Liquid crystal light control element
Patent Information
- Application Number
- PCT/JP2025/013766
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-04-09
- Filing Date
- 2025-04-04
- Publication Date
- 2025-10-16
AI Technical Summary
Conventional liquid crystal light control devices face issues with poor alignment of liquid crystals due to the use of chiral compounds, leading to display defects and image sticking, especially when exposed to harsh environments.
A liquid crystal light control device with a liquid crystal composition containing liquid crystals and chiral compounds, utilizing specific polymers in the alignment films that provide rigid structures to maintain stable alignment, reducing the generation of ionic impurities and enhancing voltage holding ratio.
The device maintains stable liquid crystal alignment, preventing display defects and image sticking even under prolonged exposure to high temperatures and light, suitable for light control windows and optical shutters.
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Abstract
Description
Liquid crystal dimming element
[0001] The present invention relates to a liquid crystal light control element, a liquid crystal alignment film used therein, and a liquid crystal aligning agent for forming the liquid crystal alignment film.
[0002] As an alternative to conventional curtains and blinds, many electric light control devices have been proposed that variably control the amount of light transmission and visibility depending on the level of externally applied voltage, and liquid crystal light control devices are one such device. Various liquid crystal light control device types are known, including a guest-host liquid crystal type that uses liquid crystal and a dichroic dye. This type requires an increased amount of dichroic dye to increase the difference in transmittance between the transmissive state and the non-transmissive state (hereinafter also referred to as the "transmittance difference"). However, dichroic dyes generally have low solubility in liquid crystals, making it difficult to increase the amount. On the other hand, in the guest-host liquid crystal type, the transmittance difference can be increased by adding a chiral compound to the liquid crystal (see Patent Documents 1 to 3).
[0003] Japanese Unexamined Patent Publication No. 6-67173 Japanese Unexamined Patent Publication No. 2018-106080 Japanese Special Publication No. 2023-530439
[0004] In systems using a liquid crystal composition containing liquid crystal and a chiral compound, a large amount of chiral compound must be added to the liquid crystal to increase the transmittance difference. However, this large amount of chiral compound can cause poor alignment of the liquid crystal, making the liquid crystal light control device prone to display defects. Furthermore, because liquid crystal light control devices are sometimes attached to the window glass of automobiles or buildings, they must be able to withstand harsh environments where they are exposed to light for long periods of time. Furthermore, in such harsh environments, the voltage holding ratio, one of the electrical characteristics of the liquid crystal light control device, decreases, making them prone to image sticking, a type of display defect. Therefore, it is necessary for the voltage holding ratio to remain stable even when exposed to light for long periods of time. Therefore, an object of the present invention is to provide a liquid crystal light control device using a liquid crystal composition containing liquid crystal and a chiral compound that does not suffer from display defects due to poor alignment of the liquid crystal. Another object of the present invention is to provide a liquid crystal light control device that does not suffer from display defects and image sticking due to poor alignment of the liquid crystal, even when exposed to light for long periods of time.
[0005] The present inventors have conducted extensive research to achieve the above object, and as a result have completed the present invention having the following gist. That is, the liquid crystal light control element has a transmittance that can be changed in response to an applied voltage, and comprises: a pair of substrates each having an electrode; a liquid crystal layer provided between the substrates and containing liquid crystal molecules that are twist-aligned when no voltage is applied; a liquid crystal alignment film (A) between the one substrate and the liquid crystal layer and having a function of aligning the liquid crystal molecules approximately vertically; and a liquid crystal alignment film (B) between the other substrate and the liquid crystal layer and having a function of aligning the liquid crystal molecules approximately horizontally, wherein the liquid crystal layer has a liquid crystal composition containing liquid crystal molecules having positive dielectric anisotropy and a chiral compound, the liquid crystal alignment film (A) comprises a polymer (A) (hereinafter also referred to as a "specific polymer (A)") having a structure of the following formula [1] (hereinafter also referred to as a "specific structure (A)"), and the liquid crystal alignment film (B) comprises a polymer (B) (hereinafter also referred to as a "specific polymer (B)") having a structure of the following formula [2] (hereinafter also referred to as a "specific structure (B)"), and the ratio d / p is expressed as follows: is 1 to 10.
[0006] (X 1 is a single bond, -(CH 2 ) a -(a is an integer of 1 to 15), -O-, -CH 2 O-, -CONH-, -NHCO-, -CON(CH 3 ) -, -N(CH 3 ) represents CO—, —COO—, or —OCO—. X 2 is a single bond or -(CH 2 ) b - (where b is an integer of 1 to 15). 3 is a single bond, -(CH 2 ) c -(c is an integer of 1 to 15), -O-, -OCH 2 represents at least one selected from -, -COO-, and -OCO-. 4represents at least one divalent cyclic group selected from a benzene ring, a cyclohexane ring, and a heterocycle, or a divalent organic group having 17 to 51 carbon atoms and a steroid skeleton, and any hydrogen atom on the cyclic group may be substituted with an alkyl group having 1 to 3 carbon atoms, an alkoxy group having 1 to 3 carbon atoms, a fluorine-containing alkyl group having 1 to 3 carbon atoms, a fluorine-containing alkoxy group having 1 to 3 carbon atoms, or a fluorine atom. X 5 represents at least one cyclic group selected from a benzene ring, a cyclohexane ring, and a heterocycle, and any hydrogen atom on these cyclic groups may be substituted with an alkyl group having 1 to 3 carbon atoms, an alkoxy group having 1 to 3 carbon atoms, a fluorine-containing alkyl group having 1 to 3 carbon atoms, a fluorine-containing alkoxy group having 1 to 3 carbon atoms, or a fluorine atom. X 6 represents an alkyl group having 1 to 18 carbon atoms, an alkenyl group having 2 to 18 carbon atoms, a fluorine-containing alkyl group having 1 to 18 carbon atoms, an alkoxy group having 1 to 18 carbon atoms, or a fluorine-containing alkoxy group having 1 to 18 carbon atoms. Xn represents an integer of 0 to 4. * represents a bond.
[0007] (Y 1 is a single bond, -(CH 2 ) a -(a is an integer of 1 to 15), -O-, -CH 2 O-, -CONH-, -NHCO-, -CON(CH 3 ) -, -N(CH 3 ) represents CO—, —COO—, or —OCO—. 2 and Y 3 each independently represents at least one divalent cyclic group selected from a benzene ring, a cyclohexane ring, and a heterocycle, and any hydrogen atom on the cyclic group may be substituted with an alkyl group having 1 to 3 carbon atoms, an alkoxy group having 1 to 3 carbon atoms, a fluorine-containing alkyl group having 1 to 3 carbon atoms, a fluorine-containing alkoxy group having 1 to 3 carbon atoms, or a fluorine atom. 4 represents an alkyl group having 1 to 18 carbon atoms, an alkenyl group having 2 to 18 carbon atoms, or an alkoxy group having 1 to 18 carbon atoms. Yn represents an integer of 0 or 1. * represents a bond.
[0008] According to the present invention, a liquid crystal light control device using a liquid crystal composition containing a liquid crystal having positive dielectric anisotropy and a chiral compound does not suffer from display defects due to poor liquid crystal alignment. Furthermore, even in environments where the device is exposed to high temperature and humidity or light irradiation for long periods of time, the device does not suffer from display defects or image sticking due to poor liquid crystal alignment. Therefore, the liquid crystal light control device of the present invention is useful for light control windows and optical shutters that control the transmission and blocking of light. The mechanism by which the present invention provides a liquid crystal light control device with the above-described excellent properties is not entirely clear, but is generally presumed to be as follows. The liquid crystal alignment film (A) and liquid crystal alignment film (B) of the present invention are obtained from a liquid crystal aligning agent containing a specific polymer (A) having the specific structure (A) of the above formula [1] and a liquid crystal aligning agent containing a specific polymer (B) having the above formula [2], respectively. These specific structures are rigid, allowing for more stable liquid crystal alignment compared to conventional flexible alkyl group structures. Therefore, a liquid crystal light control device exhibiting excellent optical properties can be obtained. Furthermore, since the specific structure (A) and the specific structure (B) are rigid structures, they are unlikely to decompose even when irradiated with light, and therefore the generation of ionic impurities, which is a factor in reducing the voltage holding ratio, can be suppressed.
[0009] The present invention will be described in detail below. <Specific Structure (A)> The specific structure (A) is a structure of the above formula [1]. In formula [1], X 1 ~X 6 and Xn are as defined above, but among them, the following are preferred: X 1 From the viewpoint of availability of raw materials and ease of synthesis, 2 ) a -(a is an integer of 1 to 15), -O-, -CH 2 Preferred are —O— and —COO—. More preferred are single bonds, —(CH 2 ) a -(a is an integer of 1 to 10), -O-, -CH 2 X is -O- or -COO-. 2 is a single bond or -(CH 2 ) b- (b is an integer of 1 to 10) is preferred. 3 From the viewpoint of ease of synthesis, a single bond, -(CH 2 ) a -(a is an integer of 1 to 15), -O-, -CH 2 Preferred are —O—, —COO—, and —OCO—. More preferred are single bonds, —(CH 2 ) a -(a is an integer of 1 to 10), -O-, -CH 2 X is -O- or -COO-. 4 From the viewpoint of ease of synthesis, X is preferably an organic group having a benzene ring, a cyclohexane ring, or a steroid skeleton and having 17 to 51 carbon atoms. 5 is preferably a benzene ring or a cyclohexane ring. 6 is preferably an alkyl group having 1 to 12 carbon atoms, an alkenyl group having 2 to 12 carbon atoms, or an alkoxy group having 1 to 12 carbon atoms. More preferably, it is an alkyl group having 1 to 8 carbon atoms, an alkenyl group having 2 to 8 carbon atoms, or an alkoxy group having 1 to 8 carbon atoms. From the viewpoint of availability of raw materials and ease of synthesis, Xn is preferably an integer of 0 to 3. More preferably, it is an integer of 0 to 2.
[0010] <Specific Structure (B)> The specific structure (B) is a structure represented by the above formula [2]. In formula [2], Y 1 ~Y 4 and Yn are as defined above, but among them, the following are preferred: 1 From the viewpoint of availability of raw materials and ease of synthesis, -O-, -CH 2 O-, -CONH-, -NHCO-, -CON(CH 3 ) -, -N(CH 3 )CO—, —COO—, or —OCO— is preferred. —O—, —CH 2 Y is —O—, —CONH—, —NHCO—, —COO—, or —OCO—. 2 and Y 3 are each independently preferably a benzene ring or a cyclohexane ring. 4is preferably an alkyl group having 1 to 18 carbon atoms, an alkenyl group having 2 to 18 carbon atoms, or an alkoxy group having 1 to 12 carbon atoms. More preferably, it is an alkyl group having 1 to 12 carbon atoms, an alkenyl group having 2 to 12 carbon atoms, or an alkoxy group having 1 to 8 carbon atoms. Yn is preferably an integer of 1.
[0011] <Specific Polymer (A) and Specific Polymer (B)> The specific polymer (A) is not particularly limited, but is preferably at least one polymer selected from a polyimide precursor, a polyimide, and a polysiloxane. The specific polymer (B) is not particularly limited, but is preferably at least one polymer selected from a polyimide precursor and a polyimide. When a polyimide precursor or a polyimide (hereinafter collectively referred to as a "polyimide-based polymer") is used for the specific polymer (A) and the specific polymer (B), they are preferably obtained by reacting a diamine component with a tetracarboxylic acid component. The polyimide precursor is preferably a polyamic acid or a polyamic acid ester having a structure of the following formula [A]:
[0012] (R a represents a tetravalent organic group. b represents a divalent organic group. 1 and A 2 represents a hydrogen atom or an alkyl group having 1 to 8 carbon atoms, and may be the same or different. 3 and A 4 represents a hydrogen atom, an alkyl group having 1 to 5 carbon atoms, or an acetyl group, and may be the same or different. n represents a positive integer.
