Resin film for optical films and method for manufacturing a resin film for optical films
By adding a diethanolamine acetal compound with a specific structure to the optical film and then performing a heating shearing process, the problem of inaccurate birefringence control in the optical film was solved, and the negative birefringence characteristics and optical performance were optimized.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2025-04-24
- Publication Date
- 2026-03-31
AI Technical Summary
Existing technologies cannot achieve negative birefringence by adjusting the birefringence of the optical film, and there are problems such as unclear dispersion of diethanolamine acetal compounds in the optical film and birefringence shift.
Diethanolamine acetals with specific structures are used as optical modifiers. They are mixed with amorphous resins with positive birefringence and subjected to heating and shear force treatment to form crystals or aggregates in the optical film, thereby adjusting the birefringence to the negative direction.
Effective control of the birefringence of optical films in the negative direction was achieved, resulting in optical films with positive, negative, or no birefringence, thus improving the control effect of optical film optical performance.
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Figure 2026055769000001_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to a resin film for an optical film and a method for producing the resin film for an optical film.
Background Art
[0002] Acrylic resin films having characteristics in optical properties are known. For example, Patent Document 1 discloses a resin film for an optical film comprising a methacrylic acid ester polymer and a diacetal compound having a specific structure. The resin film disclosed in Patent Document 1 is disclosed to have characteristics that no dispersion failure occurs and birefringence is small. The resin film produced in Patent Document 1 is disclosed to have a change in the orientation birefringence in the positive direction by containing a diacetal compound, and to have a smaller birefringence than a resin film not containing a diacetal compound.
[0003] Patent Document 2 discloses a base material for a surface protection film for protecting the surface of an image display device. The base material for a surface protection film disclosed in Patent Document 2 is characterized by having retardation characteristics within a specific range. As a specific composition of this base material for a film, it is disclosed to contain at least one resin selected from polycarbonate, polyester, cycloolefin resin, acrylic resin, and cellulose resin. Further, it is disclosed that the base material for a film may contain a resin having an alicyclic structure or an aromatic ring structure showing negative intrinsic birefringence.
Prior Art Documents
Patent Documents
[0004]
Patent Document 1
Patent Document 2
Summary of the Invention
Problems to be Solved by the Invention
[0005] The object of the present invention is to provide a resin film for optical films that contains a resin having positive birefringence and a diacetal compound, and whose birefringence is adjusted in the negative direction, and a method for producing the same. [Means for solving the problem]
[0006] The resin film for optical films according to this disclosure is a film containing an amorphous resin having positive birefringence and a diacetal compound represented by formula (1). In the film, the diacetal compound exists as a crystalline or associated state exhibiting negative birefringence. [ka] (In the formula, R 1 , R 2 , R 3 , R 4 , R 5 and R 6 These are identical or different, and each represents a hydrogen atom, a C1-C4 alkyl group, a C1-C4 alkoxy group, a C1-C4 alkoxycarbonyl group, a C1-C4 halogenated alkyl group, or a halogen atom, respectively. 7 (This represents a hydrogen atom, a C1-C4 alkyl group, a C1-C4 alkenyl group, a C1-C4 alkoxy group, a C1-C4 alkoxycarbonyl group, or a C1-C4 halogenated alkyl group.) [Effects of the Invention]
[0007] The resin film according to this disclosure comprises a resin having positive birefringence and a diacetal compound, and its birefringence is adjusted in the negative direction. [Brief explanation of the drawing]
[0008] [Figure 1] Figure 1 is a TEM image of the resin film of Example 4. [Modes for carrying out the invention]
[0009] [Overview of Embodiment] First, embodiments of the resin film for an optical film and a method for producing the same according to the present disclosure will be listed and described. In this specification, unless otherwise specified, "A~B" representing a numerical range means "A or more and B or less".
[0010] The resin film for an optical film according to the present disclosure is a film containing an amorphous resin having positive birefringence and a diacetal compound represented by the formula (1). In the film, the diacetal compound exists as crystals or an associated state showing negative birefringence. [Chemical Formula] (In the formula, R 1 , R 2 , R 3 , R 4 , R 5 and R 6 are the same or different and each represents a hydrogen atom, an alkyl group having 1 to 4 carbon atoms, an alkoxy group having 1 to 4 carbon atoms, an alkoxycarbonyl group having 1 to 4 carbon atoms, a halogenated alkyl group having 1 to 4 carbon atoms or a halogen atom. R 7 represents a hydrogen atom, an alkyl group having 1 to 4 carbon atoms, an alkenyl group having 1 to 4 carbon atoms, an alkoxy group having 1 to 4 carbon atoms, an alkoxycarbonyl group having 1 to 4 carbon atoms or a halogenated alkyl group having 1 to 4 carbon atoms.)
[0011] Conventionally, many proposals have been made for resin films with adjusted optical properties. As described above, in Patent Document 2, a resin film having a chemical structure showing negative birefringence incorporated into the side chain of the resin constituting the film has been proposed. On the other hand, in Patent Document ①, it is described that a methacrylic acid ester polymer and a diacetal compound are kneaded, and the diacetal compound is dissolved in the molten methacrylic acid ester polymer to obtain a mixture in which the diacetal compound is uniformly dispersed in the polymer.
[0012] It should be noted that there is an error in the original text where "特許文献1" is followed by "①", which is likely a typo. I translated it as "Patent Document ①" as it is in the original text. If this is incorrect, please provide the correct information.Examples 1 and 2 of Patent Document 1 describe obtaining a film in which the diacetal compound did not dissolve in polymethyl methacrylate and was dispersed in a powdered state. Example 3 describes obtaining a film prepared by a different method than that used in Examples 1 and 2, which exhibited the same orientational birefringence and photoelastic coefficient as Example 1. However, in all cases, the specific dispersion state of the diacetal compound remains unknown. Furthermore, the presence of the diacetal compound causes a positive shift in birefringence.
[0013] In contrast, in the resin film for optical films according to this disclosure, the birefringence is adjusted to the negative direction by a diacetal compound. The film according to this disclosure has excellent birefringence control effect, and a resin film for optical films having birefringence adjusted to the negative direction, or a resin film for optical films without birefringence, can be obtained.
[0014] In the aforementioned resin film for optical films, the diacetal compound may be contained in an amount of 1% to 20% relative to the amorphous resin. When the amount is within this range, the diacetal compound can be reliably precipitated in the film, and a film with birefringence adjusted in the negative direction can be obtained.
[0015] In the aforementioned resin film for optical films, the amorphous resin may be a resin that includes at least one selected from the group consisting of cycloolefin resin, polycarbonate resin, and polyester resin.
[0016] A method for producing a resin film for optical films according to this disclosure includes the steps of: heating and mixing an amorphous resin having positive birefringence and a diacetal compound represented by formula (1) at a temperature above the softening point of the amorphous resin to dissolve the diacetal compound in the amorphous resin in order to obtain a resin composition; A step of molding the resin composition while applying shear force at a temperature above the glass transition temperature of the amorphous resin, The process involves applying a shearing force while cooling, continuing from the molding process. Includes. [ka] (In the formula, R 1 , R 2 , R 3 , R 4 , R 5 and R 6 These are identical or different, and each represents a hydrogen atom, a C1-C4 alkyl group, a C1-C4 alkoxy group, a C1-C4 alkoxycarbonyl group, a C1-C4 halogenated alkyl group, or a halogen atom, respectively. 7 (This represents a hydrogen atom, a C1-C4 alkyl group, a C1-C4 alkenyl group, a C1-C4 alkoxy group, a C1-C4 alkoxycarbonyl group, or a C1-C4 halogenated alkyl group.)
[0017] In the above manufacturing method, the diacetal compound exists in the optical film resin film as a crystalline or aggregated state, and the diacetal compound adjusts the birefringence in the negative direction. According to this manufacturing method, a resin film in which the birefringence characteristics are controlled in the negative direction can be obtained.
