Composition, polymer, cured product, molded body, and method for producing polymethyl methacrylate

A composition of methyl methacrylate, alcohol with 1 to 3 carbon atoms, and optionally methyl pivalate, addresses the need for improved heat resistance in polymethyl methacrylate molded articles, achieving higher 5% weight loss and glass transition temperatures.

JP2025172684AActive Publication Date: 2025-11-26SUMITOMO CHEM CO LTD
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Patent Information

Application Number
JP2025028121
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2024-05-13
Filing Date
2025-02-25
Publication Date
2025-11-26
Estimated Expiration
2045-02-25

AI Technical Summary

Technical Problem

There is a need for improving the quality of polymethyl(meth)acrylate by optimizing the composition of raw material monomers to enhance the heat resistance of molded articles made from recycled polymethyl(meth)acrylate.

Method used

A composition containing methyl methacrylate, an alcohol with 1 to 3 carbon atoms, and optionally methyl pivalate, with specific concentration ranges for these components, is used to produce polymethyl methacrylate, which results in molded articles with improved heat resistance.

Benefits of technology

The composition leads to molded articles with enhanced heat resistance, as indicated by increased 5% weight loss temperature and glass transition temperature, demonstrating improved durability.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide: a composition from which a molded body having excellent heat resistance is obtained; a polymer, a cured product and a molded body which are each obtained by using the composition; and a method for producing a polymethyl methacrylate by using the composition.SOLUTION: The composition comprises methyl methacrylate and an alcohol having 1-3 carbon atoms. The concentration of the alcohol having 1-3 carbon atoms is more than 0 mass ppm and less than or equal to 10000 mass ppm of the entire composition.SELECTED DRAWING: None
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Description

[Technical Field]

[0001] The present disclosure relates to a composition, a polymer, a cured product, a molded article, and a method for producing polymethyl methacrylate. [Background technology]

[0002] Polymethyl(meth)acrylate obtained by polymerizing methyl(meth)acrylate is used in various fields as a resin material with excellent transparency and weather resistance. In recent years, with the rise in resource prices and growing awareness of environmental issues, products (molded articles) containing polymethyl(meth)acrylate used for the various applications described above are being collected and recycled.

[0003] Methods for recycling polymethyl(meth)acrylate include, for example, material recycling, in which recovered molded bodies are subjected to a molding process again to produce new molded bodies; chemical recycling, in which recovered molded bodies are heat-treated to thermally decompose (depolymerize) the polymethyl(meth)acrylate to recover the methyl(meth)acrylate, and the recovered methyl(meth)acrylate (sometimes referred to as recycled MMA or recycled MA) is used to produce new molded bodies; and thermal recycling, in which recovered molded bodies are burned as fuel and the combustion energy is used directly as a heat source and further used to generate electricity.

[0004] Furthermore, in response to the recent diversification of uses for polymethyl(meth)acrylate, techniques for improving the quality of polymethyl(meth)acrylate have been investigated. For example, as a polymerization apparatus suitable for obtaining high-quality polymethyl(meth)acrylate, a polymerization apparatus that suppresses the formation of gelled products in a reaction vessel in which raw material monomers and a polymerization initiator are reacted has been proposed (see Patent Document 1). [Prior art documents] [Patent documents]

[0005] [Patent Document 1] Japanese Patent Application Laid-Open No. 2012-102190 Summary of the Invention [Problem to be solved by the invention]

[0006] In addition to the improvement of the polymerization process of raw material monomers as described in Patent Document 1, there is a need for a method for improving the quality of polymethyl(meth)acrylate by optimizing the composition of raw material monomers. In view of the above circumstances, an object of one embodiment of the present disclosure is to provide a composition that can give a molded article having excellent heat resistance, a polymer, a cured product, and a molded article that can be obtained using this composition, and a method for producing polymethyl methacrylate that uses this composition. [Means for solving the problem]

[0007] Means for solving the above problems include the following embodiments. <1> Contains methyl methacrylate and an alcohol having 1 to 3 carbon atoms, A composition having a concentration of an alcohol having 1 to 3 carbon atoms of more than 0 ppm by mass and not more than 10,000 ppm by mass in the entire composition. <2> Further containing methyl pivalate, The concentration of methyl pivalate is more than 0 ppm by mass and 10,000 ppm by mass or less in the entire composition. <1> The composition described in <3> The concentration of the alcohol having 1 to 3 carbon atoms is more than 0 ppm by mass and 500 ppm by mass or less in the entire composition. <1> The composition described in <4> Does not contain methyl pivalate <3> The composition described in <5> The alcohol having 1 to 3 carbon atoms is methanol and / or ethanol. <1> ~ <4> The composition according to any one of the preceding claims. <6> The content of methyl methacrylate in the entire composition is 85% by mass or more. <1> ~ <5> The composition according to any one of the preceding claims. <7> The content of methyl methacrylate in the entire composition is 90% by mass or more. <1> ~ <6> The composition according to any one of the preceding claims. <8> The methyl methacrylate comprises recycled methyl methacrylate or bio-derived methyl methacrylate; <1> ~ <7> The composition according to any one of the preceding claims. <9> Further containing (meth)acrylic acid esters other than methyl methacrylate, <1> ~ <8> The composition according to any one of the preceding claims. <10> Further comprising a polymer containing structural units derived from methyl methacrylate, <1> ~ <9> The composition according to any one of the preceding claims. <11> <1> ~ <10> A polymer comprising a structural unit derived from methyl methacrylate contained in the composition according to any one of claims 1 to 4. <12> <11> A molded article comprising the polymer described in 1. <13> <1> ~ <10> A cured product of the composition according to any one of claims 1 to 4. <14> <13> A molded article comprising the cured product according to claim 1. <15> <1> ~ <10> 10. A method for producing polymethyl methacrylate, comprising the step of polymerizing methyl methacrylate contained in the composition according to any one of claims 1 to 9. [Effects of the Invention]

[0008] According to one embodiment of the present disclosure, there are provided a composition that can give a molded article having excellent heat resistance, a polymer, a cured product, and a molded article that can be obtained using this composition, and a method for producing polymethyl methacrylate that uses this composition. [Brief explanation of the drawings]

[0009] [Figure 1] 1 is a graph showing the relationship between the methanol concentration of the compositions prepared in Examples 1-1 to 1-4 and Comparative Example 1-1 and the 5% weight loss temperature of the cast plate. [Figure 2] 1 is a graph showing the relationship between the methanol concentration of the compositions prepared in Examples 1-1 to 1-4 and Comparative Example 1-1 and the glass transition temperature of the cast plates. [Figure 3] 1 is a graph showing the relationship between the methanol concentration of the compositions prepared in Examples 2-1 to 2-4 and Comparative Example 2-1 and the glass transition temperature of the cast plates. [Figure 4] 1 is a graph showing the relationship between the methanol concentration of the compositions prepared in Examples 2-1 to 2-4 and Comparative Example 2-1 and the 5% weight loss temperature of the cast plate. [Figure 5] 1 is a graph showing the relationship between the ethanol concentration of the compositions prepared in Examples 1-5 to 1-8 and Comparative Example 1-2 and the 5% weight loss temperature of the cast plates. [Figure 6] 1 is a graph showing the relationship between the ethanol concentration of the compositions prepared in Examples 1-5 to 1-8 and Comparative Example 1-2 and the glass transition temperature of the cast plates. [Figure 7] 1 is a graph showing the relationship between the ethanol concentration of the compositions prepared in Examples 2-5 to 2-9 and Comparative Example 2-2 and the 5% weight loss temperature of the cast plates. DETAILED DESCRIPTION OF THE INVENTION

[0010] Hereinafter, embodiments of the present invention will be described, but the present invention is not limited to the following embodiments. In this specification, numerical ranges indicated using "to" include the numerical values ​​before and after "to" as the minimum and maximum values, respectively. In the present specification, the upper or lower limit of one numerical range may be replaced with the upper or lower limit of another numerical range. In addition, in the present specification, the upper or lower limit of a numerical range may be replaced with a value shown in the examples.