[0013] The polyimide has a structure of the following formula [A-4] and can be obtained by ring-closing (hereinafter also referred to as "imidization") a polyamic acid of a polyimide precursor. In this case, if the ring-closure rate of the amic acid group (hereinafter also referred to as "imidization rate") is less than 100%, the polyimide contains at least one of the structures of the following formulas [A-1] to [A-3] in addition to the structure of formula [A-4].
[0014] (R a , R b and A 1 ~A 4is defined as in the above formula [A].) The diamine component is a diamine having two primary or secondary amino groups in the molecule, and examples of the tetracarboxylic acid component include a tetracarboxylic acid compound, a tetracarboxylic acid dianhydride, a tetracarboxylic acid dihalide compound, a tetracarboxylic acid dialkyl ester compound, and a tetracarboxylic acid dialkyl ester dihalide compound.
[0015] The polyimide polymer is preferably a polyamic acid having a repeating unit structure of the following formula [D] or a polyimide obtained by imidizing the polyamic acid, because the polyimide polymer can be obtained relatively easily by using a tetracarboxylic dianhydride of the following formula [B] and a diamine of the following formula [C] as raw materials. (R a and R b has the same meaning as defined in the above formula [A]. (R a and R b has the same meaning as defined in the above formula [A]. n represents a positive integer.
[0016] In addition, a polymer having a repeating unit structure of the above formula [D] may be synthesized by a conventional synthesis method. 1 and A 2 and A in formula [A] 3 and A 4 It is also possible to introduce an alkyl group or an acetyl group having 1 to 5 carbon atoms. In the method for introducing the specific structure (A) into a polyimide polymer, it is preferable to use a diamine having the specific structure (A) as part of the raw material. In particular, it is preferable to use a diamine of the following formula [1a] (hereinafter also referred to as "specific diamine (A)").
[0017] X represents the structure of the above formula [1], and X in formula [1] 1 ~X 6Details of Xn and preferred combinations are as described above. When a plurality of Xs are present, the plurality of Xs may be the same or different. Each Xm independently represents an integer of 1 to 4. Of these, each independently represents an integer of 1 or 2. Xp represents an integer of 0 or 1. Of these, the integer 1 is preferred. Specific examples of the specific diamine (A) include the diamine compounds of formulas [2-1] to [2-6] and formulas [2-9] to [2-31] described in paragraphs
[0033] ,
[0034] , and
[0036] to
[0042] of WO 2013 / 125595. In addition, in the description of WO 2013 / 125595, R in formulas [2-1] to [2-3] 2 and R in formula [2-4] to formula [2-6] 4 represents an alkyl group having 1 to 18 carbon atoms, a fluorine-containing alkyl group having 1 to 18 carbon atoms, an alkoxy group having 1 to 18 carbon atoms, or a fluorine-containing alkoxy group having 1 to 18 carbon atoms. 4 represents a linear or branched alkyl group having 3 to 18 carbon atoms. 3 is -O-, -CH 2 It represents —O—, —COO— or —OCO—.
[0018] Among these, the specific diamine (A) is preferably a diamine compound of formula [2-1] to formula [2-6], formula [2-9] to formula [2-13], or formula [2-22] to formula [2-31] described in WO2013 / 125595. From the viewpoint of suitably obtaining the effects of the present invention, the diamines of the following formulas [1a-32] to [1a-41] are more preferred. (R 1 Each represents an alkyl group having 3 to 12 carbon atoms. The cis-trans isomer of 1,4-cyclohexylene is the trans isomer.)
[0019] (R 2 Each represents an alkyl group having 3 to 12 carbon atoms. The cis-trans isomer of 1,4-cyclohexylene is the trans isomer.)
[0020] From the viewpoint of optimally achieving the effects of the present invention, the proportion of the specific diamine (A) used is preferably 25 to 100 mol % relative to the total diamine component. It is more preferably 25 to 80 mol %, and particularly preferably 25 to 60 mol %. Furthermore, the specific diamine (A) can be used alone or in combination of two or more types depending on the properties.
[0021] In the method for introducing the specific structure (B) into a polyimide-based polymer, it is preferable to use a diamine having the specific structure (B) as part of the raw material. In particular, it is preferable to use a diamine of the following formula [2a] (hereinafter also referred to as "specific diamine (B)").
[0022] Y represents the structure of the above formula [2]. 1 ~Y 4 Details of and Yn, and preferred combinations are as described above. Ym represents an integer of 1 to 4. Of these, an integer of 1 or 2 is preferred. An integer of 1 is more preferred. Specific examples of the specific diamine (B) include diamines of the following formulas [2a-1] to [2a-18], and it is preferable to use these. Of these, formula [2a-1], formula [2a-2], formula [2a-4], formula [2a-5], formula [2a-7], formula [2a-8], formula [2a-10], formula [2a-11], formula [2a-13], or formula [2a-14] is preferred. From the viewpoint of suitably obtaining the effects of the present invention, formula [2a-1], formula [2a-2], formula [2a-4], formula [2a-5], formula [2a-10], formula [2a-11], formula [2a-13] or formula [2a-14] is more preferred.
[0023] (R 1 respectively represent a hydrogen atom, an alkyl group having 1 to 8 carbon atoms, an alkenyl group having 2 to 8 carbon atoms, or an alkoxy group having 1 to 8 carbon atoms. The cis-trans isomer of 1,4-cyclohexylene is a trans isomer.)
[0024] From the viewpoint of optimally achieving the effects of the present invention, the proportion of the specific diamine (B) used is preferably 1 to 20 mol % relative to the total diamine component. A more preferred proportion is 2 to 20 mol %. A particularly preferred proportion is 5 to 20 mol %. Furthermore, the specific diamine (B) can be used alone or in a mixture of two or more types depending on the respective properties. When the specific polymer (A) and the specific polymer (B) are polyimide-based polymers, diamines other than the specific diamine (A) and the specific diamine (B) can be used as the diamine component of each polymer as the other diamine. Specific examples include the other diamine compounds described in paragraphs
[0044] to
[0051] of WO 2013 / 125595 and the diamines of the following formulas [DA-1] to [DA-103]. Furthermore, the other diamines can be used alone or in a mixture of two or more types depending on the respective properties.
[0025]
[0026]
[0027]
[0028]
[0029]
[0030] When the specific polymer (A) and the specific polymer (B) are polyimide-based polymers, it is preferable to use, as the tetracarboxylic acid component for producing the polyimide-based polymer, a tetracarboxylic acid dianhydride represented by the following formula [3], or a tetracarboxylic acid derivative thereof, such as a tetracarboxylic acid, a tetracarboxylic acid dihalide, a tetracarboxylic acid dialkyl ester, or a tetracarboxylic acid dialkyl ester dihalide (hereinafter, all of these are also collectively referred to as the "specific tetracarboxylic acid component").
[0031] Z represents at least one selected from the structures of the following formulae [3a] to [3l]. (Z A ~ZD each independently represents a hydrogen atom, a methyl group, a chlorine atom or a benzene ring. E and Z F each independently represents a hydrogen atom or a methyl group.
[0032] Among these, from the viewpoints of ease of synthesis and ease of polymerization reactivity when producing a polymer, Z is preferably formula [3a], formula [3c] to formula [3g], formula [3k], or formula [3l]. Formula [3a], formula [3e] to formula [3g], formula [3k], or formula [3l] is more preferred. Formula [3a], formula [3e] to formula [3g], or formula [3l] is particularly preferred. The proportion of the specific tetracarboxylic acid component used is preferably 1 mol % or more relative to the total tetracarboxylic acid components used in the synthesis of the polyimide polymer. More preferably, it is 5 mol % or more. Particularly preferably, it is 10 mol % or more. Most preferably, it is 10 to 100 mol % from the viewpoint of optimally achieving the effects of the present invention.
[0033] When the specific polymer (A) and the specific polymer (B) are polyimide-based polymers, the polyimide-based polymers can contain tetracarboxylic acid components other than the specific tetracarboxylic acid component. Examples of the other tetracarboxylic acid components include the tetracarboxylic acid compounds, tetracarboxylic acid dianhydrides, dicarboxylic acid dihalide compounds, dicarboxylic acid dialkyl ester compounds, and dialkyl ester dihalide compounds shown below. Specific examples include the other tetracarboxylic acid components described in paragraph
[0057] of WO 2015 / 012368, and the tetracarboxylic acid dianhydrides and derivatives thereof represented by the following formulae [CA-1] to [CA-26]. Furthermore, the specific tetracarboxylic acid component and the other tetracarboxylic acid component can be used alone or in combination of two or more depending on the respective properties.
[0034]
[0035] The method for synthesizing a polyimide polymer is not particularly limited. It is typically obtained by reacting a diamine component with a tetracarboxylic acid component. Specific examples include the methods described in paragraphs
[0059] and
[0059] of WO 2015 / 012368. Polyamic acid esters can be synthesized by known methods, such as reacting a polyamic acid of a polyimide precursor obtained by reacting a diamine component with a tetracarboxylic acid component with an esterifying agent, reacting the tetracarboxylic acid diester with a diamine, or reacting the tetracarboxylic acid diester with a dihalide. The solvent used in the reaction between the diamine component and the tetracarboxylic acid component is not particularly limited as long as it dissolves the resulting polyimide precursor. Specific examples include N-methyl-2-pyrrolidone, N-ethyl-2-pyrrolidone, γ-butyrolactone, N,N-dimethylformamide, N,N-dimethylacetamide, dimethyl sulfoxide, and 1,3-dimethyl-imidazolidinone. When the polyimide precursor has high solvent solubility, methyl ethyl ketone, cyclohexanone, cyclopentanone, 4-hydroxy-4-methyl-2-pentanone, or a solvent represented by the following formulas [D1] to [D3] can be used.
[0036] (D 1 and D 2 represents an alkyl group having 1 to 3 carbon atoms. 3 represents an alkyl group having 1 to 4 carbon atoms.)
[0037] These may be used alone or in combination. Furthermore, even if a solvent does not dissolve the polyimide precursor, it may be mixed with the above solvent to the extent that precipitation does not occur. Furthermore, since moisture in the solvent inhibits the polymerization reaction and may even cause hydrolysis of the polyimide precursor, it is preferable to use a dehydrated and dried solvent. In the polymerization reaction of the polyimide precursor, the total number of moles of tetracarboxylic acid components is preferably 0.8 to 1.2 when the total number of moles of diamine components is 1.0. When the total number of moles of tetracarboxylic acid components is less than 1.0, i.e., when the total number of moles of tetracarboxylic acid components is smaller than the number of moles of diamine components, the polymer will have an amino group structure at its terminal. When the total number of moles of tetracarboxylic acid components is greater than the number of moles of diamine components, the polymer will have a carboxylic acid anhydride or dicarboxylic acid structure at its terminal.
[0038] Polyimides are obtained by ring-closing a polyimide precursor, and the imidization rate does not necessarily need to be 100% and can be adjusted as desired depending on the application and purpose. From the viewpoint of solubility in solvents, an imidization rate of 30 to 90% is preferable. A rate of 40 to 90% is even more preferable. Polyimide-based polymers may be converted into end-capped polymers using an end-capping agent. End-capped polymers have the effect of increasing the film hardness of liquid crystal alignment films and improving adhesion between the liquid crystal alignment film and the sealant in liquid crystal dimming devices. Furthermore, the method for obtaining end-capped polymers is not particularly limited. Specific examples include the methods described in paragraphs
[0046] and
[0047] of WO 2023 / 074568. From the viewpoints of the strength of the liquid crystal alignment film obtained therefrom, workability during film formation, and coating properties, the molecular weight of the polyimide polymer is preferably 5,000 to 1,000,000, more preferably 10,000 to 150,000, in terms of polyethylene glycol oxide (Mw) measured by Gel Permeation Chromatography (GPC).
