hardened material

A polymerizable composition with specific monomers and catalysts enables rapid production of high-quality optical materials by promoting efficient polymerization, addressing the inefficiencies and defects of conventional methods.

JP7780559B2Active Publication Date: 2025-12-04MITSUI CHEMICALS INC
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Patent Information

Application Number
JP2024017118
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-11-24
Filing Date
2024-02-07
Publication Date
2025-12-04
Estimated Expiration
2041-03-10

AI Technical Summary

Technical Problem

Conventional methods for producing optical materials require long production times, which are economically burdensome and reduce work efficiency, and shortening the process can lead to incomplete curing or defects such as striae in the material.

Method used

A polymerizable composition for optical materials comprising two or more different monomers, including an episulfide compound, with a specific polymerization catalyst content and viscosity, and a thixotropy ratio, which promotes rapid polymerization while maintaining quality.

Benefits of technology

The method allows for high-quality optical materials to be produced in a significantly reduced time, preventing defects like striae and improving moldability.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a cured material, which can be produced by a production method of an optical material, the production method enabling maintaining quality of an optical material obtained and favorably reducing production time of the optical material.SOLUTION: Provided is a cured material of two or more different monomers for an optical material, where at least one of the two or more different monomers for an optical material is an episulfide compound, there is no stria having a length of 1.0 mm or more in a radius range of 15 mm from the center of the cured material, and an amine content as measured by gas chromatograph mass spectrometry is 0.01 mass% to 0.20 mass%.SELECTED DRAWING: None
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Description

[Technical Field]

[0001] The present disclosure relates to a polymerizable composition for an optical material, a polymerizable prepolymer composition for an optical material, a cured product, and a method for producing an optical material. [Background technology]

[0002] As a method for producing a resin used in an optical material for a plastic lens, for example, a cast polymerization method in which a polymerizable composition containing a monomer is poured into a mold and heated to harden can be mentioned. In the cast polymerization method, a polymerizable composition is prepared and degassed, then the polymerizable composition is injected into a mold (die), and after heat curing (polymerization reaction), the product is removed from the mold (demolding) and annealed to obtain an optical material (for example, a lens, a semi-finished blank, etc.). In heat curing, in order to improve the quality of optical materials, the polymerization reaction is generally carried out over several to several tens of hours while gradually increasing the temperature by heating, and specifically, it generally takes about 20 to 48 hours. It is also known that a large portion of the total time for the manufacturing process (for example, 90% of the time) is spent on polymerization.

[0003] In the examples of Patent Document 1, it is described that a mold into which a polymerizable composition has been poured is gradually heated from 10° C. to 120° C., and polymerization is carried out for 20 hours to obtain a molded article.

[0004] Furthermore, in the examples of Patent Document 2, it is described that a mold into which a polymerizable composition has been poured is gradually heated from 25°C to 120°C over 16 hours, and then heated at 120°C for 4 hours to obtain a molded body. [Prior art documents] [Patent documents]

[0005] [Patent Document 1] International Publication No. 2014 / 027427 [Patent Document 2] International Publication No. 2014 / 133111 Summary of the Invention [Problem to be solved by the invention]

[0006] As described above, conventionally, in the process of producing optical materials, it has been common to carry out a polymerization reaction over several hours to several tens of hours (for example, about 20 to 48 hours) while gradually increasing the temperature by heating. However, since it takes a long time to manufacture optical materials, the equipment involved in the manufacturing must be operated for a long time, which imposes a heavy economic burden and reduces work efficiency. On the other hand, when an optical material is produced by a conventional method, if the polymerization reaction is carried out by shortening the heating polymerization time, the optical material may not be cured due to insufficient polymerization, or even if it is cured, problems such as the occurrence of striae in the optical material may occur, and the quality of the optical material may be reduced. For these reasons, in the production of optical materials, it is required to maintain the quality of the obtained optical materials and to shorten the production time of the optical materials.

[0007] An object of one embodiment of the present disclosure is to provide a method for producing an optical material that can maintain the quality of the resulting optical material and reduce the time required to produce the optical material. Furthermore, a problem to be solved by one embodiment of the present disclosure is to provide a polymerizable composition for an optical material, which is used in a method for producing an optical material, and which can maintain the quality of the obtained optical material and shorten the production time of the optical material. [Means for solving the problem]

[0008] Specific means for solving the above problems include the following aspects. The first embodiment of the present disclosure includes the following aspects. <1> A polymerizable composition for an optical material, comprising two or more different monomers for an optical material and a polymerization catalyst, wherein the content of the polymerization catalyst with respect to the total amount of the monomers for the optical material is 0.1150 to 0.2000 parts by mass, the viscosity measured with a B-type viscometer under the conditions of 20 °C and 60 rpm is 10 mPa·s to 1000 mPa·s, and at least one of the two or more different monomers for the optical material is an episulfide compound. <2> The polymerizable composition for an optical material according to <1>, having a thixotropy ratio of 1.3 or less. <3> A polymerizable composition for an optical material, comprising two or more different monomers for an optical material, a polymerization catalyst, and a prepolymer which is a polymer of the two or more different monomers for the optical material and has a polymerizable functional group, wherein at least one of the two or more different monomers for the optical material is an episulfide compound, as described in <1> or <2>. <4> The polymerizable composition for an optical material according to any one of <1> to <3>, wherein the two or more different monomers for the optical material include at least one selected from the group consisting of a polythiol compound, a polyol compound, an isocyanate compound, and an amine compound. <4-1> The polymerizable composition for an optical material according to any one of <1> to <4>, wherein the polymerization catalyst satisfies the following Condition 1. [Condition 1] -Ea / R is -7100 or more and -1500 or less. (Ea is the activation energy calculated by an Arrhenius plot from the reaction rate constants of the two or more different monomers for the optical material at two or more different temperatures, and R is the gas constant (8.314 J / mol / K).) <5> The polymerizable composition for an optical material according to any one of <1> to <4-1>, wherein the polymerization catalyst includes at least one selected from the group consisting of a basic catalyst having a pKa value of 5 to 12 and an organometallic catalyst. <5-1> The polymerizable composition for an optical material according to any one of <1> to <5>, wherein the polymerization catalyst includes at least one selected from the group consisting of an amine-based catalyst and an organotin-based catalyst. <5-2> The polymerizable composition for an optical material according to any one of <1> to <5-1>, wherein the polymerization catalyst contains at least one selected from the group consisting of N,N-dimethylcyclohexylamine, N,N-dicyclohexylmethylamine, 3,5-lutidine, 2,4,6-collidine, triethylenediamine, N,N-dimethylethanolamine, N-ethylmorpholine, dibutyltin dichloride, dimethyltin dichloride, dibutyltin dilaurate, and dibutyltin diacetate. <6> A composition comprising a prepolymer which is a polymer of two or more different monomers for an optical material and has a polymerizable functional group, and a polymerization catalyst, wherein at least one of the two or more different monomers for an optical material is an episulfide compound, and the viscosity measured at 20 °C and 60 rpm with a B-type viscometer is 10 mPa·s to 1000 mPa·s. A polymerizable prepolymer composition for an optical material. <7> The polymerizable prepolymer composition for an optical material according to <6>, wherein the content of the polymerization catalyst with respect to 100 parts by mass in total of the prepolymers is 0.01 part by mass to 0.2 part by mass. <7-1> The polymerizable prepolymer composition for an optical material according to <6> or <7>, having a thixotropy ratio of 1.3 or less. <8> The polymerizable prepolymer composition for an optical material according to any one of <6> to <7-1>, wherein the two or more different monomers for an optical material contain at least one selected from the group consisting of a polythiol compound, a polyol compound, an isocyanate compound, and an amine compound. <8-1> The polymerizable prepolymer composition for an optical material according to any one of <6> to <8>, wherein the polymerization catalyst satisfies the following condition 1. [Condition 1] -Ea / R is -7100 or more and -1500 or less. (Ea is the activation energy calculated by an Arrhenius plot from the reaction rate constants of the two or more different monomers for an optical material at two or more different temperatures, and R is the gas constant (8.314 J / mol / K).) <9> The polymerization catalyst-containing polymerizable prepolymer composition for an optical material according to any one of <6> to <8-1>, which contains at least one selected from the group consisting of a basic catalyst having a pKa value of 5 to 12 and an organometallic catalyst. <9-1> The polymerizable prepolymer composition for an optical material according to any one of <6> to <9>, wherein the polymerization catalyst contains at least one selected from the group consisting of an amine-based catalyst and an organotin-based catalyst. <9-2> The polymerizable prepolymer composition for an optical material according to any one of <6> to <9-1>, wherein the value obtained by subtracting the refractive index B of the prepolymer raw material composition, which is the composition before forming the prepolymer and contains the two or more different monomers for an optical material and a polymerization catalyst, from the refractive index A of the polymerizable prepolymer composition for an optical material is greater than 0. <10> A cured product of the polymerizable composition for an optical material according to any one of <1> to <5-2> or the polymerizable prepolymer composition for an optical material according to any one of <6> to <9-2>. <10-1> A cured product of the polymerizable composition for an optical material, wherein in the polymerizable composition for an optical material, the two or more different monomers for an optical material contain at least one selected from the group consisting of a polythiol compound, a polyol compound, an isocyanate compound, and an amine compound. The cured product according to <10>. <10-2> A cured product of the polymerizable composition for an optical material, wherein in the polymerizable composition for an optical material, the polymerization catalyst satisfies the following Condition 1. The cured product according to <10> or <10-1>. [Condition 1] -Ea / R is -7100 or more and -1500 or less. (Ea is the activation energy calculated by an Arrhenius plot from the reaction rate constants of the two or more different monomers for an optical material at two or more different temperatures, and R is the gas constant (8.314 J / mol / K).) <10-3> A cured product of the polymerizable composition for an optical material, wherein the polymerization catalyst in the polymerizable composition for an optical material includes at least one selected from the group consisting of a basic catalyst having a pKa value of 5 to 12 and an organometallic catalyst. <10> ~ <10-2> The cured product according to any one of the above. <10-4> A cured product of the polymerizable composition for an optical material, wherein the polymerization catalyst in the polymerizable composition for an optical material contains at least one selected from the group consisting of an amine-based catalyst and an organotin-based catalyst. <10> The cured product according to any one of <10-3> to <10-4>. <10-5> A cured product of the polymerizable composition for an optical material, wherein the polymerization catalyst in the polymerizable composition for an optical material contains at least one selected from the group consisting of N,N-dimethylcyclohexylamine, N,N-dicyclohexylmethylamine, 3,5-lutidine, 2,4,6-collidine, triethylenediamine, N,N-dimethylethanolamine, N-ethylmorpholine, dibutyltin dichloride, dimethyltin dichloride, dibutyltin dilaurate, and dibutyltin diacetate. <10> ~ <10-4> The cured product according to any one of the above. <11> A method for producing an optical material, comprising: a preparation step of preparing a polymerizable composition for an optical material, the polymerizable composition comprising two or more different monomers for an optical material and a polymerization catalyst, wherein at least one of the two or more different monomers for an optical material is an episulfide compound, and the content of the polymerization catalyst relative to the total amount of the two or more different monomers for an optical material is 0.1150 parts by mass to 0.2000 parts by mass; a casting step of adjusting the viscosity of the polymerizable composition for an optical material to 10 mPa s to 1000 mPa s as measured with a Brookfield viscometer under conditions of 20°C and 60 rpm, and casting the polymerizable composition for an optical material into a mold; and a curing step of curing the polymerizable composition for an optical material by polymerizing the two or more different monomers for an optical material in the polymerizable composition for an optical material in the mold. <12> A preparation step of preparing two or more different monomers for optical materials and a polymerization catalyst having a content of 0.1150 to 0.2000 parts by mass based on the total amount of the two or more different monomers for optical materials, and at least a part of the two or more different monomers for optical materials and at least a part of the polymerization catalyst are mixed, and at least a part of the two or more different monomers for optical materials is polymerized to obtain a prepolymer, thereby obtaining a mixture containing the prepolymer, a prepolymerization step, and at least one of the two or more different monomers for optical materials is an episulfide compound. A method for producing an optical material. <13> Further, by adding the remainder of the polymerization catalyst or a mixed solution of the remainder of the two or more different monomers for optical materials and the remainder of the polymerization catalyst to the mixture containing the prepolymer, the two or more different monomers for optical materials, the prepolymer, and the polymerization catalyst are obtained. A step of producing a polymerizable composition for an optical material containing the polymerizable composition for an optical material, and a curing step of curing the two or more different monomers for optical materials in the polymerizable composition for an optical material to obtain an optical material which is a cured product of the polymerizable composition for an optical material. The method for producing an optical material according to <12>. <14> The method for producing an optical material according to any one of <11> to <13>, wherein the two or more different monomers for optical materials include at least one selected from the group consisting of a polythiol compound, a polyol compound, an isocyanate compound, and an amine compound. <14-1> The method for producing an optical material according to any one of <11> to <14>, wherein the polymerization catalyst satisfies the following condition 1. [Condition 1] -Ea / R is -7100 or more and -1500 or less. (Ea is the activation energy calculated by the Arrhenius plot from the reaction rate constants of the two or more different monomers for optical materials at two or more different temperatures, and R is the gas constant (8.314 J / mol / K).) <15> The polymerization catalyst includes at least one selected from the group consisting of basic catalysts having a pKa value of 5 to 12 and organometallic catalysts. <11> <14-1> A method for producing an optical material according to any one of the above. <16> The polymerization catalyst comprises at least one selected from the group consisting of amine-based catalysts and organotin-based catalysts. <11> ~ <15> 10. A method for producing an optical material according to any one of the above. <17> A cured product of two or more different optical monomers, at least one of which is an episulfide compound, which has no striae of 1.0 mm or more in length within a 15 mm radius from the center of the cured product, and has an amine content of 0.01% by mass or more and 0.20% by mass or less as measured by gas chromatography-mass spectrometry. [Effects of the Invention]