[0018] The resin film related to this disclosure will be described in more detail below.
[0019] (resin) The resin film according to this disclosure contains an amorphous resin having positive birefringence as the resin that constitutes the film. The amorphous resin is not particularly limited as long as it has positive birefringence and transparency appropriate to the application. Examples of amorphous resins having positive birefringence include polycarbonate resin, polyester resin, cycloolefin resin, polyimide resin, cellulose ester resin, etc. Among these, from the viewpoint of productivity and cost, it is preferable that the resin having positive birefringence includes at least one selected from the group consisting of cycloolefin resin, polycarbonate resin, and polyester resin.
[0020] The resin film according to this disclosure is based on an amorphous resin having positive birefringence, but the birefringence is adjusted in the negative direction, so that the birefringence of the resin film may be positive, negative, or show no birefringence (0). In the resin film according to this disclosure, a diacetal compound exists in the film in a crystalline or associated state, and the diacetal compound adjusts the birefringence in the negative direction.
[0021] Furthermore, the birefringence of a resin film is determined by the refractive index (n) in two orthogonal axial directions within the film plane. x , n y It is defined as the difference (Δn) between ) and is expressed by the following formula. Δn = n x -n y In the above formula, n x is the refractive index of the slow axis, n y n represents the refractive index of the phase-advancing axis. When the resin film has positive birefringence, n x >n y As a result, the refractive index of the slow axis in the flow or deformation direction is higher than the refractive index of the fast axis perpendicular to it. When the resin film has negative birefringence, n x <n y Therefore, the refractive index of the leading axis is higher than that of the lagging axis. The birefringence of a resin film can be measured, for example, using a polarizing microscope in accordance with known methods. Specific methods for measuring birefringence are described in detail in the examples. In this specification, "birefringence is adjusted in the negative direction" means that the birefringence value (Δn0) of a resin film containing the acetal compound specified in formula (1) is adjusted relative to the birefringence value (Δn0) of a resin film without the acetal compound specified in formula (1). ad This means that it is small.
[0022] When the resin that forms the base of the resin film is a polycarbonate resin, any known resin used as an optical resin can be used without particular limitation. Examples of polycarbonate resins include bisphenol-based polycarbonate resins and isosorbide-based polycarbonate resins. For example, a bisphenol-based polycarbonate resin may be an aromatic polycarbonate resin containing constituent units (carbonate constituent units) composed of bisphenol A or bisphenol C.
[0023] Bisphenol A type polycarbonate resin is a resin having carbonate structural units derived from bisphenol A and its derivatives. In bisphenol A type polycarbonate resin, the content of structural units derived from bisphenol A is preferably 70 mol% or more, more preferably 80 mol% or more, and even more preferably 90 mol% or more, of all structural units excluding both ends. The upper limit is not particularly limited, and 100 mol% may be structural units derived from formula bisphenol A. Examples of bisphenol A type polycarbonate include resins in which substantially all structural units excluding both ends are derived from bisphenol A. Bisphenol A type polycarbonate resin may have structural units other than carbonate structural units derived from bisphenol A and its derivatives, and these other structural units may be structural units derived from aromatic dihydroxy compounds.
[0024] Isosorbide-based polycarbonate resins include those containing constituent units derived from isosorbide and constituent units derived from aliphatic dihydroxy compounds and / or alicyclic dihydroxy compounds. Examples of aliphatic dihydroxy compounds include 1,4-butanediol, 1,5-pentanediol, neopentyl glycol, 1,6-hexanediol, 1,7-heptanediol, 1,8-octanediol, 2-ethyl-1,6-hexanediol, 2,2,4-trimethyl-1,6-hexanediol, 1,9-nonanediol, 1,10-decanediol, hydrogenated dilinoleyl glycol, hydrogenated dioleyl glycol, and the like. Examples of alicyclic dihydroxy compounds include compounds containing a 5-membered ring structure or a 6-membered ring structure, such as cyclohexanedimethanol, tricyclodecanedimethanol, pentacyclopentadecanedimethanol, decalindimethanol, tricyclotetradecanedimethanol, norbornanedimethanol, adamantanedimethanol, and tricyclodecanediol, pentacyclopentadecanediol, decalindiol, tricyclotetradecanediol, norbornanediol, adamantanediol, and others.
[0025] Polycarbonate resin can be any optical resin available on the market, such as the "Yupilon" series from Mitsubishi Gas Chemical Company, Inc., the "Panlight" series from Teijin Limited, and the "Durabio" series from Mitsubishi Chemical Corporation.
[0026] When the resin that forms the base of the resin film is a polyester resin, any known resin that is used as an optical resin and has positive birefringence can be used without particular limitation. The polyester resin is obtained by polymerizing a dicarboxylic acid and a diol, and it is preferable that 70% or more of the dicarboxylic acid constituent units (constituent units derived from dicarboxylic acid) are derived from aromatic dicarboxylic acids, and 70% or more of the diol constituent units (constituent units derived from diols) are derived from aliphatic diols.
[0027] Examples of the aforementioned aromatic dicarboxylic acids include terephthalic acid, isophthalic acid, naphthalenedicarboxylic acids such as 2,6-naphthalenedicarboxylic acid, 1,5-naphthalenedicarboxylic acid, and 2,7-naphthalenedicarboxylic acid, 4,4'-biphenyldicarboxylic acid, 3,4'-biphenyldicarboxylic acid, and their ester-forming derivatives.
[0028] Examples of the aliphatic diol include ethylene glycol, 1,3-propylenediol, 1,4-butanediol, 1,4-cyclohexanedimethanol, 1,6-hexanediol, and their ester-forming derivatives.
[0029] Preferred polyester resins include, for example, polyethylene terephthalate resin, polyethylene terephthalate-isophthalate copolymer resin, polyethylene-1,4-cyclohexanedimethylene-terephthalate copolymer resin, polyethylene-2,6-naphthalenedicarboxylate resin, polyethylene-2,6-naphthalenedicarboxylate-terephthalate copolymer resin, polyethylene terephthalate-4,4'-biphenyldicarboxylate resin, poly-1,3-propylene-terephthalate resin, polybutylene terephthalate resin, and polybutylene-2,6-naphthalenedicarboxylate resin.
[0030] Polyester resins that are available on the market can be optical resins, such as Toyobo Co., Ltd.'s "Byron" series, Eastman Chemical Corporation's "Tritan" series, and SK Chemical Corporation's "Ecozen" series.
[0031] When the resin that forms the base of the resin film is a cycloolefin resin, any known resin used as an optical resin can be used without particular limitation. The cycloolefin resin may be a resin consisting of a cycloolefin polymer obtained by polymerizing copolymerizable cyclic olefin monomers, a resin consisting of a cycloolefin copolymer obtained by polymerizing a cyclic olefin compound with other monomers, or a resin consisting of a mixture thereof. Examples of copolymerizable monomers include cyclobutene, cyclopentene, cycloheptene, cyclooctene, and dicyclopentadiene. The cycloolefin resin may contain polymers of one or more of these monomers.
[0032] Cycloolefin resins can be optical resins available on the market, such as the Zeon Corporation's "Zeonex" series, JSR Corporation's "Arton" series, and Mitsui Chemicals, Inc.'s "Appel" series.
[0033] When the resin that forms the base of the resin film is a polyimide resin, the polyimide resin can be any known resin used as an optical resin without particular limitations. The polyimide resin can be an optical resin available on the market, such as the "Surprim" series from Mitsubishi Gas Chemical Company, Inc., or the "Aurum" series from Mitsui Chemicals, Inc.
