Chloroprene copolymer latex and its manufacturing method
A chloroprene copolymer latex with controlled 2-methyl-1,3-butadiene content and insoluble matter achieves flexible, thermally stable molded products, addressing the inefficiencies of isoprene and chloroprene rubbers in dipped products.
Patent Information
- Application Number
- JP2021553557
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2019-10-25
- Filing Date
- 2020-10-23
- Publication Date
- 2025-12-23
- Estimated Expiration
- 2040-10-23
AI Technical Summary
Isoprene rubber is expensive and requires high-temperature, long-term vulcanization, while chloroprene rubber lacks flexibility and undergoes physical property changes over time, leading to inefficiencies and inferior tactile sensation in dipped products like surgical gloves.
A chloroprene copolymer latex with a specific ratio of 2-methyl-1,3-butadiene-derived monomer units and controlled tetrahydrofuran-insoluble content is developed, allowing for vulcanization under milder conditions and producing flexible molded products.
The chloroprene copolymer latex enables flexible, stable molded products suitable for dipped applications, particularly disposable medical gloves, with improved resistance to thermal degradation.
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Figure 0007790149000001
Abstract
Description
[Technical Field]
[0001] The present invention relates to a latex containing as its main component a copolymer of 2-chloro-1,3-butadiene (chloroprene) and 2-methyl-1,3-butadiene, a method for producing the same, and a molded product, particularly a dipped product, using the composition. [Background technology]
[0002] Isoprene rubber (IR) and chloroprene rubber (CR) are synthetic rubbers with flexibility equivalent to that of natural rubber. For this reason, in recent years, isoprene rubber or chloroprene rubber has been used instead of natural rubber in dip-molding composition products (dipped products), particularly surgical gloves, as a countermeasure against allergies. Isoprene rubber is characterized by its high flexibility and excellent tactile sensation for medical professionals, but its high price has prevented it from fully meeting market demand. Meanwhile, chloroprene rubber is cheaper than isoprene rubber, but its lower flexibility results in an inferior tactile sensation. It also requires long vulcanization processes at high temperatures to achieve the desired strength, resulting in low production efficiency. Furthermore, the physical properties of the synthetic rubbers change significantly over time after molding. That is, isoprene rubber softens and deteriorates over time, while chloroprene rubber hardens and deteriorates over time.
[0003] For example, Patent Documents 1 and 2 disclose techniques for improving the flexibility of chloroprene rubber, but require a high-temperature, long-term vulcanization process. Patent Document 3 discloses a technique for reducing the temperature and processing time in the vulcanization process, but this technique results in problems with flexibility. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2007-106994 [Patent Document 2] Japanese Patent Application Publication No. 2019-143002 [Patent Document 3] Japanese Patent Application Publication No. 2019-044116 Summary of the Invention [Problem to be solved by the invention]
[0005] An object of the present invention is to solve the above-mentioned problems of the conventional art and to provide an inexpensive chloroprene copolymer latex which can be vulcanized under milder conditions than conventional ones and from which molded articles having excellent flexibility can be obtained. [Means for solving the problem]
[0006] As a result of intensive investigations to solve the above-mentioned problems, the present inventors have found that, in a chloroprene copolymer latex containing chloroprene-derived monomer units and 2-methyl-1,3-butadiene-derived monomer units, the above-mentioned problems can be solved by setting the ratio of the 2-methyl-1,3-butadiene-derived monomer units contained in the chloroprene copolymer to a specific range and setting the content of tetrahydrofuran-insoluble matters in the chloroprene copolymer to a predetermined value or less, thereby completing the present invention. That is, the present invention relates to the following [1] to
[12] : a chloroprene copolymer latex, a method for producing the same, a latex composition thereof, a rubber composition obtained by curing the composition, and a dipped product.
[0007] [1] A latex of a chloroprene copolymer containing a monomer unit derived from 2-chloro-1,3-butadiene (chloroprene) and a monomer unit derived from 2-methyl-1,3-butadiene, wherein the chloroprene copolymer has a tetrahydrofuran-insoluble content of 20 mass% or less, and the proportion of the monomer unit derived from 2-methyl-1,3-butadiene in the chloroprene copolymer is 10 to 27 mol%. [2] The chloroprene copolymer latex according to [1], wherein the weight average molecular weight of the tetrahydrofuran-soluble component of the chloroprene copolymer is 400,000 or more. [3] The chloroprene copolymer latex according to [1] or [2], wherein the chloroprene copolymer further contains 0.01 to 10 mol % of a third monomer unit. [4] The chloroprene copolymer latex according to [3], wherein the third monomer unit is a monomer unit derived from 2,3-dichloro-1,3-butadiene. [5] A method for producing a chloroprene copolymer latex, comprising a step of emulsion copolymerizing a monomer component containing 2-chloro-1,3-butadiene (chloroprene) and 2-methyl-1,3-butadiene, wherein the proportion of 2-methyl-1,3-butadiene in all the monomer components is 2 to 40 mol % and the polymerization conversion rate of all the monomers is 61 to 90 mass %. [6] The method for producing a chloroprene copolymer latex according to [5], wherein an alkyl mercaptan is used as a chain transfer agent. [7] The method for producing a chloroprene copolymer latex according to [5] or [6], wherein a potassium salt of rosin acid is used as an emulsifier. [8] 100 parts by mass of the solid content of the chloroprene copolymer latex according to any one of [1] to [4], 0.1 to 20.0 parts by mass of a metal oxide (B), 0.1 to 10.0 parts by mass of a vulcanization accelerator (C), 0.1 to 10.0 parts by mass of sulfur (D), and 0.1 to 10.0 parts by mass of an antioxidant (E), 1. A chloroprene copolymer latex composition comprising: [9] A chloroprene copolymer rubber molded product obtained by curing the chloroprene copolymer latex composition according to [8].
[10] A dipped product obtained by molding the chloroprene copolymer latex composition according to [8] by a dipping method and curing it.
[11] The dipped product according to
[10] , which is a glove.