[0009] According to one embodiment of the present disclosure, it is possible to provide a method for producing an optical material that can maintain the quality of the obtained optical material and effectively reduce the time required to produce the optical material. According to another embodiment of the present disclosure, it is possible to provide a polymerizable composition for an optical material used in a method for producing an optical material, which can maintain the quality of the obtained optical material and effectively shorten the production time of the optical material. [Brief explanation of the drawings]

[0010] [Figure 1] 1 is a graph showing the relationship between polymerization time and temperature when a molded article is produced using the polymerizable compositions for optical materials of Example 1A, Example 2A to Example 4A, Example 5A, and Example 6A, with the total mass of the monomers for optical materials in the polymerizable composition for optical materials being 30 g. DETAILED DESCRIPTION OF THE INVENTION

[0011] In the present disclosure, a numerical range expressed using "to" means a range that includes the numerical values ​​before and after "to" as the lower and upper limits. In the present disclosure, the amount of each component in the composition means the total amount of the plurality of substances corresponding to each component in the composition, unless otherwise specified, when there are a plurality of substances corresponding to each component in the composition. In the numerical ranges described step by step in the present disclosure, the upper limit value or the lower limit value described in one numerical range may be replaced with the upper limit value or the lower limit value of the numerical range described in other step-by-step descriptions. Further, in the numerical ranges described in the present disclosure, the upper limit value or the lower limit value of the numerical range may be replaced with the value shown in the examples. In the present disclosure, the term "step" includes not only an independent step but also the step even when it cannot be clearly distinguished from other steps, as long as the intended purpose of the step is achieved.

[0012] The present disclosure includes a first embodiment and a second embodiment. Each embodiment will be described.

[0013] ~First Embodiment~ ≪Polymerizable Composition for Optical Material≫ The polymerizable composition for optical material of the first embodiment includes two or more different monomers for optical materials and a polymerization catalyst, the content of the polymerization catalyst with respect to the total amount of the monomers for optical materials is 0.1150 parts by mass to 0.2000 parts by mass, the viscosity measured with a B-type viscometer under the conditions of 20 °C and 60 rpm is 10 mPa·s to 1000 mPa·s, and at least one of the two or more different monomers for optical materials is an episulfide compound.

[0014] [[ID=II]]The polymerizable composition for optical material of the first embodiment can maintain the quality of the obtained optical material and can shorten the production time of the optical material well by including the above configuration.

[0015] (Monomer for Optical Material) The polymerizable composition for optical material of the first embodiment includes two or more different monomers for optical materials, and at least one of the two or more different monomers for optical materials is an episulfide compound. By polymerizing the monomer for the optical material, strength and other properties can be imparted to the optical material.

[0016] The monomer for optical materials is not particularly limited as long as it is a monomer used for optical purposes. For example, it may be a monomer used to produce an optical material having any of the following properties: The optical material obtained using the monomer for optical materials may have a total light transmittance of 10% or more. The total light transmittance of the optical material may be measured in accordance with JIS K 7361-1 (1997). The optical material obtained using the monomer for optical materials may have a haze (i.e., total haze) of 10% or less, preferably 1% or less, and more preferably 0.5% or less. The haze of the optical material is a value measured at 25°C using a haze measuring device (TC-HIII DPK, manufactured by Tokyo Denshoku Co., Ltd.) in accordance with JIS-K7105. The refractive index of the optical material obtained using the monomer for optical materials is preferably 1.58 or more. The refractive index of the optical material obtained using the monomer for optical materials may be 1.80 or less, or may be 1.75 or less. The refractive index of the optical material may be measured in accordance with JIS K7142 (2014).

[0017] The shape of the optical material obtained by using the monomer for optical material is not particularly limited, and may be a plate, a cylinder, a rectangular parallelepiped, or the like.

[0018] (episulfide compounds) Examples of the episulfide compound include epithioethylthio compounds, chain aliphatic 2,3-epithiopropylthio compounds, cyclic aliphatic 2,3-epithiopropylthio compounds, aromatic 2,3-epithiopropylthio compounds, chain aliphatic 2,3-epithiopropyloxy compounds, cyclic aliphatic 2,3-epithiopropyloxy compounds, and aromatic 2,3-epithiopropyloxy compounds, and these may be used alone or in combination of two or more. Examples of these episulfide compounds include the compounds exemplified in WO2015 / 137401.

[0019] In the first embodiment, from the viewpoints of maintaining the quality of the optical material and shortening the production time of the optical material, the episulfide compound is preferably at least one selected from the group consisting of bis(2,3-epithiopropyl) sulfide, bis(2,3-epithiopropyl) disulfide, bis(1,2-epithioethyl) sulfide, bis(1,2-epithioethyl) disulfide, and bis(2,3-epithiopropylthio)methane, and is more preferably bis(2,3-epithiopropyl) disulfide.

[0020] The monomer for an optical material preferably further contains at least one of a polythiol compound and an isocyanate compound, and more preferably further contains a polythiol compound.

[0021] Examples of the monomer for optical materials include polymerizable monomers that are polymerized when a polymerization catalyst described below is used. The two or more different monomers for optical materials preferably include at least one selected from the group consisting of polythiol compounds, polyol compounds, isocyanate compounds, and amine compounds.

[0022] (Polythiol compounds) The polythiol compound is a compound having two or more mercapto groups, and examples thereof include the compounds exemplified in WO 2016 / 125736. In the present disclosure, from the viewpoint of maintaining the quality of the optical material and shortening the production time of the optical material, the polythiol compound is 4-mercaptomethyl-1,8-dimercapto-3,6-dithiaoctane, 5,7-dimercaptomethyl-1,11-dimercapto-3,6,9-trithiaundecane, 4,7-dimercaptomethyl-1,11-dimercapto-3,6,9-trithiaundecane, 4,8-dimercaptomethyl-1,11-dimercapto-3,6,9-trithiaundecane, pentaerythritol, It is preferable that the mercaptomethylthio-based copolymer contains at least one selected from the group consisting of tetrakis(3-mercaptopropionate), bis(mercaptoethyl)sulfide, pentaerythritol tetrakis(2-mercaptoacetate), 2,5-bis(mercaptomethyl)-1,4-dithiane, 1,1,3,3-tetrakis(mercaptomethylthio)propane, 4,6-bis(mercaptomethylthio)-1,3-dithiane, and 2-(2,2-bis(mercaptomethylthio)ethyl)-1,3-dithietane, more preferably, the mercaptomethyl-1,8-dimercapto-3,6-dithiaoctane is at least one selected from 4-mercaptomethyl-1,8-dimercapto-3,6-dithiaoctane, 5,7-dimercaptomethyl-1,11-dimercapto-3,6,9-trithiaundecane, 4,7-dimercaptomethyl-1,11-dimercapto-3,6,9-trithiaundecane, 4,8-dimercaptomethyl-1,11-dimercapto-3,6,9-trithiaundecane, pentaerythritol tetrakis(3-mercaptopropionate), and pentaerythritol tetrakis(2-mercaptoacetate); It is more preferable that the solvent contains at least one selected from 4-mercaptomethyl-1,8-dimercapto-3,6-dithiaoctane, 5,7-dimercaptomethyl-1,11-dimercapto-3,6,9-trithiaundecane, 4,7-dimercaptomethyl-1,11-dimercapto-3,6,9-trithiaundecane, 4,8-dimercaptomethyl-1,11-dimercapto-3,6,9-trithiaundecane, and pentaerythritol tetrakis(3-mercaptopropionate).

[0023] (Polyol compound) The polyol compound is a compound containing two or more hydroxyl groups, and examples thereof include one or more aliphatic or alicyclic alcohols. Specific examples include linear or branched aliphatic alcohols, alicyclic alcohols, and alcohols obtained by adding at least one selected from the group consisting of ethylene oxide, propylene oxide, and ε-caprolactone to these alcohols. More specific examples include the compounds exemplified in WO 2016 / 125736.

[0024] The polyol compound is preferably at least one selected from ethylene glycol, diethylene glycol, triethylene glycol, propylene glycol, 1,3-propanediol, 1,2-cyclopentanediol, 1,3-cyclopentanediol, 1,2-cyclohexanediol, 1,3-cyclohexanediol, and 1,4-cyclohexanediol.

[0025] (Isocyanate compounds) Examples of isocyanate compounds include aliphatic isocyanate compounds, alicyclic isocyanate compounds, aromatic isocyanate compounds, and heterocyclic isocyanate compounds, and these compounds may be used alone or in combination. These isocyanate compounds may include dimers, trimers, and prepolymers. Examples of these isocyanate compounds include the compounds exemplified in WO 2011 / 055540. In the present disclosure, an alicyclic isocyanate compound refers to an isocyanate compound that includes an alicyclic structure and may include a heterocyclic structure. An aromatic isocyanate compound refers to an isocyanate compound that includes an aromatic structure and may include an alicyclic structure and a heterocyclic structure. A heterocyclic isocyanate compound refers to an isocyanate compound that includes a heterocyclic structure and does not include an alicyclic structure or an aromatic structure.

[0026] The isocyanate compound preferably contains at least one selected from an aliphatic isocyanate compound, an alicyclic isocyanate compound, an aromatic isocyanate compound, and a heterocyclic isocyanate compound.

[0027] In the present disclosure, from the viewpoint of maintaining the quality of the optical material and shortening the production time of the optical material, the isocyanate compound preferably includes at least one selected from 2,5-bis(isocyanatomethyl)bicyclo-[2.2.1]-heptane, 2,6-bis(isocyanatomethyl)bicyclo-[2.2.1]-heptane, m-xylylene diisocyanate, 2,4-tolylene diisocyanate, 2,6-tolylene diisocyanate, dicyclohexylmethane diisocyanate, 1,3-bis(isocyanatomethyl)cyclohexane, 1,4-bis(isocyanatomethyl)cyclohexane, isophorone diisocyanate, 1,6-hexamethylene diisocyanate, and 1,5-pentamethylene diisocyanate; More preferably, the solvent contains at least one selected from 2,5-bis(isocyanatomethyl)bicyclo-[2.2.1]-heptane, 2,6-bis(isocyanatomethyl)bicyclo-[2.2.1]-heptane, m-xylylene diisocyanate, and 1,3-bis(isocyanatomethyl)cyclohexane; It is more preferable that the solvent contains at least one selected from 2,5-bis(isocyanatomethyl)bicyclo-[2.2.1]-heptane, 2,6-bis(isocyanatomethyl)bicyclo-[2.2.1]-heptane, and m-xylylene diisocyanate.