[0034] When the resin that forms the base of the resin film is a cellulose ester resin, the cellulose ester resin can be any known resin used as an optical resin without particular limitations. Examples of cellulose ester resins include cellulose acetate propionate resin and cellulose acetate butyrate resin. The cellulose ester resin can be an optical resin available on the market, such as the "CAB" series or "CAP" series from Nagase & Co., Ltd.
[0035] (Optical correcting agent) The resin film for optical films according to this disclosure is characterized by containing a diacetal compound represented by formula (1). This diacetal compound functions as an optical modifier to adjust the optical properties of the film. According to this disclosure, by containing a diacetal compound of a specific structure, a resin film is obtained in which crystalline or aggregated states exhibiting negative birefringence exist in the fibrous structure, and the birefringence is adjusted in the negative direction.
[0036] [ka] (In the formula, R 1 , R 2 , R 3 , R 4 , R 5 and R 6 These are identical or different, and each represents a hydrogen atom, a C1-C4 alkyl group, a C1-C4 alkoxy group, a C1-C4 alkoxycarbonyl group, a C1-C4 halogenated alkyl group, or a halogen atom, respectively. 7 (This represents a hydrogen atom, a C1-C4 alkyl group, a C1-C4 alkenyl group, a C1-C4 alkoxy group, a C1-C4 alkoxycarbonyl group, or a C1-C4 halogenated alkyl group.)
[0037] In a resin film for optical films, from the viewpoint of obtaining a function to precipitate and adjust the birefringence of the resin film, R 1 , R 2 , R 3 , R 4 , R 5 and R 6 Each of these may be the same or different from the others, and is preferably a hydrogen atom or an alkyl group having 1 to 4 carbon atoms. 1 , R 2 and R 3 One of them may be a hydrogen atom, and the other two may be alkyl groups having 1 to 4 carbon atoms. Also, R 1 , R 2 and R 3 Two of them may be hydrogen atoms, and one may be an alkyl group having 1 to 4 carbon atoms. 4 , R 5 and R6 One of them may be a hydrogen atom, and the other two may be alkyl groups having 1 to 4 carbon atoms. Also, R 4 , R 5 and R 6 Two of them may be hydrogen atoms, and one may be an alkyl group having 1 to 4 carbon atoms. 1 , R 2 , R 3 , R 4 , R 5 and R 6 All of these can be hydrogen atoms.
[0038] R 7 It is preferably a hydrogen atom, a C1-C4 alkyl group, or a C1-C4 alkenyl group, and more preferably a hydrogen atom or a C1-C4 alkyl group.
[0039] As shown in equation (1), R 7 Specifically, as a compound in which the atom is a hydrogen atom, 1,3:2,4-bis-O-benzylidene-D-sorbitol, 1,3:2,4-bis-O-(o-methylbenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(m-methylbenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(p-methylbenzylidene)-D-sorbitol, 1,3:2,4-Bis-O-(o-ethylbenzylidene)-D-sorbitol, 1,3:2,4-Bis-O-(m-ethylbenzylidene)-D-sorbitol, 1,3:2,4-Bis-O-(p-ethylbenzylidene)-D-sorbitol, 1,3:2,4-Bis-O-(o-isopropylbenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(m-isopropylbenzylidene)-D-sorbitol, 1,3:2,4-Bis-O-(p-Isopropylbenzylidene)-D-Sorbitol, 1,3:2,4-bis-O-(on-propylbenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(mn-propylbenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(pn-propylbenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(on-butylbenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(mn-butylbenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(pn-butylbenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(o-tert-butylbenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(m-tert-butylbenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(p-tert-butylbenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(2',3'-dimethylbenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(2',4'-dimethylbenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(2',5'-dimethylbenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(3',4'-dimethylbenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(3',5'-dimethylbenzylidene)-D-sorbitol, 1,3:2,4-Bis-O-(2',3'-Diethylbenzylidene)-D-Sorbitol, 1,3:2,4-Bis-O-(2',4'-diethylbenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(2',5'-diethylbenzylidene)-D-sorbitol, 1,3:2,4-Bis-O-(3',4'-Diethylbenzylidene)-D-Sorbitol, 1,3:2,4-bis-O-(3',5'-diethylbenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(2',4',5'-trimethylbenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(3',4',5'-trimethylbenzylidene)-D-sorbitol, 1,3:2,4-Bis-O-(2',4',5'-triethylbenzylidene)-D-sorbitol, 1,3:2,4-Bis-O-(3',4',5'-triethylbenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(o-methoxybenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(m-methoxybenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(p-methoxybenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(o-ethoxybenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(m-ethoxybenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(p-ethoxybenzylidene)-D-sorbitol, 1,3:2,4-Bis-O-(o-isopropoxybenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(m-isopropoxybenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(p-isopropoxybenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(on-propoxybenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(mn-propoxybenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(pn-propoxybenzylidene)-D-sorbitol, 1,3:2,4-Bis-O-(o-methoxycarbonylbenzylidene)-D-sorbitol, 1,3:2,4-Bis-O-(m-methoxycarbonylbenzylidene)-D-sorbitol, 1,3:2,4-Bis-O-(p-methoxycarbonylbenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(o-ethoxycarbonylbenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(m-ethoxycarbonylbenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(p-ethoxycarbonylbenzylidene)-D-sorbitol, 1,3:2,4-Bis-O-(o-isopropoxycarbonylbenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(m-isopropoxycarbonylbenzylidene)-D-sorbitol, 1,3:2,4-Bis-O-(p-Isopropoxycarbonylbenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(on-propoxycarbonylbenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(mn-propoxycarbonylbenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(pn-propoxycarbonylbenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(o-fluorobenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(m-fluorobenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(p-fluorobenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(o-chlorobenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(m-chlorobenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(p-chlorobenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(o-bromovenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(m-bromovenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(p-bromovenzylidene)-D-sorbitol, 1,3-O-benzylidene-2,4-O-(p-methylbenzylidene)-D-sorbitol, 1,3-O-(p-methylbenzylidene)-2,4-O-benzylidene-D-sorbitol, 1,3-O-benzylidene-2,4-O-(p-ethylbenzylidene)-D-sorbitol, 1,3-O-(p-ethylbenzylidene)-2,4-O-benzylidene-D-sorbitol, 1,3-O-benzylidene-2,4-O-(p-chlorobenzylidene)-D-sorbitol, 1,3-O-(p-chlorobenzylidene)-2,4-O-benzylidene-D-sorbitol, 1,3-O-benzylidene-2,4-O-(2',4'-dimethylbenzylidene)-D-sorbitol, 1,3-O-(2',4'-dimethylbenzylidene)-2,4-O-benzylidene-D-sorbitol, 1,3-O-benzylidene-2,4-O-(3',4'-dimethylbenzylidene)-D-sorbitol, 1,3-O-(3',4'-dimethylbenzylidene)-2,4-O-benzylidene-D-sorbitol, 1,3-O-(p-methylbenzylidene)-2,4-O-(p-ethylbenzylidene)-D-sorbitol, 1,3-O-(p-ethylbenzylidene)-2,4-O-(p-methylbenzylidene)-D-sorbitol, 1,3-(p-methylbenzylidene)-2,4-O-(3',4'-dimethylbenzylidene)-D-sorbitol, 1,3-O-(3',4'-dimethylbenzylidene)-2,4-O-(p-methylbenzylidene)-D-sorbitol, 1,3-(p-ethylbenzylidene)-2,4-O-(3',4'-dimethylbenzylidene)-D-sorbitol, 1,3-O-(3',4'-dimethylbenzylidene)-2,4-O-(p-ethylbenzylidene)-D-sorbitol, 1,3-O-(p-methylbenzylidene)-2,4-O-(p-chlorobenzylidene)-D-sorbitol, Examples include 1,3-O-(p-chlorobenzylidene)-2,4-O-(p-methylbenzylidene)-D-sorbitol.