[12] The dipped product according to
[11] , which is a disposable medical glove. [Effects of the Invention]
[0008] The chloroprene copolymer latex composition of the present invention can be vulcanized under mild conditions to obtain a molded product (chloroprene copolymer rubber molded product) having excellent flexibility. The molded product of the present invention also has stability over time (resistance to thermal degradation) and is suitable for use in dipped products, particularly disposable medical gloves. DETAILED DESCRIPTION OF THE INVENTION
[0009] Hereinafter, embodiments of the present invention will be described in detail, but the present invention is not limited to the configurations of the following embodiments. In the description of this specification, including the claims, the symbol "to" specifying a numerical range means a value equal to or greater than the lower limit value and equal to or less than the upper limit value.
[0010] The chloroprene copolymer latex (A) of this embodiment is a latex in which fine particles of a chloroprene copolymer are dispersed in a solvent such as water. The chloroprene copolymer contained in the chloroprene copolymer latex (A) contains structures (monomer units) derived from at least 2-chloro-1,3-butadiene (chloroprene) (A-1) and 2-methyl-1,3-butadiene (A-2). The monomer units constituting the chloroprene copolymer may be only 2-chloro-1,3-butadiene (A-1) and 2-methyl-1,3-butadiene (A-2). Specifically, when all monomer units constituting the chloroprene copolymer are taken as 100 mol %, the proportion of 2-methyl-1,3-butadiene (A-2) is 10 to 27 mol %, preferably 10 to 25 mol %, and more preferably 11 to 15 mol %.
[0011] If the proportion of 2-methyl-1,3-butadiene (A-2) monomer units in the chloroprene copolymer is less than 10 mol%, the tensile strength of the molded product obtained by vulcanization at 100°C will be low. If the proportion of 2-methyl-1,3-butadiene (A-2) monomer units in the copolymer is more than 27 mol%, the strength of the molded product will also be low. That is, if the proportion of 2-methyl-1,3-butadiene (A-2) monomer units is 10 to 27 mol%, when the chloroprene copolymer is vulcanized at 100°C, the molded product after vulcanization can exhibit good strength.
[0012] The chloroprene copolymer may contain, in addition to a structure (monomer unit) derived from 2-chloro-1,3-butadiene (A-1) and a monomer unit derived from 2-methyl-1,3-butadiene (A-2), a monomer unit derived from monomer (A-3) within the scope of the present invention. Here, monomer (A-3) is a monomer other than 2-chloro-1,3-butadiene (A-1) and 2-methyl-1,3-butadiene (A-2) that is copolymerizable with at least one of 2-chloro-1,3-butadiene (A-1) and 2-methyl-1,3-butadiene (A-2). Monomer (A-3) may also be a monomer copolymerizable with both 2-chloro-1,3-butadiene (A-1) and 2-methyl-1,3-butadiene (A-2). Examples of monomer (A-3) include butadiene, 2,3-dichloro-1,3-butadiene, styrene, acrylonitrile, acrylic acid and its esters, and methacrylic acid and its esters. The chloroprene copolymer may optionally contain structures derived from two or more monomers as structures derived from monomer (A-3). When the chloroprene copolymer contains a structure derived from monomer (A-3) units, the proportion (upper limit) of monomer (A-3) in all monomer components constituting the chloroprene polymer is preferably 10.0 mol% or less, more preferably 8.0 mol% or less, and even more preferably 5.0 mol% or less. When the chloroprene copolymer contains a structure derived from monomer (A-3) units, the proportion (lower limit) of monomer (A-3) in all monomer components constituting the chloroprene polymer is preferably 0.01 mol% or more, more preferably 0.5 mol% or more, and even more preferably 1.0 mol% or more. When the proportion of the structure derived from the monomer (A-3) is 10.0 mol % or less, the molded product has good tensile strength and elongation, and the molded product has good stability over time in flexibility.
[0013] The amount of components insoluble in tetrahydrofuran (THF) at 25°C of the chloroprene copolymer of this embodiment is 20% by mass or less, preferably 10% by mass or less, and more preferably 5% by mass or less. This tetrahydrofuran-insoluble content is gelled due to three-dimensional crosslinking of polymer chains in the chloroprene copolymer particles. The amount of tetrahydrofuran-insoluble content can be measured by the method employed in the examples described below. When the amount of tetrahydrofuran insoluble matter in the chloroprene copolymer at 25°C is 20% by mass or less, the flexibility and tensile strength of the molded product are good. The amount of tetrahydrofuran insoluble matter in the chloroprene copolymer of the present invention is preferably 0% by mass or more, more preferably 0.1% by mass or more, and even more preferably 1.5% by mass or more. The amount of tetrahydrofuran insoluble matter in the chloroprene copolymer can be controlled by adjusting the polymerization conversion rate and the amount of chain transfer agent when producing the chloroprene copolymer. For example, increasing the polymerization conversion rate tends to increase the amount of tetrahydrofuran insoluble matter in the chloroprene copolymer. The polymerization conversion rate is controlled by the polymerization time and polymerization temperature of the chloroprene copolymer. The longer the polymerization time, the higher the polymerization conversion rate tends to be, and the higher the polymerization temperature, the higher the polymerization conversion rate tends to be. On the other hand, increasing the amount of chain transfer agent tends to decrease the amount of tetrahydrofuran insoluble matter in the chloroprene copolymer.
[0014] The weight-average molecular weight of the component in the chloroprene copolymer that is soluble in tetrahydrofuran at 25°C, as measured by the method or conditions employed in the examples described below, is preferably 400,000 or more, more preferably 500,000 or more, and even more preferably 550,000 or more. When the weight-average molecular weight of the component in the chloroprene copolymer that is soluble in tetrahydrofuran at 25°C is 400,000 or more, a molded product having good mechanical properties can be obtained. The weight-average molecular weight of the component in the chloroprene copolymer that is soluble in tetrahydrofuran at 25°C is preferably 3,000,000 or less, more preferably 2,000,000 or less, and even more preferably 900,000 or less. When the weight-average molecular weight of the component in the chloroprene copolymer that is soluble in tetrahydrofuran at 25°C is 3,000,000 or less, a molded product having good flexibility and tensile strength can be obtained.