[0028] (amine compounds) Examples of the amine compound include ethylenediamine, 1,2- or 1,3-diaminopropane, 1,2-, 1,3-, or 1,4-diaminobutane, 1,5-diaminopentane, 1,6-diaminohexane, 1,7-diaminoheptane, 1,8-diaminooctane, 1,10-diaminodecane, 1,2-, 1,3-, or 1,4-diaminocyclohexane, o-, m-, or p-diaminobenzene, 3,4- or 4,4'-diaminobenzophenone, 3,4- or 4,4'-diaminodiphenyl ether, 4,4'-diaminodiphenylmethane, 4,4'-diaminodiphenyl sulfide, 3,3' or primary polyamine compounds such as 4,4'-diaminodiphenylsulfone, 2,7-diaminofluorene, 1,5-, 1,8-, or 2,3-diaminonaphthalene, 2,3-, 2,6-, or 3,4-diaminopyridine, 2,4- or 2,6-diaminotoluene, m- or p-xylylenediamine, isophoronediamine, diaminomethylbicycloheptane, 1,3- or 1,4-diaminomethylcyclohexane, 2- or 4-aminopiperidine, 2- or 4-aminomethylpiperidine, 2- or 4-aminoethylpiperidine, N-aminoethylmorpholine, and N-aminopropylmorpholine; monofunctional secondary amine compounds such as diethylamine, dipropylamine, di-n-butylamine, di-sec-butylamine, diisobutylamine, di-n-pentylamine, di-3-pentylamine, dihexylamine, dioctylamine, di(2-ethylhexyl)amine, methylhexylamine, diallylamine, N-methylallylamine, piperidine, pyrrolidine, diphenylamine, N-methylamine, N-ethylamine, dibenzylamine, N-methylbenzylamine, N-ethylbenzylamine, dicyclohexylamine, N-methylaniline, N-ethylaniline, dinaphthylamine, 1-methylpiperazine, and morpholine; N,N'-Dimethylethylenediamine, N,N'-Dimethyl-1,2-diaminopropane, N,N'-Dimethyl-1,3-diaminopropane, N,N'-Dimethyl-1,2-diaminobutane, N,N'-Dimethyl-1,3-diaminobutane, N,N'-Dimethyl-1,4-diaminobutane, N,N'-Dimethyl-1,5-diaminopentane, N,N'-Dimethyl-1,6-diaminohexane, N,N'-Dimethyl-1,7-diaminoheptane, N,N'-Diethylethylenediamine, N,N'-Diethyl-1,2-diaminopropane, N,N'-Diethyl-1,3-diaminopropane, N,N'-Diethyl-1,2-diamino secondary polyamine compounds such as nobutane, N,N'-diethyl-1,3-diaminobutane, N,N'-diethyl-1,4-diaminobutane, N,N'-diethyl-1,5-diaminopentane, N,N'-diethyl-1,6-diaminohexane, N,N'-diethyl-1,7-diaminoheptane, piperazine, 2-methylpiperazine, 2,5-dimethylpiperazine, 2,6-dimethylpiperazine, homopiperazine, 1,1-di-(4-piperidyl)methane, 1,2-di-(4-piperidyl)ethane, 1,3-di-(4-piperidyl)propane, 1,4-di-(4-piperidyl)butane, and tetramethylguanidine; and the like.

[0029] <Polymerization catalyst> The polymerizable composition for an optical material of the first embodiment contains at least one polymerization catalyst. The polymerization catalyst is not particularly limited, but for example, a basic catalyst, an organometallic catalyst, zinc carbamate, ammonium salt, sulfonic acid, etc. can be used. The polymerization catalysts may be used alone or in appropriate combination of two or more.

[0030] (basic catalyst) Examples of basic catalysts include amine catalysts (including imidazole catalysts). Specific examples include tertiary amine catalysts such as triethylenediamine, N,N-dimethylcyclohexylamine, N,N-dicyclohexylmethylamine, N,N-dimethylethanolamine, triethylamine, and N-ethylmorpholine; 2-methylpyrazine, pyridine, α-picoline, β-picoline, γ-picoline, 2,6-lutidine, 3,5-lutidine, 2,4,6-collidine, 3-chloropyridine, N,N-diethylaniline, N,N-dimethylaniline, hexamethylenetetramine, quinoline, isoquinoline, N,N-dimethyl-p-toluidine, N,N-dimethylpiperazine, quinaldine, 4-methylmorpholine, triallylamine, trioctylamine, 1,2-dimethylimidazole, and 1-benzyl-2-methylimidazole.

[0031] Among the above, the amine catalyst is preferred as the basic catalyst. Examples of the amine catalyst include tertiary amine catalysts such as 3,5-lutidine, 2,4,6-collidine, N,N-dimethylcyclohexylamine, N,N-dicyclohexylmethylamine, triethylenediamine, N,N-dimethylethanolamine, triethylamine, and N-ethylmorpholine.

[0032] Among the above, N,N-dimethylcyclohexylamine and N,N-dicyclohexylmethylamine are preferred as basic catalysts.

[0033] The basic catalyst preferably contains a compound represented by the following general formula (2) and / or a compound represented by the following general formula (3).

[0034] [ka]

[0035] In general formula (2), R1 represents a linear alkyl group having 1 to 20 carbon atoms, a branched alkyl group having 3 to 20 carbon atoms, a cycloalkyl group having 3 to 20 carbon atoms, or a halogen atom, and multiple R1s may be the same or different. Q represents a carbon atom or a nitrogen atom. m represents an integer of 0 to 5.

[0036] [ka]

[0037] In general formula (3), R2, R3, and R4 each independently represent a linear alkyl group having 1 to 20 carbon atoms, a branched alkyl group having 3 to 20 carbon atoms, a cycloalkyl group having 3 to 20 carbon atoms, an allyl group, or a hydrocarbon group containing a hydroxyl group.

[0038] The basic catalyst preferably has a pKa value of 5 or more, more preferably 7 or more, and even more preferably 9 or more. The basic catalyst preferably has a pKa value of 12 or less, more preferably 11 or less.

[0039] The pKa value (acid dissociation index) can be measured, for example, by (a) the method described in The Journal of Physical Chemistry, vol. 68, number 6, page 1560 (1964), (b) a method using an automatic potentiometric titrator (AT-610 (trade name) or the like) manufactured by Kyoto Electronics Manufacturing Co., Ltd., or the like. In addition, (c) the acid dissociation index described in the Chemistry Handbook compiled by the Chemical Society of Japan (revised 3rd edition, June 25, 1984, published by Maruzen Co., Ltd.) can also be used.

[0040] (organometallic catalyst) Examples of organometallic catalysts include organotin catalysts; organic acid salts of iron, nickel, zinc, and the like; acetylacetonate complexes; catalyst compositions comprising metal carboxylic acid compounds and quaternary ammonium salt compounds; catalyst compositions comprising bicyclic tertiary amine compounds; and metal catalysts in which an alkoxy group, a carboxy group, or the like is coordinated to titanium or aluminum. Of the above organometallic catalysts, organotin catalysts are preferred. Examples of organotin catalysts include dibutyltin dichloride (DBC), dimethyltin dichloride (DMC), dibutyltin dilaurate (DBTDL), and dibutyltin diacetate.

[0041] The organotin catalyst preferably contains at least one selected from dibutyltin dichloride, dimethyltin dichloride, dibutyltin dilaurate, and dibutyltin diacetate.

[0042] The polymerization catalyst preferably contains at least one selected from the group consisting of basic catalysts having a pKa value of 5 to 12 and organometallic catalysts.

[0043] It is also preferable that the polymerization catalyst contains at least one selected from the group consisting of amine-based catalysts and organotin-based catalysts.

[0044] The polymerization catalyst preferably contains at least one selected from the group consisting of N,N-dimethylcyclohexylamine, N,N-dicyclohexylmethylamine, 3,5-lutidine, 2,4,6-collidine, triethylenediamine, N,N-dimethylethanolamine, N-ethylmorpholine, dibutyltin dichloride, dimethyltin dichloride, dibutyltin dilaurate, and dibutyltin diacetate. Among the above, the polymerization catalyst preferably contains at least one selected from the group consisting of N,N-dimethylcyclohexylamine and N,N-dicyclohexylmethylamine.

[0045] In the polymerizable composition for an optical material of the first embodiment, the content of the polymerization catalyst relative to the total amount of the monomers for an optical material is 0.1150 parts by mass to 0.2000 parts by mass. The content of the polymerization catalyst in the first embodiment is large compared to conventional methods for producing optical materials. Thus, when polymerizing the monomer for an optical material in the curing process, the heat of reaction (i.e., the heat generated by self-heating) of the polymerizable composition for an optical material can be generated in a short time. Therefore, the polymerization reaction can be promoted well, and as will be described later, while increasing the viscosity of the polymerizable composition and suppressing heat convection that is presumed to cause streaks, a high-quality optical material can be obtained in a shorter time than before.

[0046] When the content of the polymerization catalyst with respect to the total amount of the monomer for an optical material is 0.1150 parts by mass or more, the polymerization reaction can be promoted well, so that a high-quality optical material can be obtained in a short time. Further, by promoting the polymerization reaction well, the moldability when taking out the cured product from the mold can be improved. From the above viewpoints, the content of the polymerization catalyst with respect to the total amount of the monomer for an optical material is preferably 0.1175 parts by mass or more, and more preferably 0.1250 parts by mass or more.

[0047] When the content of the polymerization catalyst with respect to the total amount of the monomer for an optical material is 0.2000 parts by mass or less, for example, the handling property when injecting the polymerizable composition for an optical material into a mold can be improved. From the above viewpoints, the content of the polymerization catalyst with respect to the total amount of the monomer for an optical material is preferably 0.1800 parts by mass or less, and more preferably 0.1500 parts by mass or less.

[0048] Note that the content of the above polymerization catalyst can be appropriately set according to the type of the polymerization catalyst, the types and amounts of monomers (episulfide compounds, other components, etc.) used, and the shape of the desired molded body.

[0049] The above-described range of the content of the polymerization catalyst may be appropriately changed depending on the types of the monomer for an optical material and the polymerization catalyst.

[0050] The polymerization catalyst preferably satisfies the following Condition 1. [Condition 1] -Ea / R is greater than or equal to -7100 and less than or equal to -1500. (Ea is the activation energy calculated by Arrhenius plot from the reaction rate constants of two or more different monomers for optical materials at two or more different temperatures, and R is the gas constant (8.314 J / mol / K).)

[0051] When the polymerization catalyst satisfies condition 1, the variation in the polymerization rate can be suppressed during the polymerization and curing process of the polymerizable composition, and as a result, the occurrence of optical distortion and striae can be suppressed, and an optical material with excellent appearance can be obtained.

[0052] The value of Ea is calculated by the following method. a physical property acquisition step of acquiring a physical property value 1a derived from a functional group of the polymerizable reactive compound before heating and a physical property value 1b derived from a remaining functional group after heating for a predetermined period of time when a composition 1 containing a polymerizable reactive compound and a predetermined amount of a polymerization catalyst is heated and maintained at a plurality of temperatures; a residual functional group ratio calculation step of calculating a residual functional group ratio 1 at each of the plurality of temperatures from the physical property value 1a and the physical property value 1b; a reaction rate constant calculation step of calculating a reaction rate constant 1 at a plurality of temperatures based on a reaction rate equation from the residual functional group ratio 1; A fitting step of calculating an activation energy Ea1 and a frequency factor A1 by an Arrhenius plot from the reaction rate constants 1 at the plurality of temperatures; The value of Ea is calculated by performing the above. Using the calculated Ea, it is determined whether the polymerization catalyst satisfies condition 1. Specific embodiments of the method for calculating the value of Ea and the method for determining whether the polymerization catalyst satisfies condition 1 are the same as those described in WO 2020 / 256057.

