substrate 4 having a liquid crystal alignment film 4a. The comb-tooth electrode substrate 2 has a base material 2a, a plurality of linear electrodes 2b formed on the base material 2a and arranged in a comb-tooth pattern, and a liquid crystal alignment film 2c formed on the base material 2a so as to cover the linear electrodes 2b. The counter substrate 4 has a base material 4b and a liquid crystal alignment film 4a formed on the base material 4b. The liquid crystal alignment film 2c is, for example, the liquid crystal alignment film of the present invention. The liquid crystal alignment film 4a is also the liquid crystal alignment film of the present invention.

[0100] In this IPS mode liquid crystal display element 1, when a voltage is applied to the linear electrodes 2b, an electric field is generated between the linear electrodes 2b as indicated by electric force lines L.

[0101] FIG. 2 is a schematic cross-sectional view showing another example of the in-plane switching mode liquid crystal display element of the present invention, which is an example of an FFS mode liquid crystal display element.

[0102] In the in-plane switching mode liquid crystal display element 1 illustrated in Figure 2, liquid crystal 3 is sandwiched between a comb-shaped electrode substrate 2 having a liquid crystal alignment film 2h and a counter substrate 4 having a liquid crystal alignment film 4a. The comb-shaped electrode substrate 2 has a base material 2d, a surface electrode 2e formed on the base material 2d, an insulating film 2f formed on the surface electrode 2e, a plurality of linear electrodes 2g formed on the insulating film 2f and arranged in a comb-like pattern, and a liquid crystal alignment film 2h formed on the insulating film 2f so as to cover the linear electrodes 2g. The counter substrate 4 has a base material 4b and a liquid crystal alignment film 4a formed on the base material 4b. The liquid crystal alignment film 2h is, for example, a liquid crystal alignment film of the present invention. The liquid crystal alignment film 4a is also a liquid crystal alignment film of the present invention.

[0103] In this IPS mode liquid crystal display element 1, when a voltage is applied to the surface electrodes 2 e and the linear electrodes 2 g, an electric field is generated between the surface electrodes 2 e and the linear electrodes 2 g, as indicated by the electric field lines L. The liquid crystal alignment film of the present invention can be used for a variety of purposes in addition to the above-mentioned applications, such as a liquid crystal alignment film for a retardation film, a liquid crystal alignment film for a scanning antenna or a liquid crystal array antenna, or a liquid crystal alignment film for a transmissive / scattering liquid crystal dimming element. Furthermore, the film can also be used for applications other than liquid crystal alignment films, such as a protective film (e.g., a protective film for a color filter), a spacer film, an interlayer insulating film, an antireflection film, a wiring covering film, an antistatic film, and a motor insulating film (a gate insulating film for a flexible display).

[0104] The liquid crystal display element of the present invention can be effectively applied to various devices, and can be used in various display devices such as watches, portable games, word processors, notebook computers, car navigation systems, camcorders, PDAs, digital cameras, mobile phones, smartphones, various monitors, liquid crystal televisions, and information displays.

[0105] The present invention will be described in more detail below with reference to examples, but the present invention is not limited to these examples. The abbreviations of the compounds used and the methods for measuring the properties are as follows: (Organic solvents) NMP: N-methyl-2-pyrrolidone BCS: Ethylene glycol monobutyl ether (Tetracarboxylic acid dianhydrides) TC-1 to TC-5: Compounds represented by the following formulas (TC-1) to (TC-5), respectively

[0106]

[0107] (Diamine) DA-1 to DA-6: Compounds represented by the following formulas (DA-1) to (DA-6), respectively

[0108]

[0109] (Additives) AD-1 to AD-2: Compounds represented by the following formulas (AD-1) to (AD-2), respectively

[0110]

[0111] <Measurement of Viscosity> Measurement was carried out at 25°C using an E-type viscometer TVE-22H (manufactured by Toki Sangyo Co., Ltd.) with a sample volume of 1.1 mL and a cone rotor TE-1 (1°34', R24).