[0015] [Method for producing chloroprene copolymer latex (A)] As a method for producing the chloroprene copolymer latex (A), a method of radically polymerizing a monomer in an aqueous emulsion is simple and industrially advantageous.
[0016] By emulsion polymerizing 2-chloro-1,3-butadiene (A-1) and 2-methyl-1,3-butadiene (A-2), or 2-chloro-1,3-butadiene (A-1), 2-methyl-1,3-butadiene (A-2), and monomer (A-3) using an emulsifier, a copolymer latex (A) in which chloroprene copolymer particles are dispersed in water is obtained. The polymerization temperature during emulsion polymerization is preferably 20 to 35°C, and the polymerization time is preferably 5 to 8 hours. When the polymerization temperature and polymerization time during emulsion polymerization are within the above ranges, the desired polymerization conversion rate is achieved, which is preferable.
[0017] The 2-methyl-1,3-butadiene content in the chloroprene copolymer of the present invention can be adjusted by the charging ratio of 2-chloro-1,3-butadiene (A-1) and 2-methyl-1,3-butadiene (A-2) at the time of polymerization charging, the polymerization conversion rate, and the like.
[0018] The higher the proportion of 2-methyl-1,3-butadiene (A-2) in all monomers during polymerization charging, the higher the content of monomer units derived from 2-methyl-1,3-butadiene (A-2) in the final chloroprene copolymer. However, since 2-methyl-1,3-butadiene (A-2) has lower reactivity at the start of emulsion polymerization than 2-chloro-1,3-butadiene (A-1), a high charging ratio of 2-methyl-1,3-butadiene (A-2) tends to slow down the progress of polymerization and lengthen the reaction time. Since 2-methyl-1,3-butadiene (A-2) is easily incorporated into the polymer as the polymerization of the chloroprene copolymer progresses, the content of monomer units derived from 2-methyl-1,3-butadiene in the final chloroprene copolymer can be increased by increasing the polymerization conversion rate during polymerization of the chloroprene copolymer. Furthermore, a low polymerization conversion rate results in a large amount of residual monomer, which requires the effort of removing the residual monomer and also reduces the mechanical properties of the molded product.
[0019] From the above, in order to efficiently obtain the chloroprene copolymer of the present invention, the content of 2-methyl-1,3-butadiene (A-2) in all monomer components used is preferably 2 to 40 mol%, more preferably 10 to 30 mol%, and even more preferably 15 to 25 mol%. Furthermore, the polymerization conversion rate of all monomers is preferably 61 to 90 mass%, more preferably 75 to 87 mass%, and even more preferably 75 to 86 mass%. If the polymerization conversion rate of all monomers is 90 mass% or less, the quality of the chloroprene copolymer obtained by polymerization is good, and the physical properties of the molded product obtained from the chloroprene copolymer latex (A) are also good.
[0020] Anionic surfactants are preferred as emulsifiers for emulsion polymerization. Examples of anionic surfactants include rosin acid soap, sodium salts of naphthalenesulfonic acid condensates, sodium salts of dodecylbenzenesulfonic acid, and sodium salts of dodecylsulfuric acid. Conventional rosin acid soaps can be used for ease of coagulation. From the viewpoint of color stability, sodium and / or potassium salts of disproportionated rosin acid can be used, with potassium salts of disproportionated rosin acid being more preferred from the viewpoint of polymerization rate.
[0021] The amount of emulsifier used is preferably 0.5 to 20.0 parts by mass, more preferably 1.0 to 10.0 parts by mass, and even more preferably 1.5 to 5.0 parts by mass, relative to 100 parts by mass of the total of all monomers, including 2-chloro-1,3-butadiene (A-1), 2-methyl-1,3-butadiene (A-2), and monomer (A-3). When the amount of emulsifier used is 0.5 parts by mass or more, poor emulsification is unlikely to occur and heat generation due to polymerization can be controlled. Furthermore, when the amount of emulsifier used is 0.5 parts by mass or more, problems such as the formation of aggregates and poor product appearance do not occur. On the other hand, when the amount of emulsifier used is 20.0 parts by mass or less, the emulsifier, such as rosin acid, does not remain in the chloroprene copolymer, and the chloroprene copolymer is less likely to become tacky. Therefore, when the amount of the emulsifier used is 20.0 parts by mass or less, problems in processability and operability due to adhesion to a mold (former) during molding of the chloroprene copolymer latex composition and adhesion during use of the molded product do not occur, and deterioration in color tone of the molded product does not occur.
[0022] As the polymerization initiator, a conventional radical polymerization initiator can be used. In the case of emulsion polymerization, for example, organic or inorganic peroxides such as benzoyl peroxide, potassium persulfate, ammonium persulfate, cumene hydroperoxide, t-butyl hydroperoxide, etc., or azo compounds such as azobisisobutyronitrile, etc., can be used. One type of polymerization initiator can be used alone, or two or more types can be used in combination.
[0023] In the polymerization of the chloroprene copolymer of this embodiment, a chain transfer agent is preferably used to adjust the amount of tetrahydrofuran insoluble matter. The amount of the chain transfer agent used is preferably 0.01 to 15.0 parts by mass, more preferably 0.05 to 10.0 parts by mass, and even more preferably 0.1 to 1.0 part by mass, relative to 100 parts by mass of the total amount of all monomers, 2-chloro-1,3-butadiene (A-1), 2-methyl-1,3-butadiene (A-2), and monomer (A-3). The chain transfer agent is not particularly limited, but known chain transfer agents such as alkyl mercaptans such as n-dodecyl mercaptan, n-decyl mercaptan, octyl mercaptan, or tert-dodecyl mercaptan, dialkyl xanthogen disulfides such as diisopropyl xanthogen disulfide or diethyl xanthogen disulfide, or iodoform can be used. Alkyl mercaptans are more preferred, and n-dodecyl mercaptan is even more preferred. By setting the polymerization conversion rate at 61 to 90 mass % and the chain transfer agent at 0.01 to 15.0 parts by mass, the amount of tetrahydrofuran insoluble matter in the chloroprene copolymer can be adjusted to a desired range (20 mass % or less).