[0053] (Other additives) The polymerizable composition for an optical material of the first embodiment may contain any additive. Optional additives may include photochromic compounds, internal mold release agents, bluing agents, ultraviolet absorbers, and the like.

[0054] (Photochromic compounds) Photochromic compounds are compounds whose molecular structure changes reversibly when irradiated with light of a specific wavelength, and whose light absorption characteristics (absorption spectrum) change accordingly. The photochromic compound used in the first embodiment is a compound whose absorption characteristics (absorption spectrum) change with respect to light of a specific wavelength.

[0055] In the first embodiment, the photochromic compound is not particularly limited, and any compound can be appropriately selected from conventionally known compounds that can be used in photochromic lenses. For example, one or more compounds can be used depending on the desired coloring from spiropyran compounds, spirooxazine compounds, fulgide compounds, naphthopyran compounds, bisimidazole compounds, etc.

[0056] (internal release agent) The internal mold release agent may be an acidic phosphate ester, such as a monophosphate ester or a diphosphate ester, which may be used alone or in combination of two or more.

[0057] (Bluing agent) Examples of bluing agents include those that have an absorption band in the orange to yellow wavelength region of the visible light range and have the function of adjusting the hue of the optical material made of resin. More specifically, bluing agents include substances that exhibit a blue to purple color.

[0058] (ultraviolet absorber) Examples of the UV absorber that can be used include benzophenone-based UV absorbers such as 2,2'-dihydroxy-4-methoxybenzophenone, triazine-based UV absorbers such as 2-[4-[(2-hydroxy-3-dodecyloxypropyl)oxy]-2-hydroxyphenyl]4,6-bis(2,4-dimethylphenyl)-1,3,5-triazine, and benzotriazole-based UV absorbers such as 2-(2H-benzotriazol-2-yl)-4-methylphenol, 2-(2H-benzotriazol-2-yl)-4-tert-octylphenol, and 2-(5-tert-butyl-2-hydroxyphenyl)benzotriazole. Benzotriazole-based UV absorbers are preferred, including 2-(5-chloro-2H-benzotriazol-2-yl)-4-methyl-6-tert-butylphenol and 2-(5-tert-butyl-2-hydroxyphenyl)benzotriazole. These UV absorbers can be used alone or in combination of two or more.

[0059] (viscosity) From the viewpoint of suppressing striae, the polymerizable composition for an optical material of the first embodiment has a viscosity measured with a Brookfield viscometer under conditions of 20°C and 60 rpm of 10 mPa·s or more, preferably 20 mPa·s or more, more preferably 40 mPa·s or more, even more preferably 80 mPa·s or more, particularly preferably 100 mPa·s or more, and even more preferably 120 mPa·s or more. From the viewpoint of maintaining good handleability when molding the optical material into a desired shape, the polymerizable composition for an optical material of the first embodiment has a viscosity measured with a Brookfield viscometer under conditions of 20°C and 60 rpm of 1000 mPa s or less, preferably 700 mPa s or less, and more preferably 400 mPa s or less.

[0060] The viscosity of the polymerizable composition for an optical material of the first embodiment may be adjusted depending on the intended use of the resulting cured product. For example, when a cured product is obtained using a mold for a plus lens, the edge (i.e., the injection port) is narrow (for example, 1 mm to 3 mm), and therefore, from the viewpoint of suppressing striae, the polymerizable composition for optical materials of the first embodiment preferably has a viscosity of 10 mPa·s to 100 mPa·s. On the other hand, when a cured product is obtained using a mold for a normal lens other than a plus lens, the edge (i.e., the injection port) is wide (for example, 5 mm to 15 mm), and therefore, from the viewpoint of suppressing striae, the viscosity of the polymerizable composition for optical materials of the first embodiment is preferably 10 mPa·s to 1000 mPa·s, and more preferably 30 mPa·s to 1000 mPa·s.

[0061] By increasing the viscosity of the polymerizable composition for an optical material, it is possible to suppress thermal convection caused by a temperature difference between the inside and outside of the composition when heat is applied to the composition from the outside, and to reduce striae caused by thermal convection. However, if the amount of catalyst is too small, the viscosity does not increase sufficiently during polymerization, preventing the temperature from rising rapidly in a short time, and the time required to complete the polymerization is also long. On the other hand, according to the present disclosure, the viscosity of the entire composition can be increased more quickly by increasing the amount of catalyst within an optimal range in consideration of the reactivity of the episulfide compound. This makes it possible to suppress thermal convection due to a sudden temperature rise while suppressing uneven polymerization, and to proceed with polymerization in a short period of time.

[0062] (thixotropy ratio) The polymerizable composition for an optical material of the first embodiment preferably has a thixotropy ratio of 1.3 or less, more preferably 1.2 or less, and even more preferably 1.1 or less. The polymerizable composition for an optical material according to the first embodiment has a thixotropic ratio of 1.3 or less, which allows the composition to be quickly filled into a polymerization vessel such as a mold described below, and also suppresses thermal convection during polymerization, thereby more effectively preventing the occurrence of striae and the like in the monomer for an optical material. As a result, the occurrence of striae and the like in the obtained optical material can be suppressed, and good quality can be maintained. The polymerizable composition for an optical material of the first embodiment preferably has a thixotropy ratio of 0.9 or more, more preferably 0.95 or more, and even more preferably 1.0 or more.

[0063] The thixotropy ratio is calculated by dividing the viscosity η1 measured with a Brookfield viscometer at 20° C. and a rotation speed of 6 rpm by the viscosity η2 measured at a rotation speed of 60 rpm.

[0064] The thixotropy ratio can be reduced, for example, by reducing the molecular weight of two or more types of monomers for optical materials, by suppressing the degree of polymerization of the prepolymer to a certain level or less, or by reducing the proportion of the structure that imparts elasticity in the monomer.

[0065] The polymerizable composition for an optical material of the first embodiment includes two or more different types of monomers for an optical material, a polymerization catalyst, and a prepolymer which is a polymer of the two or more different types of monomers for an optical material and has a polymerizable functional group, and it is preferable that at least one of the two or more different types of monomers for an optical material is an episulfide compound. A prepolymer is a polymer made from two or more different monomers for optical materials and has a polymerizable functional group. A cured product obtained by polymerizing a prepolymer and two or more different monomers for optical materials can be used as an optical material. Examples of prepolymers include polymers in which the polymerizable functional groups of two types of monomers for optical materials are not polymerized at an equivalent ratio of 1:1, and polymers in which two types of monomers for optical materials are polymerized at an unbalanced equivalent ratio.

[0066] <Polymerizable prepolymer composition for optical materials> The polymerizable prepolymer composition for an optical material of the first embodiment is a composition containing a prepolymer that is a polymer of two or more different monomers for an optical material and has a polymerizable functional group, and a polymerization catalyst, wherein at least one of the two or more different monomers for an optical material is an episulfide compound, and the viscosity measured with a Brookfield viscometer under conditions of 20°C and 60 rpm is 10 mPa s to 1000 mPa s. It is preferable that the viscosity of the prepolymer composition does not change easily over time (that is, is stable). The prepolymer composition having a stable viscosity means that when the prepolymer composition is stored at 20° C. for 24 hours, the change in viscosity between before and after storage is 10% or less.

[0067] Specific examples, preferred specific examples, preferred aspects, etc. of the monomer for an optical material and the polymerization catalyst of the polymerizable prepolymer composition for an optical material are the same as the specific examples, preferred specific examples, preferred aspects, etc. of the monomer for an optical material and the polymerization catalyst described in the section on the polymerizable composition for an optical material above. The definition of the prepolymer in the polymerizable prepolymer composition for optical materials is the same as the definition of the prepolymer described in the section on the polymerizable composition for optical materials above.

[0068] In the polymerizable prepolymer composition for an optical material of the first embodiment, the content of the polymerization catalyst relative to a total of 100 parts by mass of the prepolymers is preferably 0.01 parts by mass to 0.2 parts by mass.

[0069] By using a polymerization catalyst in an amount of 0.01 parts by mass or more relative to 100 parts by mass of the total of the prepolymers, the polymerization reaction can be effectively promoted, thereby enabling the production of a high-quality optical material in a short time. Furthermore, by effectively promoting the polymerization reaction, the releasability of the cured product when it is removed from the mold can be improved. From the above viewpoint, the content of the polymerization catalyst relative to 100 parts by mass of the total of the prepolymers is preferably 0.02 parts by mass or more, and more preferably 0.03 parts by mass or more.

[0070] When the content of the polymerization catalyst is 0.2 parts by mass or less relative to 100 parts by mass of the total of the prepolymers, the handling properties can be improved, for example, when the polymerizable composition for an optical material is injected into a mold. From the above viewpoint, the content of the polymerization catalyst relative to 100 parts by mass of the total of the prepolymers is preferably 0.18 parts by mass or less, more preferably 0.16 parts by mass or less, and even more preferably 0.14 parts by mass or less.

[0071] (thixotropy ratio) The polymerizable prepolymer composition for an optical material of the first embodiment preferably has a thixotropy ratio of 1.3 or less, more preferably 1.2 or less, and even more preferably 1.1 or less. The polymerizable prepolymer composition for an optical material according to the first embodiment has a thixotropic ratio of 1.3 or less, which allows the composition to be quickly filled into a polymerization vessel such as a mold described below, and also suppresses thermal convection during polymerization, thereby more effectively preventing the occurrence of striae and the like in the monomer for an optical material. As a result, the occurrence of striae and the like in the obtained optical material is suppressed, and good quality can be maintained. The polymerizable composition for an optical material of the first embodiment preferably has a thixotropy ratio of 0.9 or more, more preferably 0.95 or more, and even more preferably 1.0 or more. The method for measuring the thixotropy ratio is as described above.

[0072] In the polymerizable prepolymer composition for optical materials of the first embodiment, the value obtained by subtracting the refractive index B of the prepolymer raw material composition, which is a composition before the prepolymer is formed and which contains the two or more different monomers for optical materials and a polymerization catalyst, from the refractive index A of the polymerizable prepolymer composition for optical materials (also referred to as "refractive index A - refractive index B") is preferably greater than 0, more preferably 0.001 or greater, and even more preferably 0.005 or greater. The refractive index A is the refractive index of the polymerizable prepolymer composition for optical materials after the monomer for optical materials and the polymerization catalyst have been polymerized to obtain the prepolymer, and the refractive index B is the refractive index of the prepolymer raw material composition before the monomer for optical materials and the polymerization catalyst have been polymerized to obtain the prepolymer.

[0073] When the refractive index A minus the refractive index B is within the above range, it becomes easy to adjust the viscosity of the polymerizable composition for optical materials to a predetermined value, and it also becomes easy to stabilize the quality (e.g., refractive index, appearance, etc.) of the cured product of the polymerizable composition for optical materials. The refractive index A minus the refractive index B may be 0.020 or less, or may be 0.010 or less.

[0074] ≪Cured product≫ The cured product of the first embodiment is a cured product of the polymerizable composition for an optical material of the first embodiment or the polymerizable prepolymer composition for an optical material of the first embodiment.

[0075] In the cured product of the first embodiment, when an amine catalyst is used as the polymerization catalyst, the amine content is preferably 0.01% by mass or more, more preferably 0.02% by mass or more, even more preferably 0.04% by mass or more, and particularly preferably 0.06% by mass or more, from the viewpoint of reducing striae. Furthermore, from the viewpoint of improving the handleability of the polymerizable composition for optical materials, the cured product of the first embodiment preferably has an amine content of 0.20% by mass or less, more preferably 0.18% by mass or less, and even more preferably 0.15% by mass or less. The amine content is the amine content measured by gas chromatography mass spectrometry from a dichloromethane composition obtained by dispersing the cured product in dichloromethane and ultrasonically extracting it.