[0011] <Composition> The composition of the present disclosure comprises: Contains methyl methacrylate and an alcohol having 1 to 3 carbon atoms, The composition has a concentration of the alcohol having 1 to 3 carbon atoms of more than 0 ppm by mass and not more than 10,000 ppm by mass in the entire composition.

[0012] As shown in the examples described later, a molded article obtained using a composition in which a C1-3 alcohol is added to a composition containing methyl methacrylate exhibits superior heat resistance compared to a molded article obtained using a composition in which a C1-3 alcohol is not added to a composition containing methyl methacrylate. Specific examples of the heat resistance of a molded product include the 5% weight loss temperature and the glass transition temperature. The higher the 5% weight loss temperature of the molded product, the less susceptible the molded product is to thermal decomposition, and the molded product can be judged to have excellent durability (thermal stability). The higher the glass transition temperature of the molded product, the more excellent the heat resistance of the molded product tends to be. A molded article obtained using the composition of the present disclosure has at least an improved 5% weight loss temperature or an improved glass transition temperature, or both improved temperatures.

[0013] One embodiment of the composition of the present disclosure is a composition containing methyl methacrylate, methyl pivalate, and an alcohol having 1 to 3 carbon atoms, wherein the concentration of the alcohol having 1 to 3 carbon atoms is greater than 0 ppm by mass and not greater than 10,000 ppm by mass in the total composition. Another embodiment of the composition of the present disclosure is a composition containing methyl methacrylate and a C1-3 alcohol, wherein the concentration of the C1-3 alcohol is greater than 0 ppm by mass and not greater than 500 ppm by mass in the total composition. The composition of this embodiment may not contain methyl pivalate. The components contained in the composition of this embodiment (e.g., (meth)acrylic acid ester, low-content components, additives) are the same as those in the embodiment containing methyl pivalate.

[0014] (methyl methacrylate) The compositions of the present disclosure include methyl methacrylate. In this disclosure, "methyl methacrylate" refers to methyl methacrylate that is essentially free of impurities such as by-products generated during the synthesis of methyl methacrylate. However, the methyl methacrylate in this disclosure is not limited to this, provided that the purpose of the invention is not impaired. In other words, "methyl methacrylate" may contain impurities that cannot be completely removed by conventional purification methods, or may contain impurities at a level that cannot be detected by conventional detection methods.

[0015] The content of methyl methacrylate in the composition is not particularly limited and can be selected depending on the application of polymethyl methacrylate obtained using the composition, etc. The content of methyl methacrylate may be, for example, 85% by mass or more, 90% by mass or more, 95% by mass or more, or 99% by mass or more of the total composition. When the content of methyl methacrylate in the composition is within the above range, it is preferable from the viewpoint of at least heat resistance or transparency (light transmittance) of a polymer obtained by polymerizing the composition and a molded article containing the same.

[0016] The methyl methacrylate contained in the composition may be synthesized by a known synthesis method, which is not particularly limited and may be the ACH method, the C4 direct oxidation method, or the alpha method.

[0017] The methyl methacrylate contained in the composition may include recycled methyl methacrylate. In this disclosure, recycled methyl methacrylate means methyl methacrylate obtained by depolymerization of polymethyl methacrylate (a reaction in which a polymer is decomposed to produce monomers). Depolymerization of polymethyl methacrylate can be effected, for example, by subjecting polymethyl methacrylate to heat treatment. The source of polymethyl methacrylate, which is the raw material for recycled methyl methacrylate, is not particularly limited as long as it is possible to recover methyl methacrylate. For example, the source of polymethyl methacrylate may be a molded article containing polymethyl methacrylate.

[0018] The methyl methacrylate included in the composition may include bio-derived methyl methacrylate. In the present disclosure, bio-derived methyl methacrylate refers to methyl methacrylate synthesized from a biologically derived raw material. The biologically derived raw material may be a plant-derived raw material or an animal-derived raw material, and preferably is a raw material derived from vegetable oil.

[0019] (Alcohols with 1 to 3 carbon atoms) The composition of the present disclosure contains an alcohol having 1 to 3 carbon atoms. The concentration of the alcohol having 1 to 3 carbon atoms contained in the composition is not particularly limited, as long as it is more than 0 ppm by mass and 10,000 ppm by mass or less of the total composition.

[0020] In the present disclosure, "alcohol having 1 to 3 carbon atoms" means at least one compound selected from the group consisting of methanol, ethanol, 1-propanol, and 2-propanol. When the composition contains two or more compounds selected from the above group, the total concentration of these compounds corresponds to the concentration of the above-mentioned alcohol having 1 to 3 carbon atoms. The composition may contain at least methanol as the alcohol having 1 to 3 carbon atoms. The alcohol having 1 to 3 carbon atoms is preferably methanol and / or ethanol.

[0021] From the viewpoint of the heat resistance of the molded body, the concentration of the alcohol having 1 to 3 carbon atoms contained in the composition is preferably 10 ppm by mass or more of the entire composition, more preferably 20 ppm by mass or more, even more preferably 50 ppm by mass or more, and even more preferably 100 ppm by mass or more.

[0022] The concentration of the alcohol having 1 to 3 carbon atoms contained in the composition may be, for example, less than 10,000 ppm by mass of the total composition, 9,000 ppm by mass or less, 8,000 ppm by mass or less, 6,000 ppm by mass or less, 500 ppm by mass or less, less than 500 ppm by mass, 450 ppm by mass or less, 400 ppm by mass or less, 350 ppm by mass or less, 300 ppm by mass or less, 250 ppm by mass or less, or 200 ppm by mass or less.

[0023] When the composition does not contain methyl pivalate, the concentration of the alcohol having 1 to 3 carbon atoms contained in the composition may be selected from the range of more than 0 ppm by mass and not more than 500 ppm by mass. When the composition does not contain methyl pivalate, the concentration of the alcohol having 1 to 3 carbon atoms contained in the composition may be, for example, less than 500 ppm by mass of the entire composition, 450 ppm by mass or less, 400 ppm by mass or less, 350 ppm by mass or less, 300 ppm by mass or less, 250 ppm by mass or less, or 200 ppm by mass or less. When the composition does not contain methyl pivalate, the concentration of the alcohol having 1 to 3 carbon atoms contained in the composition may be, for example, 5 ppm by mass or more, 10 ppm by mass or more, 20 ppm by mass or more, 30 ppm by mass or more, 40 ppm by mass or more, 50 ppm by mass or more, or 100 ppm by mass or more of the total composition.

[0024] When the composition contains methyl pivalate, the concentration of the alcohol having 1 to 3 carbon atoms contained in the composition may be selected from the range of more than 0 ppm by mass and not more than 10,000 ppm by mass. When the composition contains methyl pivalate, the concentration of the alcohol having 1 to 3 carbon atoms contained in the composition is, for example, less than 10,000 ppm by mass, 9,000 ppm by mass or less, based on the total composition. It may be 8500 ppm by mass or less, 8000 ppm by mass or less, 7000 ppm by mass or less, or 6000 ppm by mass or less. When the composition contains methyl pivalate, the concentration of the alcohol having 1 to 3 carbon atoms contained in the composition may be, for example, 10 ppm by mass or more, 50 ppm by mass or more, 100 ppm by mass or more, 300 ppm by mass or more, 500 ppm by mass or more, 800 ppm by mass or more, or 1000 ppm by mass or more of the entire composition.