[0039] When a polysiloxane is used for the specific polymer (A), it is preferably any one of polysiloxanes obtained by polycondensation of an alkoxysilane of the following formula [A1], polysiloxanes obtained by polycondensation of an alkoxysilane containing the formula [A1] and one of the alkoxysilanes of the following formula [A2] or [A3], or polysiloxanes obtained by polycondensation of the alkoxysilanes of the formula [A1], formula [A2], and formula [A3] (hereinafter collectively referred to as "polysiloxane polymers"). Alkoxysilane of formula [A1]:
[0040] A 1 represents the structure of the above formula [1]. 1 ~X 6 The details and preferred combinations of X and Xn are as described above. 2 is a hydrogen atom or an alkyl group having 1 to 5 carbon atoms. Among these, a hydrogen atom or an alkyl group having 1 to 3 carbon atoms is preferred. 3 is an alkyl group having 1 to 5 carbon atoms. Of these, from the viewpoint of polycondensation reactivity, an alkyl group having 1 to 3 carbon atoms is preferred. m is an integer of 1 or 2. Of these, from the viewpoint of synthesis, the integer 1 is preferred. n is an integer of 0 to 2. p is an integer of 0 to 3. Of these, from the viewpoint of polycondensation reactivity, an integer of 1 to 3 is preferred. An integer of 2 or 3 is more preferred. m+n+p is an integer of 4.
[0041] Specific examples of the alkoxysilane of formula [A1] include alkoxysilanes of formula [2a-1] to formula [2a-32] described in paragraphs
[0036] to
[0046] of WO 2015 / 008846. Among them, alkoxysilanes of formula [2a-9] to formula [2a-21], formula [2a-25] to formula [2a-28], or formula [2a-32] in the same publication are preferred. Furthermore, the alkoxysilane of formula [A1] can be used alone or in combination of two or more types depending on the respective properties. Alkoxysilane of formula [A2]:
[0042] B 1represents an organic group having 2 to 12 carbon atoms and at least one selected from a vinyl group, an epoxy group, an amino group, a mercapto group, an isocyanate group, a methacryl group, an acryl group, a ureido group, and a cinnamoyl group. Among these, from the viewpoint of ease of availability, an organic group having a vinyl group, an epoxy group, an amino group, a methacryl group, an acryl group, or a ureido group is preferred. An organic group having a methacryl group, an acryl group, or a ureido group is more preferred. B 2 represents a hydrogen atom or an alkyl group having 1 to 5 carbon atoms. Among these, a hydrogen atom or an alkyl group having 1 to 3 carbon atoms is preferred. B 3 represents an alkyl group having 1 to 5 carbon atoms. Of these, from the viewpoint of polycondensation reactivity, an alkyl group having 1 to 3 carbon atoms is preferred. m represents an integer of 1 or 2. Of these, from the viewpoint of ease of synthesis, the integer 1 is preferred. n represents an integer of 0 to 2. p represents an integer of 0 to 3. Of these, from the viewpoint of polycondensation reactivity, an integer of 1 to 3 is preferred. An integer of 2 or 3 is more preferred. m+n+p is an integer of 4.
[0043] Specific examples of the alkoxysilane of formula [A2] include the specific examples of the alkoxysilane of formula [2b] described in paragraphs
[0049] and
[0050] of WO 2015 / 008846. Among them, allyltriethoxysilane, allyltrimethoxysilane, diethoxymethylvinylsilane, dimethoxymethylvinylsilane, triethoxyvinylsilane, vinyltrimethoxysilane, vinyltris(2-methoxyethoxy)silane, 3-(triethoxysilyl)propyl methacrylate, 3-(trimethoxysilyl)propyl acrylate, 3-(trimethoxysilyl)propyl methacrylate, 3-glycidyloxypropyl(dimethoxy)methylsilane, 3-glycidyloxypropyl(diethoxy)methylsilane, 3-glycidyloxypropyltrimethoxysilane, and 2-(3,4-epoxycyclohexyl)ethyltrimethoxysilane are preferred. The alkoxysilane of formula [A2] can be used alone or in combination of two or more depending on the properties.
[0044] D 1represents a hydrogen atom or an alkyl group having 1 to 5 carbon atoms. Among these, a hydrogen atom or an alkyl group having 1 to 3 carbon atoms is preferred. D 2 represents an alkyl group having 1 to 5 carbon atoms. Among these, an alkyl group having 1 to 3 carbon atoms is preferred from the viewpoint of polycondensation reactivity. n represents an integer of 0 to 3. Specific examples of alkoxysilanes of formula [A3] include the specific examples of alkoxysilanes of formula [2c] described in paragraphs
[0052] and
[0053] of WO 2015 / 008846. In formula [A3], alkoxysilanes in which n is 0 include tetramethoxysilane, tetraethoxysilane, tetrapropoxysilane, and tetrabutoxysilane, and it is preferable to use these alkoxysilanes as the alkoxysilane of formula [A3]. Furthermore, the alkoxysilanes of formula [A3] can be used alone or in combination of two or more types depending on the properties.
[0045] The polysiloxane polymer is a polysiloxane obtained by polycondensation of an alkoxysilane of formula [A1], or a polysiloxane obtained by polycondensation of an alkoxysilane of formula [A1] with an alkoxysilane of formula [A2] and / or formula [A3]. That is, the polysiloxane polymer is any one of a polysiloxane obtained by polycondensation of only an alkoxysilane of formula [A1], a polysiloxane obtained by polycondensation of two alkoxysilanes of formula [A1] and formula [A2], a polysiloxane obtained by polycondensation of two alkoxysilanes of formula [A1] and formula [A3], and a polysiloxane obtained by polycondensation of three alkoxysilanes of formula [A1], formula [A2], and formula [A3]. Among these, polysiloxanes obtained by polycondensing multiple types of alkoxysilanes are preferred from the viewpoint of polycondensation reactivity and the solubility of the polysiloxane polymer in a solvent. That is, it is preferable to use any one of polysiloxanes obtained by polycondensing two types of alkoxysilanes of formula [A1] and formula [A2], polysiloxanes obtained by polycondensing two types of alkoxysilanes of formula [A1] and formula [A3], and polysiloxanes obtained by polycondensing three types of alkoxysilanes of formula [A1], formula [A2], and formula [A3]. When alkoxysilanes of formula [A1] and formula [A2] or formula [A3] are used, the proportion of alkoxysilanes of formula [A1] used is preferably 10 to 80 mol%, more preferably 20 to 80 mol%, of all alkoxysilanes used in the synthesis of the polysiloxane. The proportion of the alkoxysilane of formula [A2] or formula [A3] used is preferably 10 to 90 mol %, more preferably 20 to 80 mol %.
[0046] When alkoxysilanes of formula [A1], formula [A2], and formula [A3] are used, the proportion of the alkoxysilane of formula [A1] used is preferably 10 to 80 mol%, more preferably 20 to 80 mol%, of all alkoxysilanes used in the synthesis of polysiloxane. The proportion of the alkoxysilane of formula [A2] used is preferably 5 to 75 mol%, more preferably 15 to 65 mol%. The proportion of the alkoxysilane of formula [A3] used is preferably 5 to 75 mol%, more preferably 15 to 65 mol%. The method for polycondensing the polysiloxane polymer is not particularly limited. Specific examples include the methods described in paragraphs
[0057] to
[0063] of WO 2015 / 008846.
[0047] When multiple alkoxysilanes of formula [A1], [A2], or [A3] are used in the polycondensation reaction to produce a polysiloxane polymer, the reaction may be carried out using a mixture in which multiple alkoxysilanes are premixed, or the reaction may be carried out by sequentially adding multiple alkoxysilanes. In the present invention, the polysiloxane polymer solution obtained by the above method may be used as the specific polymer (A) as is, or, if necessary, the polysiloxane polymer solution may be concentrated, diluted with a solvent, or substituted with another solvent before use as the specific polymer (A). The solvent used for dilution (hereinafter also referred to as "additive solvent") may be the solvent used in the polycondensation reaction or another solvent. The additive solvent is not particularly limited as long as the polysiloxane polymer is uniformly dissolved, and one or more types may be selected as desired. In addition to the solvents used in the polycondensation reaction, examples of the additive solvent include ketone solvents such as acetone, methyl ethyl ketone, and methyl isobutyl ketone, and ester solvents such as methyl acetate, ethyl acetate, and ethyl lactate. When a polysiloxane-based polymer and another polymer are used as the specific polymer (A), it is preferable to distill off the alcohol generated during the polycondensation reaction of the polysiloxane-based polymer under normal pressure or reduced pressure before mixing the other polymer with the polysiloxane-based polymer.
[0048] <Liquid Crystal Alignment Agent> The liquid crystal aligning agent is a solution for forming the liquid crystal alignment film (A) and the liquid crystal alignment film (B) (hereinafter collectively referred to as "liquid crystal alignment film"), and is a solution containing a specific polymer (A) or a specific polymer (B) and a solvent. In this case, two or more types of specific polymers can be used for each liquid crystal aligning agent. The polymer components do not have to be all specific polymers (A) or specific polymers (B), and a polymer not having a specific structure (A) or a specific structure (B) may be mixed. In this case, the proportion of the polymer not having a specific structure is preferably 10 to 200 parts by mass, more preferably 10 to 100 parts by mass, per 100 parts by mass of the specific polymer (A) or specific polymer (B). The solvent content in the liquid crystal aligning agent can be appropriately selected from the viewpoints of the application method of the liquid crystal aligning agent and obtaining the desired film thickness. In particular, from the viewpoint of forming a uniform liquid crystal alignment film by application, the solvent content in the liquid crystal aligning agent is preferably 50 to 99.9% by mass, more preferably 60 to 99% by mass. A content of 65 to 99% by mass is particularly preferred.
[0049] The solvent used for the liquid crystal aligning agent is not particularly limited as long as it is a solvent that can dissolve the specific polymer (A) and the specific polymer (B). Among them, the following solvents (hereinafter also referred to as "solvent A type") are preferably used. For example, 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, Examples of suitable solvents include 3-butoxy-N,N-dimethylpropanamide, 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 (hereinafter, these are also 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. These solvents may be used alone or in combination of two or more.
[0050] When the specific polymer (A) and the specific polymer (B) have high solubility in a solvent, the following solvent (hereinafter also referred to as "solvent B type") can be used.For example, 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, 2-(2-butoxyethoxy) (oxy)-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, ethylene glycol monoethyl ether, 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, or diisobutyl ketone (2,6-dimethyl-4-heptanone).Among 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 are preferably used. These may be used alone or in combination of two or more.
[0051] In the present invention, from the viewpoint of the coating properties of the liquid crystal alignment film, it is preferable to use a solvent that is a combination of Solvent A and Solvent B. Specific examples 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, N-ethyl-2-pyrrolidone and propylene glycol diacetate, N,N-diphenyl ether, N-methyl-2-pyrrolidone and propylene glycol monobutyl ether, N-methyl-2-pyrrolidone and γ-butyrolact ...methyl-2-pyrrolidone and γ-butyrolactone and propylene glycol monobutyl ether, N-methyl-2-pyrrolidone and γ-butyrolactone and propylene glycol monobutyl ether, N-methyl-2-pyrrolidone and γ-butyrolactone and propylene glycol monobutyl ether, N-methyl-2-pyrrolidone and γ-butyrolactone and propylene glycol monobutyl ether, N-methyl-2-pyrrolidone and γ-butyrolactone and propylene glycol monobutyl ether, N-methyl-2-pyrrolidone and γ-buty Methyl 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 monopropyl 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 N-methyl-2-pyrrolidone, diethylene glycol monomethyl 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 of the combination 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, and combinations of these are preferred.