[0076] The amine content in the cured product was measured as follows. 200 mg of the hardened material, which has been powdered using a metal file, and 3 mL of dichloromethane are placed in a centrifuge tube (volume 10 mL), and ultrasonically extracted for 10 minutes at room temperature using an ultrasonic cleaner (IUCHI, US-4), and then centrifuged at 4000 rpm for 10 minutes using a centrifuge (KUBOTA, small tabletop centrifuge 2410). The supernatant is collected, and the residue is dispersed again in 3 mL of dichloromethane, followed by the above-mentioned ultrasonic extraction and centrifugation, and the supernatant is collected (hereinafter also referred to as "residue extraction"). The above residue extraction was further carried out twice, and then dichloromethane was added to the resulting supernatant to make the total volume 10 mL. The resulting 10 mL of supernatant was filtered and analyzed by gas chromatography mass spectrometry (GC-MS) (GC-MS equipment: Agilent 6890GC / 5973N MSD, column: CP-Sil 8 CB for Amine (0.25 mm ID × 30 m FT = 0.25 μm)) to obtain the peak area value derived from the amine. A calibration curve of the obtained peak area value derived from the amine and the amine amount was prepared, and the amine content in the cured product was measured.

[0077] The above-mentioned amine means an amine compound that can be used as a polymerization catalyst, or an amine compound derived from the above-mentioned amine compound.

[0078] In particular, in optical applications where light transmittance is required, the cured product of the first embodiment preferably has a devitrification index of less than 50, and more preferably less than 35. The degree of devitrification is measured by the following method. Light from a light source (e.g., Luminar Ace LA-150A manufactured by Hayashi Repic) is transmitted through the cured product in a dark place. An image of the light transmitted through the cured product is captured into an image processing device (e.g., an image processing device manufactured by Ube Information Systems Co., Ltd.), and the captured image is subjected to shading processing. The degree of shading of the processed image is quantified for each pixel, and the value calculated as the average value of the shading values ​​for each pixel is taken as the devitrification value.

[0079] The cured product of the first embodiment preferably has no striae with a length of 1.0 mm or more within a 15 mm radius from the center of the cured product, and more preferably has no striae with a length of 1.0 mm or more within or outside a 15 mm radius from the center of the cured product.

[0080] More specifically, the cured product of the first embodiment may be a cured product of two or more different optical monomers, wherein at least one of the two or more different optical material monomers is an episulfide compound, wherein there are no striae with a length of 1.0 mm or more within a radius of 15 mm from the center of the cured product, and wherein the amine content measured by gas chromatography-mass spectrometry is 0.01% by mass or more and 0.20% by mass or less.

[0081] <Method for manufacturing optical materials> The method for producing the optical material of the first embodiment includes the following production method A and production method B.

[0082] <Recipe A> Production method A includes the following steps: a preparation step of preparing a polymerizable composition for an optical material, the polymerizable composition comprising two or more different monomers for an optical material and a polymerization catalyst, wherein at least one of the two or more different monomers for an optical material is an episulfide compound, and the content of the polymerization catalyst relative to the total amount of the two or more different monomers for an optical material is 0.1150 parts by mass to 0.2000 parts by mass; a casting step of adjusting the viscosity of the polymerizable composition for an optical material to 10 mPa s to 1000 mPa s as measured with a Brookfield viscometer under conditions of 20°C and 60 rpm, and casting the polymerizable composition for an optical material into a mold; and a curing step of curing the polymerizable composition for an optical material by polymerizing the two or more different monomers for an optical material in the polymerizable composition for an optical material in the mold.

[0083] Manufacturing method A includes the above-mentioned preparation step, the above-mentioned casting step, and the above-mentioned curing step, and therefore can maintain the quality of the optical material obtained and shorten the time required to manufacture the optical material.

[0084] The manufacturing method A may include the above-mentioned preparation step, casting step, and curing step in this order.

[0085] In the polymerizable composition for optical materials prepared in the preparation step of Production Method A, the content of the polymerization catalyst relative to the total amount of the two or more different monomers for optical materials is 0.1150 to 0.2000 parts by mass. This content of the polymerization catalyst is larger than that in conventional methods for producing optical materials. This allows the reaction heat (i.e., heat due to self-heating) of the polymerizable composition for optical materials to be generated in a short time when the monomer for optical materials in the polymerizable composition for optical materials is polymerized in the curing step. The heat of reaction can be utilized to promote the polymerization reaction of the monomers for optical materials in the polymerizable composition for optical materials, so that high-quality optical materials can be obtained in a shorter time than before. Conventionally, when carrying out a polymerization reaction, the polymerizable composition for an optical material has been mainly heated to cause the polymerization reaction to proceed. However, in Production Method A, it is not always necessary to heat the polymerizable composition for an optical material. Furthermore, since Production Method A utilizes the self-heating of the composition, polymerization can proceed without excessively relying on external heat supply. This, together with increasing the viscosity of the composition (described later), can suppress uneven heat generation and thermal convection in the polymerizable composition for optical materials, thereby suppressing the occurrence of striae. In this disclosure, striae refers to a state in which the refractive index of a specific portion differs from the normal refractive index of the surrounding area. It can also be expressed as a state in which a disadvantage occurs in the intended use of an optical material. In optical materials, striae is a type of defect.

[0086] <Preparation process> The production method A includes a preparation step of preparing a polymerizable composition for an optical material, which comprises two or more different monomers for an optical material and a polymerization catalyst, wherein at least one of the two or more different monomers for an optical material is an episulfide compound, and the content of the polymerization catalyst relative to the total amount of the two or more different monomers for an optical material is 0.1150 parts by mass to 0.2000 parts by mass. The preparation step may be a step of simply preparing a polymerizable composition for an optical material that has been produced in advance, or may be a step of producing a polymerizable composition for an optical material.

[0087] In the preparation step, the polymerizable composition for an optical material is not particularly limited as long as it contains two or more different types of monomers for an optical material and a polymerization catalyst. The polymerizable composition for optical materials may be a ready-made product, or may be prepared by mixing at least two or more different types of monomers for optical materials with a polymerization catalyst. The method of mixing is not particularly limited, and any known method can be used.

[0088] The temperature at which the above components are mixed is not particularly limited, but is preferably 30° C. or lower, and more preferably room temperature (25° C.) or lower. From the viewpoint of the pot life of the polymerizable composition for an optical material to be prepared, it may be preferable to set the temperature lower than 25° C. However, when the solubility of an additive such as an internal mold release agent with each of the above components is poor, the temperature of each of the above components may be raised in advance to dissolve the additive in each of the above components.

[0089] When mixing the above components, it is preferable to carry out the mixing in a dry inert gas in order to prevent the incorporation of moisture into the polymerizable composition for an optical material.

[0090] The preparation step is preferably a step of mixing the two or more different monomers for an optical material in advance, and then mixing the polymerization catalyst to produce the polymerizable composition for an optical material. This makes it possible to prevent the polymerization of the two or more different monomers for an optical material from proceeding until the mixture of the two or more different monomers for an optical material is mixed with the polymerization catalyst. Therefore, by performing the preparation steps in the above order, the start time of polymerization can be adjusted, which can improve the handling properties when, for example, injecting the polymerizable composition for an optical material into a mold. Specific examples of the preparation step include the following.

[0091] First, a mixture is prepared by adding a monomer for optical materials and an additive (such as an internal mold release agent). This mixture is stirred at 25°C for 1 hour to completely dissolve each component, yielding a mixture. Then, a polymerization catalyst is added to the mixture and stirred to completely dissolve it, thereby obtaining a polymerizable composition for optical materials as a homogeneous solution.

[0092] <Casting process> The manufacturing method A includes a casting step of adjusting the viscosity of the polymerizable composition for optical materials, measured with a Brookfield viscometer at 20° C. and 60 rpm, to 10 mPa·s to 1000 mPa·s, and casting the resultant composition into a mold. By adjusting the viscosity of the polymerizable composition for an optical material to fall within the above range and then casting, the viscosity of the polymerizable composition for an optical material produced in the step of producing the polymerizable composition for an optical material can be set within an appropriate range from the viewpoint of suppressing striae in the resulting optical material.

[0093] From the above viewpoints, the viscosity of the polymerizable composition for an optical material is 10 mPa·s or more, preferably 20 mPa·s or more, more preferably 40 mPa·s or more, even more preferably 80 mPa·s or more, particularly preferably 100 mPa·s or more, and even more preferably 120 mPa·s or more. The viscosity of the polymerizable composition for an optical material is 1000 mPa·s or less, preferably 700 mPa·s or less, and more preferably 400 mPa·s or less, from the viewpoint of maintaining good handleability when molding the optical material into a desired shape.

[0094] The method for adjusting the viscosity of the polymerizable composition for an optical material is not particularly limited. For example, the viscosity of the polymerizable composition for an optical material may be adjusted by adding a high-viscosity compound, heating, stirring, or the like.

[0095] <Curing process> The manufacturing method A includes a curing step of curing the polymerizable composition for an optical material by polymerizing the two or more different monomers for an optical material in the polymerizable composition for an optical material in the mold. When the production method A includes a curing step, the polymerizable composition for an optical material can be polymerized, and an optical material can be produced. Conventionally, when carrying out a polymerization reaction, the polymerizable composition for optical materials is heated to cause the polymerization reaction. However, the polymerizable composition for optical materials in Production Method A generates reaction heat (i.e., heat due to self-heating) accompanying the polymerization reaction in a short period of time, thereby accelerating the polymerization reaction of the monomer for optical materials in the polymerizable composition for optical materials. Therefore, in the production method A, the polymerizable composition for an optical material does not necessarily need to be heated, but may be heated. That is, in the curing step of Production Method A, the polymerizable composition for an optical material can be cured by polymerization by leaving the polymerizable composition for an optical material to stand.

[0096] The environment in which the curing step is carried out is not particularly limited, and the mold can be heated from the outside of the mold for curing. However, from the viewpoint of polymerizing in a short time while improving optical quality such as striae, the curing step is preferably a step in which the polymerizable composition for an optical material is left to stand in a closed space to cure the polymerizable composition for an optical material. By leaving the polymerizable composition for an optical material at rest in a closed space, it is possible to prevent the heat generated by the self-heating of the polymerizable composition for an optical material from being released to the outside, which makes it possible to retain the heat generated by the self-heating within the closed space, thereby promoting the polymerization reaction more efficiently and enabling the production of an optical material in a shorter time. An example of a closed space is an insulated environment. The term "insulating environment" refers to an environment in which heat is retained inside and heat conduction between the inside and the outside is suppressed. The term "environment in which heat conduction between the inside and the outside is suppressed" refers to an environment in which, when a polymerizable composition for an optical material is left standing in a closed space, the heat conductivity between the inside and the outside of the closed space is such that the polymerizable composition for an optical material can be cured.

[0097] The insulating environment can be created, for example, using insulating materials. That is, by leaving the polymerizable composition for an optical material in a heat-insulating container made of a heat-insulating material, heat can be retained inside the heat-insulating container, and heat conduction between the inside and outside can be suppressed.

[0098] The thermal conductivity of the heat insulating material is preferably 0.50 W / mK or less, more preferably 0.10 W / mK or less, and even more preferably 0.05 W / mK or less.

[0099] The density of the insulating material is 10 kg / m 3 It is preferable that the saturation is 15 kg / m or more. 3 More preferably, it is 20 kg / m or more. 3 More preferably, it is equal to or greater than this.