[0025] The composition of the present disclosure contains an alcohol having 1 to 3 carbon atoms, and thus is a composition that can give a molded article with excellent heat resistance. This effect is unexpected, and although the mechanism and mechanism behind it are unknown, the following reasons are thought to be the cause. It is presumed that the hydroxyl group in the alcohol having 1 to 3 carbon atoms interacts with a polar group, such as an alkoxy group or a carbonyl group, in a compound such as methyl methacrylate or methyl pivalate contained in the composition of the present disclosure, thereby curing the composition in a state in which heat resistance is improved. In the case of an alcohol having 4 or more carbon atoms, the above-mentioned interaction may be inhibited due to steric hindrance caused by the alkyl group of the alcohol. In order to reduce the steric hindrance caused by the alkyl group of the alcohol, an alcohol having 1 to 3 carbon atoms is used in the composition of the present disclosure. In order to reduce the steric hindrance caused by the alkyl group of the alcohol, the alcohol having 1 to 3 carbon atoms is preferably methanol and / or ethanol. Furthermore, if the concentration of the C1-3 alcohol in the composition is too high, the 5% weight loss temperature will be low, and the heat resistance of the cured product will tend to be low, while if the concentration in the composition is too low, the above-mentioned interaction due to the C1-3 alcohol will be difficult to obtain, and heat resistance will tend to be difficult to obtain. Therefore, from the viewpoint of heat resistance, the concentration of the C1-3 alcohol in the composition is preferably within the above range.

[0026] (Methyl pivalate) The compositions of the present disclosure may further contain methyl pivalate. When the composition contains methyl pivalate, the concentration of methyl pivalate is not particularly limited as long as it is more than 0 ppm by mass and not more than 10,000 ppm by mass of the entire composition.

[0027] As will be shown in the Reference Examples described later, when methyl pivalate is added to a composition containing methyl methacrylate, the glass transition temperature of a molded article obtained using the composition increases, improving the heat resistance. As will be shown in the examples below, when an alcohol having 1 to 3 carbon atoms is added together with methyl pivalate to a composition containing methyl methacrylate, the heat resistance of a molded article obtained using the composition is further improved.

[0028] From the viewpoint of durability of the molded article, the concentration of methyl pivalate contained in the composition is preferably 10 ppm by mass or more of the total composition, more preferably 50 ppm by mass or more, even more preferably 100 ppm by mass or more, particularly preferably 200 ppm by mass or more, and particularly preferably 300 ppm by mass or more.

[0029] The upper limit of the concentration of methyl pivalate contained in the composition may be, for example, 5000 ppm by mass or less, 2000 ppm by mass or less, 1000 ppm by mass or less, or 600 ppm by mass or less.

[0030] If necessary, the composition may contain a component other than methyl methacrylate, alcohol having 1 to 3 carbon atoms, and methyl pivalate. For example, the composition may contain a (meth)acrylic acid ester other than methyl methacrylate, a polymer containing a structural unit derived from methyl methacrylate, a low-content component, or an additive, as described below.

[0031] ((Meth)acrylic acid ester) The composition may contain, in addition to methyl methacrylate, a (meth)acrylic acid ester other than methyl methacrylate (hereinafter also simply referred to as a (meth)acrylic acid ester). Specific examples of (meth)acrylic acid esters include methyl acrylate, ethyl (meth)acrylate, propyl (meth)acrylate, n-butyl (meth)acrylate, sec-butyl (meth)acrylate, tert-butyl (meth)acrylate, cyclohexyl (meth)acrylate, benzyl (meth)acrylate, 2-ethylhexyl (meth)acrylate, 2-hydroxyethyl (meth)acrylate, and cyclopentanyl (meth)acrylate. Among these, methyl acrylate or ethyl (meth)acrylate is preferred, and methyl acrylate is more preferred. These may be used alone or in combination of two or more. In the present disclosure, the term "(meth)acrylic acid ester" indicates that it may be either an acrylic acid ester or a methacrylic acid ester. The (meth)acrylic acid ester may be contained in the composition as a by-product produced during the production of methyl methacrylate or during the regeneration treatment of polymethyl methacrylate, or may be intentionally mixed into the composition.

[0032] When the composition contains a (meth)acrylic acid ester, the concentration thereof is preferably 50,000 ppm by mass or less, more preferably 40,000 ppm by mass or less, and even more preferably 30,000 ppm by mass or less, of the entire composition. When the composition contains a (meth)acrylic acid ester, the concentration thereof may be 1 ppm by mass or more, 2 ppm by mass or more, or 5 ppm by mass or more of the total composition.

[0033] The composition may contain, in addition to methyl methacrylate, a polymer containing structural units derived from methyl methacrylate. This polymer may be a homopolymer of methyl methacrylate or a copolymer of methyl methacrylate with another (meth)acrylic acid ester polymerizable with methyl methacrylate. Examples of other (meth)acrylic acid esters polymerizable with methyl methacrylate include the same as those described above.

[0034] (low content ingredients) The composition may contain low content components other than methyl pivalate and the alcohol having 1 to 3 carbon atoms. The low content components may be contained in the composition as by-products generated during the production of methyl methacrylate or during the regeneration treatment of polymethyl methacrylate. In the present disclosure, a low content component means a component that is contained in the composition at a concentration of 10,000 ppm by mass or less.

[0035] Examples of low content components other than methyl pivalate and alcohols having 1 to 3 carbon atoms that the composition may contain include carboxylic acid esters other than methyl pivalate, aromatic hydrocarbon compounds, aliphatic hydrocarbon compounds, and butyl acrylate. The composition may contain only one or two or more low content components other than methyl pivalate.

[0036] Specific examples of carboxylic acid esters other than methyl pivalate include methyl 2-methyl-2-butenoate, methyl 3-methyl-2-butenoate, methyl 3-methyl-3-butenoate, methyl isobutyrate, methyl propionate, methyl 2,4-dimethyl-4-pentenoate, methyl tiglate, dimethyl itaconate, and dimethyl 2-methyl-5-methylenehexanedioate. Specific examples of aromatic hydrocarbon compounds include toluene and styrene. Specific examples of the aliphatic hydrocarbon compound include 1-octene and 1-octadecene.

[0037] When the composition contains low-content components other than methyl pivalate and the alcohol having 1 to 3 carbon atoms, the concentration of each low-content component is preferably 8000 ppm by mass or less, more preferably 6000 ppm by mass or less, and even more preferably 5000 ppm by mass or less, of the total composition. When the composition contains low content components other than methyl pivalate and the alcohol having 1 to 3 carbon atoms, the concentration of each low content component may be 1 ppm by mass or more, 2 ppm by mass or more, or 5 ppm by mass or more of the total composition.

[0038] (additives) If necessary, the composition may contain additives, such as a mold release agent, a polymerization regulator, a polymerization initiator, an ultraviolet absorber, and a colorant. The composition may contain one or more additives.

[0039] Examples of release agents that the composition may contain include higher fatty acid esters, higher fatty alcohols, higher fatty acids, higher fatty acid amides, higher fatty acid metal salts, and fatty acid derivatives. Specific examples of mold release agents include sodium di-(2-ethylhexyl) sulfosuccinate, stearyl alcohol, methyl stearate, and stearic acid amide.

[0040] The composition may contain one or more types of release agents. The content of the release agent in the composition can be, for example, 0.01% by mass to 1.0% by mass of the entire composition.

[0041] The polymerization regulator (an additive that regulates the polymerization rate in a polymerization reaction) that may be contained in the composition may be any suitable polymerization regulator known in the art. Examples of such polymerization regulators include compounds that can regulate the polymerization rate in a direction that decreases the polymerization rate. Specific examples of the polymerization regulator include mercaptan compounds such as n-butyl mercaptan and n-octyl mercaptan, terpenoid compounds such as limonene, myrcene, α-terpinene, β-terpinene, γ-terpinene, terpinolene, β-pinene, and α-pinene, and α-methylstyrene dimer.

[0042] The composition may contain one or more types of polymerization regulators. The content of the polymerization regulator in the composition can be, for example, 0.001% by mass to 0.5% by mass of the total composition.

[0043] The polymerization initiator that the composition may contain includes a radical polymerization initiator, a diacyl peroxide initiator, a dialkyl peroxide initiator, a peroxyester initiator, a percarbonate initiator, and a peroxyketal initiator.

