Compounds, compositions, cured products, optical anisotropes, optical elements and light guide elements
By developing compounds and liquid crystal compositions represented by the general formula (I), the problem of insufficient high Δn in liquid crystal compounds was solved, the optical performance of optical components was improved, and the needs of optical applications were met.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-06-22
- Publication Date
- 2026-04-08
AI Technical Summary
In the prior art, the high refractive index anisotropy (Δn) of liquid crystal compounds is insufficient, making it difficult to meet the needs of certain optical applications. Furthermore, even if a compound with high Δn does not possess liquid crystal properties, it is difficult to mix it with a compound that does possess liquid crystal properties to form a liquid crystal composition with high Δn.
A compound represented by the general formula (I) was developed to prepare a liquid crystal compound with high Δn by adjusting its structural composition and linking groups, and mixed with other compounds to form a liquid crystal composition with high Δn for the preparation of optical anisotropic layers and photoconductive elements.
High Δn liquid crystal compounds and compositions have been achieved, improving the optical performance of optical components, especially optical anisotropy and photoconductive properties, to meet the needs of optical applications.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to compounds, compositions, cured products, optical anisotropes, optical elements, and light guide elements. [Background technology]
[0002] Liquid crystalline compounds (hereinafter also referred to as "liquid crystal compounds") and liquid crystalline compositions (hereinafter also referred to as "liquid crystal compositions") can be applied to a variety of uses. For example, Patent Document 1 describes that diffracted light with high diffraction efficiency can be obtained at a large diffraction angle using an optical element equipped with an optically anisotropic layer made of a cured product of a composition containing a liquid crystal compound. Patent Document 1 also describes that good diffraction efficiency can be obtained by using a liquid crystal compound having a high refractive index anisotropy △n (hereinafter also simply referred to as "△n"). Furthermore, Patent Document 2 describes a liquid crystal compound having a high Δn. Patent Document 2 also describes a reflective film obtained by curing a composition containing a liquid crystal compound having a high Δn. [Prior art documents] [Patent Documents]
[0003] [Patent Document 1] International Publication No. 2020 / 022496 [Patent Document 2] International Publication No. 2018 / 034216 [Overview of the project] [Problems that the invention aims to solve]
[0004] As described in Patent Documents 1 and 2, liquid crystal compounds having a high Δn are useful for a variety of applications. Furthermore, even if a compound having a high Δn does not possess liquid crystallinity itself, it can be mixed with another compound that does possess liquid crystallinity to create a liquid crystal composition having a high Δn, making it useful for a variety of applications.
[0005] The object of this invention is to provide a compound having a high refractive index anisotropy Δn, a composition containing the above compound, a cured product, an optical anisotropy, an optical element, and a light guide element. [Means for solving the problem]
[0006] The inventors of this invention have conducted thorough research and found that the above problem can be solved by the following means. [1] A compound represented by the following general formula (I). [ka] In general formula (I), P 1 and P 2 Each of these independently represents an alkyl group, an alkoxy group, an alkylcarbonyl group, an alkylcarbonyloxy group, or a group represented by any of the following formulas (P-1) to (P-19). In the following formulas, * represents the bond position, Me represents a methyl group, and Et represents an ethyl group. [ka] S 1 and S 2 Each of these independently represents a single bond, or a divalent linking group consisting of an alkylene group, an alkenylene group, -O-, -S-, -CO-, -SO-, -SO2-, -COO-, -OCO-, -CO-S-, -S-CO-, -O-CO-O-, or a combination of several of these. A 1 ~A 4 Each of these may independently have substituents. Fragrance Fragrance group hydrocarbon ring base table The substituent is at least one substituent selected from the group consisting of an alkyl group having 1 to 10 carbon atoms, an alkoxy group having 1 to 10 carbon atoms, an alkylamino group having 1 to 10 carbon atoms, an alkylthio group having 1 to 10 carbon atoms, an alkanoyl group having 1 to 10 carbon atoms, an alkanoyloxy group having 1 to 10 carbon atoms, an alkanoylamino group having 1 to 10 carbon atoms, an alkanoylthio group having 1 to 10 carbon atoms, an alkyloxycarbonyl group having 2 to 10 carbon atoms, an alkylaminocarbonyl group having 2 to 10 carbon atoms, an alkylthiocarbonyl group having 2 to 10 carbon atoms, a hydroxyl group, an amino group, a mercapto group, a carboxyl group, a sulfo group, an amide group, a cyano group, a nitro group, and a halogen atom. Multiple A 3 and A 4 These may be the same or different. Z represents -OCHR-, -CHRO-, -COO-, or -OCO-. R represents a hydrogen atom or an alkyl group having 1 to 10 carbon atoms. Multiple Zs may be the same or different. Multiple Rs may be the same or different. m1 represents an integer from 2 to 7. [2] The compound according to [1], wherein m1 in the general formula (I) represents 2 or 3. [3] The compound according to [1], wherein m1 in the general formula (I) represents 2. [4] P in the general formula (I) 1 and P 2 The compound according to [1] or [2], wherein at least one of them represents a group represented by any of the above formulas (P-1) to (P-19). 5 S in the general formula (I) 1 represents a group represented by the following general formula (II), and S 2 represents a group represented by the following general formula (III), the compound according to [1] or [2].
Chemical formula
[0007] <1> A compound represented by the following general formula (I).
[0008] [ka]
[0009] In general formula (I), P 1 and P 2 Each of these independently represents a hydrogen atom or a substituent. S 1 and S 2 Each of these independently represents a single bond or a divalent linking group. A 1 ~A 4 Each of these independently represents a non-aromatic ring group, an aromatic hydrocarbon ring group, or an aromatic heterocyclic ring group, which may have substituents. 3 and A 4 These may be the same or different. Z is -O-, -S-, -CHRCHR-, -OCHR-, -CHRO-, -CO-, -SO-, -SO2-, -COO-, -OCO-, -CO-S-, -S-CO-, -O-CO-O-, -SCHR-, -CHRS-, -SO-CH R-, -CHR-SO-, -SO2-CHR-, -CHR-SO2-, -CF2O-, -OCF2-, -CF2S-, -SCF2-, -OCHRCHRO-, -SCHRCHRS-, -SO-CHRCHR-SO-, -SO2-CHR This represents CHR-SO2-, -CH=CH-COO-, -CH=CH-OCO-, -COO-CH=CH-, -OCO-CH=CH-, -COO-CHRCHR-, -OCO-CHRCHR-, -CHRCHR-COO-, -CHRCHR-OCO-, -COO-CHR-, -OCO-CHR-, -CHR-COO-, -CHR-OCO-, -CR=CR-, -CR=N-, -N=CR-, -N=N-, -CR=NN=CR-, -CF=CF-, -C≡C-, or a single bond. R represents a hydrogen atom or an alkyl group with 1 to 10 carbon atoms. Multiple Zs may be the same or different. If there are multiple Rs, they may be the same or different. m1 represents an integer between 2 and 7. <2> In the above general formula (I), m1 represents 2. <1> The compounds described above. <3> In the above general formula (I), P 1 and P 2 At least one of the substituents is selected from the group consisting of alkyl groups, alkoxy groups, alkylcarbonyl groups, alkylcarbonyloxy groups, and polymerizable groups. <1> or <2> The compounds described above. <4> In the above general formula (I), P 1 and P 2 At least one of the following represents a polymerizable group: <1> ~ <3> A compound listed in any one of the following. <5> A in the above general formula (I) 1 ~A 4At least one of them has at least one substituent selected from the group consisting of an alkyl group having 1 to 20 carbon atoms, an alkoxy group having 1 to 20 carbon atoms, an alkylamino group having 1 to 20 carbon atoms, an alkylthio group having 1 to 20 carbon atoms, an alkanoyl group having 1 to 20 carbon atoms, an alkanoyloxy group having 1 to 20 carbon atoms, an alkanoylamino group having 1 to 20 carbon atoms, an alkanoylthio group having 1 to 20 carbon atoms, an alkyloxycarbonyl group having 2 to 20 carbon atoms, an alkylaminocarbonyl group having 2 to 20 carbon atoms, an alkylthiocarbonyl group having 2 to 20 carbon atoms, a hydroxyl group, an amino group, a mercapto group, a carboxyl group, a sulfo group, an amide group, a cyano group, a nitro group, a halogen atom, and a polymerizable group. <1> ~ <4> A compound as described in any one of the above. However, if the substituent has -CH2-, at least one of the -CH2- groups in the substituent may be replaced with -O-, -CO-, -CH=CH-, or -C≡C-. Also, if the substituent has a hydrogen atom, at least one of the hydrogen atoms in the substituent may be replaced with a fluorine atom. <6> S in the above general formula (I) 1 This represents a group represented by the following general formula (II), S 2 This represents a group represented by the following general formula (III): <1> ~ <5> A compound listed in any one of the following.
[0010] [ka]
[0011] In general formulas (II) and (III), W 1 and W 2 Each of these independently represents an alkylene group having 1 to 15 carbon atoms, and one or more methylene groups contained in the alkylene group may be independently replaced with -O-, -S-, or -CO-. * represents S 1 or S 2 A is directly connected to 1 Or A 4 This represents the bond position with P, where ** represents P1 or P 2 This indicates the connection point with [the other element]. <7> In the above general formula (I), Z represents -CHRCHR-, -OCHR-, or -CHRO-. <1> ~ <6> A compound listed in any one of the above. However, R represents a hydrogen atom or an alkyl group having 1 to 10 carbon atoms. If there are multiple Rs, they may be the same or different. <8> In the above general formula (I), P 1 and P 2 However, each independently represents a group that can be expressed by any of the following formulas (P-1) to (P-19): <1> ~ <7> A compound listed in any one of the following.