[0112] <Measurement of Molecular Weight> Measurement was carried out using the following room temperature GPC (gel permeation chromatography) apparatus under the following conditions, and Mn (number average molecular weight) and Mw (weight average molecular weight) were calculated as values ​​calculated for polyethylene glycol and polyethylene oxide. GPC apparatus: GPC-101 (manufactured by Resonaq (formerly Showa Denko) K.K.), Column: GPC KD-803 and GPC KD-805 (manufactured by Resonaq (formerly Showa Denko) K.K.) connected in series, Column temperature: 50°C, Eluent: N,N-dimethylformamide (containing lithium bromide monohydrate (LiBr.H) as an additive), 2 o-Phosphoric acid (o-Phosphoric acid) 30 mmol / L, tetrahydrofuran (THF) 10 mL / L), Flow rate: 1.0 mL / min. Standard samples for preparing a calibration curve: TSK standard polyethylene oxide (molecular weight: about 900,000, about 150,000, about 100,000, and about 30,000) (manufactured by Tosoh Corporation) and polyethylene glycol (molecular weight: about 12,000, about 4,000, and about 1,000) (manufactured by Polymer Laboratory Co., Ltd.).

[0113] [Polymer Synthesis] <Synthesis Example 1> DA-1 (0.865 g, 8.00 mmol), DA-2 (2.93 g, 12.0 mmol), DA-3 (3.84 g, 12.0 mmol), DA-4 (3.19 g, 8.00 mmol), and NMP (129 g) were added to a 100 mL four-neck flask equipped with a stirrer and a nitrogen inlet tube, and the mixture was stirred at room temperature (25 ° C.) while supplying nitrogen to dissolve the mixture. Thereafter, TC-1 (8.70 g, 38.8 mmol) and NMP (14.4 g) were added, and the mixture was stirred at 40 ° C. for 18 hours to obtain a solution of polyamic acid (PAA-A1) with a solids concentration of 12% by mass (viscosity: 220 mPa s). The Mn of this polyamic acid was 8,978 and the Mw was 19,639.

[0114] Synthesis Example 2: DA-5 (2.39 g, 12.0 mmol), DA-6 (2.39 g, 8.00 mmol), and NMP (53.6 g) were added to a 50 mL four-neck flask equipped with a stirrer and a nitrogen inlet tube, and the mixture was stirred at room temperature (25 ° C.) while introducing nitrogen to dissolve the mixture. TC-2 (2.55 g, 13.0 mmol) and NMP (6.70 g) were then added, and the mixture was stirred at room temperature (25 ° C.) for 0.5 hours. TC-3 (1.81 g, 6.00 mmol) and NMP (6.70 g) were then added, and the mixture was stirred at 40 ° C. for 18 hours to obtain a solution of polyamic acid (PAA-B1) with a solids concentration of 12% by mass (viscosity: 235 mPa s). The Mn of this polyamic acid was 7,614, and the Mw was 16,212.

[0115] Synthesis Example 3: DA-5 (2.39 g, 12.0 mmol), DA-6 (2.39 g, 8.00 mmol), and NMP (53.6 g) were added to a 50 mL four-neck flask equipped with a stirrer and a nitrogen inlet tube, and the mixture was stirred at room temperature (25°C) while introducing nitrogen to dissolve the mixture. Thereafter, TC-2 (3.65 g, 18.6 mmol) and NMP (8.20 g) were added, and the mixture was stirred at 40°C for 18 hours to obtain a solution of polyamic acid (PAA-B2) with a solids concentration of 12% by mass (viscosity: 252 mPa s). The Mn of this polyamic acid was 10,601, and the Mw was 28,194.

[0116] Synthesis Example 4 DA-5 (2.39 g, 12.0 mmol), DA-6 (2.39 g, 8.00 mmol), and NMP (51.1 g) were added to a 50 mL four-neck flask equipped with a stirrer and a nitrogen inlet tube, and dissolved by stirring at room temperature (25 ° C.) while supplying nitrogen. Thereafter, TC-2 (2.59 g, 13.2 mmol) and NMP (6.40 g) were added, and the mixture was stirred at room temperature (25 ° C.) for 0.5 hours. Thereafter, TC-4 (1.35 g, 6.00 mmol) and NMP (6.40 g) were added, and the mixture was stirred at 40 ° C. for 18 hours, to obtain a solution of polyamic acid (PAA-B3) with a solids concentration of 12% by mass (viscosity: 212 mPa s). The Mn of this polyamic acid was 11,211, and the Mw was 29,400.