[0040] As shown in equation (1), R 7 Specifically, as a compound in which the group is a methyl group, 1,3:2,4-bis-O-benzylidene-1-methylsorbitol, 1,3:2,4-bis-O-(p-methylbenzylidene)-1-methylsorbitol, 1,3:2,4-Bis-O-(p-ethylbenzylidene)-1-methylsorbitol, 1,3:2,4-bis-O-(pn-propylbenzylidene)-1-methylsorbitol, 1,3:2,4-bis-O-(2',3'-dimethylbenzylidene)-1-methylsorbitol, 1,3:2,4-bis-O-(2',4'-dimethylbenzylidene)-1-methylsorbitol, 1,3:2,4-bis-O-(2',5'-dimethylbenzylidene)-1-methylsorbitol, 1,3:2,4-bis-O-(3',4'-dimethylbenzylidene)-1-methylsorbitol, 1,3:2,4-bis-O-(3',5'-dimethylbenzylidene)-1-methylsorbitol, 1,3:2,4-bis-O-(3'-methyl-4'-methoxybenzylidene)-1-methylsorbitol, 1,3:2,4-bis-O-(3',4'-dichlorobenzylidene)-1-methylsorbitol, 1,3:2,4-Bis-O-(p-methoxycarbonylbenzylidene)-1-methylsorbitol, 1,3:2,4-bis-O-(3'-methyl-4'-fluorobenzylidene)-1-methylsorbitol, Examples include 1,3:2,4-bis-O-(3'-bromo-4'-ethylbenzylidene)-1-methylsorbitol.
[0041] As shown in equation (1), R 7 Specifically, as a compound in which the group is an ethyl group, 1,3:2,4-Bis-O-benzylidene-1-ethylsorbitol, 1,3:2,4-bis-O-(p-methylbenzylidene)-1-ethylsorbitol, 1,3:2,4-Bis-O-(p-ethylbenzylidene)-1-ethylsorbitol, 1,3:2,4-Bis-O-(pn-propylbenzylidene)-1-ethylsorbitol, 1,3:2,4-bis-O-(2',3'-dimethylbenzylidene)-1-ethylsorbitol, 1,3:2,4-Bis-O-(2',4'-dimethylbenzylidene)-1-ethylsorbitol, 1,3:2,4-bis-O-(2',5'-dimethylbenzylidene)-1-ethylsorbitol, 1,3:2,4-Bis-O-(3',4'-dimethylbenzylidene)-1-ethylsorbitol, 1,3:2,4-bis-O-(3',5'-dimethylbenzylidene)-1-ethylsorbitol, 1,3:2,4-Bis-O-(3'-methyl-4'-methoxybenzylidene)-1-ethylsorbitol, 1,3:2,4-Bis-O-(3',4'-Dichlorobenzylidene)-1-ethylsorbitol, 1,3:2,4-Bis-O-(p-methoxycarbonylbenzylidene)-1-ethylsorbitol, 1,3:2,4-bis-O-(3'-methyl-4'-fluorobenzylidene)-1-ethylsorbitol, Examples include 1,3:2,4-bis-O-(3'-bromo-4'-ethylbenzylidene)-1-ethylsorbitol.
[0042] As shown in equation (1), R 7 Specifically, as a compound in which the group is an n-propyl group, 1,3:2,4-Bis-O-benzylidene-1-n-propylsorbitol, 1,3:2,4-bis-O-(p-methylbenzylidene)-1-n-propylsorbitol, 1,3:2,4-Bis-O-(p-ethylbenzylidene)-1-n-propylsorbitol, 1,3:2,4-bis-O-(pn-propylbenzylidene)-1-n-propylsorbitol, 1,3:2,4-bis-O-(2',3'-dimethylbenzylidene)-1-n-propylsorbitol, 1,3:2,4-bis-O-(2',4'-dimethylbenzylidene)-1-n-propylsorbitol, 1,3:2,4-bis-O-(2',5'-dimethylbenzylidene)-1-n-propylsorbitol, 1,3:2,4-bis-O-(3',4'-dimethylbenzylidene)-1-n-propylsorbitol, 1,3:2,4-bis-O-(3',5'-dimethylbenzylidene)-1-n-propylsorbitol, 1,3:2,4-bis-O-(3'-methyl-4'-methoxybenzylidene)-1-n-propylsorbitol, 1,3:2,4-bis-O-(3',4'-dichlorobenzylidene)-1-n-propylsorbitol, 1,3:2,4-Bis-O-(p-methoxycarbonylbenzylidene)-1-n-propylsorbitol, 1,3:2,4-bis-O-(3'-methyl-4'-fluorobenzylidene)-1-n-propylsorbitol, Examples include 1,3:2,4-bis-O-(3'-bromo-4'-ethylbenzylidene)-1-n-propylsorbitol.
[0043] As shown in equation (1), R 7 Specifically, compounds in which the group is an allyl group include: 1,3:2,4-bis-O-benzylidene-1-allylsorbitol, 1,3:2,4-bis-O-(p-methylbenzylidene)-1-allylsorbitol, 1,3:2,4-Bis-O-(p-ethylbenzylidene)-1-allylsorbitol, 1,3:2,4-Bis-O-(pn-propylbenzylidene)-1-allylsorbitol, 1,3:2,4-bis-O-(2',3'-dimethylbenzylidene)-1-allylsorbitol, 1,3:2,4-bis-O-(2',4'-dimethylbenzylidene)-1-allylsorbitol, 1,3:2,4-bis-O-(2',5'-dimethylbenzylidene)-1-allylsorbitol, 1,3:2,4-bis-O-(3',4'-dimethylbenzylidene)-1-allylsorbitol, 1,3:2,4-bis-O-(3',5'-dimethylbenzylidene)-1-allylsorbitol, 1,3:2,4-bis-O-(3'-methyl-4'-methoxybenzylidene)-1-allylsorbitol, 1,3:2,4-Bis-O-(3',4'-Dichlorobenzylidene)-1-Allylsorbitol, 1,3:2,4-Bis-O-(p-methoxycarbonylbenzylidene)-1-allylsorbitol, 1,3:2,4-bis-O-(3'-methyl-4'-fluorobenzylidene)-1-allylsorbitol, Examples include 1,3:2,4-bis-O-(3'-bromo-4'-ethylbenzylidene)-1-allylsorbitol.
[0044] As shown in equation (1), R 7 Further examples of compounds in which the atom is a hydrogen atom include, specifically, Bis-1,3:2,4-(4'-ethyl-2'-methylbenzylidene)sorbitol, Bis-1,3:2,4-(4'-n-n-propyl-2'-methylbenzylidene)sorbitol, Bis-1,3:2,4-(4'-isopropyl-2'-methylbenzylidene)sorbitol, Bis-1,3:2,4-(4'-n-butyl-2'-methylbenzylidene)sorbitol, Bis-1,3:2,4-(4'-isobutyl-2'-methylbenzylidene)sorbitol, Bis-1,3:2,4-(4'-tert-butyl-2'-methylbenzylidene)sorbitol, Bis-1,3:2,4-(4'-Secbutyl-2'-methylbenzylidene)sorbitol, Bis-1,3:2,4-(4'-n-pentyl-2'-methylbenzylidene)sorbitol, Bis-1,3:2,4-(4'-isopentyl-2'-methylbenzylidene)sorbitol, Bis-1,3:2,4-(4'-neopentyl-2'-methylbenzylidene)sorbitol, Bis-1,3:2,4-(4'-tertiarypentyl-2'-methylbenzylidene)sorbitol, Examples include bis-1,3:2,4-(4'-secpentyl-2'-methylbenzylidene)sorbitol.