[0012] [ka]
[0013] <9> The compound represented by the above general formula (I) is the same as the compound represented by the following general formula (I-2). <1> ~ <8> A compound listed in any one of the following.
[0014] [ka]
[0015] In general formula (I-2), R 1 and R 2 Each of these independently represents either a hydrogen atom or a methyl group. W 3 and W 4 Each of these independently represents an alkylene group with 1 to 6 carbon atoms. Q 1 ~Q 24 Each of these independently represents a hydrogen atom, a fluorine atom, a chlorine atom, a nitro group, a cyano group, an alkyl group having 1 to 20 carbon atoms, an alkyloxycarbonyl group having 2 to 20 carbon atoms, or an alkylaminocarbonyl group having 2 to 20 carbon atoms. <10> Having liquid crystal properties, <1> ~ <9> A compound listed in any one of the following. <11> <1> ~ <10> A composition comprising any one of the compounds described in that statement. <12> Furthermore, including polymerization initiators, <11> The composition described above. <13> Furthermore, including chiral agents, <11> or <12> The composition described above. <14> Having liquid crystal properties, <11> ~ <13> A composition as described in any one of the following. <15> For forming optically anisotropic layers, <11> ~ <14> A composition as described in any one of the following. <16> <11> ~ <15> A cured product obtained by curing any one of the compositions described in that one. <17> <11> ~ <15> An optical anisotrope obtained by curing any one of the compositions described in that one. <18> <11> ~ <15> The optically anisotropic layer is formed using any one of the compositions described above, The above optical anisotropy layer has an orientation pattern, The above orientation pattern is an optical element in which the orientation of the optical axis derived from the compound contained in the above composition is continuously rotated along at least one direction in the plane. <19> <18> A light guide element comprising the optical element and light guide plate described in [reference]. [Effects of the Invention]
[0016] According to the present invention, it is possible to provide compounds having a high refractive index anisotropy △n, compositions containing the above compound, cured products, optical anisotropes, optical elements, and light guide elements. [Modes for carrying out the invention]
[0017] The following describes in detail embodiments for carrying out the present invention, but the present invention is not limited thereto. In this specification, when numerical values represent physical properties, characteristic values, etc., the notation "(numerical value 1) to (numerical value 2)" means "(numerical value 1) or more and (numerical value 2) or less". Also, in this specification, the notation "(meth)acrylate" means "at least one of acrylate and methacrylate". The same applies to "(meth)acrylic acid", "(meth)acryloyl", "(meth)acrylamide", "(meth)acryloyloxy", etc.
[0018] [Compounds represented by general formula (I)] The compound represented by the following general formula (I) will be explained.
[0019] [ka]
[0020] In general formula (I), P 1 and P 2 Each of these independently represents a hydrogen atom or a substituent. S 1 and S 2 Each of these independently represents a single bond or a divalent linking group. A 1 ~A 4 Each of these independently represents a non-aromatic ring group, an aromatic hydrocarbon ring group, or an aromatic heterocyclic ring group, which may have substituents. 3 and A 4 These may be the same or different. Z is -O-, -S-, -CHRCHR-, -OCHR-, -CHRO-, -CO-, -SO-, -SO2-, -COO-, -OCO-, -CO-S-, -S-CO-, -O-CO-O-, -SCHR-, -CHRS-, -SO-CH R-, -CHR-SO-, -SO2-CHR-, -CHR-SO2-, -CF2O-, -OCF2-, -CF2S-, -SCF2-, -OCHRCHRO-, -SCHRCHRS-, -SO-CHRCHR-SO-, -SO2-CHR This represents CHR-SO2-, -CH=CH-COO-, -CH=CH-OCO-, -COO-CH=CH-, -OCO-CH=CH-, -COO-CHRCHR-, -OCO-CHRCHR-, -CHRCHR-COO-, -CHRCHR-OCO-, -COO-CHR-, -OCO-CHR-, -CHR-COO-, -CHR-OCO-, -CR=CR-, -CR=N-, -N=CR-, -N=N-, -CR=NN=CR-, -CF=CF-, -C≡C-, or a single bond. R represents a hydrogen atom or an alkyl group with 1 to 10 carbon atoms. Multiple Zs may be the same or different. If there are multiple Rs, they may be the same or different. m1 represents an integer between 2 and 7.
[0021] In general formula (I), m1 represents an integer between 2 and 7, preferably between 2 and 5, more preferably 2 or 3, and even more preferably 2.
[0022] P in general formula (I) 1 and P 2 Each of these independently represents a hydrogen atom or a substituent. P 1 and P 2The substituents when represent a substituent are not particularly limited, and known substituents can be cited, for example, alkyl groups (preferably alkyl groups having 1 to 20 carbon atoms), alkoxy groups (preferably alkoxy groups having 1 to 20 carbon atoms), alkylcarbonyl groups (preferably alkylcarbonyl groups having 2 to 20 carbon atoms), alkyloxycarbonyl groups (preferably alkyloxycarbonyl groups having 2 to 20 carbon atoms), alkylcarbonyloxy groups (preferably alkylcarbonyloxy groups having 2 to 20 carbon atoms), alkylamino groups (preferably alkylamino groups having 1 to 20 carbon atoms), dialkylamino groups (preferably dialkylamino groups having 2 to 20 carbon atoms), alkylamide groups (preferably alkylamide groups having 2 to 20 carbon atoms), alkenyl groups (preferably alkenyl groups having 2 to 20 carbon atoms), alkynyl groups (preferably alkynyl groups having 2 to 20 carbon atoms), halogen atoms, cyano groups, nitro groups, alkylthiol groups, N-alkylcarbamate groups, polymerizable groups, and the like. Each of the above groups may be further substituted with substituents. For example, a hydrogen atom in the alkyl group may be substituted with a fluorine atom.
[0023] P 1 and P 2 It is preferable that at least one of these groups represents a substituent selected from the group consisting of alkyl groups, alkoxy groups, alkylcarbonyl groups, alkylcarbonyloxy groups, and polymerizable groups.
[0024] When preparing an optically anisotropic layer from a composition containing a compound represented by general formula (I), P is used because it can fix the orientation state of the compound represented by general formula (I) and improve the durability of the optically anisotropic layer. 1 and P 2 It is preferable that at least one of the following represents a polymerizable group. P is preferred because it exhibits superior reactivity. 1 and P 2 It is more preferable that both represent polymerizable groups. The polymerizable group is not particularly limited, and examples thereof include known polymerizable groups. From the viewpoint of reactivity, a functional group capable of undergoing an addition polymerization reaction is preferable, and a polymerizable ethylenically unsaturated group or a cyclo-polymerizable group is more preferable. Examples of the polymerizable group include, for example, a (meth)acryloyloxy group, a vinyl group, a maleimide group, a styryl group, an allyl group, an epoxy group, an oxetane group, and a group containing these groups. In addition, the hydrogen atoms in each of the above groups may be substituted with other substituents such as halogen atoms. Preferable specific examples of the polymerizable group include groups represented by any of the following formulas (P-1) to (P-19). In the following formulas, * represents the bonding position, Me represents a methyl group, and Et represents an ethyl group. The polymerizable group is preferably a (meth)acryloyloxy group. P in the general formula (I) 1 and P 2 each preferably represents a group represented by any of the following formulas (P-1) to (P-19), and more preferably represents a (meth)acryloyloxy group.
[0025]
Chemical formula
[0026] A in the general formula (I) 1 ~A 4 each independently represents a non-aromatic ring group, an aromatic hydrocarbon ring group or an aromatic heterocyclic group which may have a substituent. A plurality of A 3 and A 4 may be the same or different from each other. A 1 ~A 4 is a divalent group. A 1 ~A 4 When the non-aromatic ring group represented by A ~A 1 ~A 4When representing an aromatic hydrocarbon ring group, the aromatic hydrocarbon ring group is not particularly limited, but an arylene group is preferred, an arylene group having 6 to 20 carbon atoms is more preferred, an arylene group having 6 to 10 carbon atoms is still more preferred, and a phenylene group is particularly preferred. A 1 ~A 4 When representing an aromatic heterocyclic group, the aromatic heterocyclic group is not particularly limited, but a heteroarylene group is preferred, a heteroarylene group having 3 to 20 carbon atoms is more preferred, and a heteroarylene group having 3 to 10 carbon atoms is still more preferred. The heteroatom contained in the heteroarylene group is preferably at least one selected from the group consisting of a nitrogen atom, an oxygen atom, and a sulfur atom.
[0027] A 1 ~A 4 Preferably represents an aromatic hydrocarbon ring group which may have a substituent, respectively independently.
[0028] [[ID=第十八条]]A 1 ~A 4 The substituent which may be possessed is not particularly limited, and examples thereof include a halogen atom (preferably a fluorine atom or a chlorine atom), an alkyl group (preferably an alkyl group having 1 to 20 carbon atoms), an alkoxy group (preferably an alkoxy group having 1 to 20 carbon atoms), an aryl group (preferably an aryl group having 6 to 20 carbon atoms), a nitro group, a cyano group, an isothiocyanate group, a hydroxy group, an amino group, a carboxy group, a sulfonamide group, an N-sulfonylamide group, an acyl group (preferably an acyl group having 2 to 20 carbon atoms), an acyloxy group (preferably an acyloxy group having 2 to 20 carbon atoms), an alkyloxycarbonyl group (preferably an alkyloxycarbonyl group having 2 to 20 carbon atoms), an alkylaminocarbonyl group (preferably an alkylaminocarbonyl group having 2 to 20 carbon atoms), etc. Each of the above groups may be further substituted with a substituent. For example, a hydrogen atom in the alkyl group may be substituted with a fluorine atom.