[0117] Synthesis Example 5: DA-5 (2.39 g, 12.0 mmol), DA-6 (2.39 g, 8.00 mmol), and NMP (52.3 g) were added to a 50 mL four-neck flask equipped with a stirrer and a nitrogen inlet tube, and the mixture was stirred at room temperature (25 ° C.) while introducing nitrogen to dissolve the mixture. Thereafter, TC-2 (2.63 g, 13.4 mmol) and NMP (6.50 g) were added, and the mixture was stirred at room temperature (25 ° C.) for 0.5 hours. Thereafter, TC-5 (1.50 g, 6.00 mmol) and NMP (6.50 g) were added, and the mixture was stirred at 40 ° C. for 18 hours to obtain a solution of polyamic acid (PAA-B4) with a solids concentration of 12% by mass (viscosity: 209 mPa s). The Mn of this polyamic acid was 9,157, and the Mw was 23,785.

[0118] The specifications of the polyamic acids obtained in the above synthesis examples are shown in Table 1. In Table 1, the numerical values ​​for the tetracarboxylic acid component and diamine component represent the amount (parts by mole) of each compound used relative to 100 parts by mole of the total amount of the diamine components used in each polymerization step. The numerical value for the solvent represents the amount (parts by mass) of each compound used relative to 100 parts by mass of the total amount of the organic solvents used in each polymerization step.

[0119]

[0120] [Preparation of Liquid Crystal Alignment Agent] Example 1 To the solution (21.7 g) of polyamic acid (PAA-A1) obtained in Synthesis Example 1 above, the solution (21.7 g) of polyamic acid (PAA-B1) obtained in Synthesis Example 2, NMP (21.9 g), BCS (30.0 g), and a 10 mass % NMP solution (5.20 g) of AD-2 were added, and the mixture was stirred at room temperature (23°C) for 2 hours, thereby obtaining a liquid crystal alignment agent (AL-1) in which the mass ratio of polymer solids to each solvent (polymer solids:NMP:BCS) was 5.2:64.8:30, and the blending ratio of AD-2 was 10 parts by mass per 100 parts by mass of the total polymer.

[0121] Example 2 To the solution (21.7 g) of polyamic acid (PAA-A1) obtained in Synthesis Example 1 above, the solution (21.7 g) of polyamic acid (PAA-B1) obtained in Synthesis Example 2, NMP (21.9 g), BCS (30.0 g), AD-1 (0.52 g), and a 10 mass % NMP solution (5.20 g) of AD-2 were added, and the mixture was stirred at room temperature (23°C) for 2 hours, thereby obtaining a liquid crystal aligning agent (AL-2) in which the mass ratio of polymer solids to each solvent (polymer solids:NMP:BCS) was 5.2:64.8:30, and the blending ratio of AD-1 was 10 parts by mass and the blending ratio of AD-2 was 10 parts by mass per 100 parts by mass of the total polymer.

[0122] <Comparative Examples 1 to 7> As shown in Table 2, liquid crystal aligning agents (AL-C1) to (AL-C7) were obtained by preparing in the same manner as in Examples 1 and 2, except that the type of polymer and the type and amount of additives used were changed.

[0123]

[0124] In Table 2, the numbers in parentheses for the polymer components represent the amount (parts by mass) of each polymer solid relative to 100 parts by mass of the total polymer solid content, and the numbers in the additives represent the amount (parts by mass) of each additive relative to 100 parts by mass of the total polymer solid content.

[0125] [Preparation of Liquid Crystal Alignment Film and Liquid Crystal Display Element] <Formation of Liquid Crystal Alignment Film> (Examples 1-2, Comparative Examples 1-7) The liquid crystal alignment agents (AL-1) to (AL-2) and (AL-C1) to (AL-C7) obtained in Examples 1-2 and Comparative Examples 1-7 above were applied to an ITO substrate by spin coating. After drying for 2 minutes on a hot plate at 80°C, the substrate was baked for 20 minutes in a hot air circulating oven at 230°C to obtain a substrate with a liquid crystal alignment film having a thickness of 100 nm. Polarized ultraviolet light was irradiated at 400 mJ / cm through a 254 nm bandpass filter and a polarizer on the coating surface. 2 The substrate was then irradiated with light and baked in an IR oven at 230° C. for 30 minutes to carry out an alignment treatment, thereby obtaining a substrate with a liquid crystal alignment film.

[0126] (1) Film Hardness Evaluation The substrate with the liquid crystal alignment film was subjected to a single rubbing alignment treatment (roller diameter: 120 mm, roller rotation speed: 1000 rpm, moving speed: 20 mm / sec, indentation length: 0.4 mm) using a rayon cloth (HY-5318, manufactured by Hyperflex Corporation), and then the haze value (turbidity) of the film was evaluated using a haze meter (HZ-V3, manufactured by Suga Test Instruments Co., Ltd.). The smaller the haze value, the less the film is scraped, i.e., the higher the film hardness. As evaluation criteria, a haze value of less than 0.1 was rated "A," a value of 0.1 or more but less than 0.2 was rated "B," and a value of 0.2 or more was rated "C." The results are shown in Table 3.