[0045] R 7 R may be any of the methyl group, ethyl group, propyl group, and butyl group. For example, R 7 If is a methyl group, then the compounds represented by formula (1) can similarly be listed as 1-methylsorbitol having the benzylidene structure listed above. Instead of 1-methylsorbitol, 1-ethylsorbitol (R 7 (When it is an ethyl group), 1-n-propylsorbitol (R 7 (When it is an n-propyl group), 1-allyl sorbitol (R 7 Compounds (where the parent molecule is a 2-propenyl group) can be similarly listed. The resin film according to this disclosure may contain one or more of these compounds.
[0046] More preferably, the compound represented by formula (1) is 1,3:2,4-bis-O-benzylidene-D-sorbitol, 1,3:2,4-bis-O-(p-methylbenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(p-ethylbenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(3',4'-dimethylbenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(pn-propylbenzylidene)-1-methylsorbitol, 1,3:2,4-bis-O-(pn-propylbenzylidene)-1-ethylsorbitol, 1,3:2,4-bis-O-(pn-propylbenzylidene)-1-ethylsorbitol, 1,3:2,4-bis-O-(pn-propylbenzylidene)-1-n-propyl sorbitol, 1,3:2,4-bis-O-(pn-propylbenzylidene)-1-n-propyl sorbitol and 1,3:2,4-bis-O-(pn-propylbenzylidene)-1-allyl sorbitol are more preferred, and 1,3:2,4-bis-O-benzylidene-D-sorbitol, 1,3:2,4-bis-O-(p-methylbenzylidene)-D-sorbitol, 1,3:2,4-bis-O-(p-ethylbenzylidene)-D-sorbitol and 1,3:2,4-bis-O-(pn-propylbenzylidene)-1-n-propyl sorbitol are even more preferred.
[0047] Diacetal compounds are commercially available, for example, as GELOL D, GELOL MD, GELOL DXR, Rika-I Just-100, Rika-I Just-200, Rika-I Just-300, and Milliken; Millad NX8000J, etc., but the present invention is not limited to these examples.
[0048] (Resin film) In the resin film according to this disclosure, the mass ratio of the optical modifier, which is a diacetal compound, to the amorphous resin is preferably 1% by mass or more, more preferably 5% by mass or more, from the viewpoint of allowing the optical modifier to exist in a crystalline or aggregated state and improving the dispersibility of the crystalline or aggregated diacetal compound, and preferably 20% by mass or less, more preferably 10% by mass or less, from the viewpoint of maintaining dispersibility and forming a film. At least a portion of the optical modifier contained in the resin film according to this disclosure exists in the film in a crystalline or aggregated state. The diacetal compound is typically in the form of fibrous crystals or aggregated states, and may include crystals with a high aspect ratio, such as needle-shaped crystals, columnar crystals, or plate-shaped crystals. The diacetal compound adjusts the birefringence in the negative direction.
[0049] The precipitation of diacetal compounds in a resin film can be confirmed, for example, by the following method. Specifically, as a pretreatment device, the resin film is cryogenically cut (-125°C) using a cryomicrotome (with a diamond knife) in a Leica EM UC7 / FC7 cryosection system (manufactured by Leica Microsystems) to produce ultrathin sections approximately 100 nm thick. The obtained sections are exposed to a RuO4 vapor atmosphere (room temperature) for 20 minutes to perform staining. The presence of diacetal compounds can be confirmed in images of these stained sections taken with a transmission electron microscope (TEM). For example, a field emission transmission electron microscope (FE-TEM) JEM-F200 (manufactured by JEOL Ltd.) can be used as the TEM, and imaging can be performed under conditions of an acceleration voltage of 200 kV. Note that the equipment and conditions used are examples and are not limited to these. The resin film according to this disclosure may have multiple elongated fibrous crystalline or aggregated states of the diacetal compound in a TEM image, which are positioned and intersect in unspecified directions to form a network (mesh) structure. Alternatively, the crystalline or aggregated states of the diacetal compound may be oriented in the direction of flow. The presence of crystalline or aggregated states in the film can also be confirmed by measuring the viscoelasticity of the film using a rheometer.
[0050] The birefringence of the resin film relating to this disclosure is not particularly limited, but for example, if the base resin is a cycloolefin copolymer or cycloolefin polymer, -5.0 × 10 -4 ~5.6×10 -4 It may be within this range. If the base resin is polycarbonate resin, then -2.0 × 10 -4 ~1.4×10 -4 It may be within that range.
[0051] The transparency of the resin film according to this disclosure is measured by a haze meter. Preferably, the haze value of the resin film according to this disclosure is 0.5 or less for a resin film with a thickness of 80 μm, and more preferably, the haze value of the resin film according to this disclosure is 0.2 or less for a resin film with a thickness of 40 μm. When the haze value is within this range, the resin film can be evaluated as transparent, and the resin film according to this disclosure can be applied to applications where transparency is required.
[0052] The thickness of the resin film according to this disclosure can be appropriately selected depending on the application and is not particularly limited, but as an example, it may be about 5 to 500 μm, and preferably about 10 to 200 μm. The resin film according to this disclosure has high transparency even in relatively thick films of about 100 μm (0.1 mm).
[0053] The resin film according to this disclosure may have controlled wavelength dispersibility. For example, the resin film according to this disclosure may have stronger wavelength dispersibility than a similar resin film that does not contain optical modifiers. In this case, the resin film according to this disclosure can be suitably used in applications where strong wavelength dispersibility is required (e.g., decorative films, reflective sheets, phase difference films, etc.).
[0054] Furthermore, the resin film according to this disclosure may have wavelength dispersion equivalent to that of a similar resin film without optical modifiers. That is, it is preferable that the wavelength dispersion of the base resin does not change even when optical modifiers are added. This is useful when it is desired to use a film in which the birefringence is adjusted in the negative direction while maintaining the wavelength dispersion of the base resin film. Such a film can be used, for example, as a display film (more specifically, for example, a display film for VR / AR, a film for foldable displays, a film for rollable displays, etc.).
[0055] Furthermore, the resin film according to this disclosure may have the opposite wavelength dispersion compared to a similar resin film that does not contain an optical modifier. That is, a resin film without an optical modifier may have wavelength dispersion (a property in which birefringence decreases from the short wavelength side to the high wavelength side), while a film to which an optical modifier is added may have inverse wavelength dispersion (a property in which birefringence increases from the short wavelength side to the high wavelength side). In this case, the resin film according to this disclosure can be suitably used, for example, in applications such as phase difference films.
[0056] The resin film relating to this disclosure may, insofar as it exhibits the effects relating to this disclosure, contain additives such as stabilizers, antioxidants, ultraviolet absorbers, antistatic agents, foaming agents, lubricants, fillers, colorants, and plasticizers, as needed, in addition to amorphous resins and optical modifiers (diacetal compounds).
[0057] The resin film of the present invention has adjusted birefringence and transparency, making it suitable for use as an optical film, such as a polarizing plate protective film or phase difference film used in liquid crystal displays. This film can be applied to advanced displays such as organic EL and 3D displays, as well as pickup lenses.
[0058] (Method of manufacturing resin film) The resin film according to this disclosure is obtained by mixing an amorphous resin and an optical modifier, heating the mixture to a first temperature which is above the softening temperature of the amorphous resin and below the decomposition temperature of the amorphous resin, and molding the resulting mixture in a specific manner. The manufacturing method includes the steps of: obtaining a resin composition by heating and mixing an amorphous resin having positive birefringence and a diacetal compound represented by formula (1) at a temperature above the softening point of the amorphous resin to dissolve the diacetal compound in the amorphous resin; molding the resin composition into a film; molding the resin composition while applying a shear force at a temperature above the glass transition point of the amorphous resin; and cooling while applying a shear force.
[0059] In the process of obtaining the resin composition, the amorphous resin and the optical modifier may be mixed and then heated to a temperature above the softening temperature of the amorphous resin and below the decomposition temperature of the amorphous resin. Alternatively, the amorphous resin may be heated to the aforementioned temperature range and then mixed with the optical modifier. The latter method is preferred from the viewpoint of obtaining a uniform film while maintaining the presence of crystalline or aggregated states in the resin film.