[0029] A in the general formula (I) 1 ~A 4 It is preferred that at least one of them has a substituent. A in general formula (I) 1 ~A 4 When at least one of the substituents is substituted, that substituent is also called substituent L. A in general formula (I) 1 ~A 4 It is more preferable that at least one of the substituents is selected from the group consisting of an alkyl group having 1 to 20 carbon atoms, an alkoxy group having 1 to 20 carbon atoms, an alkylamino group having 1 to 20 carbon atoms, an alkylthio group having 1 to 20 carbon atoms, an alkanoyl group having 1 to 20 carbon atoms, an alkanoyloxy group having 1 to 20 carbon atoms, an alkanoylamino group having 1 to 20 carbon atoms, an alkanoylthio group having 1 to 20 carbon atoms, an alkyloxycarbonyl group having 2 to 20 carbon atoms, an alkylaminocarbonyl group having 2 to 20 carbon atoms, an alkylthiocarbonyl group having 2 to 20 carbon atoms, a hydroxyl group, an amino group, a mercapto group, a carboxyl group, a sulfo group, an amide group, a cyano group, a nitro group, a halogen atom, and a polymerizable group. However, if the substituent has -CH2-, at least one of the -CH2- groups in the substituent may be replaced with -O-, -CO-, -CH=CH-, or -C≡C-. Furthermore, if the substituent has a hydrogen atom, at least one of the hydrogen atoms in the substituent may be replaced with a fluorine atom.
[0030] The substituent L may be an alkyl group having 1 to 10 carbon atoms, an alkoxy group having 1 to 10 carbon atoms, an alkylamino group having 1 to 10 carbon atoms, an alkylthio group having 1 to 10 carbon atoms, an alkanoyl group having 1 to 10 carbon atoms, an alkanoyloxy group having 1 to 10 carbon atoms, an alkanoylamino group having 1 to 10 carbon atoms, an alkanoylthio group having 1 to 10 carbon atoms, an alkyloxycarbonyl group having 2 to 10 carbon atoms, an alkylaminocarbonyl group having 2 to 10 carbon atoms, an alkylthiocarbonyl group having 2 to 10 carbon atoms, a hydroxyl group, an amino group, a mercapto group, or a hydroxyl group. It is more preferable that the substituent is at least one selected from the group consisting of a ruboxy group, a sulfo group, an amide group, a cyano group, a nitro group, and a halogen atom; it is even more preferable that the substituent is at least one selected from the group consisting of a fluorine atom, an alkyl group having 1 to 10 carbon atoms, an alkyloxycarbonyl group having 2 to 10 carbon atoms, and an alkylaminocarbonyl group having 2 to 10 carbon atoms; and it is particularly preferable that the substituent is at least one selected from the group consisting of an alkyl group having 1 to 10 carbon atoms and an alkyloxycarbonyl group having 2 to 10 carbon atoms. The number of carbon atoms in the alkyl group is more preferably 1 to 5, and even more preferably 1 to 3. The number of carbon atoms in the alkyloxycarbonyl group is more preferably 2 to 5, and even more preferably 2 to 3. The number of carbon atoms in the alkylaminocarbonyl group is more preferably 2 to 5, and even more preferably 2 to 3.
[0031] S in general formula (I) 1 and S 2 Each of these independently represents a single bond or a divalent linking group. S 1 and S 2 When represents a divalent linking group, preferred divalent linking groups include alkylene groups (preferably alkylene groups having 1 to 20 carbon atoms), alkenylene groups (preferably alkenylene groups having 2 to 20 carbon atoms), -O-, -S-, -CO-, -SO-, -SO2-, -COO-, -OCO-, -CO-S-, -S-CO-, -O-CO-O-, or divalent linking groups combining a plurality of these.
[0032] S 1 This represents a group represented by the following general formula (II), S 2 Preferably, this represents a group represented by the following general formula (III). The group represented by the following general formula (II) and the group represented by the following general formula (III) contain a sulfur atom, therefore S 1 and S 2 These groups allow us to increase the △n of the compound represented by general formula (I).
[0033] [ka]
[0034] In general formulas (II) and (III), W 1 and W 2 Each of these independently represents an alkylene group having 1 to 15 carbon atoms, and one or more methylene groups contained in the alkylene group may be independently replaced with -O-, -S-, or -CO-. * represents S 1 or S 2 A is directly connected to 1 Or A 4 This represents the bond position with P, where ** represents P 1 or P 2 This indicates the connection point with [the other element].
[0035] W 1 and W 2 Each of these independently represents an alkylene group having 1 to 15 carbon atoms, preferably an alkylene group having 1 to 10 carbon atoms, and more preferably an alkylene group having 1 to 5 carbon atoms.
[0036] Z in general formula (I) is -O-, -S-, -CHRCHR-, -OCHR-, -CHRO-, -CO-, -SO-, -SO2-, -COO-, -OCO-, -CO-S-, -S-CO-, -O-CO-O-, -SCHR-, -CHRS-, -SO-CHR-, -CHR-SO-, -SO2-CHR-, -CHR-SO2-, -CF2O-, -OCF2-, -CF2S-, -SCF2-, -OCHRCHRO-, -SCHRCHRS-, -SO-CHRCHR-SO-, -SO2 -CHRCHR-SO2-, -CH=CH-COO-, -CH=CH-OCO-, -COO-CH=CH-, -OCO-CH=CH-, -COO-CHRCHR-, -OCO-CHRCHR-, -CHRCHR-COO-, -CHRCHR-OCO-, -COO-CHR-, -OCO-CHR-, -CHR-COO-, -CHR-OCO-, -CR=CR-, -CR=N-, -N=CR-, -N=N-, -CR=NN=CR-, -CF=CF-, -C≡C-, or a single bond. R represents a hydrogen atom or an alkyl group with 1 to 10 carbon atoms. Multiple Zs may be the same or different. If multiple Rs exist, they may be the same or different.
[0037] Z is preferably -CHRCHR-, -OCHR-, or -CHRO-, and more preferably -OCHR- or -CHRO-. R is as described above.
[0038] R represents a hydrogen atom or an alkyl group having 1 to 10 carbon atoms, preferably a hydrogen atom or an alkyl group having 1 to 6 carbon atoms, and more preferably a hydrogen atom.
[0039] The compound represented by general formula (I) is preferably the compound represented by the following general formula (I-2).
[0040] [ka]
[0041] In general formula (I-2), R 1 and R2 Each of these independently represents either a hydrogen atom or a methyl group. W 3 and W 4 Each of these independently represents an alkylene group with 1 to 6 carbon atoms. Q 1 ~Q 24 Each of these independently represents a hydrogen atom or a substituent.
[0042] R 1 and R 2 It is preferable that this represents a hydrogen atom. W 3 and W 4 Preferably, each of these independently represents an alkylene group having 2 to 4 carbon atoms.
[0043] Q 1 ~Q 24 Each of these independently represents a hydrogen atom or a substituent, and a specific example of a substituent is A in general formula (I). 1 ~A 4 This is similar to the substituent (substituent L) when at least one of the substituents has a substituent. Q 1 ~Q 24 Preferably, each of these independently represents a hydrogen atom, a fluorine atom, a chlorine atom, a nitro group, a cyano group, an alkyl group having 1 to 20 carbon atoms, an alkyloxycarbonyl group having 2 to 20 carbon atoms, or an alkylaminocarbonyl group having 2 to 20 carbon atoms. Q 1 ~Q 24 Each of these independently more preferably represents a hydrogen atom, a fluorine atom, a chlorine atom, a nitro group, a cyano group, an alkyl group having 1 to 10 carbon atoms, an alkyloxycarbonyl group having 2 to 10 carbon atoms, or an alkylaminocarbonyl group having 2 to 10 carbon atoms; even more preferably it is a hydrogen atom, a fluorine atom, an alkyl group having 1 to 10 carbon atoms, an alkyloxycarbonyl group having 2 to 10 carbon atoms, or an alkylaminocarbonyl group having 2 to 10 carbon atoms; and particularly preferably it is a hydrogen atom, an alkyl group having 1 to 10 carbon atoms, or an alkyloxycarbonyl group having 2 to 10 carbon atoms. The number of carbon atoms in the alkyl group is more preferably 1 to 5, and even more preferably 1 to 3. The number of carbon atoms in the alkyloxycarbonyl group is more preferably 2 to 5, and even more preferably 2 to 3. The number of carbon atoms in the alkylaminocarbonyl group is more preferably 2 to 5, and even more preferably 2 to 3.
[0044] Q 1 ~Q 8 It is preferable that at least one of them represents a substituent. 9 ~Q 16 It is preferable that at least one of them represents a substituent. 17 ~Q 24 It is preferable that at least one of them represents a substituent. 8 and Q 19 It is particularly preferable that represent a substituent.
[0045] Specific examples of compounds represented by general formula (I) are shown below, but are not limited to these. In the following structural formulas, Me represents a methyl group.
[0046] [ka]
[0047] [ka]
[0048] Compounds represented by general formula (I) can be synthesized by referring to or combining known methods. Specific examples of the synthesis of compounds represented by general formula (I) are shown in the examples below.
[0049] The compound represented by general formula (I) may or may not be liquid crystalline, but it is preferable that it be liquid crystalline. When the compound represented by general formula (I) is liquid crystalline, it is preferable that the compound represented by general formula (I) is easily oriented when an optically anisotropic layer is prepared from a composition containing the compound represented by general formula (I), and a desired orientation pattern can be easily created. However, even if the compound represented by general formula (I) itself does not possess liquid crystalline properties, it can be mixed with another compound that does possess liquid crystalline properties to form a liquid crystal composition, thereby creating a desired orientation pattern.