[0052] When solvents A and B are used in combination, solvent B preferably accounts for 1 to 99% by mass of the total solvent contained in the liquid crystal aligning agent. More preferably, it is 10 to 99% by mass. Most preferably, it is 20 to 95% by mass. In order to increase the film strength of the liquid crystal alignment film, it is preferable that the liquid crystal aligning agent incorporates a compound having at least one structure selected from an epoxy group, an isocyanate group, an oxetanyl group, an oxazoline group, a cyclocarbonate group, a hydroxy group, a hydroxyalkyl group, a lower alkoxyalkyl group, and a polymerizable unsaturated group (hereinafter, also collectively referred to as a "crosslinkable compound"). In this case, the compound must contain two or more of these groups.
[0053] Specific examples of the crosslinkable compound having an epoxy group or an isocyanate group 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-2,4-hexanediol, 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), YX-8000 (manufactured by Mitsubishi Chemical Corporation), ), biphenyl skeleton-containing epoxy resins such as YX6954BH30 (manufactured by Mitsubishi Chemical Corporation), phenol novolac epoxy resins such as EPPN-201 (manufactured by Nippon Kayaku Co., Ltd.), (o, m, p-) cresol novolac epoxy resins such as EOCN-102S (manufactured by Nippon Kayaku Co., Ltd.), compounds in which a tertiary nitrogen atom is bonded to an aromatic carbon atom such as tetrakis(glycidyloxymethyl)methane, N,N,N',N'-tetraglycidyl-1,4-phenylenediamine, N,N,N',N'-tetraglycidyl-2,2'-dimethyl-4.4'-diaminobiphenyl, 2,2-bis[4-(N,N-diglycidyl-4-aminophenoxy)phenyl]propane, and N,N,N',N'-tetraglycidyl-4,4'-diaminodiphenylmethane;N,N,N',N'-tetraglycidyl-1,2-diaminocyclohexane, N,N,N',N'-tetraglycidyl-1,3-diaminocyclohexane, N,N,N',N'-tetraglycidyl-1,4-diaminocyclohexane, bis(N,N-diglycidyl-4-aminocyclohexyl)methane, bis(N,N-diglycidyl-2-methyl-4-aminocyclohexyl)methane, bis(N,N-diglycidyl-3-methyl-4-aminocyclohexyl)methane, 1,3-bis(N,N-diglycidylaminomethyl)cyclohexane, 1,4-bis(N,N-diglycidylaminomethyl)cyclohexane, 1 ,3-bis(N,N-diglycidylaminomethyl)benzene, 1,4-bis(N,N-diglycidylaminomethyl)benzene, 1,3,5-tris(N,N-diglycidylaminomethyl)cyclohexane, 1,3,5-tris(N,N-diglycidylaminomethyl)benzene and other compounds in which a tertiary nitrogen atom is bonded to an aliphatic carbon atom; isocyanurate compounds such as triglycidyl isocyanurate such as TEPIC (manufactured by Nissan Chemical Industries, Ltd.); and those described in paragraph
[0037] of Japanese Patent Laid-Open Publication No. 10-338880 and paragraphs
[0051] to
[0054] of WO2017 / 170483.
[0054] Specific examples of the crosslinkable compound having an oxetanyl group include 1,4-bis{[(3-ethyl-3-oxetanyl)methoxy]methyl}benzene (Aronoxetane OXT-121 (XDO)), bis[2-(3-oxetanyl)butyl]ether (Aronoxetane OXT-221 (DOX)), 1,4-bis[(3-ethyloxetan-3-yl)methoxy]benzene (HQOX), 1,3-bis[(3-ethyloxetan-3-yl)methoxy]benzene (RSOX), 1,2-bis[(3-ethyloxetan-3-yl)methoxy]benzene (CTOX), and those described in paragraphs
[0170] to
[0175] of WO2011 / 132751.
[0055] Specific examples of crosslinkable compounds having an oxazoline group include compounds such as 2,2'-bis(2-oxazoline) and 2,2'-bis(4-methyl-2-oxazoline), polymers and oligomers having an oxazoline group such as EPOCROS (manufactured by Nippon Shokubai Co., Ltd.), and those described in paragraph
[0115] of Japanese Patent Publication No. 2007-286597. Specific examples of crosslinkable compounds having a cyclocarbonate group include N,N,N',N'-tetra[(2-oxo-1,3-dioxolan-4-yl)methyl]-4,4'-diaminodiphenylmethane, N,N'-di[(2-oxo-1,3-dioxolan-4-yl)methyl]-1,3-phenylenediamine, and those described in paragraphs
[0025] to
[0030] and
[0032] of WO2011 / 155577.
[0056] Specific examples of crosslinkable compounds having a blocked isocyanate group include Coronate AP Stable M, Coronate 2503, 2515, 2507, 2513, 2555, and Millionate MS-50 (manufactured by Tosoh Corporation), Takenate B-830, B-815N, B-820NSU, B-842N, B-846N, B-870N, B-874N, and B-882N (manufactured by Mitsui Chemicals, Inc.), and those described in paragraphs
[0046] to
[0047] of Japanese Patent Publication No. 2014-224978 and paragraphs
[0119] to
[0120] of WO2015 / 141598.
[0057] Specific examples of crosslinkable compounds having a hydroxy group, a hydroxyalkyl group, or a lower alkoxyalkyl group include 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-dihydroxymethylphenyl)-1,1,1,3,3,3-hexafluoropropane, and those described in paragraph
[0058] of Japanese Patent Publication No. 2016-118753, paragraph
[0055] of Japanese Patent Publication No. 2016-200798, and paragraphs
[0017] to
[0029] of WO2010 / 074269.
[0058] Specific examples of the crosslinkable compound having a polymerizable unsaturated group include glycerin mono(meth)acrylate, glycerin di(meth)acrylate (1,2-, 1,3-mixture), glycerin tris(meth)acrylate, glycerol 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.
[0059] The proportion of the crosslinkable compound used in the liquid crystal aligning agent is preferably 0.1 to 100 parts by mass relative to 100 parts by mass of all polymer components. From the viewpoint of promoting the crosslinking reaction and achieving the desired effect, it is more preferably 0.1 to 50 parts by mass. It is particularly preferably 1 to 30 parts by mass. The liquid crystal aligning agent can also be a compound that improves the uniformity of the film thickness and surface smoothness of the liquid crystal alignment film, or a compound that further improves the adhesion between the liquid crystal alignment film and the substrate.
[0060] Compounds that improve the uniformity of the film thickness and surface smoothness of the liquid crystal alignment film include fluorine-based surfactants, silicone-based surfactants, and nonionic surfactants. Specific examples include the surfactants described in paragraph
[0122] of WO2014 / 171493. The amount of such surfactants used is preferably 0.01 to 2 parts by mass, more preferably 0.01 to 1 part by mass, based on 100 parts by mass of all polymer components.
[0061] Specific examples of compounds that improve the adhesion between a liquid crystal alignment film and a substrate include the compounds described in paragraph
[0123] of WO2014 / 171493. More specific examples 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, 3-glycidoxypropylmethyldimethoxysilane, and 3-glycidoxypropylmethyldimethoxysilane. Examples of suitable compounds include 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, and 3-isocyanatopropyltriethoxysilane. The amount of such compounds used is preferably 0.1 to 30 parts by mass relative to 100 parts by mass of all polymer components. A more preferred amount is 1 to 20 parts by mass. In addition to the compounds listed above, the liquid crystal aligning agent may contain a dielectric or conductive substance added for the purpose of changing the electrical properties, such as the dielectric constant and conductivity, of the liquid crystal alignment film.
[0062] <Liquid Crystal Alignment Film (A), Liquid Crystal Alignment Film (B), and Liquid Crystal Light Control Element> The liquid crystal alignment agent can be applied to a substrate, baked, and then, if necessary, subjected to alignment treatments such as rubbing or photo-alignment treatment to form the liquid crystal alignment film (A) and liquid crystal alignment film (B). The liquid crystal alignment film (A) of the present invention has the function of approximately vertically aligning liquid crystal molecules. "Approximately vertical alignment" refers to, for example, a state in which the tilt angle of the liquid crystal molecules relative to the surface of the substrate with the liquid crystal alignment film is in the range of 70 to 90 degrees, or a state in which almost no light is transmitted when a liquid crystal cell is sandwiched between two polarizing plates in a cross-Nicol arrangement so that the polarization axes of the polarizing plates are perpendicular to each other and light is irradiated from one side of the liquid crystal cell. The liquid crystal alignment film (B) has the function of approximately horizontally aligning the liquid crystal molecules. Nearly horizontal alignment refers to, for example, a state in which the tilt angle of liquid crystal molecules with respect to the surface of the substrate with the liquid crystal alignment film is in the range of 0 to 20°, or a state in which light is transmitted when a liquid crystal cell is sandwiched between two polarizing plates in a crossed Nicol configuration so that the polarization axes of the two plates are perpendicular to each other and light is irradiated from one side of the liquid crystal cell. The substrate used to form the liquid crystal alignment film is not particularly limited as long as it is a highly transparent substrate, and in addition to glass substrates, plastic substrates such as acrylic substrates, polycarbonate substrates, and PET (polyethylene terephthalate) substrates, as well as films thereof, can be used. Plastic substrates and films are particularly preferred for use in light-control windows, etc. Furthermore, from the perspective of process simplification, it is preferable to use a substrate formed with an ITO electrode, an IZO (indium zinc oxide) electrode, an IGZO (indium gallium zinc oxide) electrode, an organic conductive film, or the like for driving the liquid crystal. Furthermore, when forming a reflective liquid crystal dimming element, a substrate formed with a metal such as a silicon wafer or a dielectric multilayer film, or a dielectric multilayer film, can be used as the substrate on only one side.
[0063] The liquid crystal light control element of the present invention comprises a pair of substrates, one of which has a liquid crystal alignment film (A) for vertically aligning liquid crystals, and the other of which has a liquid crystal alignment film (B) for horizontally aligning liquid crystals. The method for applying the liquid crystal alignment agent is not particularly limited, but industrially, dipping, roll coating, slit coating, spinning, spraying, screen printing, offset printing, flexographic printing, inkjet printing, or the like is used. These application methods are used depending on the purpose.
[0064] After applying the liquid crystal alignment agent to the substrate, the solvent can be evaporated using a heating means such as a hot plate, a hot air circulation oven, or an IR (infrared) oven at a temperature of 30 to 300°C, preferably 30 to 250°C, depending on the type of substrate and the solvent used in the liquid crystal alignment agent, to form a liquid crystal alignment film. When a plastic substrate is used as the substrate, treatment at a temperature of 30 to 150°C is preferred. The thickness of the liquid crystal alignment film is preferably 5 to 500 nm, since if it is too thick, it will be disadvantageous in terms of power consumption of the liquid crystal light control element, and if it is too thin, the reliability of the element may decrease. Therefore, the thickness is preferably 5 to 500 nm, more preferably 10 to 300 nm, and particularly preferably 10 to 250 nm.