[0127] <Preparation of FFS Drive Liquid Crystal Cell> (Examples 1 and 2, Comparative Examples 1 to 7) Liquid crystal cells having the structure of an FFS mode liquid crystal display element were prepared.

[0128] The FFS substrate used was a rectangular glass substrate measuring 30 mm x 35 mm and 0.7 mm thick. A solid-pattern ITO electrode was formed on the substrate as a common electrode, and a 300 nm SiN (silicon nitride) film was formed on the common electrode by CVD (chemical vapor deposition) as a correlation insulating film, covering the common electrode. A comb-shaped pixel electrode formed by patterning the ITO film was placed on the SiN film as a pixel electrode, forming two pixels, a first pixel and a second pixel. Each pixel measured 6 mm long and 5 mm wide.

[0129] The pixel electrode had a comb-like shape with a central bend at an interior angle of 160° and multiple 3 μm-wide electrode wires arranged in parallel at 6 μm intervals. One pixel was formed by multiple electrode wires and had a first region and a second region separated by a line connecting the bent portions.

[0130] Next, the liquid crystal alignment agents (AL-1) to (AL-2) and (AL-C1) to (AL-C7) obtained in Examples 1 to 2 and Comparative Examples 1 to 7 were each filtered through a 1.0 μm pore size filter. The resulting solution was then applied by spin coating to the electrode-attached substrate (hereinafter referred to as the FFS substrate) and a 30 mm x 35 mm glass substrate with an ITO film formed on the back surface and a 3.3 μm high columnar spacer on the glass surface (hereinafter referred to as the opposing substrate). After drying for 2 minutes on an 80 ° C. hot plate, the coating was baked for 20 minutes in a 230 ° C. hot air circulating oven to form a coating film with a thickness of 100 nm. The coating surface was irradiated with polarized ultraviolet light through a 254 nm bandpass filter and a polarizer at the exposure dose listed in Table 3, and then baked for 30 minutes in an IR oven at 230 ° C. to perform an alignment treatment, thereby obtaining a substrate with a liquid crystal alignment film. The liquid crystal alignment film formed on the FFS substrate was subjected to an alignment treatment so that the direction dividing the interior angle of the pixel bend was perpendicular to the alignment direction of the liquid crystal, and the alignment film formed on the opposing substrate was subjected to an alignment treatment so that the alignment direction of the liquid crystal on the electrode substrate and the alignment direction of the liquid crystal on the opposing substrate were aligned when the liquid crystal cell was fabricated.

[0131] The two substrates were combined into a set, and a sealant (Mitsui Chemicals XN-1500T) was applied to one substrate using a dispenser. Another substrate was then attached to the other substrate, with the alignment directions of the liquid crystal alignment films facing each other at 0°. The attached substrates were then pressed together and heated in a hot air circulating oven at 150°C for 60 minutes to cure the sealant, producing an empty cell. Positive liquid crystal PA-1492 (DIC) was injected into this empty cell by a reduced pressure injection method, and the injection port was sealed to obtain an FFS-driven liquid crystal cell. The resulting liquid crystal cell was then heated at 120°C for 1 hour and left overnight at 23°C before being used for evaluation.

[0132] By visual observation, it was confirmed that all the FFS drive liquid crystal cells using the liquid crystal alignment agents (AL-1) to (AL-2) and (AL-C1) to (AL-C7) obtained in Examples 1 and 2 and Comparative Examples 1 to 7 exhibited uniform liquid crystal alignment. (2) Evaluation of Vibration Bright Spots Vibration bright spot evaluation was carried out using the FFS drive liquid crystal cells prepared above. A 1.0 mm2 A pen-shaped weight was placed on the liquid crystal cell, applying a 1 kg load to the entire area. The liquid crystal cell was then fixed and left for 10 minutes while vibrating at 10 Hz. The alignment state of the liquid crystal immediately after the alignment was observed using a polarizing microscope (Nikon Corporation, product name: Eclipse LV100N POL). The number of bright spots (poor alignment) within a 300 μm x 300 μm area was counted to evaluate the vibrating bright spots. A test tube mixer (As One Corporation, product name: TRIO TM-2N) was used as the vibration generator. Fewer than 5 bright spots were scored as "A," 5 to 10 bright spots as "B," and 10 or more bright spots as "C." The results are shown in Table 3. (3) Evaluation of Liquid Crystal Alignment Stability The FFS-driven liquid crystal cell prepared above was used to evaluate the stability of liquid crystal alignment. This evaluation evaluates the image retention (also known as AC image retention) that occurs due to a deterioration in the alignment performance of the liquid crystal alignment film during long-term AC drive.