[0050] A compound is said to be liquid crystalline if it exhibits the property of creating an intermediate phase between the crystalline phase (low temperature side) and the isotropic phase (high temperature side) when the temperature is changed. A specific observation method involves heating or cooling the compound on a hot stage while observing it under a polarizing microscope to confirm the optical anisotropy and fluidity originating from the liquid crystalline phase.
[0051] [Compositions containing compounds represented by general formula (I)] A composition containing a compound represented by general formula (I) (hereinafter also referred to as "the composition of the present invention") will be described. The content of the compound represented by general formula (I) in the composition of the present invention is not particularly limited, but is preferably 5 to 100% by mass, more preferably 20 to 90% by mass, and even more preferably 40 to 80% by mass, based on the total mass of solids in the composition. Note that "solid content" refers to components other than the solvent in the composition (non-volatile components). Any component other than the solvent is considered solid content, even if its properties are liquid. The composition of the present invention may use one compound represented by general formula (I) alone, or two or more compounds. When two or more compounds are used, it is preferable that their total content be within the above range.
[0052] The composition of the present invention may or may not be liquid crystalline, but it is preferable that it be liquid crystalline. When the composition of the present invention has liquid crystalline properties, it is preferable that the compounds in the composition are easily oriented when an optically anisotropic layer is fabricated from the composition, and a desired orientation pattern can be easily created.
[0053] A composition is said to be liquid crystalline if it exhibits the property of developing an intermediate phase between the crystalline phase (low temperature side) and the isotropic phase (high temperature side) when the temperature is changed. A specific observation method involves heating or cooling the composition using a hot stage while observing it under a polarizing microscope to confirm the optical anisotropy and fluidity originating from the liquid crystalline phase.
[0054] The composition of the present invention is preferably a composition for forming an optically anisotropic layer.
[0055] The composition of the present invention may contain other components in addition to the compound represented by general formula (I). The following describes the other ingredients.
[0056] <Other liquid crystal compounds> The compositions of the present invention may include liquid crystal compounds other than those represented by general formula (I) (also referred to as "other liquid crystal compounds"). The other liquid crystal compound may be a rod-shaped liquid crystal compound or a disc-shaped liquid crystal compound, but a rod-shaped liquid crystal compound is preferred. Furthermore, the other liquid crystal compound is preferably a liquid crystal compound having polymerizable groups (other polymerizable liquid crystal compounds). Other examples of liquid crystal compounds include rod-shaped nematic liquid crystal compounds. Preferred rod-shaped nematic liquid crystal compounds include azomethines, azoxys, cyanobiphenyls, cyanophenyl esters, benzoic acid esters, cyclohexanecarboxylic acid phenyl esters, cyanophenylcyclohexanes, cyanosubstituted phenylpyrimidines, alkoxysubstituted phenylpyrimidines, phenyldioxanes, trans, or alkenylcyclohexylbenzonitriles. Other liquid crystal compounds that can be used include not only low-molecular-weight liquid crystal compounds but also high-molecular-weight liquid crystal compounds.
[0057] Liquid crystal compounds having polymerizable groups are obtained by introducing polymerizable groups into liquid crystal compounds. Examples of polymerizable groups include P of general formula (I). 1 and P 2 Examples of polymerizable groups include those exemplified in [reference]. The number of polymerizable groups in a liquid crystal compound is preferably 1 to 6, and more preferably 1 to 3. Other liquid crystal compounds preferably have a high refractive index anisotropy Δn, specifically 0.15 or higher, more preferably 0.18 or higher, and even more preferably 0.22 or higher. There is no particular upper limit, but it is often 0.60 or lower. Furthermore, by mixing the compound represented by general formula (I) with other liquid crystal compounds, the overall crystallization temperature can be significantly reduced. Other examples of liquid crystal compounds include those described in Makromol. Chem., Vol. 190, p. 2255 (1989), Advanced Materials, Vol. 5, p. 107 (1993), U.S. Patent Nos. 4,683,327, 4,983,479, 5,622,648, and 5770,107, International Publication WO95 / 22586, 95 / 24455, 97 / 00600, 98 / 23580, and 98 / 52905, Japanese Patent Publication Nos. Hei 1-272551, 6-16616, 7-110469, and 11-80081, and Japanese Patent Publication No. 2001-328973. If the composition of the present invention contains other liquid crystal compounds, the content of the other liquid crystal compounds in the composition is not particularly limited, but is preferably 95% by mass or less, more preferably 10 to 80% by mass, even more preferably 20 to 70% by mass, and particularly preferably 30 to 60% by mass, based on the total mass of solids in the composition. The composition of the present invention may use one other liquid crystal compound alone, or two or more other liquid crystal compounds. When two or more are used, it is preferable that their total content is within the above range.
[0058] <Polymerization initiator> The composition of the present invention may contain a polymerization initiator. The polymerization initiator is preferably a photopolymerization initiator that can initiate the polymerization reaction by ultraviolet irradiation. Examples of photopolymerization initiators include α-carbonyl compounds, acyloin ethers, α-hydrocarbon-substituted aromatic acyloin compounds, polynuclear quinone compounds, phenazine compounds, and oxadiazole compounds. Compounds having an oxime ester structure are also preferred. When the composition of the present invention contains a polymerization initiator, the content of the polymerization initiator in the composition is not particularly limited, but it is preferably 0.1 to 20% by mass, and more preferably 1 to 8% by mass, relative to the total mass of the compound represented by general formula (I) (or, if the composition contains other liquid crystal compounds, relative to the total mass of the compound represented by general formula (I) and the other liquid crystal compounds). The composition of the present invention may use one polymerization initiator alone or two or more initiators. When two or more initiators are used, it is preferable that their total content is within the above range.
[0059] <Surfactants> The compositions of the present invention may contain surfactants that contribute to the stable or rapid formation of liquid crystal phases (e.g., nematic phase, cholesteric phase). Examples of surfactants include fluorine-containing (meth)acrylate polymers, compounds represented by general formulas (X1) to (X3) described in WO2011 / 162291, compounds represented by general formula (I) described in paragraphs 0082 to 0090 of Japanese Patent Publication No. 2014-119605, and compounds described in paragraphs 0020 to 0031 of Japanese Patent Publication No. 2013-47204. Examples of fluorine-containing (meth)acrylate polymers that can be used as surfactants include the polymers described in paragraphs 0018 to 0043 of Japanese Patent Publication No. 2007-272185. When the composition of the present invention contains a surfactant, the surfactant content is not particularly limited, but is preferably 0.001 to 10% by mass, and more preferably 0.05 to 3% by mass, relative to the total mass of the compound represented by general formula (I) (or, if the composition contains other liquid crystal compounds, relative to the total mass of the compound represented by general formula (I) and the other liquid crystal compounds). The composition of the present invention may use one surfactant alone or two or more surfactants. When two or more surfactants are used, it is preferable that their total content is within the above range.
[0060] <Chiral agent> The composition of the present invention may contain a chiral agent. When the composition of the present invention contains a chiral agent, a cholesteric phase can be formed. The type of chiral agent is not particularly limited. The chiral agent may be liquid crystalline or non-liquid crystalline. Chiral agents generally contain an asymmetric carbon atom. However, axially asymmetric compounds or planar asymmetric compounds that do not contain an asymmetric carbon atom can also be used as chiral agents. Examples of axially asymmetric compounds or planar asymmetric compounds include binaphthyl, helicene, paracyclophane, and their derivatives. The chiral agent may have polymerizable groups. When the composition of the present invention contains a chiral agent, the content of the chiral agent in the composition is not particularly limited, but is preferably 0.1 to 15% by mass, and more preferably 1.0 to 10% by mass, relative to the total mass of the compound represented by general formula (I) (or, if the composition contains other liquid crystal compounds, relative to the total mass of the compound represented by general formula (I) and the other liquid crystal compounds). The composition of the present invention may use one chiral agent alone or two or more chiral agents. When two or more chiral agents are used, it is preferable that their total content is within the above range.
[0061] <Solvent> The composition of the present invention may contain a solvent. The solvent is preferably capable of dissolving each component of the composition of the present invention, and examples include chloroform and methyl ethyl ketone. When the composition of the present invention contains a solvent, the amount of solvent in the composition is preferably such that the solid content concentration of the composition is 0.5 to 20% by mass, and more preferably 1 to 10% by mass. The composition of the present invention may use one solvent alone or two or more solvents. When two or more solvents are used, it is preferable that their total content is within the above range.
[0062] In addition to the above, the compositions of the present invention may also contain other components such as antioxidants, ultraviolet absorbers, sensitizers, stabilizers, plasticizers, chain transfer agents, polymerization inhibitors, defoamers, leveling agents, thickeners, flame retardants, surfactants, dispersants, dyes, and pigments.
[0063] Furthermore, it is preferable to make the optical anisotropy layer substantially broadband with respect to the wavelength of incident light by imparting a torsion component to the composition of the present invention or by laminating different phase difference layers. For example, a method for realizing a broadband patterned λ / 2 plate by laminating two liquid crystal layers with different torsion directions in the optical anisotropy layer is shown in Japanese Patent Application Publication No. 2014-089476, and can be preferably used in the optical element of this disclosure.