[0060] A mixture of amorphous resin and optical modifier is heated to a temperature above the softening temperature of the amorphous resin in order to dissolve the optical modifier in the molten amorphous resin. The softened amorphous resin then acts as a solvent for the optical modifier. That is, in the molten state, the optical modifier is considered to be dissolved in the amorphous resin. It is preferable to uniformly disperse the optical modifier in this molten mixture in the amorphous resin by known means such as stirring and kneading. Alternatively, the mixing of the amorphous resin and optical modifier may be carried out by solvent mixing (solution casting method).
[0061] The manufacturing method according to this disclosure includes a step of molding the resin composition while applying a shear force at a temperature above the glass transition temperature of the amorphous resin. Before or after this step, the resin composition may be temporarily molded into a film form by pressing, extrusion molding, injection molding, etc.
[0062] The resin composition can be molded into a film by, for example, extruding the obtained resin composition and then cooling it. The molding can be carried out by a general method for manufacturing composite materials made of thermoplastic resins, and is not particularly limited. Examples of manufacturing equipment include single-screw extruders, twin-screw extruders, Banbury mixers, and roll kneaders.
[0063] Next, the obtained resin composition (which may be molded) is heated to a temperature above the glass transition temperature of the amorphous resin, and molded while applying a shear force to the resin composition in a molten state. The shear force is not limited as long as the effects of this disclosure are obtained, but for example, when the thickness of the resin composition before molding is 500 μm, the shear force can be applied at around 150 to 230°C. The shear rate is also not limited as long as the effects of this disclosure are obtained, but for example, 0.01 to 1000 s -1 It may be to a certain extent. In the manufacturing method according to this disclosure, the resin composition is molded by applying a shear force while heated to a temperature above its glass transition temperature, so that the diacetal compound is oriented in a form having negative birefringence and precipitates from the substrate resin.
[0064] Next, cooling is performed while applying a shear force. Cooling under shear force causes the diacetal compound to orient itself into a fibrous structure, and the diacetal compound precipitates in the film. [Examples]
[0065] Next, the present invention will be described in more detail based on examples, but the present invention is not limited to such examples.
[0066] [Example 1] A cycloolefin resin (COP, Arton D4000, manufactured by JSR, glass transition temperature approximately 159°C) and 1,3:2,4-bis-O-(3,4-dimethylbenzylidene)-D-sorbitol (BDMDS, manufactured by Shin Nippon Rika Co., Ltd.) were mixed in a weight ratio of 97:3 using an internal mixer (Laboplastmill, model 10S100, manufactured by Toyo Seiki Seisakusho Co., Ltd.). First, the raw materials were added at 220°C and 5 rpm for 5 minutes, and then mixed at the same temperature at 30 rpm for 5 minutes to obtain the resin composition. Vacuum drying was performed at 60°C for 3 hours before mixing. The obtained resin composition was pressed at 280°C and 4 MPa for 2 minutes using a manual hydraulic heating press (model IMS-481E, manufactured by Imoto Seisakusho Co., Ltd.). It was then cooled at 25°C for 2 minutes to obtain a film with a thickness of approximately 500 μm. The obtained film was evaluated as follows. The glass transition temperature was determined by calculating E'' (loss modulus) using dynamic viscoelasticity measurement, and the peak of this value was defined as the glass transition temperature. The glass transition temperature of the resin composition in Example 1 was 150°C.
[0067] <Measurement and calculation of birefringence using a polarizing microscope> The obtained film was placed on a hot stage with a shearing function attached to a polarizing microscope and heated to 240°C. Then, 1 second -1 The temperature was lowered to 190°C at a rate of 10°C / min while applying shear, and the light transmittance (DLI) was measured using a cross polarizer system during this time. A color filter was installed in the photodetector. The gap between the parallel disks was set to 500 μm. Using the DLI obtained from the measurement, the birefringence Δn was calculated according to the following formula.
number
[0068] <Measurement of shear stress> Using a rheometer (manufactured by Anton Paar, model 302e), the shear stress was measured. Using parallel plates, the gap between the plates was set to 1 mm. In the steady flow measurement, the shear stress was measured at 190 °C and a shear rate of 1 s -1 as measured at
[0069] <Calculation of stress-optical coefficient> Based on the birefringence Δn calculated by a polarizing microscope and the shear stress (σ) calculated by a rheometer, the stress-optical coefficient (C R ) was calculated using the following formula. C R [×10 -9 Pa -1 =Δn[×10 4 / σ[Pa]
[0070] <Confirmation of precipitation> Since the viscoelastic properties are different between a film in which the diacetal compound exists in a crystalline or associated state and a film in which the diacetal compound exists without becoming a crystalline or associated state, precipitation was confirmed using a rheometer (manufactured by Anton Paar, model 302e). Using parallel plates, the gap between the plates was set to 1 mm, and the measurement was performed at 200 °C in the frequency-dependence measurement. The obtained results were plotted with the angular frequency (logω) on the horizontal axis and the storage modulus (logG’) on the vertical axis, and the slope was calculated from the value of logG’ when the range of logω was from 0 to -1 (logG’ / logω). When the ratio of logG’ / logω of the film containing the diacetal compound to logG’ / logω of the film consisting only of the base resin (shown as "logG’ / logω ratio" in the table) was 0.8 or less, the precipitation was marked as 〇. <00005报31> [Example 2] A resin composition was obtained in the same manner as in Example 1, except that the weight ratio of cycloolefin resin to 1,3:2,4-bis-O-(3,4-dimethylbenzylidene)-D-sorbitol was 96:4. A film was then prepared in the same manner as in Example 1. The glass transition temperature of the resin composition of Example 2 was 148°C. The obtained film was evaluated in the same manner as in Example 1.
[0072] [Example 3] A resin composition was obtained in the same manner as in Example 1, except that the weight ratio of cycloolefin resin to 1,3:2,4-bis-O-(3,4-dimethylbenzylidene)-D-sorbitol was 95:5. A film was then prepared in the same manner as in Example 1. The glass transition temperature of the resin composition of Example 3 was 145°C. The obtained film was evaluated in the same manner as in Example 1.
[0073] [Example 4] A resin composition was obtained in the same manner as in Example 1, except that the weight ratio of cycloolefin resin to 1,3:2,4-bis-O-(3,4-dimethylbenzylidene)-D-sorbitol was 90:10. A film was then prepared in the same manner as in Example 1. The glass transition temperature of the resin composition of Example 4 was 145°C. The obtained film was evaluated in the same manner as in Example 1. Furthermore, frozen sections were prepared from the film after birefringence measurement using a polarizing microscope, and TEM observation was performed. The TEM images are shown in [Figure 1]. As shown in [Figure 1], it was confirmed that diacetal compounds precipitated in the film and were oriented in the direction of flow.
[0074] [Example 5] A resin composition was obtained in the same manner as in Example 1, except that 1,3:2,4-bis-O-(4-propylbenzylidene)-D-sorbitol (BPMN, Millad NX8000J, manufactured by Milliken) was used as the diacetal compound instead of 1,3:2,4-bis-O-(3,4-dimethylbenzylidene)-D-sorbitol. The glass transition temperature of the resin composition of Example 5 was 150°C. The obtained resin composition was pressed at 280°C and 4 MPa for 2 minutes using a manual hydraulic heating press (model IMS-481E, manufactured by Imoto Seisakusho Co., Ltd.). It was then cooled at 25°C for 2 minutes to obtain a film with a thickness of approximately 500 μm. The obtained film was evaluated in the same manner as in Example 1.