[0024] In the polymerization of chloroprene copolymers, a co-catalyst may be used together with the polymerization initiator, if desired. The co-catalyst that can be used together with the polymerization initiator is not particularly limited, and a general co-catalyst can be used. Examples include anthraquinone sulfonate, potassium sulfite, sodium disulfite, sodium sulfite, tetraethylenepentamine, and N,N-dimethyl-p-toluidine. One type of co-catalyst may be used alone, or two or more types may be used in combination.
[0025] In general, in emulsion polymerization, a polymerization terminator is added to terminate the polymerization reaction when a predetermined polymerization conversion rate is reached in order to obtain a polymer having a desired molecular weight and molecular weight distribution. A polymerization terminator may also be used in embodiments of the present invention. The type of polymerization terminator is not particularly limited, and commonly used polymerization terminators such as phenothiazine, para-t-butylcatechol, hydroquinone, hydroquinone monomethyl ether, and diethylhydroxylamine can be used. One type of polymerization terminator may be used alone, or two or more types may be used in combination.
[0026] Furthermore, stabilizers such as an acid acceptor and / or an antioxidant may be blended into the chloroprene copolymer latex (A) within the scope of the present invention.
[0027] [Chloroprene copolymer latex composition] The chloroprene copolymer latex composition according to one embodiment of the present invention comprises the solids of the chloroprene copolymer latex (A) obtained by the polymerization method described above, a metal oxide (B), a vulcanization accelerator (C), sulfur (D), and an antioxidant (E). The solids of the chloroprene copolymer latex (A) are obtained by drying the chloroprene copolymer latex (A) by placing it in an oven at 141°C for 30 minutes, and are obtained by removing the solvent, such as water, that serves as a dispersant from the chloroprene copolymer latex (A). The chloroprene copolymer latex composition may also contain the solvent, such as water, present in the chloroprene copolymer latex (A). The chloroprene copolymer latex composition may further contain, based on 100 parts by mass of the solids content of the chloroprene copolymer latex (A), 0.1 to 20.0 parts by mass of a metal oxide (B), 0.1 to 10.0 parts by mass of a vulcanization accelerator (C), 0.1 to 10.0 parts by mass of sulfur (D), and 0.1 to 10.0 parts by mass of an antioxidant (E). By vulcanizing the chloroprene copolymer latex composition formulated in this composition, a rubber molded product (e.g., a film) with improved flexibility stability over time can be obtained. Among the raw materials used for blending, water-insoluble components and components that destabilize the colloidal state of the chloroprene copolymer latex are added to the chloroprene copolymer latex after preparing an aqueous dispersion in advance.
[0028] The type of metal oxide (B) is not particularly limited, and for example, zinc oxide, lead oxide, or trilead tetroxide can be used, with zinc oxide being particularly preferred. The metal oxide (B) may be used alone or in combination of two or more.
[0029] The amount of metal oxide (B) contained in the chloroprene copolymer latex composition according to this embodiment is typically 0.1 to 20.0 parts by mass, preferably 0.5 to 15.0 parts by mass, and more preferably 1.0 to 10.0 parts by mass, based on 100 parts by mass of the solid content of the chloroprene copolymer latex (A). When the amount of metal oxide (B) is 0.1 part by mass or more, an appropriate vulcanization rate can be obtained. When the amount of metal oxide (B) is 20.0 parts by mass or less, a good crosslinked structure is obtained by vulcanization treatment, and scorching is unlikely to occur. Furthermore, the colloidal state of the chloroprene copolymer latex composition is stabilized, making problems such as sedimentation less likely to occur.
[0030] The type of vulcanization accelerator (C) is not particularly limited, and those generally used in the vulcanization treatment of isoprene-based polymer latex or chloroprene-based polymer latex can be used, for example, thiuram-based, dithiocarbamate-based, thiourea-based, guanidine-based, and thiazole-based vulcanization accelerators. Thiuram vulcanization accelerators include tetraethyl thiuram disulfide and tetrabutyl thiuram disulfide. Dithiocarbamate vulcanization accelerators include sodium dibutyldithiocarbamate, zinc dibutyldithiocarbamate, and zinc diethylthiodicarbamate. Thiourea vulcanization accelerators include ethylene thiourea, diethyl thiourea, trimethyl thiourea, and N,N'-diphenylthiourea (DPTU). Guanidine vulcanization accelerators include diphenyl guanidine (DPG) and di-orthotoluyl guanidine. Thiazole vulcanization accelerators include 2-mercaptobenzothiazole, di-2-benzothiazolyl disulfide, and zinc 2-mercaptobenzothiazole. The vulcanization accelerator (C) may be used alone or in combination of two or more.
[0031] The amount of vulcanization accelerator (C) contained in the chloroprene copolymer latex composition according to this embodiment is typically 0.1 to 10.0 parts by mass, preferably 0.3 to 5.0 parts by mass, and more preferably 0.5 to 2.5 parts by mass, based on 100 parts by mass of the solid content of the chloroprene copolymer latex (A). When the amount of vulcanization accelerator (C) is within this range, an appropriate vulcanization rate is obtained, and insufficient crosslinking due to insufficient vulcanization is unlikely to occur, and scorching is also unlikely to occur. Furthermore, since the vulcanization density of a molded product obtained from the chloroprene copolymer latex composition according to this embodiment is also appropriate, by setting the amount of vulcanization accelerator (C) within the above range, the flexibility of the molded product is also within an appropriate range.