[0064] The optical element of the present invention, described later, is preferably manufactured by dissolving a composition containing a compound represented by general formula (I) in a solvent and applying it to the surface. The composition of the present invention has a high Δn, and for the reason that the diffraction efficiency of the optical element produced is better, the precipitation concentration (concentration at which compound precipitation occurs) of the composition in a cyclopentanone solution at 25°C is preferably greater than 5% by mass, and more preferably 6% by mass or more.
[0065] [Cured products and optical anisotropies] The cured products and optical anisotropies obtained by curing the composition of the present invention will be described. The method for curing (polymerizing) the composition of the present invention is not particularly limited, and known methods can be employed. For example, one embodiment includes a step X in which a predetermined substrate and the composition are brought into contact to form a composition layer on the substrate, and a step Y in which the composition layer is subjected to a heat treatment to orient the compound represented by general formula (I), and then subjected to a curing treatment. According to this embodiment, the compound represented by general formula (I) can be immobilized in an oriented state, and an optical anisotropy (for example, an optically anisotropic layer) can be formed.
[0066] The procedures for processes X and Y are described in detail below.
[0067] Step X is a step of bringing a predetermined substrate and composition into contact to form a composition layer on the substrate. The type of substrate used is not particularly limited and includes known substrates (e.g., resin substrates, glass substrates, ceramic substrates, semiconductor substrates, and metal substrates). The method of bringing the substrate and the composition into contact is not particularly limited and includes, for example, coating the composition onto the substrate and immersing the substrate in the composition. Furthermore, after bringing the substrate and the composition into contact, a drying process may be performed as needed to remove the solvent from the composition layer on the substrate.
[0068] Step Y is a process in which the composition layer is subjected to heat treatment to orient the compound represented by general formula (I), and then subjected to a curing treatment. By subjecting the composition layer to heat treatment, the compound represented by general formula (I) becomes oriented, and a liquid crystal phase is formed. For example, if the composition layer contains a chiral agent, a cholesteric liquid crystal phase is formed. The heat treatment conditions are not particularly limited, and the optimal conditions are selected depending on the type of compound represented by general formula (I).
[0069] The curing method is not particularly limited and includes photocuring and heat curing. Among these, photocuring is preferred, and ultraviolet irradiation is more preferred. For ultraviolet irradiation, light sources such as ultraviolet lamps are used.
[0070] The cured product obtained by the above process corresponds to a layer in which the liquid crystal phase is fixed. In particular, when the composition contains a chiral agent, a layer in which the cholesteric liquid crystal phase is fixed is formed. Furthermore, these layers no longer need to exhibit liquid crystalline properties. More specifically, for example, the most typical and preferred embodiment of a state in which the cholesteric liquid crystal phase is "immobilized" is a state in which the orientation of the compound represented by general formula (I), which is the cholesteric liquid crystal phase, is maintained. More specifically, it is preferable that the layer is non-fluid and that the immobilized orientation can be stably maintained without causing changes in the orientation due to external fields or external forces, usually in a temperature range of 0 to 50°C, and under more severe conditions, in a temperature range of -30 to 70°C.
[0071] [Optical elements] The optical element of the present invention has an optically anisotropic layer formed using the composition of the present invention described above. The above optical anisotropy layer has an orientation pattern, The above orientation pattern is an optical element in which the orientation of the optical axis derived from the compound contained in the above composition changes continuously along at least one direction in the plane. The orientation pattern described above is preferably an orientation pattern in which the orientation of the optical axis derived from the compound represented by general formula (I) continuously rotates along at least one direction in the plane, or an orientation pattern in which the orientation of the optical axis derived from the compound represented by general formula (I) and other liquid crystal compounds continuously rotates along at least one direction in the plane. The optical element of the present invention has an orientation pattern in which the direction of the optical axis continuously rotates along at least one direction in the plane, thereby diffracting light incident on the optical element. The compound represented by general formula (I) is a compound with high refractive index anisotropy Δn, and therefore can achieve high diffraction efficiency. For details on optical elements, refer to sections
[0067] to
[0107] of International Publication No. 2020 / 022496.
[0072] The optical element of the present invention can be applied as an optical component in devices such as augmented reality (AR) image projection devices.
[0073] [Light guide element] The light guide element of the present invention includes the above-mentioned optical element and a light guide plate. [Examples]
[0074] The present invention will be described in more detail below with reference to examples and comparative examples. The materials, amounts used, proportions, processing content, and processing procedures shown in the following examples can be modified as appropriate without departing from the spirit of the present invention. Therefore, the scope of the present invention should not be interpreted as being limited by the following specific examples.
[0075] <Synthesis of Compound A-1> Compound A-1 was synthesized according to Synthesis Example 6 of International Publication No. 2019 / 182129. Compound A-1 is a polymerizable liquid crystal compound.
[0076] [ka]
[0077] <Synthesis Example 1: Synthesis of Compound B-1> Compound B-1 was synthesized according to the following scheme. Compounds 1 and 5 were synthesized according to International Publication No. 2019 / 182129. Ms represents a methanesulfonyl group (-SO2CH3), and TMS represents a trimethylsilyl group (-Si(CH3)3).
[0078] [ka]
[0079] (1) Synthesis of compound 2 Compound 1 (5.47 g, 35.5 mol) was dissolved in a mixed solution of tetrahydrofuran (THF) (30 mL) and pyridine (15 mL). The resulting solution was cooled in an ice bath, and acetic anhydride (Ac2O) (5.44 g, 53.3 mmol) and 4-dimethylaminopyridine (DMAP) (0.43 g, 3.6 mmol) were added. The mixture was stirred at room temperature (25 °C) for 3 hours. Ethyl acetate (50 mL) and water (50 mL) were added to the resulting solution, and then the mixture was extracted with ethyl acetate. The resulting organic layer was washed with brine and dried over magnesium sulfate. The organic layer was filtered, the solvent was removed under reduced pressure, and the resulting residue was purified by flash column chromatography to obtain compound 2 (6.18 g, 32.8 mmol). The yield was 92.4%.
[0080] (2) Synthesis of compound 4 Under a nitrogen atmosphere, compound 2 (1.54 g, 8.20 mmol) and compound 3 (1.60 g, 6.84 mmol) were dissolved in THF (12.8 mL), and triethylamine (6.92 g, 68.4 mmol) was added. After bubbling the resulting solution with nitrogen for 20 minutes, tetrakis(triphenylphosphine)palladium(0)(Pd(PPh3)4) (0.40 g, 0.34 mmol) and CuI (0.13 g, 0.68 mmol) were added, and the mixture was stirred at room temperature for 1 hour. Ethyl acetate (30 mL) was added to the resulting solution, and the mixture was filtered and washed sequentially with water, 1 mol / L hydrochloric acid, and saline solution. The resulting organic layer was dried over magnesium sulfate, and the organic layer was filtered. The solvent was removed by vacuum distillation, and the resulting residue was purified by flash column chromatography to obtain compound 4 (1.61 g, 5.47 mmol). The yield was 80.0%.
[0081] (3) Synthesis of compound 6 Compound 4 (0.70 g, 2.4 mmol) and Compound 5 (0.74 g, 2.4 mmol) were dissolved in dimethylacetamide (DMAc) (12 mL), potassium carbonate (0.39 g, 2.9 mmol) and potassium iodide (0.039 g, 0.24 mmol) were added, and the mixture was stirred at 85°C for 2 hours. The resulting solution was cooled to room temperature, ethyl acetate (70 mL) and water (30 mL) were added, and the mixture was then extracted with ethyl acetate. The resulting organic layer was sequentially washed with water and saline solution, and then dried over magnesium sulfate. After filtering the organic layer, the solvent was removed by vacuum distillation, and the resulting residue was purified by flash column chromatography to obtain Compound 6 (0.82 g, 1.6 mmol). The yield was 68%.
[0082] (4) Synthesis of compound 8 Under a nitrogen atmosphere, compound 6 (0.40 g, 0.78 mmol) was dissolved in THF (3.2 mL), and triethylamine (0.79 g, 7.8 mmol) was added. After bubbling the resulting solution with nitrogen for 20 minutes, trimethylsilylacetylene (0.092 g, 0.94 mmol), Pd(PPh3)4 (0.045 g, 0.039 mmol), and CuI (0.010 g, 0.078 mmol) were added, and the mixture was stirred at room temperature for 1 hour. Ethyl acetate (30 mL) and water (10 mL) were added to the resulting solution, and then the mixture was extracted with ethyl acetate. The resulting organic layer was washed with brine and dried over magnesium sulfate. After filtering the organic layer, the solvent was removed by vacuum distillation, and the resulting residue was purified by flash column chromatography to obtain compound 7. Compound 7 was dissolved in THF (2.8 mL). The resulting solution was cooled in an ice bath, and a THF solution of tetra-n-butylammonium fluoride (TBAF) (1 mol / L, 0.86 mL, 0.86 mmol) was added. The mixture was stirred at room temperature for 1 hour. The resulting solution was cooled in an ice bath, and ethyl acetate (30 mL) and water (10 mL) were added. The mixture was then extracted with ethyl acetate. The resulting organic layer was washed with brine and dried over magnesium sulfate. After filtering the organic layer, the solvent was removed by vacuum distillation, and the resulting residue was purified by flash column chromatography to obtain compound 8 (0.32 g, 0.78 mmol). The yield was 99.6%.