[0075] [Example 6] A resin composition was obtained in the same manner as in Example 5, except that the weight ratio of cycloolefin resin to 1,3:2,4-bis-O-(4-propylbenzylidene)-D-sorbitol was 90:10. The glass transition temperature of the resin composition of Example 6 was 133°C. A film was prepared by the same method and evaluated in the same manner as in Example 1.
[0076] [Comparative Example 1] A resin composition was prepared in the same manner as in Example 1, except that a diacetal compound was not mixed, and a film with a thickness of approximately 500 μm was obtained using the same method. The glass transition temperature of the resin composition of Comparative Example 1 was 159°C. It was evaluated in the same manner as in Example 1.
[0077] The configurations and evaluation results of Examples 1 to 6 and Comparative Example 1 are summarized in [Table 1]. The criteria for 〇 (good) and ◎ (very good) were as follows. ○ (Good): Δn value is 0 or less and 5.6 or less, and stress optical coefficient is 0 or less and 3.7 or less. ◎ (Excellent): The Δn value is negative, and the stress optical coefficient is negative.
[0078] [Table 1]
[0079] As shown in Table 1, in Examples 1-6, crystalline or aggregated states of the diacetal compound were present in the film, resulting in resin films with a more negative birefringence than Comparative Example 1, which did not contain the diacetal compound. When comparing Δn of Examples 1-4 with Comparative Example 1, increasing the amount of added diacetal compound resulted in a greater negative change in birefringence. Increasing the amount of added compound also resulted in a negative change in the stress optical coefficient. In particular, in Example 4, both birefringence and applied optical coefficient became negative. Similar results were confirmed when comparing Examples 5 and 6 with Comparative Example 1. It was confirmed that modified cycloolefin polymers containing diacetal compounds increased Δn to the negative side and lowered the stress optical coefficient depending on the concentration of the additive.
[0080] <Measurement and calculation of wavelength dispersion> Test specimens were obtained by cutting each of the films from Example 1 and Comparative Example 1 into 10 × 20 mm strips. The temperature was set to obtain a logE'(Pa) value of 8.5(Pa) by dynamic viscoelasticity measurement. The test specimens were placed in a tensile machine (model DVE-3 S1000; manufactured by UBM Corporation), with an initial distance of 10 mm between clamps, and measured for 0.1 seconds. -1 The film was stretched at a strain rate of 1.5 times. The film, stretched to 1.5 times its original size, was immediately quenched by blowing cold air to obtain a test specimen for wavelength dispersion measurement. Wavelength dispersion was measured using a phase difference measuring device (model KOBRA-WPR, manufactured by Oji Instruments Co., Ltd.). The phase difference (R449.9nm, R498.0nm, R548.0nm, R588.8nm, R628.8nm, R751.0nm) was measured at each measurement wavelength (449.9nm, 498.0nm, 548.0nm, R588.8nm, R628.8nm, R751.0nm). The birefringence (Δn) at each wavelength was calculated by dividing the phase difference measured at each wavelength by the thickness of the stretched film. The birefringence (Δn) at each wavelength and the birefringence (Δn) at wavelength 588.8nm were calculated. 588.8nm ) ratio (Δn / Δn 588.8nm ) was calculated.
[0081] The measurement results for wavelength dispersivity in Example 1 and Comparative Example 1 are summarized in [Table 2].
[0082] [Table 2]
[0083] As shown in Table 2, the film of Example 1 exhibited wavelength dispersibility equivalent to that of Comparative Example 1, which was composed solely of cycloolefin resin. In other words, the presence or absence of optical modifiers did not change the wavelength dispersibility.
[0084] [Example 7] Bisphenol A polycarbonate resin (Yupilon H-3000R, manufactured by Mitsubishi Chemical Corporation, glass transition temperature approximately 153°C) and 1,3:2,4-bis-O-(3,4-dimethylbenzylidene)-D-sorbitol (BDMDS, manufactured by Shin Nippon Rika Co., Ltd.) were mixed in a weight ratio of 99:1, and the mixture was kneaded using an internal mixer (Laboplastmill Model 10S100, manufactured by Toyo Seiki Seisakusho Co., Ltd.). First, the raw materials were added at 200°C and 5 rpm for 5 minutes, and then kneaded at the same temperature at 30 rpm for 5 minutes to obtain the resin composition. Before kneading, the mixture was vacuum dried at 60°C for 3 hours. The obtained resin composition was pressed at 220°C and 10 MPa for 2 minutes using a manual hydraulic heating press (model IMS-481E, manufactured by Imoto Seisakusho Co., Ltd.). It was then cooled at 25°C for 2 minutes to obtain a film with a thickness of approximately 500 μm. The obtained film was evaluated as follows. The glass transition temperature of the obtained resin composition was measured in the same manner as in Example 1. The glass transition temperature of the resin composition in Example 7 was 144°C.
[0085] The obtained film was evaluated in the same manner as in Example 1. However, in the measurement of birefringence using a polarizing microscope, the cooling (cooling) start temperature was 220°C and the shear rate was 0.1 s. -1 Furthermore, the rheometer temperature was set to 180°C during the measurement of shear stress. Furthermore, in confirming precipitation, the slope was calculated from the value of logG' when logω was in the range of -1 to -2 (logG' / logω). Precipitation was considered successful if the ratio of logG' / logω of the film containing the diacetal compound to the logG' / logω of the film consisting only of the substrate resin (indicated as "logG' / logω ratio" in the table) was 0.8 or less.
[0086] [Example 8] A resin composition was obtained in the same manner as in Example 7, except that the weight ratio of polycarbonate resin to BDMDS was 95:5. A film was then prepared in the same manner as in Example 7. The glass transition temperature of the resin composition of Example 8 was 143°C. The obtained film was evaluated in the same manner as in Example 7.
[0087] [Example 9] A resin composition was obtained in the same manner as in Example 7, except that 1,3:2,4-bis-O-(4-methylbenzylidene)-D-sorbitol (BMDS, manufactured by Shin-Nippon Rika Co., Ltd.) was used as the diacetal compound instead of BDMDS. A film was then prepared in the same manner as in Example 7. The glass transition temperature of the resin composition of Example 9 was 148°C. The obtained film was evaluated in the same manner as in Example 7.
[0088] [Comparative Example 2] A resin composition was prepared in the same manner as in Example 7, except that a diacetal compound was not mixed in, and a film with a thickness of approximately 500 μm was obtained using the same method. It was evaluated in the same manner as in Example 7. The glass transition temperature of the resin composition of Comparative Example 2 was 153°C.
[0089] The configurations and evaluation results of Examples 7 to 9 and Comparative Example 2 are summarized in [Table 3]. The criteria for 〇 (good) and ◎ (very good) were as follows. ○ (Good): Δn value is 0 or greater than or equal to 1.4, and stress optical coefficient is 0 or greater than or equal to 2.2. ◎ (Excellent): The Δn value is negative, and the stress optical coefficient is negative.
[0090] [Table 3]
[0091] As shown in Table 3, in Examples 7-9, crystalline or aggregated states of the diacetal compound were present in the film, resulting in resin films with a more negative birefringence than Comparative Example 2, which did not contain the diacetal compound. When comparing Δn of Examples 7-8 with that of Comparative Example 2, increasing the amount of diacetal compound added resulted in a greater negative change in birefringence. Increasing the amount of additive also resulted in a negative change in the stress optical coefficient. In particular, in Example 8, both birefringence and applied optical coefficient became negative. It was confirmed that bisphenol A-polycarbonate polymers containing diacetal compounds increased Δn to the negative side and lowered the stress optical coefficient depending on the concentration of the additive.
[0092] The wavelength dispersibility of the films of Example 7 and Comparative Example 2 was measured using the method described above. The measurement results for wavelength dispersibility are summarized in [Table 4].