[0044] Specific examples of radical polymerization initiators include azo compounds such as 1,1′-azobis(cyclohexane-1-carbonitrile), 2,2′-azobis(2,4,4-trimethylpentene), 2,2′-azobis(2-methylpropane), 2-cyano-2-propylazoformamide, 2,2′-azobis(2-hydroxymethylpropionate), 2,2′-azobis(2-methylbutyronitrile), 2,2′-azobisisobutyronitrile, 2,2′-azobis[2-(2-imidazolin-2-yl)propane], and dimethyl 2,2′-azobis(2-methylpropionate).

[0045] Specific examples of diacyl peroxide initiators and dialkyl peroxide initiators include dicumyl peroxide, tert-butylcumyl peroxide, di-tert-butyl peroxide, benzoyl peroxide, and lauroyl peroxide.

[0046] Specific examples of peroxyester initiators include tert-butylperoxy-3,3,5-trimethylhexanoate, tert-butylperoxylaurate, tert-butylperoxyisobutyrate, tert-butylperoxyacetate, di-tert-butylperoxyhexahydroterephthalate, di-tert-butylperoxyazelate, tert-butylperoxy-2-ethylhexanoate, 1,1,3,3-tetramethylbutylperoxy-2-ethylhexanoate, and tert-amylperoxy-2-ethylhexanoate.

[0047] Specific examples of percarbonate initiators include tert-butylperoxyallyl carbonate and tert-butylperoxyisopropyl carbonate.

[0048] Specific examples of peroxyketal initiators include 1,1-di-tert-butylperoxycyclohexane, 1,1-di-tert-butylperoxy-3,3,5-trimethylcyclohexane, and 1,1-di-tert-hexylperoxy-3,3,5-trimethylcyclohexane.

[0049] The composition may contain one or more types of polymerization initiators. The content of the polymerization initiator in the composition can be, for example, 0.01% by mass to 5% by mass of the entire composition.

[0050] Examples of UV absorbers that the composition may contain include benzophenone UV absorbers, cyanoacrylate UV absorbers, benzotriazole UV absorbers, malonic acid ester UV absorbers, and oxalanilide UV absorbers.

[0051] Specific examples of ultraviolet absorbers include 2-(2'-hydroxy-5'-methylphenyl)benzotriazole, 2-hydroxy-4-n-octylbenzophenone, 2-(3-tert-butyl-2-hydroxy-5-methylphenyl)-5-chlorobenzotriazole, 2-(2-hydroxy-3,5-di-tert-pentylphenyl)benzotriazole, and 2,4-di-tert-butylphenyl-3,5-di-tert-butyl-4-hydroxybenzoate.

[0052] The composition may contain one or more types of ultraviolet absorbers. The content of the ultraviolet absorber in the composition can be, for example, 0.001% by mass to 1% by mass of the entire composition.

[0053] Colorants that the composition may contain include perylene dyes, perinone dyes, pyrazolone dyes, methine dyes, coumarin dyes, quinophthalone dyes, quinoline dyes, anthraquinone dyes, asdolapyridone dyes, thioindigo dyes, coumarin dyes, isoindolinone pigments, sichetopyrrolopyrrole pigments, condensed azo pigments, benzimidazolone pigments, dioxazine pigments, copper phthalocyanine pigments, and quinacridone pigments.

[0054] The composition may contain one or more types of colorants. The content of the colorant in the composition is, for example, 1.0 × 10 -8 The content can be 0.5% by mass to 0.5% by mass.

[0055] When the composition contains additives, the total content thereof may be 15% by mass or less, 10% by mass or less, 5% by mass or less, or 1% by mass or less of the total composition. When the composition contains additives, the total content thereof may be 0.01% by mass or more, 0.05% by mass or more, or 0.1% by mass or more of the total composition.

[0056] The composition of the present disclosure may be used immediately after preparation, or may be stored before use. The storage conditions for storage are not particularly limited, but may be, for example, 0°C to 45°C. From the viewpoint of ensuring good quality, the storage temperature is preferably selected from the range of 0°C to 39°C, more preferably selected from the range of about 25°C ± 10°C, and even more preferably selected from the range of about 25°C to 30°C.

[0057] <Polymer, cured product, and molded product> The polymer of the present disclosure is a polymer containing structural units derived from methyl methacrylate contained in the composition of the present disclosure described above. Here, the polymer is obtained by polymerizing components involved in polymerization contained in the composition, and has structural units derived from the components involved in polymerization. The polymer of the present disclosure may contain structural units derived from methyl methacrylate contained in the composition of the present disclosure and structural units derived from other polymerization components. The weight-average molecular weight of the polymer of the present disclosure is not particularly limited and can be selected depending on the application of the polymer. The cured product of the present disclosure is a cured product of the composition of the present disclosure described above. Here, the cured product is a product obtained by curing the composition and may contain components that are not involved in polymerization. However, depending on the method for curing the composition, it may be considered to be the same as the above-mentioned polymer (i.e., not containing components that are not involved in polymerization). The molded article of the present disclosure includes the polymer or cured product of the present disclosure described above. If the cured product can be considered the same as the polymer, the molded article will include a polymer of the composition of the present disclosure. The molded article is preferably a molded article containing a cured product obtained by curing only the composition of the present disclosure. The molded article may also be an object obtained by molding the polymer or cured product into any shape.

[0058] The polymer, cured product, and molded article of the present disclosure contain an alcohol having 1 to 3 carbon atoms. The polymer, cured product and molded article may contain at least methanol as the alcohol having 1 to 3 carbon atoms. The alcohol having 1 to 3 carbon atoms is preferably methanol and / or ethanol. The concentration of the alcohol having 1 to 3 carbon atoms contained in the polymer, cured product, or molded article is not particularly limited, as long as it is more than 0 ppm by mass and 10,000 ppm by mass or less relative to the total mass of the polymer, cured product, or molded article. The polymer, cured product, and molded article of the present disclosure have excellent heat resistance due to the inclusion of an alcohol having 1 to 3 carbon atoms. The mechanism and mechanism behind this are unknown, but are presumed as described above.

[0059] From the viewpoint of the heat resistance of the molded product, the concentration of the alcohol having 1 to 3 carbon atoms contained in the polymer, cured product, and molded product is preferably 10 ppm by mass or more, more preferably 20 ppm by mass or more, even more preferably 50 ppm by mass or more, and even more preferably 100 ppm by mass or more, relative to the total mass of the polymer, cured product, or molded product.

[0060] The concentration of the alcohol having 1 to 3 carbon atoms contained in the polymer, cured product, and molded article may be, for example, less than 10,000 ppm by mass, 9,000 ppm by mass or less, 8,000 ppm by mass or less, 6,000 ppm by mass or less, 500 ppm by mass or less, less than 500 ppm by mass, 450 ppm by mass or less, 400 ppm by mass or less, 350 ppm by mass or less, 300 ppm by mass or less, 250 ppm by mass or less, or 200 ppm by mass or less, relative to the total mass of the polymer, cured product, or molded article.

[0061] When the polymer, cured product, or molded product does not contain methyl pivalate, the concentration of the alcohol having 1 to 3 carbon atoms contained in the polymer, cured product, or molded product may be selected from the range of more than 0 ppm by mass to 500 ppm by mass or less, relative to the total mass of the polymer, cured product, or molded product. When the polymer, cured product, and molded product do not contain methyl pivalate, the concentration of the alcohol having 1 to 3 carbon atoms contained in the polymer, cured product, and molded product may be, for example, less than 500 ppm by mass, 450 ppm by mass or less, 400 ppm by mass or less, 350 ppm by mass or less, 300 ppm by mass or less, 250 ppm by mass or less, or 200 ppm by mass or less, relative to the total mass of the polymer, cured product, or molded product. When the polymer, cured product, and molded product do not contain methyl pivalate, the concentration of the alcohol having 1 to 3 carbon atoms contained in the polymer, cured product, and molded product may be, for example, 5 ppm by mass or more, 10 ppm by mass or more, 20 ppm by mass or more, 30 ppm by mass or more, 40 ppm by mass or more, 50 ppm by mass or more, or 100 ppm by mass or more, relative to the total mass of the polymer, cured product, or molded product.