[0083] (5) Synthesis of compound B-1 Under a nitrogen atmosphere, compound 6 (0.37 g, 0.72 mmol) and compound 8 (0.32 g, 0.78 mmol) were dissolved in THF (3.0 mL), and triethylamine (0.73 g, 7.2 mmol) was added. After bubbling the resulting solution with nitrogen for 20 minutes, Pd(PPh3)4 (0.042 g, 0.036 mmol) and CuI (0.014 g, 0.072 mmol) were added, and the mixture was stirred at room temperature for 1 hour. Chloroform (30 mL) was added to the resulting reaction mixture, and the solvent was removed by vacuum distillation. The resulting residue was purified by flash column chromatography to obtain compound B-1 (0.22 g, 0.28 mmol). The yield was 39%. 1 H-NMR (CDCl3): δ=2.04(s, 6H), 2.29(s, 6H), 2.94(t, 4H), 4.28(t, 4H), 5.12(s, 4H) , 6.79-6.85(m, 2H), 7.19(d, 4H), 7.30-7.37(m, 4H), 7.39-7.48(m, 8H), 7.56(d, 4H)
[0084] <Synthesis Example 2: Synthesis of Compound B-2> Compound B-1 was synthesized according to the following scheme.
[0085] [ka]
[0086] (6) Synthesis of compound 9 Compound B-1 (0.22 g, 0.28 mmol) was dissolved in a mixed solution of THF (2 mL) and methanol (2 mL), and 1 mol / L aqueous NaOH solution (0.44 g, 0.42 mmol) was added. The mixture was stirred at room temperature for 4 hours. Water (10 mL) was added to the resulting solution, and it was extracted with chloroform. The resulting organic layer was dried over magnesium sulfate. The organic layer was filtered, the solvent was removed by vacuum distillation, and the resulting residue was purified by flash column chromatography to obtain compound 9 (0.19 g, 0.27 mmol). The yield was 95%.
[0087] (7) Synthesis of compound B-2 Compound 9 (0.19 g, 0.27 mmol) was dissolved in DMAc (3 mL). The resulting solution was cooled in an ice bath, and acryloyl chloride (0.086 g, 0.95 mmol) was added. The mixture was stirred at room temperature for 1 hour. Chloroform (10 mL) and water (10 mL) were added to the resulting solution, and then the mixture was extracted with chloroform. The resulting organic layer was washed with brine and dried over magnesium sulfate. After filtering the organic layer, the solvent was removed by vacuum distillation, and the resulting residue was purified by flash column chromatography to obtain compound B-2 (0.16 g, 0.20 mmol). The yield was 72.8%. 1H-NMR (CDCl3): δ=2.29(s, 6H), 2.99(t, 4H), 4.38(t, 4H), 5.12(s, 4H), 5.81(d, 2H), 6.10(d, 2H) , 6.38(d, 2H), 6.79-6.85(m, 2H), 7.20(d, 4H), 7.31-7.38(m, 4H), 7.40-7.49(m, 8H), 7.57(d, 4H)
[0088] <Synthesis Example 3: Synthesis of Compound B-3> Compound B-3 was synthesized according to the following scheme. Compound 10 was synthesized according to Chun, J.-H, et al. Org. Biomol. Chem. 11, 6300 (2013), and compound 13 was synthesized according to International Publication No. 2011 / 050276. TBS represents the tert-butyldimethylsilyl group.
[0089] [ka]
[0090] (8) Synthesis of compound 14 Compound 14 was synthesized in the same manner as in the synthesis of compound 4 (2) described above, except that compound 13 was used instead of compound 2.
[0091] (9) Synthesis of compound 15 Compound 15 was synthesized in the same manner as in the synthesis of compound 6 (3) above, except that compound 14 was used instead of compound 4.
[0092] (10) Synthesis of compound 16 Compound 16 was synthesized in the same manner as in (4), except that compound 15 was used instead of compound 6 in the synthesis of compound 7 in the synthesis of compound 8.
[0093] (11) Synthesis of compound 17 Compound 16 (1.58 g, 2.70 mmol) was dissolved in a mixed solution of THF (7.90 mL) and methanol (MeOH) (7.90 mL), potassium carbonate (1.12 g, 8.10 mmol) was added, and the mixture was stirred at room temperature for 1 hour. Water was added to the resulting solution, and then it was extracted with ethyl acetate. The resulting organic layer was washed with brine and dried over magnesium sulfate. After filtering the organic layer, the solvent was removed by vacuum distillation, and the resulting residue was purified by flash column chromatography to obtain compound 17 (1.15 g, 2.24 mmol). The yield was 83.0%.
[0094] (12) Synthesis of compound 18 Compound 18 was synthesized in the same manner as in the synthesis of compound B-1 (5), except that compound 15 was used instead of compound 6 and compound 17 was used instead of compound 8.
[0095] (13) Synthesis of compound 19 Compound 18 (1.1 g, 1.05 mmol) was dissolved in THF (8 mL). The resulting solution was cooled in an ice bath, and TBAF solution in THF (1 mol / L, 2.3 mL, 2.3 mmol) was added. The mixture was stirred at room temperature for 1 hour. The resulting solution was cooled in an ice bath, chloroform (50 mL) and water (20 mL) were added, and then extracted with chloroform. The resulting organic layer was washed with brine and dried over magnesium sulfate. After filtering the organic layer, the solvent was removed by vacuum distillation, and the resulting residue was purified by flash column chromatography to obtain compound 19 (0.70 g, 0.91 mmol). The yield was 82%.
[0096] (14) Synthesis of compound B-3 Compound B-3 was synthesized in the same manner as in the synthesis of compound B-2 (7), except that compound 19 was used instead of compound 9. 1H-NMR (CDCl3): δ=2.29(s, 6H), 3.22(t, 4H), 4.35(t, 4H), 5.12(s, 4H), 5.85(d, 2H), 6.10(d, 2H) , 6.40(d, 2H), 6.79-6.85(m, 2H), 7.20(d, 4H), 7.31-7.38(m, 4H), 7.40-7.49(m, 8H), 7.57(d, 4H)
[0097] <Synthesis Example 4: Synthesis of Compound B-4> (15) Synthesis of compound B-4 Compound B-4 was synthesized in the same manner as in the synthesis of compound B-3, except that 2-methoxycarbonyl-4-iodophenol was used instead of compound 3(4-iodo-2-methylphenol). 1H-NMR (CDCl3): δ=3.22(t, 4H), 3.93(s, 6H), 4.35(t, 4H), 5.22(s, 4H), 5.85(d, 2H), 6.09(d, 2H) , 6.39(d, 2H), 6.95-6.70(m, 2H), 7.20(d, 4H), 7.30-7.48(m, 8H), 7.30-7.48(m, 6H), 8.01(d, 2H)
[0098] [ka]
[0099] [Examples 1-5, Comparative Example 1] In Examples 1 to 5, compounds B-1 to B-4 were used, and in Comparative Example 1, compound A-2 was used, and the following evaluations were performed.
[0100] <Evaluation of liquid crystalline properties> The liquid crystalline properties of compounds B-1 to B-4 and compound A-2 were evaluated. Each compound was heated on a hot stage, observed under a polarized light microscope, and its phase transition temperature was measured to evaluate the presence or absence of liquid crystalline properties. Compounds exhibiting liquid crystalline properties were rated A, and those lacking liquid crystalline properties were rated B. The results are shown in the "Liquid Crystallinity" column under "Compound 2" in Table 1.
[0101] <Solubility Evaluation> The solubility of compounds B-1 to B-4 and compound A-2 in cyclopentanone was evaluated. Using cyclopentanone as the solvent, solutions were prepared by ultrasonic dissolution or heating of each compound. The precipitate formation of the compounds in the solutions was then observed at room temperature (25°C). Solutions were prepared at various concentrations for each compound. The concentration at which precipitation occurred was defined as the precipitation concentration. Solubility was rated A when the precipitation concentration was greater than 5% by mass, and B when the precipitation concentration was 5% by mass or less. The results are shown in the "Solubility" column for "Compound 2" in Table 1.
[0102] <Durability Evaluation> As shown below, the durability of optically anisotropic layers prepared using compositions containing compounds B-1 to B-4 and compound A-2 was evaluated.
[0103] (Fabrication of optically anisotropic layers for durability testing) A coating solution for durability testing with the following composition was prepared and spin-coated onto a rubbed, alignment-coated glass. The coating solution for durability testing was heated to a temperature at which it exhibited the nematic phase, and exposed to light at 300 mJ / cm² through a filter that cut out light with a wavelength of 350 nm or less. 2 An optically anisotropic layer for durability testing was fabricated by irradiating it with ultraviolet light. ------------------------------------------------------------------ Composition of coating solution for durability testing ------------------------------------------------------------------ • Compound 2 listed in Table 1 below: Parts by mass listed in Table 1 below • Compound 1 listed in Table 1 below: Parts by mass listed in Table 1 below • Polymerization initiator (BASF, Irgacure® 907) 2 parts by mass • Leveling agent T-1: 0.1 parts by mass Chloroform 1940 parts by mass ------------------------------------------------------------------
[0104] Compound A-1 was used as compound 1.
[0105] [ka]
[0106] A moist heat durability test was conducted on the fabricated optical anisotropic layer for durability testing by leaving it at 100°C and 95% humidity for 136 hours. Re was measured before and after the durability test. Durability was evaluated as A if the Re change rate was less than 10%, and as B if the Re change rate was 10% or more. A smaller Re change rate indicates better durability. The results are shown in the "Durability" column of "Optical Anisotropic Layer" in Table 1. Note that "Re" is an in-plane retardation. Re change rate (%) = [100 × {|(Re before durability test) - (Re after durability test)|} / (Re before durability test)] Re was measured at a wavelength of 550 nm using an Axometrix Axoscan, and film thickness was measured using a scanning electron microscope (SEM). The measurement temperature was room temperature (25°C).