[0093] [Table 4]
[0094] As shown in Table 4, the film of Example 7 exhibited inverse wavelength dispersion (a property in which birefringence increases from the short wavelength side to the long wavelength side), while Comparative Example 2, which consisted only of bisphenol A-polycarbonate polymer, exhibited wavelength dispersion (a property in which birefringence decreases from the short wavelength side to the long wavelength side). In other words, by adding an optical modifier to the polycarbonate polymer, a film with inverse wavelength dispersion was obtained.
[0095] [Example 10] Amorphous polyethylene terephthalate resin (Byron 200, manufactured by Toyobo MC Co., Ltd., glass transition temperature approximately 79°C) and 1,3:2,4-bis-O-(4-methylbenzylidene)-D-sorbitol (BMDS, manufactured by Shin Nippon Rika Co., Ltd.) were mixed in a weight ratio of 95:5 and kneaded using an internal mixer (Laboplastmill, model 10S100, manufactured by Toyo Seiki Seisakusho Co., Ltd.). First, the raw materials were added at 240°C and 5 rpm for 3 minutes, and then kneaded at the same temperature at 50 rpm for 3 minutes to obtain the resin composition. Vacuum drying was performed at 70°C for 4 hours before kneading. The obtained resin composition was pressed at 250°C and 10 MPa for 1 minute using a manual hydraulic heating press (model IMS-481E, manufactured by Imoto Seisakusho Co., Ltd.). It was then cooled at 25°C for 2 minutes to obtain a film with a thickness of approximately 1 mm. The obtained film was evaluated as follows. The glass transition temperature of the obtained resin composition was measured in the same manner as in Example 1. The glass transition temperature of the resin composition in Example 10 was 77°C.
[0096] The obtained film was evaluated in the same manner as in Example 1. However, in the measurement of birefringence using a polarizing microscope, the cooling (cooling) start temperature was 240°C and the shear rate was 0.1 s. -1 Furthermore, the rheometer temperature was set to 90°C during the measurement of shear stress. Furthermore, in confirming precipitation, the slope was calculated from the value of logG' when logω ranged from 0 to -1 (logG' / logω). Precipitation was considered successful if the ratio of logG' / logω of the film containing the diacetal compound to the logG' / logω of the film consisting only of the substrate resin (indicated as "logG' / logω ratio" in the table) was 0.9 or less.
[0097] [Example 11] A resin composition was obtained in the same manner as in Example 10, except that the weight ratio of amorphous polyethylene terephthalate resin to BMDS was 90:10. Then, a film was prepared in the same manner as in Example 10. The glass transition temperature of the resin composition of Example 11 was 75°C. The obtained film was evaluated in the same manner as in Example 10.
[0098] [Example 12] A resin composition was obtained in the same manner as in Example 10, except that 1,3:2,4-bis-O-(3,4-dimethylbenzylidene)-D-sorbitol (BDMDS, manufactured by Shin-Nippon Rika Co., Ltd.) was used as the diacetal compound instead of BMDS. A film was then prepared in the same manner as in Example 10. The glass transition temperature of the resin composition of Example 12 was 78°C. The obtained film was evaluated in the same manner as in Example 10.
[0099] [Comparative Example 3] A resin composition was prepared in the same manner as in Example 10, except that a diacetal compound was not mixed in, and a film with a thickness of approximately 1 mm was obtained using the same method. It was evaluated in the same manner as in Example 10. The glass transition temperature of the resin composition of Comparative Example 3 was 79°C.
[0100] The configurations and evaluation results of Examples 10 to 12 and Comparative Example 3 are summarized in [Table 5]. The criteria for 〇 (good) and ◎ (very good) were as follows. ○ (Good): Δn value is 0 or greater than or equal to 4.0, and stress optical coefficient is 0 or greater than or equal to 2.0. ◎ (Excellent): The Δn value is negative, and the stress optical coefficient is negative.
[0101] [Table 5]
[0102] As shown in Table 5, in Examples 10-12, crystalline or aggregated states of the diacetal compound were present in the film, resulting in resin films with a more negative birefringence than Comparative Example 3, which did not contain the diacetal compound. When comparing Δn of Examples 10-12 and Comparative Example 3, increasing the amount of diacetal compound added resulted in a greater negative change in birefringence. Increasing the amount of additive also changed the stress optical coefficient in a negative direction. In particular, in Example 11, both birefringence and applied optical coefficient became negative. It was confirmed that amorphous polyethylene terephthalate resin containing a diacetal compound increased Δn to the negative side and lowered the stress optical coefficient depending on the concentration of the additive.
[0103] The wavelength dispersibility of the films of Example 10 and Comparative Example 3 was measured using the method described above. The measurement results for wavelength dispersibility are summarized in [Table 6].
[0104] [Table 6]
[0105] As shown in Table 6, the film of Example 10 exhibited inverse wavelength dispersion (a property in which birefringence increases from the short wavelength side to the long wavelength side), while Comparative Example 3, which was composed only of amorphous polyethylene terephthalate polymer, exhibited wavelength dispersion (a property in which birefringence decreases from the short wavelength side to the long wavelength side). In other words, an inverse wavelength dispersion film was obtained by adding an optical modifier to amorphous polyethylene terephthalate polymer.
[0106] The embodiments disclosed herein should be understood to be illustrative in all respects and not restrictive in any way. The scope of the present invention is defined by the claims and is intended to include all modifications in the sense and scope equivalent to the claims.
Claims
1. Amorphous resin having positive birefringence, A diacetal compound represented by formula (1), A film containing, In the film, the diacetal compound exists as a crystalline or associated state exhibiting negative birefringence. Resin film for optical films. 【Chemistry 1】 (In the formula, R 1 , R 2 , R 3 , R 4 , R 5 and R 6 These are identical or different, and each represents a hydrogen atom, a C1-C4 alkyl group, a C1-C4 alkoxy group, a C1-C4 alkoxycarbonyl group, a C1-C4 halogenated alkyl group, or a halogen atom, respectively. 7 (This represents a hydrogen atom, a C1-C4 alkyl group, a C1-C4 alkenyl group, a C1-C4 alkoxy group, a C1-C4 alkoxycarbonyl group, or a C1-C4 halogenated alkyl group.)
2. The diacetal compound is contained in the amorphous resin in an amount of 1% by mass or more and 20% by mass or less. A resin film for optical films according to claim 1.
3. The amorphous resin is a resin that includes at least one selected from the group consisting of cycloolefin resin, polycarbonate resin, and polyester resin. A resin film for optical films according to claim 1.
4. A step of obtaining a resin composition by heating and mixing an amorphous resin having positive birefringence and a diacetal compound represented by formula (1) at a temperature above the softening point of the amorphous resin, thereby dissolving the diacetal compound in the amorphous resin. A step of molding the resin composition while applying shear force at a temperature above the glass transition temperature of the amorphous resin, The process involves a step of cooling while continuously applying shear force from the molding step, including, A method for manufacturing resin films for optical films. 【Chemistry 2】 (wherein, R 1 , R 2 , R 3 , R 4 , R 5 and R 6 are the same or different and each represents a hydrogen atom, an alkyl group having 1 to 4 carbon atoms, an alkoxy group having 1 to 4 carbon atoms, an alkoxycarbonyl group having 1 to 4 carbon atoms, a halogenated alkyl group having 1 to 4 carbon atoms or a halogen atom. R 7 represents a hydrogen atom, an alkyl group having 1 to 4 carbon atoms, an alkenyl group having 1 to 4 carbon atoms, an alkoxy group having 1 to 4 carbon atoms, an alkoxycarbonyl group having 1 to 4 carbon atoms or a halogenated alkyl group having 1 to 4 carbon atoms.)
5. In the aforementioned resin film for optical films, the diacetal compound exists in a crystalline or aggregated state and is oriented in the flow direction. The diacetal compound adjusts the birefringence in the negative direction. A method for manufacturing a resin film for optical films according to claim 4.
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