[0065] The liquid crystal alignment film can be subjected to alignment treatments such as rubbing in a certain direction with a roll wrapped with cloth made of fibers such as nylon, rayon, or cotton, or photoalignment in which the surface of the liquid crystal alignment film is irradiated with polarized radiation in a certain direction. The liquid crystal composition contains liquid crystals with positive dielectric anisotropy and a chiral compound. Nematic liquid crystals, smectic liquid crystals, or cholesteric liquid crystals can be used as the liquid crystal. Among these, nematic liquid crystals with positive dielectric anisotropy are preferably used.
[0066] From the viewpoint of low-voltage operation, liquid crystals having large dielectric anisotropy and large refractive index anisotropy are preferred. Furthermore, liquid crystals can be used singly or in combination of two or more types depending on the physical properties of the phase transition temperature, dielectric anisotropy, and refractive index anisotropy. To operate a liquid crystal dimming element as an active element such as a thin film transistor (TFT), the liquid crystal is required to have high electrical resistance and a high voltage holding ratio (hereinafter also referred to as "VHR"). Therefore, it is preferable to use fluorine-based or chlorine-based liquid crystals, which have high electrical resistance and whose VHR is not reduced by active energy rays such as ultraviolet rays.
[0067] The chiral compound induces a helical structure in nematic liquid crystal, and known compounds can be used. Specific examples include Schiff compounds, azoxy compounds, biphenyl compounds, phenyl ester compounds, phenylcyclohexane compounds, and pyridine compounds, as well as mixtures thereof. More specific examples include S-811, R811, and CB-15 (manufactured by Merck). Furthermore, chiral compounds can be used singly or in combination, depending on their properties. The proportion of chiral compounds used can be adjusted so that the desired d / p ratio is achieved, where d is the thickness of the liquid crystal layer in the liquid crystal dimming element, and p is the chiral pitch of the liquid crystal in the liquid crystal layer (the distance required for one liquid crystal molecule to twist one period). In the present invention, d / p is preferably 1 to 10, more preferably 1 to 8, and particularly preferably 1 to 6, in order to optimally obtain the effects of the present invention.
[0068] The liquid crystal composition preferably contains a dichroic dye in addition to the liquid crystal and the chiral compound. This causes the dichroic dye to change direction by 90° along the direction of the director (orientation direction) of the liquid crystal depending on whether or not a voltage is applied, resulting in a difference in the absorption characteristics of the dichroic dye, thereby achieving a difference in total light transmittance. The dichroic dye preferably has a maximum absorption wavelength in the visible light region, for example, in the region of 300 to 700 nm. Examples of such dichroic dyes include acridine dyes, oxazine dyes, cyanine dyes, naphthalene dyes, phthalocyanine dyes, azo dyes, and anthraquinone dyes. Among these, it is preferable to use a phthalocyanine dye, azo dye, or anthraquinone dye.
[0069] Specific examples of dichroic dyes include G-207, G-241, G-470 (all manufactured by Hayashibara Co., Ltd.), Yellow-8, KRD-901, KRD-902 (all manufactured by Showa Chemical Industry Co., Ltd.), SI-486, M-1012 (manufactured by Mitsui Chemicals, Inc.), Dichroic Dye Blue AB2, AB3, AB4, Dichroic Dye Cyan AC1, Dichroic Dye Orange AO1, AZO1, Dichroic Dye Red AR1, and Dichroic Dye Yellow AG1 (all manufactured by NEMATEL). Furthermore, one type of dichroic dye can be used, or two or more types can be mixed together, depending on the properties of the dye. The dichroic dye is preferably used in an amount of 0.01 to 10 parts by mass relative to 100 parts by mass of liquid crystal, and more preferably 0.1 to 5 parts by mass from the viewpoint of the difference between colorless transparency and colored (hereinafter also referred to as "contrast of total light transmittance").
[0070] The liquid crystal light control element of the present invention differs from PSA (Polymer Sustained Alignment) and PDLC (Polymer Dispersed Liquid Crystal) systems, and therefore does not contain a polymerizable compound that reacts with light or heat, which is required for these systems. The liquid crystal composition can be prepared by mixing a liquid crystal, a chiral compound, and a dichroic dye. In this case, heating is preferably performed during preparation, from the viewpoint of the solubility of the dichroic dye in the liquid crystal. Specifically, heating is preferably performed to a temperature not exceeding the phase transition temperature of the liquid crystal. The method for injecting the liquid crystal composition is not particularly limited, but examples include the following method. That is, when glass substrates are used as the substrates, a pair of substrates each having a liquid crystal alignment film formed thereon are prepared, and a sealant is applied to four pieces of one substrate, excluding a portion. Then, the other substrate is bonded with the liquid crystal alignment film facing inward to prepare an empty cell. The liquid crystal composition is then injected under reduced pressure from the area where the sealant is not applied, to obtain a liquid crystal composition-injected cell. Furthermore, when a plastic substrate or a film is used as the substrate, a method can be used in which a pair of substrates on which a liquid crystal alignment film is formed is prepared, a liquid crystal composition is dropped onto one of the substrates by an ODF (One Drop Filling) method, an inkjet method, or the like, and then the other substrate is bonded to obtain a liquid crystal composition injection cell.
[0071] The method for controlling the thickness of the liquid crystal layer (hereinafter also referred to as "gap") of the liquid crystal light control element is not particularly limited, and examples include a method of introducing spacers of a desired size into the liquid crystal composition, a method of coating a substrate having column spacers of a desired size, and a method of using a liquid crystal composition containing column spacers of a desired size. From the viewpoint of optimally achieving the effects of the present invention, the thickness of the liquid crystal layer is preferably 1 to 100 μm, more preferably 1 to 75 μm, and particularly preferably 1 to 30 μm. If the gap is too small, the contrast of the liquid crystal light control element will decrease, and if it is too large, the driving voltage of the element will increase. A polarizing plate can also be attached to the outer surface of the liquid crystal light control element of the present invention to increase the contrast of the total light transmittance.
[0072] The present invention will be described in more detail below with reference to examples, but is not limited to these. "Abbreviations used in Synthesis Examples, Examples, and Comparative Examples" <Monomers for preparing polyimide polymers> (Specific diamine (A) and specific diamine (B)) A1 to A6: Diamines of the following formulae [A1] to [A6]
[0073] (Other diamines) B1 to B5: Diamines of the following formulas [B1] to [B5]
[0074] (Specific tetracarboxylic acid components) C1 to C3: tetracarboxylic acid dianhydrides of the following formulae [C1] to [C3]
[0075] <Monomers for preparing polysiloxane polymers> D1: Alkoxysilane of the following formula [D1] (alkoxysilane of formula [A1] having specific structure (A)) D2: 3-methacryloxypropyltrimethoxysilane (alkoxysilane of formula [A2]) D3: 3-ureidopropyltriethoxysilane (alkoxysilane of formula [A2]) D4: tetraethoxysilane (alkoxysilane of formula [A3])
[0076] <Crosslinkable Compounds> K1 to K4: Crosslinkable compounds of the following formulae [K1] to [K4]
[0077] <Solvents> NMP: N-methyl-2-pyrrolidone NEP: N-ethyl-2-pyrrolidone BCS: Ethylene glycol monobutyl ether PB: Propylene glycol monobutyl ether ECS: Ethylene glycol monoethyl ether
[0078] "Molecular Weight Measurement" The number average molecular weight (hereinafter also referred to as "Mn") and weight average molecular weight (hereinafter also referred to as "Mw") of the polyimide polymer were measured using the following apparatus and conditions. Room temperature gel permeation chromatography (GPC) apparatus: GPC-101 (manufactured by Resonac Corporation) Column: GPC KD-803 and KD-805 (manufactured by Resonac Corporation) 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 sample for creating a calibration curve: EasiVial PEG / PEO polyethylene glycol oxide PL2080-0201 (molecular weight: approximately 1,500, approximately 4,000, approximately 13,000, approximately 30,000, approximately 70,000, approximately 130,000, approximately 500,000, approximately 1,000,000, approximately 1,500,000) (GL Sciences)
[0079] "Measurement of imidization ratio of polyimide" The imidization ratio of polyimide in the synthesis examples was measured as follows. Polyimide powder (20 mg) was placed in an NMR (nuclear magnetic resonance) sample tube (NMR sampling tube standard, φ5 (Kusano Scientific Co., Ltd.)), and deuterated dimethyl sulfoxide (DMSO-d 6 A mixture of 0.53 ml of 0.05% by mass of TMS (tetramethylsilane) was added and sonicated to completely dissolve the solution. This solution was subjected to 500 MHz proton NMR analysis using an NMR spectrometer (JNW-ECA500, manufactured by JEOL Datum Co., Ltd.). A proton derived from a structure that remains unchanged before and after imidization was determined as the reference proton. The imidization ratio was calculated using the integrated peak value of this proton and the integrated peak value of a proton derived from the NH group of the amic acid, which appeared around 9.5 ppm to 10.0 ppm, according to the following formula: Imidization ratio (%) = (1 - α x / y) × 100. In this formula, x is the integrated peak value of the proton derived from the NH group of the amic acid, y is the integrated peak value of the reference proton, and α is the ratio of the number of reference protons to one NH group proton of the amic acid in the case of a polyamic acid (with an imidization ratio of 0%).
[0080] Synthesis of Polyimide Polymer Synthesis Example 1 A2 (2.95 g, 7.76 mmol), B1 (1.54 g, 7.76 mmol), C1 (3.00 g, 15.3 mmol), and NMP (22.5 g) were added to a 50 mL four-neck flask equipped with a stirrer and a nitrogen inlet tube, and the mixture was reacted at 40° C. for 6 hours while supplying nitrogen, to obtain a polyamic acid solution (1) with a resin solids concentration of 25% by mass. The Mn of this polyamic acid was 20,600 and the Mw was 63,700.
[0081] Synthesis Example 2: A2 (1.77 g, 4.66 mmol), B1 (2.15 g, 10.9 mmol), C1 (3.00 g, 15.3 mmol), and NMP (20.8 g) were added to a 50 mL four-neck flask equipped with a stirrer and a nitrogen inlet tube, and the mixture was reacted at 40° C. for 6 hours while supplying nitrogen to obtain a polyamic acid solution (2) with a resin solids concentration of 25% by mass. The Mn of this polyamic acid was 22,900 and the Mw was 69,200.
[0082] Synthesis Example 3: A5 (2.02 g, 4.66 mmol), B1 (2.15 g, 10.9 mmol), C1 (3.00 g, 15.3 mmol), and NMP (21.5 g) were added to a 50 mL four-neck flask equipped with a stirrer and a nitrogen inlet tube, and the mixture was reacted at 40° C. for 6 hours while supplying nitrogen to obtain a polyamic acid solution (3) with a resin solids concentration of 25% by mass. The Mn of this polyamic acid was 23,500 and the Mw was 71,900.
[0083] Synthesis Example 4: A4 (1.96 g, 4.97 mmol), B1 (1.31 g, 6.62 mmol), B3 (0.76 g, 4.97 mmol), C2 (2.04 g, 8.16 mmol), and NMP (11.4 g) were added to a 50 mL four-neck flask equipped with a stirrer and a nitrogen inlet tube, and the mixture was reacted at 50 ° C for 3 hours while introducing nitrogen. Subsequently, C1 (1.60 g, 8.16 mmol) and NMP (11.6 g) were added, and the mixture was reacted at 40 ° C for 6 hours to obtain a polyamic acid solution (4) with a resin solids concentration of 25% by mass. The Mn of this polyamic acid was 19,800 and the Mw was 61,200.