[0107] (Preparation of Composition E (E-1 to E-6)) Composition E was prepared for evaluation of liquid crystalline properties, Iso point evaluation, and refractive index anisotropy Δn of the compositions described later, as well as for use in the fabrication of optical elements. Specifically, compositions E-1 to E-6 shown in Table 1 below were prepared as composition E.
[0108] ------------------------------------------------------------------ Composition E ――――――――――――――――――――――――――――――――― · Compound 2 described in Table 1 below Parts by mass described in Table 1 below · Compound 1 described in Table 1 below Parts by mass described in Table 1 below · Polymerization initiator (manufactured by BASF, Irgacure (registered trademark) 907) 3.00 parts by mass · The above leveling agent T-1 0.08 parts by mass · Methyl ethyl ketone 927.7 parts by mass ―――――――――――――――――――――――――――――――――
[0109] As Compound 1, the above Compound A-1 was used.
[0110] <Liquid crystal property evaluation of the composition> The liquid crystal properties of Compositions E-1 to E-6 containing Compounds B-1 to B-4 and Compound A-2 were evaluated. Each composition was heated on a hot stage, observed with a polarized light microscope, the phase transition temperature was measured, and the presence or absence of liquid crystal properties was evaluated. When there was liquid crystal property, it was evaluated as A, and when there was no liquid crystal property, it was evaluated as B. The results are shown in the column of "Liquid crystal property of the composition" in Table 1.
[0111] <Iso point evaluation> As shown below, the Iso points of the optically anisotropic layers prepared using Compositions E-1 to E-6 containing Compounds B-1 to B-4 and Compound A-2 were evaluated. Composition E was heated on a hot stage, observed with a polarized light microscope, the phase transition temperature was measured, and the temperature of the Iso point was measured. The following evaluation values were used according to the obtained temperature. The results are shown in the column of "Iso point" in Table 1. A: The Iso point is 175°C or higher. B: 155°C ≤ Iso point < 175°C. C: The Iso point < 155°C.
[0112] <Refractive index anisotropy Δn evaluation> As shown below, the refractive index anisotropy Δn of optically anisotropic layers prepared using compositions E-1 to E-6 containing compounds B-1 to B-4 and compound A-2 was evaluated. The refractive index anisotropy △n was evaluated as the refractive index difference △n550 at a wavelength of 550 nm. The refractive index difference △n550 is calculated by measuring the retardation value and film thickness of the liquid crystal immobilized layer (cured layer) obtained by coating a liquid crystal composition (composition E) onto a support with an alignment film prepared separately for retardation measurement, aligning the liquid crystal compound so that its director (optical axis) is horizontal to the surface of the support, and then fixing it by ultraviolet irradiation. Note that △n550 can be calculated by dividing the retardation value by the film thickness. Retardation values were measured at a wavelength of 550 nm using an Axometrix Axoscan, and film thickness was measured using a scanning electron microscope (SEM). The measurement temperature was 80°C. The refractive index difference △n550 was measured for composition E. The obtained △n550 was evaluated according to the following criteria. The results are shown in the "Refractive Index Difference △n550" column of "Optical Anisotropy Layer" in Table 1. A: 0.325 ≤ △n550. B: 0.300 ≤ △n550 < 0.325. C: 0.250 ≤ △n550 < 0.300. D: △n550 < 0.250.
[0113] [Fabrication of optical elements] <Preparation of support and saponification treatment of support> A commercially available triacetylcellulose film (manufactured by Fujifilm Corporation, Z-TAC) was prepared as the support material. The support was passed through a dielectric heating roll at a temperature of 60°C to raise the surface temperature of the support to 40°C. Subsequently, the following alkaline solution was applied to one side of the support using a bar coater at a rate of 14 mL / m². 2 The material was coated, the support was heated to 110°C, and then transported under a steam-type far-infrared heater (manufactured by Noritake Co., Ltd.) for 10 seconds. Subsequently, using the same bar coater, 3 mL / m of pure water was applied to the surface of the support coated with the alkaline solution. 2 After that, washing with a fountain coater and draining with an air knife were repeated three times, and then the support was conveyed through a drying zone at 70 °C for 10 seconds for drying, and the surface of the support was subjected to alkali saponification treatment.
[0114] ――――――――――――――――――――――――――――――――― Alkaline solution ――――――――――――――――――――――――――――――――― · 4.70 parts by mass of potassium hydroxide · 15.80 parts by mass of water · 63.70 parts by mass of isopropyl alcohol · Surfactant SF-1: C 14 H 29 O(CH2CH2O)2OH 1.0 part by mass · 14.8 parts by mass of propylene glycol ―――――――――――――――――――――――――――――――――
[0115] <Formation of the undercoat layer> The following coating solution for forming the undercoat layer was continuously applied to the alkali-saponified surface of the support using a #8 wire bar. The support on which the coating film was formed was dried with warm air at 60 °C for 60 seconds and then with warm air at 100 °C for 120 seconds to form the undercoat layer.
[0116] ――――――――――――――――――――――――――――――――― Coating solution for forming the undercoat layer ――――――――――――――――――――――――――――――――― · 2.40 parts by mass of the following modified polyvinyl alcohol · 1.60 parts by mass of isopropyl alcohol · 36.00 parts by mass of methanol · 60.00 parts by mass of water ―――――――――――――――――――――――――――――――――
[0117] Modified polyvinyl alcohol (the ratio of the repeating units in the following structural formula is by mass ratio.)
[0118]
Chemical formula
[0119] <Formation of alignment film> On a support with an undercoat layer formed thereon, the following coating solution for forming an alignment film was continuously applied with a #2 wire bar. The support on which the coating film of the coating solution for forming an alignment film was formed was dried on a hot plate at 60°C for 60 seconds to form an alignment film.
[0120] ――――――――――――――――――――――――――――――――― Coating solution for forming alignment film ――――――――――――――――――――――――――――――――― ·The following photo-alignment material D 1.00 part by mass ·Water 16.00 parts by mass ·Butoxyethanol 42.00 parts by mass ·Propylene glycol monomethyl ether 42.00 parts by mass ―――――――――――――――――――――――――――――――――
[0121] Photo-alignment material D
[0122]
Chemical formula
[0123] <Exposure of alignment film> The alignment film was exposed using the exposure apparatus of FIG. 5 of International Publication No. 2020 / 22496 to form an alignment film P-1 having an alignment pattern. In the exposure apparatus, one that emits laser light with a wavelength of 325 nm as the laser was used. The exposure amount by interference light was 2000 mJ / cm 2The period of the orientation pattern formed by the interference of the two laser beams (the length of a 180° rotation of the optical axis derived from the liquid crystal compound) was controlled by changing the intersection angle of the two beams (intersection angle β).
[0124] <Formation of optically anisotropic layer> The aforementioned composition E was used as the composition for forming the optically anisotropic layer.
[0125] The optically anisotropic layer was formed by multilayer coating of composition E on the alignment film P-1. Multilayer coating refers to a process in which, first, a first layer of composition E is applied onto an alignment film P-1, followed by heating, cooling, and UV curing to create a liquid crystal immobilization layer. Subsequent layers are then applied on top of this liquid crystal immobilization layer, and the process of heating, cooling, and UV curing is repeated. By forming it by multilayer coating, even when the film thickness of the liquid crystal layer increases, the orientation direction of the alignment film is reflected from the lower surface (the surface on the alignment film P-1 side) of the liquid crystal layer to the upper surface. First, the first layer is prepared by applying composition E onto the alignment film P-1, heating the coating to 120°C on a hot plate, then cooling it to 60°C, and finally exposing it to 365nm wavelength ultraviolet light at 2000mJ / cm² using a high-pressure mercury lamp under a nitrogen atmosphere. 2 The orientation of the liquid crystal compound was fixed by irradiating the coating film with this irradiation dose. The thickness of the first liquid crystal layer at this time was 0.3 μm. For the second and subsequent layers, the liquid crystal layer was layered on top of this liquid crystal layer, heated and cooled under the same conditions as above, and then cured with ultraviolet light to create a liquid crystal immobilization layer (cured layer). In this way, an optical anisotropy layer was formed by repeatedly applying multiple layers of paint so that the refractive index anisotropy △n × film thickness was 325 nm, and an optical element was fabricated.
[0126] [Table 1]
[0127] Compound A-2 used as Compound 2 in Comparative Example 1 is a mixture containing the following a-2-1 / a-2-2 / a-2-3 in a mass ratio of 84 / 14 / 2.
[0128] [Chemical formula]
[0129] <Measurement of diffraction efficiency> An evaluation optical system was prepared by arranging an evaluation light source, a polarizer, a quarter-wave plate, the optical element of Example 5, and a screen in this order. A laser pointer with a wavelength of 650 nm was used as the evaluation light source, and SAQWP05M-700 manufactured by Thorlabs was used as the quarter-wave plate. The slow axis of the quarter-wave plate was arranged at a 45° relationship with respect to the absorption axis of the polarizer. Also, the optical element of Example 5 was arranged with the support surface facing the light source side. When the light transmitted through the polarizer and the quarter-wave plate from the evaluation light source was incident perpendicularly to the film surface on the optical element of Example 5, a part of the light transmitted through the optical element was diffracted, and a plurality of bright spots could be confirmed on the screen. The intensities of each diffracted light and the 0th-order light corresponding to the bright spots on the screen were measured with a power meter, and the diffraction efficiency was calculated by the following formula. Diffraction efficiency = (intensity of the first-order light) / (intensity of the 0th-order light + intensity of diffracted lights other than the first-order light) The obtained diffraction efficiency was as high as 99% or more.