[0100] In the "insulation" or "insulation environment" in Production Method A, it is preferable to heat the adiabatic reactor to make it a constant temperature state (constant temperature reactor) within a range that does not interfere with the polymerization reaction of the polymerizable composition for an optical material due to the reaction heat or that does not excessively promote the polymerization reaction of the polymerizable composition for an optical material due to external heating. This allows the environmental temperature inside the reaction tank (constant temperature reaction tank) in which the mold is placed to be kept warm or at a constant temperature depending on the temperature rise caused by the self-heating of the monomer for optical material, thereby more effectively promoting the polymerization reaction.

[0101] As the adiabatic environment, for example, an adiabatic reactor or a constant temperature reactor as described above can be used. For example, when a mold into which a monomer has been injected is placed in a vacuum container that is an adiabatic reactor, adiabatic polymerization in an adiabatic environment using an adiabatic reactor (constant temperature reactor) can be carried out by the following procedure. The inside of the vacuum container is covered with a material that has heat insulating and heat retaining properties, such as urethane foam or cork, and the mold into which the monomer has been injected is wrapped with a material such as a cloth as needed.Then, the mold into which the monomer has been injected is left to stand inside the vacuum container.

[0102] The curing step may be a step of curing the polymerizable composition for an optical material by leaving the polymerizable composition for an optical material to stand without external heating. As described above, in the production method A, it is not always necessary to heat the polymerizable composition for an optical material. External heating may require the use of equipment, which can be economically burdensome. However, Process A allows optical materials to be produced in a simple manner, reducing the economic burden.

[0103] The curing step is preferably a step of curing the polymerizable composition for an optical material by leaving the polymerizable composition for an optical material to stand for 6 to 20 hours. According to conventional methods, the polymerization reaction is generally carried out over a period of several hours to several tens of hours (for example, about 20 to 48 hours) while gradually increasing the temperature by heating. If the time for carrying out the polymerization reaction is too short, the polymerizable composition for an optical material will not be completely cured, making it impossible to obtain an optical material, or the quality of the optical material will be reduced. However, according to Production Method A, an optical material can be produced in a short time while maintaining the quality of the resulting optical material. Specifically, the optical material can be produced by leaving the polymerizable composition for an optical material to stand for 20 hours or less. From the above viewpoint, it is more preferable that the polymerizable composition for an optical material is allowed to stand for 16 hours or less in the curing step. In addition, from the viewpoint of carrying out a polymerization reaction to obtain a well-cured optical material, the polymerizable composition for an optical material is preferably left to stand for 7 hours or more, more preferably for 9 hours or more.

[0104] The curing step may include, if necessary, a microwave irradiation step of irradiating the polymerizable composition for an optical material with microwaves for a predetermined period of time.

[0105] One embodiment of the curing step includes the following steps a and b. Step a: The polymerizable composition for optical materials is poured (cast) into a casting mold (into a cavity of a mold). Step b: The mold into which the polymerizable composition for optical materials has been poured is left standing in a closed space for a predetermined period of time to allow adiabatic polymerization.

[0106] (Step a) First, the polymerizable composition is poured into a molding mold (casting die) held by a gasket, tape, etc. At this time, depending on the physical properties required for the resulting optical material, it is preferable to carry out a degassing treatment under reduced pressure or a filtration treatment under pressure, reduced pressure, etc., as necessary.

[0107] (Step b) The polymerization conditions are not limited, but are preferably adjusted appropriately depending on the composition of the polymerizable composition for optical materials, the type and amount of catalyst used, the shape of the mold, and the like. The mold into which the polymerizable composition for an optical material has been poured may be left standing in an insulating environment for 6 to 20 hours to polymerize the monomer for an optical material in the polymerizable composition for an optical material.

[0108] In step b, if necessary, a heating step may be added after the adiabatic polymerization process in which the mold into which the polymerizable composition for an optical material has been injected is left standing in an adiabatic environment for a certain period of time. In step b, if necessary, in parallel with the step of leaving the mold into which the polymerizable composition for an optical material has been injected in an adiabatic environment (adiabatic polymerization), the mold into which the polymerizable composition for an optical material has been injected may be heated continuously or intermittently at a temperature not exceeding the self-heat generated by the polymerizable composition for an optical material in the adiabatic polymerization process, or the inside of the adiabatic reaction vessel may be heated to maintain the environmental temperature inside the adiabatic reaction vessel.

[0109] <Annealing process> The production method A may optionally include an annealing step of annealing the cured polymerizable composition for an optical material. The temperature at which the annealing treatment is carried out is usually 50 to 150°C, preferably 90 to 140°C, and more preferably 100 to 130°C.

[0110] <Other processes> The manufacturing method A may include other steps as necessary. Other steps include, for example, an injection step of injecting a polymerizable composition for an optical material into a mold when an optical material is produced using a mold.

[0111] <Applications of optical materials> The optical material produced by Production Method A can be used for plastic lenses, prisms, optical fibers, information recording substrates, filters, light-emitting diodes, and the like. Among the above, the optical material in the first embodiment can be suitably used for plastic lenses, and more suitably used for plastic lenses for spectacles.

[0112] <Production method B> Production method B includes a preparation step of preparing two or more different monomers for optical materials and a polymerization catalyst whose content relative to the total amount of the two or more different monomers for optical materials is 0.1150 parts by mass to 0.2000 parts by mass; and a prepolymerization step of mixing at least a portion of the two or more different monomers for optical materials with at least a portion of the polymerization catalyst and polymerizing at least a portion of the two or more different monomers for optical materials to obtain a prepolymer, thereby obtaining a mixture containing the prepolymer, wherein at least one of the two or more different monomers for optical materials is an episulfide compound.

[0113] Manufacturing method B includes a preparation step and a prepolymerization step, and thus can suppress striae in the resulting optical material and shorten the manufacturing time of the optical material.

[0114] In addition to the above-mentioned preparation step and prepolymerization step, Production Method B further includes a step of producing a polymerizable composition for an optical material, in which the remainder of the polymerization catalyst or a mixture of the remainder of the two or more different monomers for an optical material and the remainder of the polymerization catalyst is added to a mixture containing the prepolymer, thereby obtaining a polymerizable composition for an optical material containing the two or more different monomers for an optical material, the prepolymer, and the polymerization catalyst; a curing step of curing the two or more different monomers for an optical material in the polymerizable composition for an optical material to obtain an optical material that is a cured product of the polymerizable composition for an optical material; It is preferred that the compound contains:

[0115] The production method B includes a step of producing a polymerizable composition for an optical material and a curing step in addition to the preparation step and prepolymerization step, and thereby can more effectively suppress striae in the resulting optical material and more effectively shorten the production time of the optical material.

[0116] The polymerizable composition for optical materials prepared in the preparation step in Production Method B has a content of 0.1150 to 0.2000 parts by mass relative to the total amount of the two or more different monomers for optical materials. As in Production Method A, the content of this polymerization catalyst is larger than that in conventional production methods for optical materials. Therefore, as with the manufacturing method A, a high-quality optical material with suppressed striae can be obtained in a shorter time than conventional methods. As in the case of Production Method A, in Production Method B, it is not necessarily necessary to heat the polymerizable composition for an optical material. Furthermore, since the manufacturing method B includes a preparation step, a prepolymerization step, a polymerizable composition for optical materials manufacturing step, and a curing step, it is possible to suppress convection in the mold where the polymerization reaction takes place, and to suppress the occurrence of striae in the resulting cured product. Furthermore, since Production Method B includes a prepolymerization step, the storage stability of a mixture containing a prepolymer (e.g., a polymerizable composition for optical materials) can be maintained better than in a case where prepolymerization is not involved. For example, when a mixture containing a prepolymer is stored for a certain period of time, the polymerization reaction within the mixture can be suppressed, thereby ensuring a longer pot life.

[0117] <Preparation process> Production method B includes a preparation step of preparing two or more different monomers for optical materials and a polymerization catalyst whose content relative to the total amount of the two or more different monomers for optical materials is 0.1150 to 0.2000 parts by mass.

[0118] In the preparation step, two or more different monomers for optical materials and a polymerization catalyst whose content relative to the total amount of the two or more different monomers for optical materials is 0.1150 to 0.2000 parts by mass are prepared. That is, production method B uses two or more different monomers for optical materials and a polymerization catalyst whose content relative to the total amount of the two or more different monomers for optical materials is 0.1150 to 0.2000 parts by mass.

[0119] By using a polymerization catalyst in which the content of two or more different monomers for optical materials is 0.1150 parts by mass or more relative to the total amount of the monomers, the polymerization reaction can be promoted well, and a high-quality optical material with suppressed striae can be obtained in a short time. In addition, by promoting the polymerization reaction well, the releasability of the cured material when it is removed from the mold can be improved. From the above viewpoint, the polymerization catalyst is preferably used in an amount of 0.1175 parts by mass or more, and more preferably 0.125 parts by mass or more, based on the total amount of two or more different monomers for optical materials.

[0120] By using a polymerization catalyst whose content relative to the total amount of two or more different monomers for optical materials is 0.2000 parts by mass or less, it is possible to improve the handling properties, for example, when injecting the polymerizable composition for optical materials into a mold. From the above viewpoint, the polymerization catalyst is preferably used in an amount of 0.1800 parts by mass or less, and more preferably 0.1500 parts by mass or less, based on the total amount of two or more different monomers for optical materials.

[0121] The amount of the polymerization catalyst can be appropriately set depending on the type of polymerization catalyst, the type and amount of monomers (episulfide compound, other components, etc.) used, and the desired shape of the molded product.

[0122] <Prepolymerization process> Production method B includes a prepolymerization step of mixing at least a portion of two or more different monomers for optical materials with at least a portion of a polymerization catalyst, and polymerizing at least a portion of the two or more different monomers for optical materials to obtain a prepolymer, thereby obtaining a mixture containing the prepolymer.

[0123] The present inventors have considered that one of the causes of striae in the resulting cured product is convection caused by uneven temperature distribution within the mold where the polymerization reaction takes place. Therefore, the present inventors have focused on the fact that the viscosity of the polymerizable composition for an optical material can be increased by polymerizing a part of the monomer for an optical material in advance to produce a prepolymer, and by including the prepolymer in the polymerizable composition for an optical material, convection in the mold can be suppressed. Furthermore, manufacturing method B prevents the self-heated material from escaping to the outside, thereby making it difficult for a temperature difference to occur between the inside and outside of the mold. It is presumed that, due to the combination of the above points, Production Method B can suppress striae in the resulting cured product.

[0124] In the manufacturing method B, in the prepolymerization step, all of one type of monomer for optical materials among two or more different types of monomers for optical materials, all or part of other monomers for optical materials other than the one type of monomer for optical materials, and all or part of a polymerization catalyst are included, thereby making it possible to obtain a prepolymer with excellent pot life.

[0125] The form of "part of two or more different monomers for optical materials" is not particularly limited. For example, "a portion of two or more different types of monomers for optical materials" may refer to the amount of a portion of each of two or more different types of monomers for optical materials. Furthermore, "a part of two or more different types of monomers for optical materials" may be one or all of a plurality of types of monomers for optical materials among the two or more different types of monomers for optical materials.

[0126] In the prepolymerization step, the polymerization catalyst may be used in part or in whole. When a portion is used as a polymerization catalyst, there are no particular limitations on the form of the "portion of the polymerization catalyst" as with the "portion of two or more different monomers for optical materials." For example, "a portion of a polymerization catalyst" may be a portion of the amount of a polymerization catalyst.

[0127] When a portion of the polymerization catalyst is used, the portion of the polymerization catalyst is preferably 5 to 80 parts by mass, more preferably 10 to 60 parts by mass, and even more preferably 15 to 50 parts by mass, of 100 parts by mass of the polymerization catalyst, from the viewpoint of ensuring a long pot life.

[0128] From the viewpoint of ensuring a long pot life, the amount of the two or more different monomers for optical materials is preferably 5 to 95 parts by mass, more preferably 10 to 80 parts by mass, and even more preferably 20 to 70 parts by mass, out of 100 parts by mass of the two or more different monomers for optical materials.