[0133] The FFS-driven liquid crystal cell produced above was used in conjunction with a high-brightness backlight (light source: LED, brightness: 27,000 cd / m) with a surface temperature of 50°C. 2) and an AC voltage of ±4.4 V at a frequency of 30 Hz was applied for 144 hours. The pixel electrode and common electrode of the liquid crystal cell were then shorted and left at room temperature (23°C) for one day. For the liquid crystal cell subjected to the above treatment, the deviation between the alignment direction of the liquid crystal in the first region of the pixel and the alignment direction of the liquid crystal in the second region of the pixel when no voltage was applied was calculated as an angle. Specifically, the liquid crystal cell was placed between two polarizing plates arranged so that their polarization axes were perpendicular to each other, and the backlight was turned on. The liquid crystal cell was then adjusted to minimize the transmitted light intensity in the first region of the first pixel. The rotation angle Δ required to rotate the liquid crystal cell to minimize the transmitted light intensity in the second region of the first pixel was then calculated. The first and second regions of the second pixel were similarly compared, and the same angle Δ was calculated. The average of the angles Δ for the first and second pixels was then calculated as the rotation angle Δ of the liquid crystal cell. The smaller the rotation angle Δ, the better the stability of the liquid crystal alignment. As an evaluation standard, when the rotation angle Δ of the liquid crystal cell obtained above was less than 0.3°, it was rated as "A", and when it was 0.3° or more, it was rated as "C". The results are shown in Table 3. In Table 3 below, "-" in Comparative Examples 1 and 2 indicates that the stability of the liquid crystal alignment was not measured.

[0134]

[0135] As shown in Table 3, the liquid crystal alignment films obtained from the liquid crystal alignment agents (AL-1) to (AL-2) using the specific tetracarboxylic dianhydride had higher film hardness, fewer vibrating bright spots, and superior liquid crystal alignment stability compared to the liquid crystal alignment films obtained from the liquid crystal alignment agents (AL-C1) to (AL-C7) not using the specific tetracarboxylic dianhydride.

[0136] By using the liquid crystal aligning agent of the present invention, a liquid crystal alignment film having good film hardness and few vibrating bright spots even when stress is applied to the liquid crystal cell can be obtained, and a liquid crystal alignment film having a high level of suppression of AC afterimages can be obtained. Therefore, it is expected to be used in liquid crystal display elements requiring high display quality, particularly liquid crystal display elements of the IPS driving system and the FFS driving system. Furthermore, these elements are also useful in liquid crystal displays for display purposes, light control windows that control light transmission and blocking, optical shutters, etc.

[0137] 1: In-plane switching liquid crystal display element, 2: comb-tooth electrode substrate, 2a: substrate, 2b: linear electrode, 2c: liquid crystal alignment film, 2d: substrate, 2e: plane electrode, 2f: insulating film, 2g: linear electrode, 2h: liquid crystal alignment film, 3: liquid crystal, 4: opposing substrate, 4a: liquid crystal alignment film, 4b: substrate, L: electric field line

[0138] The entire contents of the specification, claims, drawings and abstract of Japanese Patent Application No. 2023-207918 filed on December 8, 2023 are hereby incorporated by reference as the disclosure of the present invention.