[0130] Regarding the optically anisotropic layer of this example, it was confirmed with a polarizing microscope that it has a periodic alignment surface as shown in FIG. 3 of International Publication No. 2020 / 22496. In the alignment pattern of this optically anisotropic layer, one period Λ in which the optical axes derived from the liquid crystal compounds (Compound B-4 and Compound A-1) rotate by 180° was 1.0 μm. The period Λ was obtained by measuring the period of the bright and dark pattern observed under the cross Nicol condition using a polarizing microscope.
[0131] From the results shown in Table 1 above, it was found that liquid crystal compositions containing the compound represented by general formula (I) have a high Iso point, and the optically anisotropic layer obtained by curing the liquid crystal composition has a high refractive index anisotropy △n (refractive index difference △n550) (Examples 1-5). In particular, a comparison between Example 4 and Example 5 revealed that increasing the amount of the compound represented by general formula (I) can further raise the Iso point of the liquid crystal composition, and thus further increase the refractive index anisotropy △n (refractive index difference △n550) of the optically anisotropic layer obtained by curing the liquid crystal composition. Furthermore, as mentioned above, when an optical element was fabricated using a composition containing the compound represented by general formula (I), a high diffraction efficiency could be obtained. On the other hand, the liquid crystal composition that does not contain the compound represented by general formula (I) had an Iso point of less than 155°C, and the refractive index anisotropy Δn (refractive index difference Δn550) of the optically anisotropic layer obtained by curing the liquid crystal composition was found to be lower than that of Examples 1 to 5 (Comparative Example 1).
[0132] [Example 6] As Example 6, a light guide element was fabricated using a composition containing liquid crystal compound B-4, polymerizable liquid crystal compound A-1, and a chiral agent, as shown below.
[0133] Composition E-7 was prepared as a composition for forming a cholesteric liquid crystal layer as shown in Figure 6 of International Publication No. 2020 / 22496. In the structural formula of the chiral agent Ch-2 below, Bu represents an n-butyl group. ------------------------------------------------------------------ Composition E-7 ------------------------------------------------------------------ ·Liquid crystal compound B-4 50.00 parts by mass ·Polymerizable liquid crystal compound A-1 50.00 parts by mass • Polymerization initiator PI-1: 3.00 parts by mass • 4.40 parts by mass of the following chiral agent Ch-1 • 1.00 parts by mass of the following chiral agent Ch-2 Methyl ethyl ketone 201.31 parts by mass ------------------------------------------------------------------
[0134] [ka]
[0135] [ka]
[0136] [ka]
[0137] Alignment film P-1 was fabricated in the same manner as described above in the steps of <Preparation of support and saponification of support>, <Formation of undercoat layer>, <Formation of alignment film>, and <Exposure of alignment film> in the [Fabrication of optical elements] section. A cholesteric liquid crystal layer was formed by multi-layer coating of the above composition E-7 onto the alignment film P-1 until the film thickness reached 3.5 μm. Multi-layer coating refers to the process of first coating the first layer of composition E-7 onto the alignment film, heating and UV curing to create a liquid crystal immobilization layer, and then applying subsequent layers on top of this liquid crystal immobilization layer, repeating the heating and UV curing process. By forming the layer using multi-layer coating, the orientation direction of the alignment film is reflected from the bottom to the top surface of the liquid crystal layer, even when the total thickness of the liquid crystal layer is increased. As the first layer of the optically anisotropic layer, composition E-7 was applied to the alignment film P-1 using a spin coater at 1000 rpm (rotations per minute). The coating was heated on a hot plate at 80°C for 3 minutes, and then further heated at 50°C under a nitrogen atmosphere using a high-pressure mercury lamp with ultraviolet light at a wavelength of 365 nm at a rate of 300 mJ / cm². 2 By irradiating the coating film with this irradiation dose, the orientation of the liquid crystal compound was fixed. For the second and subsequent layers, the liquid crystal layer was overlaid, and heated and UV-cured under the same conditions as above to form a cholesteric liquid crystal layer. The formed cholesteric liquid crystal layer was bonded to a light guide plate (glass with a refractive index of 1.80 and a thickness of 0.50 mm), and 532 nm light was incident on it from the light guide plate side in the normal direction. As a result, it was confirmed that the incident light was reflected by the cholesteric liquid crystal layer in a direction different from the specular reflection direction, exceeding the critical angle, and guided through the light guide plate. [Industrial applicability]
[0138] According to the present invention, it is possible to provide compounds having a high refractive index anisotropy △n, compositions containing the above compound, cured products, optical anisotropes, optical elements, and light guide elements.
[0139] Although the present invention has been described in detail and with reference to specific embodiments, it will be apparent to those skilled in the art that various changes and modifications can be made without departing from the spirit and scope of the invention. This application is based on Japanese Patent Application No. 2021-104477 filed on June 23, 2021, the contents of which are incorporated herein by reference.
Claims
1. A compound represented by the following general formula (I). 【Chemistry 1】 In general formula (I), P 1 and P 2 Each of these independently represents an alkyl group, an alkoxy group, an alkylcarbonyl group, an alkylcarbonyloxy group, or a group represented by any of the following formulas (P-1) to (P-19). In the following formulas, * represents the bond position, Me represents a methyl group, and Et represents an ethyl group. 【Chemistry 2】 S 1 and S 2 Each of these is independently a single bond, or an alkylene group, an alkenylene group, -O-, -S-, -CO-, -SO-, -SO 2 This represents a divalent linking group consisting of -, -COO-, -OCO-, -CO-S-, -S-CO-, -O-CO-O-, or a combination of several of these. A 1 ~A 4 each independently represents an aromatic hydrocarbon ring group which may have a substituent, and the substituent is at least one selected from the group consisting of an alkyl group having 1 to 10 carbon atoms, an alkoxy group having 1 to 10 carbon atoms, an alkylamino group having 1 to 10 carbon atoms, an alkylthio group having 1 to 10 carbon atoms, an alkanoyl group having 1 to 10 carbon atoms, an alkanoyloxy group having 1 to 10 carbon atoms, an alkanoylamino group having 1 to 10 carbon atoms, an alkanoylthio group having 1 to 10 carbon atoms, an alkyloxycarbonyl group having 2 to 10 carbon atoms, an alkylaminocarbonyl group having 2 to 10 carbon atoms, an alkylthiocarbonyl group having 2 to 10 carbon atoms, a hydroxy group, an amino group, a mercapto group, a carboxy group, a sulfo group, an amide group, a cyano group, a nitro group and a halogen atom. A when there are a plurality of them 3 and A 4 may be the same or different from each other. Z represents -OCHR-, -CHRO-, -COO-, or -OCO-. R represents a hydrogen atom or an alkyl group having 1 to 10 carbon atoms. Multiple instances of Z may be identical or different. Similarly, multiple instances of R may be identical or different. m1 represents an integer between 2 and 7.
2. The compound according to claim 1, wherein m1 in the general formula (I) represents 2 or 3.
3. The compound according to claim 1, wherein m1 in the general formula (I) represents 2.
4. In the above general formula (I), P 1 and P 2 The compound according to claim 1 or 2, wherein at least one of the groups represents a group represented by any of the formulas (P-1) to (P-19).
5. S in the above general formula (I) 1 This represents a group represented by the following general formula (II), S 2 The compound according to claim 1 or 2, wherein represents a group represented by the following general formula (III). 【Transformation 3】 In general formulas (II) and (III), W 1 and W 2 Each of these independently represents an alkylene group having 1 to 15 carbon atoms, and one or more methylene groups contained in the alkylene group may be independently replaced with -O-, -S-, or -CO-. * indicates S 1 or S 2 A is directly connected to 1 Or A 4 This represents the bonding position with P, where ** indicates P. 1 or P 2 This indicates the connection point with [the other element].
6. The compound according to claim 1 or 2, wherein Z in the general formula (I) represents -OCHR- or -CHRO-, where R represents a hydrogen atom or an alkyl group having 1 to 10 carbon atoms. If there are multiple Rs, they may be the same or different.
7. In the above general formula (I), P 1 and P 2 The compound according to claim 1 or 2, wherein each independently represents a group represented by any of the formulas (P-1) to (P-19).
8. The compound according to claim 1, wherein the compound represented by the general formula (I) is the compound represented by the following general formula (I-2). 【Chemistry 4】 In general formula (I-2), R 1 and R 2 Each of these independently represents either a hydrogen atom or a methyl group. W 3 and W 4 Each of these independently represents an alkylene group having 1 to 6 carbon atoms. Q 1 ~Q 24 Each of these independently represents a hydrogen atom, a fluorine atom, a chlorine atom, a nitro group, a cyano group, an alkyl group having 1 to 20 carbon atoms, an alkyloxycarbonyl group having 2 to 20 carbon atoms, or an alkylaminocarbonyl group having 2 to 20 carbon atoms.
9. The compound according to claim 1 or 2, having liquid crystalline properties.
10. A composition comprising the compound described in claim 1 or 2.
11. Furthermore, the composition according to claim 10, comprising a polymerization initiator.
12. Furthermore, the composition according to claim 10, comprising a chiral agent.
13. The composition according to claim 10, having liquid crystalline properties.
14. The composition according to claim 10, for forming an optically anisotropic layer.
15. A cured product obtained by curing the composition according to claim 10.
16. An optical anisotropy obtained by curing the composition according to claim 10.
17. Having an optically anisotropic layer formed using the composition described in claim 10, The optical anisotropy layer has an orientation pattern, The orientation pattern is an optical element in which the orientation of the optical axis derived from the compound contained in the composition is continuously rotated along at least one direction in the plane.
18. A light guide element comprising the optical element and light guide plate described in claim 17.
Citation Information
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