[0062] Within the above range, when the concentration of the alcohol having 1 to 3 carbon atoms is less than 500 ppm by mass, the heat resistance is further improved; specifically, the 5% weight loss temperature and the glass transition temperature are further increased. Furthermore, when the concentration of methanol is less than 500 ppm by mass, in addition to improving the heat resistance (5% weight loss temperature and the glass transition temperature), the residual MMA concentration is also reduced. Such polymers, cured products, and molded articles exhibit excellent durability or heat resistance due to the low residual MMA content.

[0063] When the polymer, cured product, or molded product contains methyl pivalate, the concentration of the alcohol having 1 to 3 carbon atoms contained in the polymer, cured product, or molded product may be selected from the range of more than 0 ppm by mass and not more than 10,000 ppm by mass, relative to the total mass of the polymer, cured product, or molded product. When the polymer, cured product, or molded article contains methyl pivalate, the concentration of the alcohol having 1 to 3 carbon atoms contained in the polymer, cured product, or molded article may be, for example, less than 10,000 ppm by mass, 9,000 ppm by mass or less, 8,500 ppm by mass or less, 8,000 ppm by mass or less, 7,000 ppm by mass or less, or 6,000 ppm by mass or less, relative to the total mass of the polymer, cured product, or molded article. When the polymer, cured product, or molded product contains methyl pivalate, the concentration of the alcohol having 1 to 3 carbon atoms contained in the polymer, cured product, or molded product may be, for example, 10 ppm by mass or more, 50 ppm by mass or more, 100 ppm by mass or more, 300 ppm by mass or more, 500 ppm by mass or more, 800 ppm by mass or more, or 1000 ppm by mass or more, relative to the total mass of the polymer, cured product, or molded product.

[0064] The polymer, cured product, and molded article of the present disclosure may further contain methyl pivalate. When the polymer, cured product, or molded article contains methyl pivalate, the concentration of methyl pivalate is not particularly limited as long as it is more than 0 ppm by mass and not more than 10,000 ppm by mass relative to the total mass of the polymer, cured product, or molded article.

[0065] From the viewpoint of heat resistance, the concentration of methyl pivalate contained in the polymer, cured product, and molded article is preferably 10 ppm by mass or more, more preferably 50 ppm by mass or more, even more preferably 100 ppm by mass or more, particularly preferably 200 ppm by mass or more, and particularly preferably 300 ppm by mass or more, relative to the total mass of the polymer, cured product, or molded article.

[0066] The concentration of methyl pivalate contained in the polymer, cured product, and molded article may be, for example, 5000 ppm by mass or less, 2000 ppm by mass or less, 1000 ppm by mass or less, or 600 ppm by mass or less, relative to the total mass of the polymer, cured product, or molded article.

[0067] When the polymer, cured product, and molded article contain methyl pivalate, the concentration of methyl pivalate is preferably more than 0 ppm by mass and not more than 10,000 ppm by mass, and the concentration of the alcohol having 1 to 3 carbon atoms is preferably more than 0 ppm by mass and not more than 10,000 ppm by mass, which tends to improve at least one of the 5% weight loss temperature and glass transition temperature of the molded article. From the viewpoint of improving both the 5% weight loss temperature and the glass transition temperature of the molded body, the above concentrations are preferably such that the concentration of methyl pivalate is more than 0 ppm by mass and not more than 10,000 ppm by mass, and the concentration of the alcohol having 1 to 3 carbon atoms is more than 0 ppm by mass and less than 10,000 ppm by mass. The preferred ranges for the combination of the concentration of methyl pivalate and the concentration of the alcohol having 1 to 3 carbon atoms may be any combination of appropriate ranges within the above-mentioned respective concentration ranges.

[0068] Whether the polymer and cured product of the present disclosure contain methyl methacrylate, an alcohol having 1 to 3 carbon atoms, methyl pivalate, or other components can be determined by known analytical methods. Examples of known analytical methods include gas chromatography and liquid chromatography. Whether the composition of the present disclosure contains methyl methacrylate, methyl pivalate, an alcohol having 1 to 3 carbon atoms, or other components can also be determined by known analytical methods similar to those described above. Examples of known analytical methods include gas chromatography and liquid chromatography.

[0069] From the viewpoint of the heat resistance of the molded product, the 5% weight loss temperature of the polymer, cured product, and molded product is preferably 276°C or higher, more preferably 277°C or higher, even more preferably 278°C or higher, particularly preferably 280°C or higher, and particularly preferably 282°C or higher. In the present disclosure, the 5% weight loss temperature of the polymer, cured product, or molded product is measured by the method described below. Note that the following is an example of the measurement method, and the temperature may be measured by a similar method that can measure the 5% weight loss temperature (for example, a method in which appropriate conditions such as the mass or shape of the pulverized material, the heating temperature or heating rate are appropriately changed so that the 5% weight loss temperature can be measured), or by another known method.

[0070] (Measurement of 5% weight loss temperature) The polymer, cured product, or molded product to be measured is crushed to a diameter or side length of 0.5 mm or less, and the crushed product is placed on a commercially available aluminum pan. Using a commercially available thermogravimetric / differential thermal analyzer, the change in weight of the crushed product is measured while the temperature is raised from 45°C to 520°C at a nitrogen gas flow rate of 200 mL / min and a heating rate of 10°C / min. Since the weight of the crushed product decreases as the temperature increases, the weight of the crushed product at the starting temperature (45°C) is taken as 100% by weight, and the temperature at which the weight of the crushed product has decreased to 95% by weight (5% weight loss temperature, °C) is determined. In the examples, the aluminum pan used is a Hitachi High-Tech Science Corp. "P / N SSC000E030 Open Sample Pan" (diameter 5 mm), but other aluminum pans or pans made of different metals that can be used for measurements may also be used. In the examples, the Hitachi High-Tech Science Corp. "TG / DTA7200" thermogravimetry / differential thermal analyzer is used, but other commercially available products may also be used for measurements.

[0071] From the viewpoint of the heat resistance of the molded product, the glass transition temperature of the polymer, cured product, or molded product is preferably 107°C or higher, more preferably 108°C or higher, even more preferably 109°C or higher, and especially preferably 110°C or higher. In the present disclosure, the glass transition temperature of a polymer, a cured product, or a molded article is measured by the method described below. Note that the following is an example of a measurement method similar to that used in the Examples, and measurement may be performed by a similar method (e.g., a method in which appropriate conditions such as the shape of the object to be measured, the temperature or rate of heating are appropriately changed so that the glass transition temperature can be measured) or by another known method.

[0072] (Measurement of glass transition temperature) The polymer, cured product, or molded article to be measured is crushed to a diameter or side length of 0.5 mm or less, and the crushed material is used as a sample. Measurements are performed according to JIS-K7121. Glass transition temperature is measured using a commercially available differential scanning calorimeter with a nitrogen gas flow rate of 50 mL / min. Specifically, the sample is heated from 40°C to 150°C at a rate of 20°C / min (first heating), and held at 150°C for 5 minutes to completely melt the sample. The sample is then cooled from 150°C to -50°C at a rate of 10°C / min and held at -50°C for 1 minute. The sample is then heated again to 210°C at a rate of 10°C / min (second heating). Of the DSC curves obtained from the above temperature profile, the glass transition temperature (°C) is determined as the intersection point (midpoint glass transition temperature) between the step-change partial curve during the second heating phase and the straight lines equidistant from the two baseline extensions along the vertical axis. In the examples, a differential scanning calorimeter "DSC7020" manufactured by Hitachi High-Tech Science Corporation is used, but other commercially available products may also be used for the measurements.