Claims

1. A liquid crystal aligning agent comprising the following polymer (P) and polymer (B): Polymer (P): At least one polymer selected from the group consisting of a polyimide precursor obtained by using a tetracarboxylic acid component containing at least one selected from the group consisting of tetracarboxylic acid dianhydrides represented by the following formula (1) and derivatives thereof and a diamine component, and a polyimide which is an imidized product of the polyimide precursor. Polymer (B): A polymer different from polymer (P), and at least one polymer selected from the group consisting of a polyimide precursor obtained by using a tetracarboxylic acid component containing at least one selected from the group consisting of tetracarboxylic acid dianhydrides represented by the following formula (T2) and derivatives thereof and a diamine component, and a polyimide which is an imidized product of the polyimide precursor. (In formula (1), R 1 ~R 4 each independently represents a hydrogen atom, a halogen atom, an alkyl group having 1 to 6 carbon atoms, an alkenyl group having 2 to 6 carbon atoms, an alkynyl group having 2 to 6 carbon atoms, a monovalent organic group having 1 to 6 carbon atoms containing a fluorine atom, or a phenyl group; R 1 ~R 4 At least one of represents a group other than a hydrogen atom as defined above.) 2. The diamine component used in the production of the polymer (P) contains a diamine (p) which is a compound having at least two amino groups in the molecule, and the diamine (p) is a phenylenediamine, a diaminobiphenyl compound, or a compound represented by the following formula (d AL ), a diamine having a tetracarboxylic diimide structure, a diamine having an amide bond, a diamine having a urea bond, and a diamine having a group "-N(D)-" (D represents a protecting group that is eliminated by heating and replaced with a hydrogen atom). The liquid crystal aligning agent according to claim 1. (Ar 1 , and Ar 1’ each represents a benzene ring, a biphenyl structure, or a naphthalene ring, and one or more hydrogen atoms on the benzene ring, the biphenyl structure, or the naphthalene ring may be substituted with a monovalent group. 1 and L 1’ each represents a single bond, -O-, -C(=O)-, or -O-C(=O)-. A is -CH 2 A represents an alkylene group having 2 to 12 carbon atoms, or a divalent organic group in which at least one of -O-, -C(=O)-O-, and -O-C(=O)- is inserted between the carbon-carbon bonds of the alkylene group. Any hydrogen atom possessed by A may be substituted with a halogen atom.

3. The liquid crystal aligning agent according to claim 2, wherein the content of the diamine (p) is 5 mol % or more relative to 1 mol of the diamine component used in the production of the polymer (P).

4. The liquid crystal aligning agent according to claim 1, wherein the tetracarboxylic acid component used in the production of the polymer (B) contains another tetracarboxylic acid dianhydride and / or a derivative thereof different from the tetracarboxylic acid dianhydride represented by the formula (T2) and its derivative, and the other tetracarboxylic acid dianhydride and its derivative are selected from acyclic aliphatic tetracarboxylic acid dianhydrides, alicyclic tetracarboxylic acid dianhydrides, aromatic tetracarboxylic acid dianhydrides, or derivatives thereof.

5. The liquid crystal aligning agent according to claim 4, wherein the content of the acyclic aliphatic tetracarboxylic dianhydride, the alicyclic tetracarboxylic dianhydride, the aromatic tetracarboxylic dianhydride, or a derivative thereof is 10 mol % or more relative to 1 mol of the tetracarboxylic acid component used in the production of the polymer (B).

6. The liquid crystal aligning agent according to claim 1, wherein the diamine component used in the production of the polymer (B) contains at least one diamine selected from the group consisting of diamines having a urea bond, diamines having an amide bond, diamines having a nitrogen atom-containing structure, diamines having a carboxy group, 4-(2-(methylamino)ethyl)aniline, and 4-(2-aminoethyl)aniline.

7. The liquid crystal aligning agent according to any one of claims 1 to 6, which is used for forming a liquid crystal alignment film that is imparted with liquid crystal aligning ability by a photoalignment treatment method.

8. A liquid crystal alignment film obtained from the liquid crystal aligning agent according to any one of claims 1 to 6.

9. A liquid crystal display device comprising the liquid crystal alignment film according to claim 8.

10. A method for manufacturing a liquid crystal display element, comprising the following steps (1) to (4): Step (1): A step of applying the liquid crystal alignment agent according to any one of claims 1 to 6 to at least one of a first substrate and a second substrate; Step (2): A step of baking the applied liquid crystal alignment agent to obtain a film; Step (3): A step of performing an alignment treatment on the film obtained in step (2); Step (4): A step of disposing a liquid crystal layer between the first substrate and the second substrate so as to be adjacent to the alignment-treated film to prepare a liquid crystal cell.

11. The method for producing a liquid crystal display element according to claim 10, wherein the alignment treatment is a photoalignment treatment.

12. The method for producing a liquid crystal display element according to claim 11, further comprising a step (3b) of carrying out a heat treatment between steps (3) and (4).

13. The method for producing a liquid crystal display element according to claim 12, wherein the liquid crystal display element is an IPS type or FFS type liquid crystal display element.

Citation Information

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