[0084] Synthesis Example 5: Polyamic acid solution (4) (30.0 g) obtained in the same manner as in Synthesis Example 4 was diluted to 6% by mass with NMP, and then acetic anhydride (3.85 g) and pyridine (2.10 g) were added as imidization catalysts and reacted at 40°C for 3 hours. This reaction solution was poured into methanol (460 ml), and the resulting precipitate was filtered off. The precipitate was washed with methanol and dried under reduced pressure at 100°C to obtain polyimide powder (5). The imidization rate of this polyimide was 54%, Mn was 16,500, and Mw was 47,600.
[0085] Synthesis Example 6: A6 (1.67 g, 3.40 mmol), B1 (1.62 g, 8.15 mmol), B3 (0.31 g, 2.04 mmol), C3 (3.00 g, 13.4 mmol), and NMP (19.8 g) were added to a 50 mL four-neck flask equipped with a stirrer and a nitrogen inlet tube, and the mixture was reacted at 40° C. for 8 hours while supplying nitrogen, to obtain a polyamic acid solution (6) with a resin solids concentration of 25% by mass. The Mn of this polyamic acid was 16,500 and the Mw was 56,200.
[0086] Synthesis Example 7: A1 (0.66 g, 2.33 mmol), B1 (2.62 g, 13.2 mmol), C1 (3.00 g, 15.3 mmol), and NMP (18.8 g) were added to a 50 mL four-neck flask equipped with a stirrer and a nitrogen inlet tube, and the mixture was reacted at 40° C. for 6 hours while supplying nitrogen, to obtain a polyamic acid solution (7) with a resin solids concentration of 25% by mass. The Mn of this polyamic acid was 23,100 and the Mw was 70,800.
[0087] Synthesis Example 8: A2 (0.70 g, 1.85 mmol), B2 (0.80 g, 7.39 mmol), B3 (1.41 g, 9.24 mmol), C2 (1.37 g, 5.46 mmol), and NMP (11.2 g) were added to a 50 mL four-neck flask equipped with a stirrer and a nitrogen inlet tube, and the mixture was reacted at 50 ° C for 3 hours while introducing nitrogen. Subsequently, C1 (2.51 g, 12.8 mmol) and NMP (9.15 g) were added, and the mixture was reacted at 40 ° C for 6 hours to obtain a polyamic acid solution (8) with a resin solids concentration of 25% by mass. The Mn of this polyamic acid was 20,200 and the Mw was 66,900.
[0088] Synthesis Example 9: NMP was added to the polyamic acid solution (8) (15.0 g) obtained by the method of Synthesis Example 8 to dilute it to 6% by mass, and then acetic anhydride (1.90 g) and pyridine (1.10 g) were added as imidization catalysts and reacted at 40°C for 3 hours. This reaction solution was poured into methanol (250 ml), and the resulting precipitate was filtered off. The precipitate was washed with methanol and dried under reduced pressure at 100°C to obtain polyimide powder (9). The imidization rate of this polyimide was 57%, Mn was 17,500, and Mw was 57,300.
[0089] Synthesis Example 10: A4 (0.31 g, 0.78 mmol), B2 (0.76 g, 6.99 mmol), B4 (2.22 g, 7.76 mmol), C2 (1.91 g, 7.65 mmol), and NMP (11.1 g) were added to a 50 mL four-neck flask equipped with a stirrer and a nitrogen inlet tube, and the mixture was reacted at 50 ° C for 4 hours while nitrogen was supplied. Subsequently, C1 (1.50 g, 7.65 mmol) and NMP (9.04 g) were added, and the mixture was reacted at 40 ° C for 6 hours, yielding a polyamic acid solution (10) with a resin solids concentration of 25% by mass. The Mn of this polyamic acid was 20,600 and the Mw was 63,500.
[0090] Synthesis Example 11 A 50 mL four-neck flask equipped with a stirrer and a nitrogen inlet tube was charged with A3 (1.18 g, 3.11 mmol), B1 (2.46 g, 12.4 mmol), C1 (3.00 g, 15.3 mmol), and NMP (19.9 g), and the mixture was reacted at 40° C. for 6 hours while supplying nitrogen to obtain a polyamic acid solution (11) having a resin solids concentration of 25% by mass. The Mn of this polyamic acid was 20,500 and the Mw was 67,900.
[0091] Synthesis Example 12: A1 (0.77 g, 2.72 mmol), B1 (1.08 g, 5.43 mmol), B4 (1.56 g, 5.43 mmol), C3 (3.00 g, 13.4 mmol), and NMP (19.2 g) were added to a 50 mL four-neck flask equipped with a stirrer and a nitrogen inlet tube, and the mixture was reacted at 40° C. for 8 hours while supplying nitrogen, to obtain a polyamic acid solution (12) with a resin solids concentration of 25% by mass. The Mn of this polyamic acid was 21,300 and the Mw was 68,800.
[0092] Synthesis Example 13: B1 (1.54 g, 7.76 mmol), B5 (2.27 g, 7.76 mmol), C1 (3.00 g, 15.3 mmol), and NMP (20.4 g) were added to a 50 mL four-neck flask equipped with a stirrer and a nitrogen inlet tube, and the mixture was reacted at 40° C. for 6 hours while supplying nitrogen to obtain a polyamic acid solution (13) with a resin solids concentration of 25% by mass. The Mn of this polyamic acid was 18,700 and the Mw was 60,900.
[0093] Synthesis Example 14: B1 (2.15 g, 10.9 mmol), B5 (1.36 g, 4.66 mmol), C1 (3.00 g, 15.3 mmol), and NMP (19.6 g) were added to a 50 mL four-neck flask equipped with a stirrer and a nitrogen inlet tube, and the mixture was reacted at 40° C. for 6 hours while supplying nitrogen to obtain a polyamic acid solution (14) with a resin solids concentration of 25% by mass. The Mn of this polyamic acid was 20,900 and the Mw was 64,500.
[0094] Synthesis Example 15: B1 (2.77 g, 14.0 mmol), B5 (0.45 g, 1.55 mmol), C1 (3.00 g, 15.3 mmol), and NMP (18.7 g) were added to a 50 mL four-neck flask equipped with a stirrer and a nitrogen inlet tube, and the mixture was allowed to react at 40°C for 6 hours while supplying nitrogen, yielding a polyamic acid solution (15) with a resin solids concentration of 25% by mass. The polyamic acid had an Mn of 22,100 and an Mw of 67,200. The specifications of the polyimide polymer obtained above are shown in Tables 1 and 2.
[0095] *1: Polyamic acid
[0096] "Synthesis of Polysiloxane-Based Polymer" <Synthesis Example 16> D1 (4.10 g), D2 (7.45 g), D4 (32.5 g), and ECS (28.3 g) were added to a 200 mL four-neck flask equipped with a thermometer and a reflux condenser to prepare a solution of alkoxysilane monomer. A mixed solution of ECS (14.2 g), water (10.8 g), and oxalic acid (0.70 g) was added dropwise to this solution at 25°C over 30 minutes, and the mixture was stirred at 25°C for an additional 30 minutes. The mixture was then heated in an oil bath and refluxed for 30 minutes, after which a mixed solution of a methanol solution (1.20 g) with a D3 content of 92% by mass and ECS (0.90 g) was added. After refluxing for an additional 30 minutes, the mixture was allowed to cool and SiO 2 A polysiloxane solution (1) having a converted concentration of 12% by mass was obtained.
[0097] Synthesis Example 17 D1 (4.10 g), D4 (38.8 g), and ECS (29.2 g) were added to a 200 mL four-necked reaction flask equipped with a thermometer and a reflux condenser to prepare a solution of alkoxysilane monomer. A mixed solution of ECS (14.6 g), water (10.8 g), and oxalic acid (0.50 g) was added dropwise to this solution at 25 ° C. over 30 minutes, and the mixture was stirred at 25 ° C. for 30 minutes. After that, the mixture was heated in an oil bath and refluxed for 30 minutes, and then a mixed solution of a methanol solution (1.20 g) with a D3 content of 92% by mass and ECS (0.90 g) was added. After refluxing for another 30 minutes, the mixture was allowed to cool and SiO 2 A polysiloxane solution (2) having a converted concentration of 12% by mass was obtained.
[0098] The specifications of the polysiloxane polymer (polysiloxane solution) obtained above are shown in Table 3.
[0099] "Production of Liquid Crystal Alignment Agent" <Synthesis Example 18> NMP (20.3 g) and BCS (6.00 g) were added to the polyamic acid solution (1) (5.00 g) obtained by the method of Synthesis Example 1, and the mixture was stirred at 25°C for 2 hours to obtain a liquid crystal alignment agent (1). This liquid crystal alignment agent was a homogeneous solution without any abnormalities such as turbidity or precipitation.
[0100] Synthesis Example 19 To the polyamic acid solution (1) (5.00 g) obtained by the method of Synthesis Example 1, K1 (0.125 g), NMP (20.3 g) and BCS (6.00 g) were added, and the mixture was stirred at 25° C. for 4 hours to obtain a liquid crystal aligning agent (2). This liquid crystal aligning agent was a homogeneous solution without any abnormalities such as turbidity or precipitation.
[0101] Synthesis Example 20 NMP (14.3 g) and PB (12.0 g) were added to the polyamic acid solution (2) (5.00 g) obtained by the method of Synthesis Example 2, and the mixture was stirred at 25° C. for 2 hours to obtain a liquid crystal aligning agent (3). This liquid crystal aligning agent was a homogeneous solution without any abnormalities such as turbidity or precipitation.
[0102] Synthesis Example 21 NMP (17.3 g), BCS (6.00 g) and PB (3.00 g) were added to the polyamic acid solution (3) (5.00 g) obtained by the method of Synthesis Example 3, and the mixture was stirred at 25° C. for 2 hours to obtain a liquid crystal aligning agent (4). This liquid crystal aligning agent was a homogeneous solution without any abnormalities such as turbidity or precipitation.
[0103] Synthesis Example 22 NMP (17.3 g) and BCS (9.00 g) were added to the polyamic acid solution (4) (5.00 g) obtained by the method of Synthesis Example 4, and the mixture was stirred at 25° C. for 2 hours to obtain a liquid crystal aligning agent (5). This liquid crystal aligning agent was a homogeneous solution without any abnormalities such as turbidity or precipitation.
[0104] Synthesis Example 23 To the polyamic acid solution (4) (5.00 g) obtained by the method of Synthesis Example 4, K2 (0.125 g), NMP (17.3 g) and BCS (9.00 g) were added, and the mixture was stirred at 25° C. for 4 hours to obtain a liquid crystal aligning agent (6). This liquid crystal aligning agent was a homogeneous solution without any abnormalities such as turbidity or precipitation.
[0105] Synthesis Example 24 NEP (25.2 g) was added to polyimide powder (5) (1.50 g) obtained by the method of Synthesis Example 5, and the mixture was stirred at 70° C. for 24 hours to dissolve. Then, PB (10.8 g) was added, and the mixture was stirred at 25° C. for 2 hours to obtain a liquid crystal aligning agent (7). This liquid crystal aligning agent was a homogeneous solution without any abnormalities such as turbidity or precipitation.
[0106] Synthesis Example 25 NMP (20.3 g) and PB (6.00 g) were added to the polyamic acid solution (6) (5.00 g) obtained by the method of Synthesis Example 6, and the mixture was stirred at 25° C. for 2 hours to obtain a liquid crystal aligning agent (8). This liquid crystal aligning agent was a homogeneous solution without any abnormalities such as turbidity or precipitation.
[0107] Synthesis Example 26 ECS (6.50 g) and PB (8.50 g) were added to the polysiloxane solution (1) (15.0 g) obtained by the method of Synthesis Example 16, and the mixture was stirred at 25° C. for 4 hours to obtain a liquid crystal aligning agent (9). This liquid crystal aligning agent did not show any abnormalities such as turbidity or precipitation, and was a homogeneous solution.