[0073] From the viewpoint of durability or heat resistance of the molded article, the residual MMA concentration in the polymer, cured product, and molded article may be, for example, 8100 ppm by mass or less, 8000 ppm by mass or less, or 7800 ppm by mass or less. In the present disclosure, the residual MMA concentration in a polymer, cured product, or molded article is measured by the method described below. Note that the following is one example of the measurement method, and the measurement may be performed by a similar method that can measure the residual MMA concentration (for example, a method in which the cutting amount, dissolution temperature, type of solvent, or measurement conditions are appropriately changed so that the residual MMA concentration can be measured) or by another known method.

[0074] (Measurement of residual MMA concentration) 0.5 g of the polymer, cured product, or molded article to be measured is cut and precisely weighed, and 10 cc of acetone (special grade) is added and dissolved. 1 cc of internal standard solution (a solution of 1% methyl isobutyl ketone (MIBK) dissolved in methanol) is added to the resulting acetone solution and stirred. Methanol is added to the resulting mixture to reprecipitate the methyl methacrylate polymer. The supernatant solution is then collected as the sample solution. The amount of residual methyl methacrylate in the sample solution is measured using the gas chromatography equipment described below.

[0075] (Measurement conditions) Equipment: GC-2010 Plus (manufactured by Shimadzu Corporation) Column: DB-1 (Agilent Technologies) Detector: FID 2010 Plus (Shimadzu Corporation) Column oven conditions Initial temperature: 40°C (hold time 1 minute) Heating rate: 8°C / min Intermediate temperature: 120℃ (hold time 0 minutes) Heating rate: 20°C / min Final temperature: 250℃ (hold time 5 minutes) Sample vaporization conditions Vaporization chamber temperature: 300℃ Carrier gas: Helium Pressure: 50kPa Total flow: 58.3mL / min Column flow rate: 1.08 mL / min Linear speed: 31.1cm / sec Purge dose: 3.0mL / min Split ratio: 50 Detector conditions Detector temperature: 300℃ Sampling rate: 40msec Make-up gas: N2 Make-up flow rate: 30 mL / min H2 flow rate: 40mL / min Air flow rate: 400mL / min Autosampler conditions Injection volume: 1μL

[0076] When the sample solution is measured under the above measurement conditions, the peak area (a1) corresponding to methyl methacrylate and the peak area (b1) corresponding to methyl isobutyl ketone are measured. From these peak areas, the peak area ratio A (= a1 / b1) is calculated.

[0077] A standard sample with a mass ratio of methyl methacrylate content to methyl isobutyl ketone content of W0 (known) is measured under the above measurement conditions, and the detected peak area (a0) corresponding to methyl methacrylate and the peak area (b0) corresponding to methyl isobutyl ketone are measured. The peak area ratio A0 (=a0 / b0) is then calculated from these peak areas. The factor f (=W0 / A0) is then calculated from the peak area ratio A0 and the mass ratio W0.

[0078] Next, the mass ratio W of methyl methacrylate to methyl isobutyl ketone contained in sample solution 1 is calculated by multiplying the peak area ratio A by the factor f. The residual MMA concentration (ppm by mass) of the object to be measured is calculated from the calculated mass ratio W and the mass of the object to be measured used in preparing the sample solution.

[0079] <Method for producing polymethyl methacrylate> The method for producing polymethyl methacrylate of the present disclosure includes a step of polymerizing the methyl methacrylate contained in the composition of the present disclosure. Here, the polymethyl methacrylate of the present disclosure includes a polymer obtained from the composition of the present disclosure and a cured product obtained from the composition.

[0080] The method for polymerizing methyl methacrylate contained in the composition is not particularly limited, and may be carried out by a known method, such as bulk polymerization, cell cast polymerization, solution polymerization, suspension polymerization, or emulsion polymerization.

[0081] Specifically, the composition of the present disclosure can be used, for example, to form a methyl methacrylate polymer into a sheet (molded product) by bulk polymerization. Furthermore, in cell-cast polymerization, the composition is heated under predetermined heating conditions to allow the polymerization reaction to proceed, thereby forming a cured product (molded product) from the composition.

[0082] In the method for polymerizing methyl methacrylate contained in the composition of the present disclosure or the method for producing a molded article, the heating conditions, such as the heating temperature and heating time, can be set taking into consideration, for example, the type and content of the selected polymerization regulator, polymerization initiator, and / or other components.

[0083] In cell cast polymerization, when producing a cured product and its molded article, the heating temperature can be, for example, 50°C to 130°C. The heating time can be, for example, 1 hour to 20 hours. The heat treatment can be a heat treatment including multiple steps with different heating temperatures and / or heating times.

[0084] A cured product obtained by cell cast polymerization and a molded product thereof can be produced, for example, by carrying out a heat treatment under heating conditions including the following steps 1 to 7.

[0085] Step 1: Raise the temperature from room temperature to 68°C over 20 minutes. Step 2: Hold at 68°C for 90 minutes. Step 3: Reduce the temperature from 68°C to 64°C over 20 minutes. Step 4: Hold at 64°C for 90 minutes. Step 5: Increase the temperature from 64°C to 123°C over 10 minutes. Step 6: Hold at 123°C for 120 minutes. Step 7: Cool from 123°C to room temperature over 78 minutes.

[0086] In the method for producing a cured product and a molded article thereof, by carrying out the above steps 1 to 7 in this order, heat generation during the polymerization reaction can be suppressed and the polymerization can be completed stably.

[0087] When the composition of the present disclosure is subjected to a heat treatment, for example, a cell casting method (cell cast polymerization) using a cell capable of defining an enclosed space of a predetermined shape inside can be applied to form a molded article of a predetermined shape. The method for producing a molded article by the cell casting method will be specifically described below.

[0088] In manufacturing a green body by the cell casting method, a cell is first prepared. Here, an example of forming a green body in the form of a plate (sometimes called a cast plate) will be described. Such a cell can be composed of at least two flat plate-like members and a sealing material (gasket) that is sandwiched between the two flat plate-like members and can seal the gap between the two opposing flat plate-like members as an airtight space.

[0089] The flat plate-like member may be in the form of a sheet or a belt. The flat plate-like member is made of a material that is not dissolved by the composition of the present disclosure, does not inhibit the polymerization reaction of the composition, and has sufficient heat resistance to the heating temperature in the heat treatment. Examples of suitable materials for the flat plate-like member include glass and metal.

[0090] Any suitable conventional sealing material can be used as the sealing material. The sealing material is composed of a material that is not dissolved by the composition of the present disclosure, does not inhibit the polymerization reaction of the composition, and has sufficient heat resistance to the heating temperature in the heat treatment. A specific example of a suitable sealing material is a gasket made of vinyl chloride resin.

[0091] Next, the composition of the present disclosure is injected into the gap (void) defined by the prepared cells by any suitable conventional method. The cells are then heat-treated under the heating conditions already described. The method of heat-treating the cells into which the composition of the present disclosure has been injected is not particularly limited. The heat-treating method for the cells may be, as in the conventionally known cell casting method, a method in which the cells are directly heat-treated from the outside using a hot air circulating oven, an infrared heater, or the like, or a method in which a conventionally known jacket is further provided on the outside of the cells and a heat medium such as hot air, hot water, or steam is introduced into the jacket.

[0092] <Uses of polymethyl methacrylate and its molded products> Polymethyl methacrylate and molded articles thereof obtained from the composition of the present disclosure have excellent light transmittance, heat resistance, and weather resistance, and are therefore suitable for a variety of applications that may be exposed to the external environment and even heat and light sources, such as lighting fixtures, automobile parts, signs, and building materials. [Example]

[0093] Hereinafter, embodiments of the present disclosure will be described based on examples, but the present disclosure is not limited to the following examples.