[0032] The type of sulfur (D) is not particularly limited, and examples thereof include powdered sulfur, precipitated sulfur, colloidal sulfur, surface-treated sulfur, insoluble sulfur, and sulfur-containing compounds such as polysulfides and polymeric polysulfides (excluding the vulcanization accelerators). The sulfur (D) may be used singly or in combination of two or more. The amount of sulfur (D) contained in the chloroprene copolymer latex composition according to this embodiment is typically 0.1 to 10.0 parts by mass, preferably 0.2 to 7.0 parts by mass, and more preferably 0.45 to 2.0 parts by mass, based on 100 parts by mass of the solid content of the chloroprene copolymer latex (A). When the amount of sulfur (D) is within this range, an appropriate vulcanization rate is obtained, and insufficient crosslinking due to insufficient vulcanization is unlikely to occur, and scorching is also unlikely to occur. Furthermore, the colloidal state of the chloroprene copolymer latex composition is stabilized, making it less likely to experience problems such as sedimentation.
[0033] The type of antioxidant (E) is not particularly limited, but when it is desired that the molded product have high heat resistance, it is preferable to use an antioxidant that prevents aging due to heat and an antioxidant that prevents aging due to ozone in combination.
[0034] Examples of antioxidants that prevent aging due to heat include diphenylamine-based antioxidants such as octylated diphenylamine, p-(p-toluene-sulfonylamido)diphenylamine, 4,4'-bis(α,α-dimethylbenzyl)diphenylamine, etc. Adding such antioxidants tends to provide molded products with heat resistance and also stain resistance (such as reduced discoloration).
[0035] Examples of antioxidants that prevent ozone aging include N,N'-diphenyl-p-phenylenediamine (DPPD) and N-isopropyl-N'-phenyl-p-phenylenediamine (IPPD).
[0036] When the chloroprene copolymer rubber molded product according to this embodiment is used as a disposable medical glove, since appearance (especially color tone) and hygiene are important, it is preferable to use a hindered phenol-based antioxidant as the antioxidant (E). Examples of hindered phenol-based antioxidants include 2,2'-methylenebis-(4-ethyl-6-t-butylphenol) and 4,4'-methylenebis-(2,6-di-t-butylphenol).
[0037] The amount of antioxidant (E) contained in the chloroprene copolymer latex composition according to this embodiment is usually 0.1 to 10.0 parts by mass, preferably 0.5 to 5.5 parts by mass, and more preferably 2.0 to 4.8 parts by mass, relative to 100 parts by mass of the solid content in the chloroprene copolymer latex (A). When the amount of antioxidant (E) is within this range, a sufficient antioxidant effect can be obtained, vulcanization is not inhibited, and deterioration of color tone is unlikely to occur.
[0038] In addition to the chloroprene copolymer latex (A), the metal oxide (B), the vulcanization accelerator (C), the sulfur (D), and the antioxidant (E), other additives may be blended into the chloroprene copolymer latex composition according to the present embodiment, as long as the object of the present invention is not impaired. Examples of the additives that can be blended include a pH adjuster, a filler, a pigment, a colorant, an antifoaming agent, and a thickener.
[0039] [Chloroprene copolymer rubber molding] The chloroprene copolymer latex composition according to the present embodiment can be molded and cured to obtain a molded product. For example, the chloroprene copolymer latex composition according to the present embodiment can be molded by a dipping method to obtain a dipped product. Before the dipping process, the chloroprene copolymer latex composition according to the present embodiment may be aged under predetermined conditions. The aging temperature is 15 to 40°C, and the aging time is 15 to 72 hours. For example, aging at 20°C for 24 hours may be used. The aging starts when the chloroprene copolymer latex (A) is mixed with all of the metal oxide (B), vulcanization accelerator (C), sulfur (D), and antioxidant (E). After aging, the steps of immersion and coagulation, drying, and vulcanization (hardening) are carried out in this order to obtain a film-like molded product.
[0040] The immersion / coagulation treatment can be carried out by submerging a plate or mold coated with a coagulant in the chloroprene copolymer latex composition for a predetermined period of time, and depositing the solid content of the chloroprene copolymer latex composition, such as the chloroprene copolymer, on the surface of the plate or mold. As the coagulant, a metal salt, such as a nitrate, can be used. To avoid appearance problems in molded products, such as the formation of blisters and pinholes, a drying step (rough drying step) may be carried out at a relatively low temperature of 70° C. or higher and 100° C. or lower before the vulcanization step.
[0041] The vulcanization temperature in the vulcanization step can be, for example, 100° C. in air. The vulcanization time at this vulcanization temperature can be, for example, 20 minutes or more and 60 minutes or less, but it is preferable to perform the vulcanization treatment sufficiently within a range that does not deteriorate the tensile strength and tensile elongation of the molded product. A chloroprene copolymer rubber molded product can be obtained by vulcanizing the composition deposited on the surface of the plate or mold under the above conditions. The chloroprene copolymer rubber molded product preferably has a 100% modulus of elasticity of 0.6 MPa to 0.65 MPa, a 500% modulus of elasticity of 0.5 MPa to 1.6 MPa, a tensile strength of 17 MPa to 35 MPa, and a tensile elongation of 800% to 1500%. The 100% modulus of elasticity is used as an index of flexibility, with a smaller value of the 100% modulus indicating higher flexibility. The chloroprene copolymer latex rubber molded product according to this embodiment has excellent flexibility. Furthermore, it exhibits little change in physical properties before and after thermal aging treatment, resulting in excellent resistance to changes over time.
[0042] [Disposable medical gloves] The chloroprene copolymer rubber molded product can be suitably used particularly as disposable medical gloves. If the 100% elastic modulus of the chloroprene copolymer rubber molded product is 0.65 MPa or less, flexibility is obtained in the disposable medical gloves, which is preferable. The lower limit of the 100% elastic modulus of the chloroprene copolymer rubber molded product may be, for example, 0.6 MPa or more. If the 500% elastic modulus of the chloroprene copolymer rubber molding is 0.5 MPa or more, the disposable medical gloves feel soft and do not cause fatigue even when worn for a long time.If the 500% elastic modulus of the chloroprene copolymer rubber molding is 1.6 MPa or less, the force of the return of the fingers when bent in the disposable medical gloves is appropriate, which is preferable. If the tensile strength of the chloroprene copolymer rubber molded product is 17 MPa or more, the disposable medical gloves are less likely to break, which is preferable. The upper limit of the tensile strength of the chloroprene copolymer rubber molded product may be, for example, 35 MPa or less. If the tensile elongation of the chloroprene copolymer rubber molded product is 800% or more, the disposable medical gloves are less likely to break, which is preferable. The upper limit of the tensile elongation of the chloroprene copolymer rubber molded product may be, for example, 1500% or less. [Example]
[0043] The present invention will be described in more detail below with reference to examples, but the present invention is not limited to these examples.