[0108] Synthesis Example 27 ECS (6.50 g) and PB (8.50 g) were added to the polysiloxane solution (2) (15.0 g) obtained by the method of Synthesis Example 17, and the mixture was stirred at 25° C. for 4 hours to obtain a liquid crystal aligning agent (10). This liquid crystal aligning agent did not show any abnormalities such as turbidity or precipitation, and was a homogeneous solution.
[0109] Synthesis Example 28 NMP (17.3 g) and PB (9.00 g) were added to the polyamic acid solution (7) (5.00 g) obtained by the method of Synthesis Example 7, and the mixture was stirred at 25° C. for 2 hours to obtain a liquid crystal aligning agent (11). This liquid crystal aligning agent was a homogeneous solution without any abnormalities such as turbidity or precipitation.
[0110] Synthesis Example 29 To the polyamic acid solution (7) (5.00 g) obtained by the method of Synthesis Example 7, K2 (0.188 g), NMP (17.3 g) and PB (9.00 g) were added, and the mixture was stirred at 25° C. for 4 hours to obtain a liquid crystal aligning agent (12). This liquid crystal aligning agent was a homogeneous solution without any abnormalities such as turbidity or precipitation.
[0111] Synthesis Example 30 NMP (20.3 g) and BCS (6.00 g) were added to the polyamic acid solution (8) (5.00 g) obtained by the method of Synthesis Example 8, and the mixture was stirred at 25° C. for 4 hours to obtain a liquid crystal aligning agent (13). This liquid crystal aligning agent was a homogeneous solution without any abnormalities such as turbidity or precipitation.
[0112] Synthesis Example 31 NEP (28.8 g) was added to polyimide powder (9) (1.50 g) obtained by the method of Synthesis Example 9, and the mixture was stirred at 70° C. for 24 hours to dissolve. Then, K3 (0.075 g) and BCS (7.20 g) were added, and the mixture was stirred at 25° C. for 4 hours to obtain a liquid crystal aligning agent (14). This liquid crystal aligning agent was a homogeneous solution without any abnormalities such as turbidity or precipitation.
[0113] Synthesis Example 32 NMP (2.30 g), NEP (15.0 g) and BCS (9.00 g) were added to the polyamic acid solution (10) (5.00 g) obtained by the method of Synthesis Example 10, and the mixture was stirred at 25° C. for 2 hours to obtain a liquid crystal aligning agent (15). This liquid crystal aligning agent was a homogeneous solution without any abnormalities such as turbidity or precipitation.
[0114] Synthesis Example 33 NMP (20.3 g) and BCS (6.00 g) were added to the polyamic acid solution (11) (5.00 g) obtained by the method of Synthesis Example 11, and the mixture was stirred at 25° C. for 2 hours to obtain a liquid crystal aligning agent (16). This liquid crystal aligning agent was a homogeneous solution without any abnormalities such as turbidity or precipitation.
[0115] Synthesis Example 34 To the polyamic acid solution (12) (5.00 g) obtained by the method of Synthesis Example 12, K4 (0.125 g), NMP (17.3 g), BCS (3.00 g) and PB (6.00 g) were added, and the mixture was stirred at 25° C. for 2 hours to obtain a liquid crystal aligning agent (17). This liquid crystal aligning agent did not show any abnormalities such as turbidity or precipitation, and was a homogeneous solution.
[0116] Synthesis Example 35 NMP (20.3 g) and BCS (6.00 g) were added to the polyamic acid solution (13) (5.00 g) obtained by the method of Synthesis Example 13, and the mixture was stirred at 25° C. for 2 hours to obtain a liquid crystal aligning agent (18). This liquid crystal aligning agent was a homogeneous solution without any abnormalities such as turbidity or precipitation.
[0117] Synthesis Example 36 NMP (20.3 g) and BCS (6.00 g) were added to the polyamic acid solution (14) (5.00 g) obtained by the method of Synthesis Example 14, and the mixture was stirred at 25° C. for 2 hours to obtain a liquid crystal aligning agent (19). This liquid crystal aligning agent was a homogeneous solution without any abnormalities such as turbidity or precipitation.
[0118] Synthesis Example 37 NMP (20.3 g) and BCS (6.00 g) were added to the polyamic acid solution (15) (5.00 g) obtained by the method of Synthesis Example 15, and the mixture was stirred at 25° C. for 2 hours to obtain a liquid crystal aligning agent (20). This liquid crystal aligning agent was a homogeneous solution without any abnormalities such as turbidity or precipitation.
[0119] The specifications of the liquid crystal alignment agent obtained above are shown in Tables 4 and 5.
[0120] *1: Indicates the amount (parts by mass) of crosslinkable compound introduced relative to 100 parts by mass of polymer.
[0121] "Confirmation of Near-Vertical Alignment of Liquid Crystal Alignment Film" The liquid crystal alignment agents obtained by the methods of Synthesis Examples 18 to 27, 35, and 36 were filtered under pressure using a membrane filter with a pore size of 1 μm, and then spin-coated onto the ITO surface of a substrate (40 mm long x 30 mm wide, 0.7 mm thick) with an ITO electrode that had been washed with pure water and IPA (isopropanol). The substrate was then heat-treated on a hot plate at 80°C for 2 minutes and then in a hot air circulating clean oven at 230°C for 20 minutes, thereby obtaining an ITO substrate with a liquid crystal alignment film having a film thickness of 100 nm.
[0122] Next, two ITO substrates with liquid crystal alignment films were prepared. 12 μm spacers were sprayed onto the liquid crystal alignment film surface of one substrate. A sealant (XN-1500T) (manufactured by Kyoritsu Chemical Industry Co., Ltd.) was applied to the liquid crystal alignment film surface on all four sides of the other substrate. These substrates were then bonded together so that the liquid crystal alignment film surfaces faced each other. The bonded substrates were then pressed together and heated at 80°C for 15 minutes, then at 150°C for 90 minutes to produce an empty cell. A positive liquid crystal (PA-1492, manufactured by DIC Corporation) was then injected into this empty cell by a reduced pressure injection method. The injection port was then sealed, and the cell was heated at 120°C for 30 minutes to obtain a liquid crystal cell. Next, the liquid crystal cell was sandwiched between two polarizing plates so that their polarization axes were perpendicular to each other. A backlight was irradiated from one side of the liquid crystal cell to confirm the liquid crystal cell. As a result, it was confirmed that the liquid crystal was approximately vertically aligned in all liquid crystal cells.
[0123] "Confirmation of the Near-Horizontal Alignment of the Liquid Crystal Alignment Film" The liquid crystal alignment agents obtained by the methods of Synthesis Examples 28 to 34 and Synthesis Example 37 were pressure-filtered through a membrane filter with a pore size of 1 μm, and spin-coated onto the ITO surface of a substrate (40 mm long x 30 mm wide, 0.7 mm thick) with an ITO electrode that had been washed with pure water and IPA (isopropanol). The substrate was then heated at 80°C for 2 minutes on a hot plate and at 230°C for 20 minutes in a hot air circulating clean oven to obtain an ITO substrate with a liquid crystal alignment film having a film thickness of 100 nm. Next, the liquid crystal alignment film surface of this substrate was rubbed using a rubbing device with a roll diameter of 120 mm using a rayon cloth under the following conditions: roll rotation speed: 1000 rpm, roll advancement speed: 50 mm / sec, and indentation depth: 0.3 mm.
[0124] Next, two ITO substrates with liquid crystal alignment films were prepared. 12 μm spacers were sprayed onto the liquid crystal alignment film surface of one substrate. A sealant (XN-1500T) (manufactured by Kyoritsu Chemical Industry Co., Ltd.) was applied to the liquid crystal alignment film surface on all four sides of the other substrate. These substrates were then bonded together so that the liquid crystal alignment film surfaces faced each other and the valence and rubbing directions faced each other, i.e., in an antiparallel orientation. The bonded substrates were pressed together and heated at 80°C for 15 minutes, then at 150°C for 90 minutes to prepare an empty cell. A positive liquid crystal (PA-1492, manufactured by DIC Corporation) was injected into this empty cell by a reduced pressure injection method. The injection port was then sealed, and the cell was heated at 120°C for 30 minutes to obtain a liquid crystal cell. Next, the liquid crystal cell was sandwiched between two polarizing plates so that the polarization axes of the two plates were perpendicular to each other. A backlight was irradiated from one side of the liquid crystal cell to confirm the liquid crystal cell. As a result, it was confirmed that the liquid crystal was aligned almost horizontally in all the liquid crystal cells.
[0125] "Preparation of Liquid Crystal Composition (A)" 10.0 g of Sb-408030L (positive liquid crystal containing a chiral compound, chiral pitch (p) = 4.0 μm) (manufactured by Champagne) and 0.2 g of M-1012 (manufactured by Mitsui Fine Chemicals, Inc.) were mixed and stirred at 23°C for 24 hours to obtain liquid crystal composition (A).
[0126] "Preparation of Liquid Crystal Alignment Film" The liquid crystal alignment agent obtained by the method of Synthesis Example was pressure-filtered through a membrane filter with a pore size of 1 μm, and spin-coated onto the ITO surface of a substrate (40 mm long x 30 mm wide, 0.7 mm thick) with an ITO electrode that had been washed with pure water and IPA (isopropanol). The resulting substrate was then heated on a hot plate at 80°C for 2 minutes and in a hot air circulation clean oven at 230°C for 20 minutes to obtain an ITO substrate with a liquid crystal alignment film having a film thickness of 100 nm. Next, for the ITO substrates with liquid crystal alignment films obtained from the liquid crystal alignment agents (11) to (17) and (20) of Synthesis Examples 28 to 34 and 37, the liquid crystal alignment film surface of these substrates was rubbed using a rubbing device with a roll diameter of 120 mm using a rayon cloth under the conditions of a roll rotation speed of 1000 rpm, a roll advance speed of 50 mm / sec, and a push-in depth of 0.3 mm. In addition, the ITO substrates with liquid crystal alignment films obtained from the liquid crystal aligning agents of other Synthesis Examples were not subjected to rubbing treatment. In the present invention, the liquid crystal alignment films obtained from the liquid crystal aligning agents (1) to (10) of Synthesis Examples 18 to 27 were designated as liquid crystal alignment films (A), the liquid crystal alignment films obtained from the liquid crystal aligning agents (11) to (17) of Synthesis Examples 28 to 34 were designated as liquid crystal alignment films (B), and the liquid crystal alignment films obtained from the liquid crystal aligning agents (18) to (20) of Synthesis Examples 35 to 37 were designated as other liquid crystal alignment films.
[0127] "Preparation of Liquid Crystal Cell (Liquid Crystal Light Control Element)" In Examples 1 to 14 and Comparative Examples 1 and 2, liquid crystal cells were prepared using the ITO substrates with liquid crystal alignment films obtained in the "Preparation of Liquid Crystal Alignment Film" section above, and the cells were evaluated. Specifically, two ITO substrates with liquid crystal alignment films were prepared in the combinations shown in Tables 6 and 7. 12 μm spacers were dispersed on the liquid crystal alignment film surface of one substrate, and a sealant (XN-1500T) (manufactured by Kyoritsu Chemical Industry Co., Ltd.) was applied to the liquid crystal alignment film surface on all four sides of the other substrate. These substrates were then bonded together so that the liquid crystal alignment film surfaces faced each other. The bonded substrates were pressure-bonded and heated at 80°C for 15 minutes, then at 150°C for 90 minutes to prepare an empty cell. Liquid crystal composition (A) was injected into this empty cell by a reduced pressure injection method. The injection port was then sealed, and the cell was heated at 120°C for 30 minutes to obtain a liquid crystal cell.