[0094] <Example 1-1> (Preparation of Composition) Composition 1 was prepared by adding and mixing 0.005% by mass (50 ppm by mass) of methanol (manufactured by Tokyo Chemical Industry Co., Ltd.) to 99.995% by mass of methyl methacrylate. The resulting composition 1 was liquid. The composition of composition 1 is also shown in Table 1.

[0095] Composition 1 was subjected to a storage test including the following steps 1 to 7 in this order to obtain composition 1' after the storage test. The storage test was carried out under accelerated conditions (60°C) to evaluate stability after long-term storage.

[0096] Step 1: 25 mL of the composition is poured into the bottom of a pressure vessel ("TVS-N2 type" manufactured by Taiatsu Glass Industry Co., Ltd.). Step 2: Place a gasket between the top and bottom of the pressure vessel to seal it. Step 3: Nitrogen is fed into the top tip of the pressure vessel, and the vessel is sealed with an internal pressure of 0.2 MPa. Check that the internal pressure does not change for one minute. Step 4: Release the internal pressure from the pressure vessel and attach a stopcock to the top of the pressure vessel. Step 5: Place the pressure vessel in an oil bath set at 60°C. Step 6: Store in an oil bath for 24 hours. Step 7: Remove the pressure vessel from the oil bath and place it in ice-cold water to rapidly cool it down.

[0097] Composition 1' (99.84 parts by mass), sodium di-(2-ethylhexyl)sulfosuccinate (0.05 parts by mass) as a mold release agent, terpinolene (0.03 parts by mass) as a polymerization regulator, and 2,2'-azobisisobutyronitrile (0.08 parts by mass) as a polymerization initiator were mixed to obtain Composition 1'' for forming a molded body (cast plate). The obtained Composition 1'' was in a liquid state.

[0098] (Cast plate production) A cell was prepared in which a 3.8 mm thick vinyl chloride resin gasket was sandwiched between two opposing glass plates, thereby defining a sealed gap between the vinyl chloride resin gasket and the two glass plates. Composition 1″ was poured into the gap within this cell. The cell into which Composition 1″ had been poured was placed in an oven, and composition 1″ was polymerized by a heat treatment under heating conditions including the following steps 1 to 7 in this order, to produce cast plate 1, a 3 mm thick, 100 mm square molded product of a methyl methacrylate polymer.

[0099] Step 1: Raise the temperature from room temperature to 68°C over 20 minutes. Step 2: Hold at 68°C for 90 minutes. Step 3: Reduce the temperature from 68°C to 64°C over 20 minutes. Step 4: Hold at 64°C for 90 minutes. Step 5: Increase the temperature from 64°C to 123°C over 10 minutes. Step 6: Hold at 123°C for 120 minutes. Step 7: Cool from 123°C to room temperature over 90 minutes.

[0100] <Examples 1-2 to 1-4, Comparative Example 1-1> Cast plates of Examples 1-2 to 1-4 and Comparative Example 1-1 were produced in the same manner as in Example 1-1, except that compositions in which the amount of methanol added was changed to the values ​​shown in Table 1 were used.

[0101] <Examples 1-5 to 1-8, Comparative Example 1-2> Cast plates of Examples 1-5 to 1-8 and Comparative Example 1-2 were produced in the same manner as in Example 1, except that methanol was replaced with ethanol (Fujifilm, manufactured by Wako Pure Chemical Industries, Ltd.) and a composition was used in which the amount of ethanol added was set to the value shown in Table 2.

[0102] (Measurement of 5% weight loss temperature) The 5% weight loss temperatures of the cast plates produced in Examples 1-1 to 1-4, Comparative Example 1-1, Examples 1-5 to 1-8, and Comparative Example 1-2 were measured by the following method. The results for Examples 1-1 to 1-4 and Comparative Example 1-1 are shown in Table 1 and Figure 1. The results for Examples 1-5 to 1-8 and Comparative Example 1-2 are shown in Table 2 and Figure 5.

[0103] The cast plate was crushed to a diameter or side length of 0.5 mm or less, and 9.3 mg of the crushed material was placed on an aluminum pan (Hitachi High-Tech Science Corporation, P / N SSC000E030 Open Sample Pan, 5 mm diameter). The weight change of the crushed material was measured using a thermogravimetric / differential thermal analyzer (Hitachi High-Tech Science Corporation, TG / DTA7200) at a nitrogen gas flow rate of 200 mL / min and a heating rate of 10 °C / min from 45 °C to 520 °C. The weight of the crushed material decreased with increasing temperature. The weight of the crushed material at the initial temperature (45 °C) was defined as 100 wt%, and the temperature at which the weight of the crushed material decreased by 95 wt% (5% weight loss temperature) was calculated.

[0104] (Measurement of glass transition temperature (Tmg)) The glass transition temperatures of the cast plates produced in Examples 1-1 to 1-4, Comparative Example 1-1, Examples 1-5 to 1-8, and Comparative Example 1-2 were measured by the following method. The results for Examples 1-1 to 1-4 and Comparative Example 1-1 are shown in Table 1 and Figure 2. The results for Examples 1-5 to 1-8 and Comparative Example 1-2 are shown in Table 2 and Figure 6.

[0105] The cast plate was crushed to a diameter or length of each side of 0.5 mm or less, and the crushed product was used as a sample, and the glass transition temperature (°C) was measured in accordance with JIS-K7121. The glass transition temperature was measured using a differential scanning calorimeter ("DSC7020" manufactured by Hitachi High-Tech Science Corporation) at a nitrogen gas flow rate of 50 mL / min. Specifically, the temperature was increased from 40°C to 150°C at 20°C / min (first temperature increase), and then held at 150°C for 5 minutes to completely melt the sample.The temperature was then decreased from 150°C to -50°C at 10°C / min and held at -50°C for 1 minute.The temperature was then increased again to 210°C at 10°C / min (second temperature increase).

[0106] Of the DSC curves obtained from the above temperature profile, the intersection of the step-change partial curve during the second heating period and the straight lines equidistant from the two baseline extensions in the vertical direction (midpoint glass transition temperature) was taken as the glass transition temperature (°C).

[0107] (Measurement of residual methyl methacrylate (MMA) concentration) The residual MMA concentrations of the cast plates produced in Examples 1-1 to 1-4, Comparative Example 1-1, Examples 1-5 to 1-8, and Comparative Example 1-2 were measured by the following method. The results for Examples 1-1 to 1-4 and Comparative Example 1-1 are shown in Table 1. The results for Examples 1-5 to 1-8 and Comparative Example 1-2 are shown in Table 2.

[0108] 0.5 g was cut from the cast plate and precisely weighed, and 10 cc of acetone (special grade) was added and dissolved. 1 cc of an internal standard solution (a solution of 1% methyl isobutyl ketone (MIBK) dissolved in methanol) was added to the resulting acetone solution and stirred. 30 cc of methanol was added to the resulting mixture to reprecipitate the methyl methacrylate polymer. The supernatant solution was then collected as a sample solution. The amount of residual methyl methacrylate in the sample solution was measured using the following gas chromatography apparatus.

[0109] (Measurement conditions) Equipment: GC-2010 Plus (manufactured by Shimadzu Corporation) Column: DB-1 (Agilent Technologies) Detector: FID 2010 Plus (Shimadzu Corporation) Column oven conditions Initial temperature: 40°C (hold time 1 minute) Heating rate: 8°C / min Intermediate temperature: 120℃ (hold time 0 minutes) Heating rate: 20°C / min Final temperature: 250℃ (hold time 5 minutes) Sample vaporization conditions Vaporization chamber temperature: 300℃ Carrier gas: Helium Pressure: 50kPa Total flow: 58.3mL / min Column flow rate: 1.08 mL / min Linear speed: 31.1cm / sec Purge dose: 3.0mL / min Split ratio: 50 Detector conditions Detector temperature: 300℃ Sampling rate: 40msec Make-up gas: N2 Make-up flow rate: 30 mL / min H2 flow rate: 40mL / min Air flow rate: 400mL / min Autosampler conditions Injection volume: 1μL

[0110] The peak area (a1) corresponding to methyl methacrylate and the peak area (b1) corresponding to methyl isobutyl ketone detected when the sample solution was measured under the above measurement conditions were measured. The peak area ratio A (=a1 / b1) was calculated from these peak areas.