[0044] Example 1: (1) Preparation of chloroprene copolymer latex (A) A 5 L reactor was charged with 1200 g of 2-chloro-1,3-butadiene (A-1), 300 g of 2-methyl-1,3-butadiene (A-2), 1290 g of purified water, 65 g of disproportionated rosin acid (R-600, manufactured by Arakawa Chemical Industries, Ltd.), 17.1 g of potassium hydroxide, 3.9 g of sodium hydroxide, 3.3 g of the sodium salt of β-naphthalenesulfonic acid formalin condensate, and 1.65 g of n-dodecyl mercaptan. The starting materials charged in the reactor were emulsified, and the rosin acid was converted into rosin acid soap.
[0045] 2-Chloro-1,3-butadiene (A-1) and 2-methyl-1,3-butadiene (A-2) were used as raw monomers, and pure water was used as a dispersion medium for emulsion polymerization. Rosin acid, potassium hydroxide, and sodium hydroxide were used as raw emulsifiers, and the sodium salt of β-naphthalenesulfonic acid formalin condensate was used as an emulsifier.
[0046] To the emulsion obtained by emulsifying the starting materials, 4 g of potassium persulfate was added as a polymerization initiator, and emulsion polymerization was carried out at 30°C under a nitrogen gas atmosphere. The polymerization was terminated when the polymerization conversion rate of all monomers reached 84% by mass. Subsequently, unreacted 2-chloro-1,3-butadiene (A-1) and 2-methyl-1,3-butadiene (A-2) were removed by steam distillation to obtain a chloroprene copolymer latex (A).
[0047] The polymerization conversion rate was calculated as follows. Specifically, the emulsion after the start of polymerization was collected and dried by leaving it to stand in an oven at 141°C for 30 minutes to obtain a dry product. The obtained dry product contained both polymer and solids other than the polymer. Therefore, the mass of the solids other than the polymer was calculated from the amounts of the polymerization raw materials charged, and the mass of the solids other than the polymer was determined as the "amount of chloroprene copolymer produced" by subtracting the mass of the solids other than the polymer from the mass of the dry product obtained by drying the emulsion after the start of polymerization. The calculated polymerization conversion rates are shown in Table 1. Polymerization conversion rate [mass%] = [(amount of chloroprene copolymer produced) / (total mass of all monomers charged)] × 100 (1) The "mass of all monomers charged" in formula (1) is the amount of all monomers charged contained in the amount of emulsion collected to obtain a dry product.
[0048] Furthermore, various physical properties of the resulting chloroprene copolymer latex (A) were evaluated.
[0049] (i) Tetrahydrofuran insolubles in chloroprene copolymer: The content of tetrahydrofuran-insoluble matter in the chloroprene copolymer was measured as follows. At 25°C, 1 g of chloroprene copolymer latex (A) was added dropwise to 100 mL of tetrahydrofuran and the mixture was shaken for 10 hours using a shaker (SA300) manufactured by Yamato Scientific Co., Ltd. After the shaking treatment, the mixture of chloroprene copolymer latex (A) and tetrahydrofuran was subjected to centrifugal sedimentation using a centrifugal separator (H-9R manufactured by Kokusan Co., Ltd.) to obtain a supernatant dissolved phase. The obtained dissolved phase was heated to 100°C, and the tetrahydrofuran was evaporated over 1 hour, and the mass of the dried product was measured. This gives the mass of the chloroprene copolymer dissolved in the dissolved phase.
[0050] The mass of the chloroprene copolymer in 1 g of chloroprene copolymer latex (A) and the mass of the soluble matter described above were substituted into formula (2) to calculate the content of the tetrahydrofuran-insoluble matter in the chloroprene copolymer that was not dissolved in tetrahydrofuran at 25° C. The measured content of the tetrahydrofuran-insoluble matter is shown in Table 1. Tetrahydrofuran insoluble content (mass%) = {1 - [(mass of dissolved fraction) / (mass of chloroprene copolymer in 1 g of chloroprene copolymer latex (A)]} × 100 (2) In the formula (2), the mass of the chloroprene copolymer in 1 g of the chloroprene copolymer latex (A) was considered to be the mass of the solid content obtained by drying 1 g of the chloroprene copolymer latex (A). When the chloroprene copolymer latex (A) was dried, it was left to stand in an oven at 141°C for 30 minutes.
[0051] (ii) Weight average molecular weight (Mw): An example of how to determine the weight-average molecular weight (Mw) of the tetrahydrofuran-soluble portion of a chloroprene copolymer at 25°C is described below. The supernatant soluble phase after centrifugal sedimentation was prepared and separated using the same procedure as in the preparation of the sample for measuring the tetrahydrofuran-insoluble portion described above, and diluted with tetrahydrofuran to prepare a sample. The molecular weight of the obtained sample was measured in terms of polystyrene using GPC (gel permeation chromatography), and the weight-average molecular weight (Mw) was determined.
[0052] The GPC measurement conditions were as follows: GPC measurement device: LC-20AD manufactured by Shimadzu Corporation; detector: RID-10A (differential refractive index detector) manufactured by Shimadzu Corporation; column type: PLgel 10 μm MiniMIX-B manufactured by Agilent Technologies, Inc.; eluent: tetrahydrofuran (Kanto Chemical, for HPLC); column temperature: 40°C; flow rate: 0.4 ml / min.