[0129] It is preferable that the manufacturing method B includes a prepolymerization step of mixing all of two or more different types of monomers for optical materials with a part of a polymerization catalyst, and polymerizing at least a part of the two or more different types of monomers for optical materials to obtain a prepolymer, thereby obtaining a mixture containing the prepolymer.

[0130] Specific examples of the prepolymerization step are shown below, but the prepolymerization step in Production Method B is not limited to the following embodiments.

[0131] (Aspect a) The prepolymerization step of aspect a is a step of mixing some of two or more different types of monomers for optical materials with all of the polymerization catalyst, and polymerizing at least some of the some of the two or more different types of monomers for optical materials to obtain a prepolymer, thereby obtaining a mixture containing the prepolymer.

[0132] In the embodiment a, the part of the two or more different monomers for optical materials preferably comprises all of one of the two or more different monomers for optical materials and a part of another monomer for optical materials other than the one monomer for optical materials.

[0133] (Aspect b) The prepolymerization step of aspect b is a step of mixing a portion of two or more different monomers for optical materials with a portion of a polymerization catalyst, and polymerizing at least a portion of the portion of the two or more different monomers for optical materials to obtain a prepolymer, thereby obtaining a mixture containing a prepolymer. When Production Method B includes the prepolymerization step of aspect b, the production step of a polymerizable composition for an optical material described below is a step of adding at least the remainder of two or more different monomers for an optical material and the remainder of the polymerization catalyst to a mixture containing the prepolymer, thereby obtaining a polymerizable composition for an optical material containing two or more different monomers for an optical material, the prepolymer, and the polymerization catalyst.

[0134] <Viscosity adjustment process> It is preferable that the production method B further includes a viscosity adjusting step of adjusting the viscosity of the mixture containing the prepolymer to 10 mPa·s to 1000 mPa·s after the prepolymerization step and before the step of producing a polymerizable composition for an optical material. By setting the viscosity of the mixture containing the prepolymer within the above range, the viscosity of the polymerizable composition for an optical material produced in the step of producing a polymerizable composition for an optical material can be set within an appropriate range, from the viewpoint of suppressing striae in the resulting optical material, and as a result, striae can be suppressed in the resulting optical material.

[0135] From the above viewpoint, the viscosity of the mixture containing the prepolymer is preferably 40 mPa·s to 1000 mPa·s, and more preferably 50 mPa·s to 800 mPa·s. The viscosity is measured using a Brookfield viscometer at 20°C and 60 revolutions per minute (rpm).

[0136] There are no particular limitations on the method for adjusting the viscosity of the mixture containing the prepolymer. For example, the viscosity of the mixture containing the prepolymer may be adjusted by adding a high-viscosity compound, heating, stirring, or the like.

[0137] The temperature at which the mixture containing the prepolymer is prepared is not particularly limited as long as it is a temperature at which the prepolymer can be obtained by polymerization reaction, and may be, for example, 20°C to 50°C or 25°C to 45°C. The stirring time for preparing the mixture containing the prepolymer is not particularly limited as long as it is a stirring time that allows the prepolymer to be obtained by the polymerization reaction, and may be, for example, 30 minutes to 10 hours, or 1 hour to 10 hours.

[0138] Specifically, the method for preparing the mixture containing the prepolymer may be a method in which the mixture is prepared by stirring at 20°C for 6 hours while adjusting the viscosity.

[0139] <Polymerizable composition manufacturing process for optical materials> Production method B includes a step of producing a polymerizable composition for optical materials, in which the remainder of the polymerization catalyst or a mixed liquid of the remainder of the two or more different monomers for optical materials and the remainder of the polymerization catalyst (also referred to as the remainder of the polymerization catalyst in the present disclosure) is added to a mixture containing a prepolymer, thereby obtaining a polymerizable composition for optical materials containing two or more different monomers for optical materials, a prepolymer, and a polymerization catalyst.

[0140] The process for producing a polymerizable composition for an optical material is a process for obtaining a polymerizable composition for an optical material containing two or more different monomers for an optical material, a prepolymer, and a polymerization catalyst by adding the remainder of the polymerization catalyst and the like to a mixture containing a prepolymer. This makes it possible to prevent polymerization between the remaining reactive groups in the mixture containing the prepolymer until the mixture containing the prepolymer is mixed with the remainder of the polymerization catalyst and the like. Therefore, by carrying out the step of producing a polymerizable composition for an optical material at an appropriate time, it is possible to improve the handling properties when, for example, injecting the polymerizable composition for an optical material into a mold. In the process for producing a polymerizable composition for an optical material, when the remainder of the polymerization catalyst and the like are added to a mixture containing a prepolymer, the remainder of the polymerization catalyst may be mixed in a single batch or may be mixed in multiple batches.

[0141] The temperature at which the above components are mixed is not particularly limited, but is preferably 30° C. or lower, and more preferably room temperature (25° C.) or lower. It may be preferable that the temperature when mixing the components is lower than 25° C. However, if the solubility of the additives such as the internal mold release agent in the components is poor, the temperature of the components may be raised in advance to dissolve the additives in the components.

[0142] Specific embodiments of the process for producing a polymerizable composition for an optical material include, for example, the following embodiments.

[0143] First, an additive (such as an internal mold release agent) is added to a mixture containing a prepolymer to prepare a mixed liquid. This mixed liquid is stirred at 25°C for 1 hour to completely dissolve each component, and then degassed to obtain a first mixed liquid. Also, the remainder of the polymerization catalyst is prepared. If necessary, the remainder of the monomer for optical materials and the remainder of the pre-polymerization catalyst are stirred at 25° C. for 30 minutes to completely dissolve them, thereby obtaining a second mixed liquid. Then, the first mixed liquid and the remaining portion of the polymerization catalyst, or the first mixed liquid and the second mixed liquid, are mixed, stirred, and then degassed to obtain a polymerizable composition for optical materials as a homogeneous solution.

[0144] <Liquid transfer process> The manufacturing method B may further include a liquid transfer step of transferring the polymerizable composition for an optical material into a casting mold after the step of producing the polymerizable composition for an optical material and before the curing step. The liquid sending step may be a step of sending the polymerizable composition for an optical material into a casting mold while remixing the composition in a static mixer. The liquid sending step may be a step of sending the polymerizable composition for an optical material into a casting mold while remixing the composition using a dynamic mixer. This makes it possible to eliminate non-uniformity in the distribution of the polymerizable composition for an optical material while the polymerizable composition for an optical material is being delivered to the mold, thereby suppressing striae in the resulting cured product.

[0145] <Curing process> Production method B includes a curing step of obtaining an optical material, which is a cured product of the polymerizable composition for an optical material, by curing two or more different monomers for an optical material in the polymerizable composition for an optical material. Specific embodiments, preferred embodiments, etc. of the curing step in Production Method B are the same as those detailed in the section <Curing Step> in Production Method A above.

[0146] <Annealing process> The production method B may optionally include an annealing step of annealing the cured polymerizable composition for an optical material. The preferred aspects of the annealing step in Production Method B are the same as the preferred aspects of the annealing step in Production Method A.

[0147] <Other processes> The manufacturing method B may include other steps as necessary. Specific embodiments, preferred embodiments, etc. of the other steps in Production Method B are the same as specific embodiments, preferred embodiments, etc. of the other steps in Production Method A.

[0148] <Applications of optical materials> Specific examples and preferred specific examples of uses of the optical material in Production Method B are the same as specific examples and preferred specific examples of uses of the optical material in Production Method A.

[0149] ~Second embodiment~ <Method for manufacturing optical materials> The method for producing an optical material of the second embodiment includes: a preparation step of preparing a polymerizable composition for an optical material, the polymerizable composition including a monomer for an optical material containing an episulfide compound and a polymerization catalyst, wherein the content of the polymerization catalyst relative to the total amount of the monomer for an optical material is 0.1150 parts by mass to 0.2000 parts by mass; and a curing step of curing the polymerizable composition for an optical material by polymerizing the monomer for an optical material in the polymerizable composition for an optical material. In the method for producing an optical material of the second embodiment, specific aspects and preferred aspects of the episulfide compound, the monomer for an optical material, the polymerization catalyst, and the content of the polymerization catalyst are the same as the specific aspects and preferred aspects of the episulfide compound, the monomer for an optical material, the polymerization catalyst, and the content of the polymerization catalyst of the first embodiment described above. Specific and preferred aspects of the preparation step are the same as those of the first embodiment described above. Specific and preferred aspects of the curing step are the same as those of the first embodiment described above. In the method for producing an optical material of the second embodiment, the details of specific examples, preferred specific examples, specific aspects, preferred aspects, etc. of each component are the same as the details of specific examples, preferred specific examples, specific aspects, preferred aspects, etc. of each component in the method for producing an optical material of the first embodiment.

[0150] The second embodiment of the present disclosure includes the following aspects. <2-1> A method for producing an optical material, comprising: a preparation step of preparing a polymerizable composition for an optical material, the polymerizable composition comprising a monomer for an optical material containing an episulfide compound and a polymerization catalyst, wherein the content of the polymerization catalyst relative to the total amount of the monomer for an optical material is 0.1150 parts by mass to 0.2000 parts by mass; and a curing step of curing the polymerizable composition for an optical material by polymerizing the monomer for an optical material in the polymerizable composition for an optical material. <2-2> The method for producing an optical material according to <2-1>, wherein the preparing step is a step of mixing all of the monomers for an optical material in advance, and then mixing the polymerization catalyst to prepare the polymerizable composition for an optical material. <2-3> The method for producing an optical material according to <2-1> or <2-2>, wherein the preparing step is a step of preliminarily mixing the polymerization catalyst with a part of the monomer for an optical material, and then further mixing the remaining part of the monomer for an optical material to prepare the polymerizable composition for an optical material. <2-4> The method for producing an optical material according to any one of <2-1> to <2-3>, wherein the curing step is a step of curing the polymerizable composition for an optical material by leaving the polymerizable composition for an optical material to stand in a closed space. <2-5> The method for producing an optical material according to any one of <2-1> to <2-4>, wherein the curing step is a step of curing the polymerizable composition for an optical material by leaving the polymerizable composition for an optical material to stand without external heating. <2-6> The method for producing an optical material according to any one of <2-1> to <2-5>, wherein the curing step is a step of curing the polymerizable composition for an optical material by leaving the polymerizable composition for an optical material to stand for 6 hours to 20 hours. <2-7> The method for producing an optical material according to any one of <2-1> to <2-6>, wherein the monomer for an optical material further contains at least one of a polythiol compound and an isocyanate compound. <2-8> The method for producing an optical material according to any one of <2-1> to <2-7>, wherein the polymerization catalyst includes an amine catalyst. <2-9> The method for producing an optical material according to any one of <2-1> to <2-8>, wherein the polymerization catalyst contains at least one of N,N-dimethylcyclohexylamine and N,N-dicyclohexylmethylamine. <2-10> A polymerizable composition for an optical material, comprising a monomer for an optical material containing an episulfide compound and a polymerization catalyst, wherein the content of the polymerization catalyst relative to the total amount of the monomer for an optical material is 0.1150 parts by mass to 0.2000 parts by mass. [Example]

[0151] The polythiol compound used in this example can be produced by the method described in WO 2014 / 027665. In this example, the pKa was measured by the method described above.

[0152] Example A Hereinafter, the first and second embodiments of the present disclosure will be specifically described using Example A, but the first and second embodiments are not limited to these examples. The viscosity measurement method in Example A was the same as that described above.

[0153] The molded articles obtained in each of the Examples and Comparative Examples were evaluated as follows. (striae) The molded product was projected with an ultra-high pressure mercury lamp (light source model OPM-252HEG: manufactured by Ushio Inc.), and the transmitted image was visually observed and evaluated according to the following criteria. A: No striae were observed or no striae were clearly observed. Specifically, no striae with a length of 1.0 mm or more were visually observed within or outside a 15 mm radius from the center of the molded product. B: Although striae were observed, the product was generally acceptable. Specifically, striae of 1.0 mm or more in length were visually observed outside a 15 mm radius from the center of the molded product, but no striae of 1.0 mm or more in length were visually observed within a 15 mm radius from the center of the molded product, and the product was generally acceptable. C: Striae were observed and the product was unacceptable. Specifically, striae with a length of 1.0 mm or more were visually observed within and outside a 15 mm radius from the center of the molded product.