[0111] A standard sample with a mass ratio of methyl methacrylate content to methyl isobutyl ketone content of W0 (known) was measured under the above measurement conditions, and the peak area (a0) corresponding to the detected methyl methacrylate and the peak area (b0) corresponding to methyl isobutyl ketone were measured. The peak area ratio A0 (= a0 / b0) was then calculated from these peak areas. Next, the factor f (= W0 / A0) was calculated from the peak area ratio A0 and the above mass ratio W0.

[0112] Next, the mass ratio W of methyl methacrylate to methyl isobutyl ketone contained in the sample solution was calculated by multiplying the peak area ratio A by the factor f. The residual MMA concentration (ppm by mass) of the cast plate was calculated from the calculated mass ratio W and the mass of the cast plate used to prepare the sample solution.

[0113] [Table 1]

[0114] As shown in Table 1, the cast plates of Examples 1-1 to 1-4, which were made using a composition in which methanol was added to methyl methacrylate, had both higher 5% weight loss temperatures and glass transition temperatures (the glass transition temperature of Example 1-1 was not measured) than the cast plate of Comparative Example 1-1, which was made using a composition in which methanol was not added to methyl methacrylate, and exhibited excellent heat resistance. Furthermore, the cast plates of Examples 1-2 and 1-3, which were produced using compositions containing less than 500 ppm of methanol, exhibited improved heat resistance (5% weight loss temperature and glass transition temperature) and a low residual MMA concentration. The low residual MMA concentration indicated that these cast plates exhibited excellent durability and heat resistance.

[0115] [Table 2]

[0116] As shown in Table 2, the cast plates of Examples 1-5 to 1-8, which were made using a composition in which ethanol was added to methyl methacrylate, had both higher 5% weight loss temperatures and glass transition temperatures than the cast plate of Comparative Example 1-2, which was made using a composition in which ethanol was not added to methyl methacrylate, and exhibited excellent heat resistance. Furthermore, the cast plates of Examples 1-5 to 1-8, which were produced using compositions containing ethanol at a concentration of 500 mass ppm or less, not only exhibited improved heat resistance (5% weight loss temperature and glass transition temperature) but also had lower residual MMA concentrations than those of Comparative Example 1-2. The low residual MMA concentrations indicated that these cast plates exhibited excellent durability or heat resistance.

[0117] <Example 2-1> (Preparation of Composition) Composition 2 was prepared by adding and mixing 0.03% by mass (300 ppm by mass) of methyl pivalate (manufactured by Tokyo Chemical Industry Co., Ltd.) and 0.1% by mass (1000 ppm by mass) of methanol (manufactured by Tokyo Chemical Industry Co., Ltd.) to 99.87% by mass of methyl methacrylate. The resulting composition 2 was liquid. The composition of composition 2 is also shown in Table 3. A storage test similar to that in Example 1-1 was carried out on Composition 2. Using the composition after the storage test, a cast plate was produced in the same manner as in Example 1-1.

[0118] <Examples 2-2 to 2-4, Comparative Example 2-1> Cast plates of Examples 2-2 to 2-4 and Comparative Example 2-1 were produced in the same manner as in Example 2-1, except that compositions in which the amount of methanol added was changed to the values ​​shown in Table 3 were used.

[0119] <Examples 2-5 to 2-9, Comparative Example 2-2> Cast plates of Examples 2-5 to 2-9 and Comparative Example 2-2 were produced in the same manner as in Example 2-1, except that methanol was changed to ethanol and compositions with the added amounts of ethanol set to the values ​​shown in Table 4 were used.

[0120] (Measurement of 5% weight loss temperature and glass transition temperature) The 5% weight loss temperatures and glass transition temperatures of the cast plates produced in Examples 2-1 to 2-4, Comparative Example 2-1, Examples 2-5 to 2-9, and Comparative Example 2-2 were measured using the methods described above. The results for Examples 2-1 to 2-4 and Comparative Example 2-1 are shown in Table 3, Figure 3 (glass transition temperatures), and Figure 4 (5% weight loss temperatures). The results for Examples 2-5 to 2-9 and Comparative Example 2-2 are shown in Table 4 and Figure 7 (5% weight loss temperatures).

[0121] [Table 3]

[0122] As shown in Table 3, the cast plates of Examples 2-1 to 2-4, which were made using a composition containing methyl pivalate and methanol in addition to methyl methacrylate, had at least one of a 5% weight loss temperature or a glass transition temperature higher than the cast plate of Comparative Example 2-1, which was made using a composition containing methyl pivalate but not methanol, and exhibited excellent heat resistance. Furthermore, the cast plates of Examples 2-1 to 2-3, which were made using compositions with a methanol concentration of less than 10,000 ppm by mass, had improved 5% weight loss temperatures and glass transition temperatures compared to the cast plate of Example 2-4, which was made using a composition with a methanol concentration of 10,000 ppm by mass, demonstrating superior heat resistance.

[0123] [Table 4]

[0124] As shown in Table 4, the cast plates of Examples 2-5 to 2-9, which were made using a composition containing methyl pivalate and ethanol in addition to methyl methacrylate, had a higher 5% weight loss temperature and exhibited excellent heat resistance than the cast plate of Comparative Example 2-2, which was made using a composition containing methyl pivalate but not ethanol.

[0125] <Reference examples 1~3> A composition was prepared by adding methyl pivalate in the amount shown in Table 5 to methyl methacrylate. The composition was subjected to a storage test similar to that in the Examples. After the storage test, a cast plate was prepared using the composition in the same manner as in the Examples, and the residual MMA concentration in the cast plate was measured. The results are shown in Table 3.

[0126] [Table 5]

[0127] As shown in Table 5, the cast plates of Reference Examples 2 and 3, which were made using a composition in which methyl pivalate was added to methyl methacrylate, had lower residual MMA concentrations than the cast plate made using the composition of Reference Example 1, in which methyl pivalate was not added to methyl methacrylate.

Claims

1. Contains methyl methacrylate and an alcohol having 1 to 3 carbon atoms, A composition having a concentration of an alcohol having 1 to 3 carbon atoms of more than 0 ppm by mass and not more than 10,000 ppm by mass in the entire composition.

2. Further containing methyl pivalate, 2. The composition according to claim 1, wherein the concentration of methyl pivalate is greater than 0 ppm by mass and not more than 10,000 ppm by mass of the total composition.

3. The composition according to claim 1, wherein the concentration of the alcohol having 1 to 3 carbon atoms is greater than 0 ppm by mass and not more than 500 ppm by mass in the total composition.

4. 4. The composition of claim 3, which does not contain methyl pivalate.

5. 2. The composition according to claim 1, wherein the alcohol having 1 to 3 carbon atoms is methanol and / or ethanol.

6. The composition according to claim 1, wherein the content of methyl methacrylate is 85% by mass or more of the total composition.

7. The composition according to claim 1, wherein the content of methyl methacrylate is 90% by mass or more of the total composition.

8. 10. The composition of claim 1, wherein the methyl methacrylate comprises recycled methyl methacrylate or bio-sourced methyl methacrylate.

9. The composition of claim 1 further comprising a (meth)acrylic acid ester other than methyl methacrylate.

10. The composition of claim 1 further comprising a polymer containing structural units derived from methyl methacrylate.

11. A polymer comprising a structural unit derived from methyl methacrylate contained in the composition according to any one of claims 1 to 10.

12. A molded article comprising the polymer of claim 11.

13. A cured product of the composition according to any one of claims 1 to 10.

14. A molded article comprising the cured product according to claim 13.

15. A method for producing polymethyl methacrylate, comprising a step of polymerizing methyl methacrylate contained in the composition according to any one of claims 1 to 10.

Citation Information

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