[0053] (iii) Monomer unit content in chloroprene copolymer: The content of 2-methyl-1,3-butadiene (A-2) derived components in the chloroprene copolymer is 1 The chloroprene copolymer latex was coagulated with methanol and dried, and then deuterated chloroform was added to the coagulated product. After filtering out the insoluble material in deuterated chloroform, the resulting solution was 1 H-NMR analysis was performed. 1 For the H-NMR analysis, a JNM-AL400 manufactured by JEOL Ltd. was used as a measuring device, and tetramethylsilane was used as the chemical shift standard. 1 The content of the component derived from 2-methyl-1,3-butadiene (A-2) was calculated from the peak areas of the peak (5.4 ppm) derived from 2-chloro-1,3-butadiene (A-1) and the peak (5.1 ppm) derived from 2-methyl-1,3-butadiene (A-2) in the H-NMR spectrum using formula (3). Content (%) of 2-methyl-1,3-butadiene (A-2) derived components = (peak area at 5.1 ppm) / (peak area at 5.1 ppm + peak area at 5.4 ppm) × 100 (3) Even when monomer (A-3) is present, if monomer (A-3) does not have a peak overlapping the 5.1 ppm peak and the 5.4 ppm peak, formula (3) can be used to calculate the proportion of 2-methyl-1,3-butadiene (A-2) in the total of 2-chloro-1,3-butadiene (A-1) and 2-methyl-1,3-butadiene (A-2). To calculate the proportion of monomer (A-3), the peak area of the peak derived from monomer (A-3) that does not overlap with either the 2-chloro-1,3-butadiene (A-1) or 2-methyl-1,3-butadiene (A-2) peaks is used to calculate the proportion of monomer (A-3) in the total of 2-chloro-1,3-butadiene (A-1) and monomer (A-3) using a formula similar to formula (3). Similarly, the proportion of monomer (A-3) in all the monomer components that make up the chloroprene polymer can also be calculated. When the monomer (A-3) has a peak overlapping the peak at 5.1 ppm and the peak at 5.4 ppm, 1H- 1 Using the results of multidimensional NMR measurements such as H COSY (COrrelation Spectroscopy), the peaks attributable to 2-chloro-1,3-butadiene (A-1), 2-methyl-1,3-butadiene (A-2), and the monomer (A-3) are identified, and the proportions of the individual substances can be determined by performing a similar calculation using the peak areas.
[0054] (2) Preparation of chloroprene copolymer latex composition 100 parts by mass of the chloroprene copolymer latex (A) obtained in (1) above, 3.7 parts by mass of zinc oxide (AZ-SW manufactured by Osaki Kogyo Co., Ltd.), 1.0 part by mass of the vulcanization accelerator zinc dibutyldithiocarbamate (Nocceler® BZ manufactured by Ouchi Shinko Chemical Industry Co., Ltd.), 1.0 part by mass of zinc 2-mercaptobenzothiazole (Nocceler® MZ manufactured by Ouchi Shinko Chemical Industry Co., Ltd.), 0.5 parts by mass of diphenylguanidine (Nocceler® D manufactured by Ouchi Shinko Chemical Industry Co., Ltd.), 0.45 parts by mass of sulfur (S-50 manufactured by Nippon Color Kogyo Co., Ltd.), and 2.0 parts by mass of a phenolic antioxidant (K-840 manufactured by Chukyo Yushi Co., Ltd.) were charged into a container equipped with a stirrer. The mixture was stirred for 20 minutes to obtain a chloroprene copolymer latex composition. After stirring, the chloroprene copolymer latex composition was allowed to stand at 20°C for 24 hours to mature.
[0055] Note that zinc oxide AZ-SW, sulfur S-50, and phenolic antioxidant K-840 are in the form of a dispersion in which the active ingredients, zinc oxide (B), sulfur (D), and antioxidant (E), are dispersed in a liquid medium, and therefore the amounts of zinc oxide AZ-SW, sulfur S-50, and phenolic antioxidant K-840 charged above refer to the amounts of only the active ingredients of zinc oxide AZ-SW, sulfur S-50, and K-840 charged.
[0056] (3) Film preparation The chloroprene copolymer latex composition obtained in (2) above was used to form a chloroprene copolymer film by a dip processing method. A ceramic plate measuring 200 mm in length, 100 mm in width, and 5 mm in thickness was prepared as a mold for the chloroprene copolymer film. This mold was immersed in a 30% by mass aqueous solution of calcium nitrate, then removed and dried in an oven at 40°C for 10 minutes, allowing calcium nitrate, a coagulant, to adhere to the surface of the mold.
[0057] The dried mold was then immersed in the chloroprene copolymer latex composition obtained in (2) above, and the solid content of the chloroprene copolymer latex composition was deposited on the surface of the mold. After the mold was removed from the chloroprene copolymer latex composition, it was dried in an oven at 70°C for 30 minutes. Next, the mold with the solid content deposited on the surface was heated in an oven at 100°C for 20 minutes to vulcanize and harden the solid content of the chloroprene copolymer latex composition deposited on the surface of the mold. After cooling in the atmosphere, the hardened molded product on the surface of the mold was cut into a desired shape and size to obtain a film as a molded product of vulcanized chloroprene copolymer rubber.
[0058] The film was cut into a No. 6 dumbbell shape as specified in JIS K6251-2017 to obtain test specimens. The thickness of the test specimens was 0.15 to 0.25 mm. These test specimens were then subjected to thermal aging treatment by heating them in air at 100°C for 22 hours. Tensile tests were performed on the test specimens before and after the thermal aging treatment at 23°C according to a method conforming to JIS K6251-2017 to measure the tensile strength, tensile elongation, and modulus of elasticity at 100% elongation (100% modulus of elasticity) and 500% elongation (500% modulus of elasticity). The various physical properties of the film measured as described above are summarized in Table 1. In Table 1, the "weight average molecular weight (Mw)" in the latex physical properties column refers to the weight average molecular weight of the tetrahydrofuran-soluble portion of the chloroprene copolymer at 25°C.
[0059] Example 2: A copolymer latex composition, a film, and a test piece were prepared in the same manner as in Example 1, except that the amounts of 2-chloro-1,3-butadiene and 2-methyl-1,3-butadiene charged were changed as shown in Table 1, and the polymerization conversion rate at the end of the reaction was set to 76 mass% to prepare a chloroprene copolymer latex (A), and various evaluations were performed in the same manner as in Example 1. The results are shown in Table 1.