[0128] "Confirmation of display defects in liquid crystal cells" This evaluation was conducted to evaluate the in-plane transmittance uniformity associated with poor alignment of the liquid crystal and dye. Specifically, an AC voltage of ±50 V was applied for 10 seconds to the liquid crystal cells before (initial) and after light irradiation, respectively, and then the AC voltage was returned to 0 V. Thereafter, the liquid crystal cell and a polarizing plate were stacked, and the cells were checked visually and with a polarizing microscope. A cell with little variation in in-plane transmittance and high uniformity was evaluated as excellent in this evaluation. Note that high uniformity means that there are no boundary regions where the in-plane transmittance is discontinuous. After checking the liquid crystal cell prepared in the above "Preparation of liquid crystal cell (liquid crystal light control element)" using the above method, a film that cuts wavelengths of 380 nm or less was attached to the liquid crystal cell, and a Q-SUN Xenon Test Chamber Model Xe-1 (manufactured by Q-LAB) (0.55 W / m) was used as the light irradiation device. 2 The sample was irradiated with light for 48 hours using a 340 nm wavelength cut filter (DayLight F Filter, temperature inside the layer: 55°C). After the light irradiation, the liquid crystal cell was checked by the above-mentioned method. The results of checking the in-plane transmittance uniformity of the liquid crystal cell are shown in Tables 6 and 7. In the tables, a high in-plane transmittance uniformity is marked with ○, and a low in-plane transmittance uniformity is marked with ×.
[0129] "Evaluation of Light Stability of Voltage Holding Ratio" This evaluation is intended to evaluate image sticking defects of the liquid crystal dimming element. Specifically, the voltage holding ratio of the liquid crystal cell prepared in the above "Preparation of Liquid Crystal Cell (Liquid Crystal Dimming Element)" was measured, and the smaller the change in value after light irradiation from the initial value, the better this evaluation was considered to be. The voltage holding ratio was measured using a voltage holding ratio measuring device (VHR-1) (manufactured by Toyo Corporation) by applying a voltage of 1 V for 60 μs at a temperature of 23° C. and measuring the voltage after 16.67 ms, and calculating the voltage holding ratio as the length of time the voltage was held. The light irradiation was performed under the same conditions as in the above "Confirmation of Display Defects of Liquid Crystal Cell".
[0130] The results of the evaluation of the light stability of the voltage holding ratio are shown in Tables 6 and 7.
[0131]
[0132] As can be seen from the above results, the liquid crystal cells of the examples had high in-plane transmittance uniformity before and after light irradiation. Furthermore, the decrease in voltage holding ratio due to light irradiation was also small. Specifically, the examples using a liquid crystal alignment film (A) obtained from a liquid crystal alignment agent containing a specific polymer (A) and a liquid crystal alignment film (B) obtained from a liquid crystal alignment agent containing a specific polymer (B) were compared with comparative examples that did not use these films, i.e., a comparison between Example 1 and Comparative Example 1, and a comparison between Example 3 and Comparative Example 2.
[0133] By using a liquid crystal aligning agent containing a polymer having a specific structure according to the present invention, a liquid crystal light control element can be obtained that exhibits good liquid crystal alignment and excellent electrical properties. In particular, these properties do not deteriorate even in harsh environments where the element is exposed to light for long periods of time. Therefore, the liquid crystal light control element of the present invention is useful in liquid crystal displays for display purposes, and in light control windows and optical shutters that control the transmission and blocking of light. The entire contents of the specification, claims, and abstract of Japanese Patent Application No. 2024-062977, filed on April 9, 2024, are incorporated herein by reference.
Claims
1. A liquid crystal light control element whose transmittance is variable in response to the application of voltage, comprising: a pair of substrates each having an electrode; a liquid crystal layer provided between the substrates and containing liquid crystal molecules that are twist-aligned when no voltage is applied; a liquid crystal alignment film (A) between one of the substrates and the liquid crystal layer, which has the function of aligning the liquid crystal molecules approximately vertically; and a liquid crystal alignment film (B) between the other substrate and the liquid crystal layer, which has the function of aligning the liquid crystal molecules approximately horizontally; wherein the liquid crystal layer has a liquid crystal composition containing liquid crystal molecules having positive dielectric anisotropy and a chiral compound; the liquid crystal alignment film (A) contains a polymer (A) having a structure of the following formula [1]; and the liquid crystal alignment film (B) contains a polymer (B) having a structure of the following formula [2]; and wherein d / p is 1 to 10, where d is the thickness of the liquid crystal layer and p is the chiral pitch of the liquid crystal in the liquid crystal layer. (X 1 is a single bond, -(CH 2 ) a -(a is an integer of 1 to 15), -O-, -CH 2 O-, -CONH-, -NHCO-, -CON(CH 3 ) -, -N(CH 3 ) represents CO—, —COO—, or —OCO—. X 2 is a single bond or -(CH 2 ) b - (where b is an integer of 1 to 15). 3 is a single bond, -(CH 2 ) c -(c is an integer of 1 to 15), -O-, -OCH 2 represents at least one selected from -, -COO-, and -OCO-. 4 represents at least one divalent cyclic group selected from a benzene ring, a cyclohexane ring, and a heterocycle, or a divalent organic group having 17 to 51 carbon atoms and a steroid skeleton, and any hydrogen atom on the cyclic group may be substituted with an alkyl group having 1 to 3 carbon atoms, an alkoxy group having 1 to 3 carbon atoms, a fluorine-containing alkyl group having 1 to 3 carbon atoms, a fluorine-containing alkoxy group having 1 to 3 carbon atoms, or a fluorine atom. X 5 represents at least one cyclic group selected from a benzene ring, a cyclohexane ring, and a heterocycle, and any hydrogen atom on these cyclic groups may be substituted with an alkyl group having 1 to 3 carbon atoms, an alkoxy group having 1 to 3 carbon atoms, a fluorine-containing alkyl group having 1 to 3 carbon atoms, a fluorine-containing alkoxy group having 1 to 3 carbon atoms, or a fluorine atom. X 6 represents an alkyl group having 1 to 18 carbon atoms, an alkenyl group having 2 to 18 carbon atoms, a fluorine-containing alkyl group having 1 to 18 carbon atoms, an alkoxy group having 1 to 18 carbon atoms, or a fluorine-containing alkoxy group having 1 to 18 carbon atoms. Xn represents an integer of 0 to 4. * represents a bond. (Y 1 is a single bond, -(CH 2 ) a -(a is an integer of 1 to 15), -O-, -CH 2 O-, -CONH-, -NHCO-, -CON(CH 3 ) -, -N(CH 3 ) represents CO—, —COO—, or —OCO—. 2 and Y 3 each independently represents at least one divalent cyclic group selected from a benzene ring, a cyclohexane ring, and a heterocycle, and any hydrogen atom on the cyclic group may be substituted with an alkyl group having 1 to 3 carbon atoms, an alkoxy group having 1 to 3 carbon atoms, a fluorine-containing alkyl group having 1 to 3 carbon atoms, a fluorine-containing alkoxy group having 1 to 3 carbon atoms, or a fluorine atom. 4 represents an alkyl group having 1 to 18 carbon atoms, an alkenyl group having 2 to 18 carbon atoms, or an alkoxy group having 1 to 18 carbon atoms. Yn represents an integer of 0 or 1. * represents a bond.
2. The liquid crystal light control device according to claim 1, wherein the liquid crystal composition further contains a dichroic dye.
3. The liquid crystal light control device according to claim 1 or 2, wherein the liquid crystal layer has a thickness of 1 to 75 μm.
4. The liquid crystal light control element according to claim 1 or 2, wherein d / p in the liquid crystal light control element is 1 to 8.
5. The liquid crystal light control device according to claim 1 or 2, wherein the polymer (A) is at least one selected from the group consisting of a polyimide precursor, a polyimide, and a polysiloxane.
6. The liquid crystal light control device according to claim 5, wherein the polymer (A) is at least one selected from a polyimide precursor and a polyimide that uses a diamine having the structure of the formula [1] as part of a raw material.
7. The liquid crystal light control device according to claim 6, wherein the diamine is a diamine of the following formula [1a]: (X represents a structure of the formula [1]. Each Xm independently represents an integer of 1 to 4. Xp represents an integer of 0 or 1. When a plurality of Xs are present, the plurality of Xs may be the same or different.) 8. The liquid crystal light control device according to claim 6, wherein the diamine is used in an amount of 25 to 80 mol % based on the total amount of diamine.
9. The liquid crystal light control device according to claim 1 or 2, wherein the polymer (B) is at least one selected from the group consisting of a polyimide precursor and a polyimide.
10. The liquid crystal light control element according to claim 9, wherein the polymer (B) is at least one selected from a polyimide precursor and a polyimide that uses a diamine having the structure of the formula [2] as part of a raw material.
11. The liquid crystal light control device according to claim 10, wherein the diamine is a diamine represented by the following formula [2a]: (Y represents the structure of the formula [2] above. Each Ym independently represents an integer of 1 to 4.) 12. The liquid crystal light control device according to claim 10, wherein the diamine is used in an amount of 2 to 20 mol % based on the total amount of diamine.
13. The liquid crystal light control element according to claim 5, wherein the polymer (A) and the polymer (B) are polyimide precursors using a tetracarboxylic acid represented by the following formula [3] as part of their raw materials, or polyimides obtained by imidizing the polyimide precursors. (Z represents at least one selected from the structures of the following formulas [3a] to [3l].) (Z A ~Z D each independently represents a hydrogen atom, a methyl group, a chlorine atom or a benzene ring. E and Z F each independently represents a hydrogen atom or a methyl group.
14. The liquid crystal light control element according to claim 5, wherein the polymer (A) is any one of a polysiloxane obtained by polycondensation of an alkoxysilane of the following formula [A1], a polysiloxane obtained by polycondensation of an alkoxysilane containing the formula [A1] and one of the alkoxysilanes of the following formula [A2] or formula [A3], or a polysiloxane obtained by polycondensation of an alkoxysilane of the formula [A1], formula [A2], and formula [A3]. (A 1 represents the structure of the formula [1]. 2 represents a hydrogen atom or an alkyl group having 1 to 5 carbon atoms. 3 represents an alkyl group having 1 to 5 carbon atoms. m represents an integer of 1 or 2. n represents an integer of 0 to 2. p represents an integer of 0 to 3. However, m + n + p represents an integer of 4. (B 1 represents an organic group having 2 to 12 carbon atoms and at least one selected from the group consisting of a vinyl group, an epoxy group, an amino group, a mercapto group, an isocyanate group, a methacryl group, an acryl group, a ureido group, and a cinnamoyl group. 2 represents a hydrogen atom or an alkyl group having 1 to 5 carbon atoms. 3 represents an alkyl group having 1 to 5 carbon atoms. m represents an integer of 1 or 2. n represents an integer of 0 to 2. p represents an integer of 0 to 3. However, m + n + p represents an integer of 4. (D 1 represents a hydrogen atom or an alkyl group having 1 to 5 carbon atoms. 2 represents an alkyl group having 1 to 5 carbon atoms, and n represents an integer of 0 to 3.
15. A liquid crystal dimming element according to claim 1 or 2, wherein the liquid crystal aligning agent contains a compound having at least one structure selected from an epoxy group, an isocyanate group, an oxetanyl group, an oxazoline group, a cyclocarbonate group, a hydroxyl group, a hydroxyalkyl group, a lower alkoxyalkyl group, and a polymerizable unsaturated group.
16. A liquid crystal alignment film used in the liquid crystal light control element according to claim 1 or 2.
17. A liquid crystal alignment agent for forming the liquid crystal alignment film according to claim 16.
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