[0154] (Mold releasability) The releasability of the molded article when it was released from the mold was evaluated according to the following criteria. A: It peeled off without any force. B: It peeled off when force was applied. C: It peels off when force is applied, but there is a possibility that the mold or lens may be damaged. D: The film was not peeled off even when force was applied, and no product was obtained.

[0155] [Examples 1A to 6A] To 100.0 parts by mass of bis(2,3-epithiopropyl)disulfide (episulfide compound), 1.1 parts by mass of 2-(5-tert-butyl-2-hydroxyphenyl)benzotriazole (ultraviolet absorber) was added and dissolved by stirring for 30 minutes at 20° C. To this mixture, 10.0 parts by mass of a mixture (polythiol compound) mainly composed of 4,8-dimercaptomethyl-1,11-dimercapto-3,6,9-trithiaundecane, 4,7-dimercaptomethyl-1,11-dimercapto-3,6,9-trithiaundecane, and 5,7-dimercaptomethyl-1,11-dimercapto-3,6,9-trithiaundecane was added, followed by stirring at 20° C. for 10 minutes. Thereafter, N,N-dimethylcyclohexylamine [DCA, polymerization catalyst, pKa: 10.7] was added in an amount corresponding to the content shown in Table 1, and N,N-dicyclohexylmethylamine [DCH, polymerization catalyst, pKa: 11.0] was added in an amount corresponding to the content shown in Table 1, and the mixture was stirred at 15° C. for 5 minutes to form a homogeneous solution. The solution was degassed at 400 Pa for 10 minutes to obtain a polymerizable composition for optical materials. The content of the polymerization catalyst shown in Table 1 means the content of the polymerization catalyst relative to the total amount of the monomers for optical materials (that is, the episulfide compound and the polythiol compound). Table 1 shows the viscosity and thixotropy ratio of the polymerizable composition for optical materials measured with a Brookfield viscometer under conditions of 20° C. and 60 rpm. This polymerizable composition for optical materials was poured into the cavity of the mold at a rate of 10 g / sec while being filtered through a 1 μm PTFE filter. The molds used were of the following sizes: ·S=-6.25D, center thickness 1.1mm, peripheral thickness 9mm ·S=-2.25D, center thickness 1.1mm, peripheral thickness 4mm 4 curves, center thickness 2mm 4 curves, center thickness 7mm 4 curves, center thickness 10mm

[0156] In addition, the total amount of the monomers for optical materials in the polymerizable composition for optical materials was 32 g when S=-6.25D, 16 g when S=-2.25D, 14 g when the thickness at the center of the four curves was 2 mm, 50 g when the thickness at the center of the four curves was 7 mm, and 65 g when the thickness at the center of the four curves was 10 mm.

[0157] This cast product was placed in an insulated container at 25°C and left to stand for the time shown in Table 1 to allow adiabatic polymerization to occur. The hardened product was then released from the mold and further annealed at 110°C for 1 hour to obtain a molded product (lens). The results of striae and demolding properties of the obtained molded body are shown in Table 1. The amine content of the resulting molded article (that is, the cured product) was measured by gas chromatography mass spectrometry, and is shown in Table 1.

[0158] [Comparative Example 1A] Polymerizable compositions were obtained in the same manner as in Examples 1A to 6A, except that the amounts of catalyst were as shown in Table 1. The compositions were then injected into mold cavities and polymerized, but they did not completely cure. Therefore, evaluation of mold releasability and striae was not performed.

[0159] [Comparative example 2A] Polymerization was carried out in the same manner as in Comparative Example 1A, except that the cast product was cured using a polymerization program (temperature increase program) that cured the product in 42 hours. The cured molded product was released from the mold and further annealed at 110°C for 1 hour to obtain a molded product. The results of striae and demolding properties of the obtained molded body are shown in Table 1.

[0160] [Table 1]

[0161] As described above, in Examples 1A to 6A, which carried out a preparation step of preparing a polymerizable composition for an optical material, which contained a monomer for an optical material containing an episulfide compound and a polymerization catalyst, and in which the content of the polymerization catalyst relative to the total amount of the monomer for an optical material was 0.1150 parts by mass to 0.2000 parts by mass, molded articles with good demolding properties and striae could be obtained in a short time of 10 hours to 18 hours. Among them, in Examples 1A to 5A, in which the content of the polymerization catalyst relative to the total amount of the monomers for optical materials was 0.1200 parts by mass or more, molded articles with good demoldability and striae could be obtained in a shorter time. On the other hand, in Comparative Example 1A, in which the content of the polymerization catalyst relative to the total amount of the monomers for optical materials was less than 0.1150 parts by mass and the polymerizable composition for optical materials was allowed to stand in an adiabatic environment to carry out adiabatic polymerization, the mold releasability was poor, and a good molded product could not be obtained. In addition, in Comparative Example 2A, in which the content of the polymerization catalyst relative to the total amount of the monomers for optical materials was less than 0.1150 parts by mass, a molded product with good demolding properties and striae was obtained, but heating using a polymerization oven was required, and the polymerization time was also longer than in the Examples.

[0162] FIG. 1 shows a graph illustrating the relationship between polymerization time and temperature when a molded article is produced using the polymerizable compositions for optical materials of Example 1A, Example 2A to Example 4A, Example 5A, and Example 6A, with the total mass of the monomers for optical materials in the polymerizable composition for optical materials being 30 g.

[0163] Example B Hereinafter, the production method B of the first embodiment will be specifically explained using Example B, but the production method B of the first embodiment is not limited to these Examples. The viscosity measurement method in Example B was the same as that described above. In Example B, the amine content in the cured product was measured by the method described above. The molded articles obtained in each of the Examples and Comparative Examples were evaluated as follows.

[0164] (striae) The molded product was projected with an ultra-high pressure mercury lamp (light source model OPM-252HEG: manufactured by Ushio Inc.), and the transmitted image was visually observed and evaluated according to the following criteria. A: No striae were observed. Specifically, no striae with a length of 1.0 mm or more were visually observed within or outside a 15 mm radius from the center of the molded product. B: Although striae were observed, the product was generally acceptable. Specifically, striae of 1.0 mm or more in length were visually observed outside a 15 mm radius from the center of the molded product, but no striae of 1.0 mm or more in length were visually observed within a 15 mm radius from the center of the molded product, and the product was generally acceptable. C: Striae were observed and the product was unacceptable. Specifically, striae with a length of 1.0 mm or more were visually observed within and outside a 15 mm radius from the center of the molded product.

[0165] (Mold releasability) The releasability of the molded article when it was released from the mold was evaluated according to the following criteria. A: It peeled off without any force. B: It peeled off when force was applied. C: It peels off when force is applied, but there is a possibility that the mold or lens may be damaged. D: The film was not peeled off even when force was applied, and no product was obtained.

[0166] Example 1B To 100.0 parts by mass of bis(2,3-epithiopropyl)disulfide (episulfide compound), 1.1 parts by mass of 2-(5-tert-butyl-2-hydroxyphenyl)benzotriazole (ultraviolet absorber) was added and dissolved by stirring for 30 minutes at 20° C. To this mixture, 10.0 parts by mass of a mixture (polythiol compound) mainly composed of 4,8-dimercaptomethyl-1,11-dimercapto-3,6,9-trithiaundecane, 4,7-dimercaptomethyl-1,11-dimercapto-3,6,9-trithiaundecane, and 5,7-dimercaptomethyl-1,11-dimercapto-3,6,9-trithiaundecane was added and stirred at 20° C. for 10 minutes to obtain a homogeneous solution. To the resulting homogeneous solution, 0.02 parts by mass of N,N-dimethylcyclohexylamine (DCA, polymerization catalyst) was added and stirred at 20°C for 6 hours. The monomer for optical materials was polymerized while adjusting the viscosity, and the resulting solution was degassed at 400 Pa for 10 minutes to obtain a mixture containing a prepolymer. The viscosity of the mixture containing the prepolymer is shown in Table 2. To the resulting mixture, 0.1 parts by mass of N,N-dicyclohexylmethylamine (DCH, polymerization catalyst) was added and mixed at 20° C. to obtain a polymerizable composition for optical materials. Table 2 shows the value (also referred to as "refractive index A - refractive index B") obtained by subtracting the refractive index B of the prepolymer raw material composition, which is a composition before the prepolymer is formed and contains two or more different monomers for optical materials and a polymerization catalyst, from the refractive index A of the polymerizable prepolymer composition for optical materials. Table 2 shows the viscosity and thixotropy ratio of the polymerizable composition for optical materials measured with a Brookfield viscometer under conditions of 20° C. and 60 rpm.

[0167] The obtained polymerizable composition for an optical material was mixed again in a static mixer and then transferred to a casting mold (i.e., a mold). The viscosity of the polymerizable composition for an optical material when it was sent to a mold and cast (also referred to as casting viscosity) was adjusted to the value shown in Table 2. This polymerizable composition for optical materials was poured into the cavity of the mold at a rate of 10 g / sec while being filtered through a 1 μm PTFE filter. The molds used were of the following sizes: ·S=-6.25D, center thickness 1.1mm, peripheral thickness 9mm 4 curves, center thickness 2mm 4 curves, center thickness 7mm The cast product was placed in an insulated container at 25°C and left to stand for 5 hours to carry out adiabatic polymerization. The hardened molded product was then released from the mold and further annealed at 110°C for 1 hour to obtain a molded product (lens).

[0168] Example 2B A molded body (lens) was obtained in the same manner as in Example 1B, except that the DCA content was changed to 0.03 parts by mass. The cured molded body was released from the mold and further annealed at 110°C for 1 hour to obtain a molded body. The results of striae and demolding properties of the obtained molded body are shown in Table 1.

[0169] [Table 2]

[0170] As shown in Table 2, the example using the method for producing an optical material, which includes a preparation step of preparing two or more different monomers for optical materials and a polymerization catalyst in which the content of the two or more different monomers for optical materials is 0.1150 to 0.2000 parts by mass relative to the total amount of the two or more different monomers for optical materials, and a prepolymerization step of mixing at least a portion of the two or more different monomers for optical materials with at least a portion of the polymerization catalyst and polymerizing at least a portion of the two or more different monomers for optical materials to obtain a prepolymer, and in which at least one of the two or more different monomers for optical materials is an episulfide compound, showed excellent results in evaluation of striae, thereby suppressing striae.In addition, the polymerization time was 5 hours, which shortened the production time of the optical material.

[0171] The disclosures of Japanese Patent Application No. 2020-041402, filed on March 10, 2020, and Japanese Patent Application No. 2020-194660, filed on November 24, 2020, are incorporated herein by reference in their entirety. All publications, patent applications, and technical standards mentioned in this specification are herein incorporated by reference to the same extent as if each individual publication, patent application, or technical standard was specifically and individually indicated to be incorporated by reference.

Claims

[Claim 1] A cured product of two or more different monomers for optical materials, wherein at least one of the two or more different monomers for optical materials is an episulfide compound, the cured product is free of striae having a length of 1.0 mm or more within a range of a radius of 15 mm from the center of the cured product, and the amine content measured by gas chromatography mass spectrometry is 0.0639 mass% or more and 0.0747 mass% or less, and the two or more different monomers for optical materials further comprise 5,7-dimercaptomethyl-1,11-dimercapto-3,6,9-trithiaundecane, 4,7-dimercaptomethyl-1,11-dimercapto-3,6,9-trithiaundecane, and 4,8-dimercaptomethyl-1,11-dimercapto-3,6,9-trithiaundecane, The cured product, wherein the amine comprises N,N-dimethylcyclohexylamine and N,N-dicyclohexylmethylamine.

Citation Information

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