[0060] Example 3: A copolymer latex composition, a film, and a test piece were prepared in the same manner as in Example 1, except that the polymerization conversion rate at the end of the reaction was set to 64% by mass to prepare the chloroprene copolymer latex (A), and various evaluations were performed in the same manner as in Example 1. The results are shown in Table 1.
[0061] Example 4: A copolymer latex composition, a film, and a test piece were prepared in the same manner as in Example 1, except that the amounts of 2-chloro-1,3-butadiene, 2-methyl-1,3-butadiene, and 2,3-dichloro-1,3-butadiene charged were changed as shown in Table 1 and the polymerization conversion rate at the end of the reaction was set to 83 mass% to prepare a chloroprene copolymer latex (A), and various evaluations were performed in the same manner as in Example 1. The results are shown in Table 1.
[0062] Comparative Example 1: A copolymer latex composition, a film, and a test piece were prepared in the same manner as in Example 1, except that the amounts of 2-chloro-1,3-butadiene, 2-methyl-1,3-butadiene, and n-dodecyl mercaptan charged were changed as shown in Table 1 and the polymerization conversion rate at the end of the reaction was set to 90 mass% to prepare a chloroprene copolymer latex (A), and various evaluations were performed in the same manner as in Example 1. The results are shown in Table 1.
[0063] Comparative Example 2: A copolymer latex composition, a film, and a test piece were prepared in the same manner as in Example 1, except that the amounts of 2-chloro-1,3-butadiene and 2-methyl-1,3-butadiene charged were changed as shown in Table 1, and the polymerization conversion rate at the end of the reaction was set to 82% by mass to prepare a chloroprene copolymer latex (A), and various evaluations were performed in the same manner as in Example 1. The results are shown in Table 1.
[0064] Comparative Example 3: A copolymer latex composition, a film, and a test piece were prepared in the same manner as in Example 1, except that the amounts of 2-chloro-1,3-butadiene and 2-methyl-1,3-butadiene charged were changed as shown in Table 1, and the polymerization conversion rate at the end of the reaction was set to 67 mass% to prepare a chloroprene copolymer latex (A), and various evaluations were performed in the same manner as in Example 1. The results are shown in Table 1.
[0065] Comparative Example 4: A copolymer latex composition, a film, and a test piece were prepared in the same manner as in Example 1, except that the polymerization conversion rate at the end of the reaction was set to 60% by mass to prepare a chloroprene copolymer latex (A), and various evaluations were performed in the same manner as in Example 1. The results are shown in Table 1.
[0066] Comparative Example 5: A copolymer latex composition, a film, and a test piece were prepared in the same manner as in Example 1, except that the amount of n-dodecyl mercaptan charged was changed as shown in Table 1 and the polymerization conversion rate at the end of the reaction was set to 82 mass% to prepare a chloroprene copolymer latex (A), and various evaluations were performed in the same manner as in Example 1. The results are shown in Table 1.
[0067] [Table 1]
[0068] In Examples 1 to 4, in which the chloroprene copolymer in the latex contains a monomer unit derived from 2-methyl-1,3-butadiene, many crosslinked structures were formed by vulcanization at 100°C, and films with high flexibility and strength were obtained, compared to Comparative Example 1, in which the polymer in the latex does not contain a monomer unit derived from 2-methyl-1,3-butadiene. In Comparative Example 1, the film could not be peeled from the mold after vulcanization, and therefore could not be evaluated. The tensile strength (before heat degradation treatment) of the molded products obtained in Comparative Examples 2 to 5 was insufficient for surgical gloves.
[0069] Comparing Examples 1 to 4 with Comparative Examples 2 to 4, it can be seen that when the proportion of monomer units derived from 2-methyl-1,3-butadiene contained in the chloroprene copolymer in the latex is 10 mol% or less, the strength is low, and as the proportion increases, the strength improves, but when it exceeds 27 mol%, the strength decreases.
[0070] In Comparative Example 5, the content of tetrahydrofuran insoluble matter was high, resulting in a decrease in flexibility, and the elongation and tensile strength of the film were also reduced.
Claims
1. 100 parts by mass of a solid content of a chloroprene copolymer latex containing a monomer unit derived from 2-chloro-1,3-butadiene (chloroprene) and a monomer unit derived from 2-methyl-1,3-butadiene, wherein the chloroprene copolymer has a tetrahydrofuran-insoluble content of 20% by mass or less, a proportion of the monomer unit derived from 2-methyl-1,3-butadiene in the chloroprene copolymer is 10 to 15 mol %, and a weight average molecular weight of a component soluble in tetrahydrofuran of the chloroprene copolymer is 550,000 or more, 0.1 to 20.0 parts by mass of a metal oxide (B), 0.1 to 10.0 parts by mass of a vulcanization accelerator (C), 0.1 to 10.0 parts by mass of sulfur (D), and 0.1 to 10.0 parts by mass of an antioxidant (E), 1. A chloroprene copolymer latex composition comprising:
2. A chloroprene copolymer rubber molded product obtained by curing the chloroprene copolymer latex composition according to claim 1.
3. 100 parts by mass of a solid content of a chloroprene copolymer latex containing a monomer unit derived from 2-chloro-1,3-butadiene (chloroprene) and a monomer unit derived from 2-methyl-1,3-butadiene, wherein the chloroprene copolymer has a tetrahydrofuran-insoluble content of 20% by mass or less and a proportion of the monomer unit derived from 2-methyl-1,3-butadiene in the chloroprene copolymer is 10 to 15 mol %, 0.1 to 20.0 parts by mass of a metal oxide (B), 0.1 to 10.0 parts by mass of a vulcanization accelerator (C), 0.1 to 10.0 parts by mass of sulfur (D), and A dipped product obtained by molding a chloroprene copolymer latex composition containing 0.1 to 10.0 parts by mass of an antioxidant (E) by a dipping method and curing the composition.
4. 4. The dipped product of claim 3, which is a glove.
5. 5. The dipped product of claim 4, which is a disposable medical glove.
Citation Information
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