polymer latex
A polymer latex composition with β-hydroxy ester bonds and functional groups addresses the challenge of achieving high tensile strength and elongation in elastomeric articles without sulfur vulcanization, offering cost-effective and safer production of elastomeric articles with improved pot life.
Patent Information
- Application Number
- JP2023500996
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-07-07
- Filing Date
- 2021-06-25
- Publication Date
- 2025-12-19
- Estimated Expiration
- 2041-06-25
AI Technical Summary
Existing polymer latexes used in manufacturing elastomeric articles face challenges in achieving high tensile strength and elongation while avoiding sulfur vulcanization systems to prevent allergic reactions, and they are often costly and have limited pot life.
A polymer latex composition comprising particles of latex polymer with functional groups and a compound with β-hydroxy ester bonds, allowing crosslinking without sulfur vulcanization, and a method for producing elastomeric articles using this latex, including immersion, solidification, and heat treatment.
The solution provides a softer film with maintained mechanical properties, reduced production costs, and increased pot life, while eliminating the need for sulfur vulcanizing agents and accelerators, thus reducing allergic reactions.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to a polymer latex, a method for preparing such a polymer latex, the use of said polymer latex for the manufacture of elastomeric articles or for coating or impregnating substrates, a formulated latex composition comprising said polymer latex, a method for the manufacture of elastomeric articles, and articles manufactured using said polymer latex. [Background technology]
[0002] In the art of manufacturing polymer latex-based articles, it is generally desirable to achieve high tensile strength and simultaneously high elongation in the film forming the article, thereby providing the article with high mechanical strength and desired flexibility. This is particularly important for surgical gloves. Furthermore, in recent years, an increasing number of people have been found to be experiencing allergic reactions to latex-based articles. For example, natural rubber latex, which has been commonly used in the past to manufacture latex products such as dip-molded articles, contains up to 5% non-rubber components such as proteins, lipids, and trace elements. Users of natural rubber latex products have been developing Type I hypersensitivity reactions caused by leachable latex proteins remaining in natural rubber products.
[0003] Natural and synthetic polymer latexes are generally crosslinked using sulfur vulcanization systems containing sulfur and sulfur-containing accelerators. The use of these sulfur vulcanization systems in rubber glove manufacturing can cause Type IV hypersensitivity reactions, such as allergic contact dermatitis.
[0004] As a result, several attempts have been made in the prior art to avoid sulfur vulcanization systems, and in particular to provide polymer latexes that can be used in the production of dip-molded articles without the need for the standard sulfur vulcanization systems with previously used sulfur-containing accelerators to obtain the desired mechanical properties of the final product.
[0005] U.S. Patent No. 7,345,111 relates to an acrylic polymer emulsion and a glove formed from the emulsion. The polymer is formed by polymerization of a total of 100% by weight of a monomer mixture containing 50-90% by weight of an alkyl acrylate or alkyl methacrylate, 9-49% by weight of a vinyl monomer whose homopolymer has a glass transition temperature of 80°C or higher, 0.2-100% by weight of a vinyl monomer having a carboxyl group, and 0.1-5% by weight of a crosslinking monomer that is poly(tetramethylene ether) glycol diglycidyl ether having a molecular weight of 280 or higher.
[0006] U.S. Patent No. 8,975,351 discloses a latex resin composition for rubber gloves that does not contain sulfur or vulcanization accelerators. The composition contains a conjugated diene monomer, an ethylenically unsaturated nitrile monomer, an ethylenically unsaturated acid monomer, an ethylenically unsaturated monomer copolymerizable with the ethylenically unsaturated nitrile monomer and the ethylenically unsaturated acid monomer, and a reactive compound containing two or more reactive groups. An example of this compound is polyether glycol diglycidyl ether.
[0007] Similarly, U.S. Patent Application Publication No. 8,044,138 discloses a carboxylic acid-modified nitrile copolymer latex prepared from a conjugated diene monomer, an ethylenically unsaturated nitrile monomer, an ethylenically unsaturated acid monomer, and an unsaturated monomer having at least one crosslinkable functional group selected from a vinyl group or an epoxy group as constituent monomers. In the examples, glycidyl methacrylate is used, inter alia, as the monomer having at least one crosslinkable functional group.
[0008] WO 2017 / 209596 discloses a polymer latex for dip-molding applications that contains two different types of latex particles. One type of latex particle is carboxylated, while the second type of latex particle contains oxirane functionality. This latex composition offers many advantages to the final dip-molded article, including achieving desired mechanical properties without sulfur vulcanization, improving solvent resistance required for industrial glove applications, and enabling economical production of dip-molded articles in terms of reduced overall process time and reduced energy consumption. Furthermore, as described in co-pending application PCT / MY2019 / 000017, the inventors have discovered that during crosslinking to form dip-molded articles, the reaction between carboxylic acid functionality on the carboxylated latex and oxirane functionality on the second latex results in β-hydroxyester linkages that provide self-healing properties to the resulting elastomeric film.
[0009] It is therefore an object of the present invention to provide a polymer latex composition that results in a softer film while maintaining the advantageous properties of the polymer latexes described, for example, in WO 2017 / 209596.
[0010] Another object is to provide a polymer latex composition that can be produced more economically while maintaining the advantageous properties of the polymer latexes described, for example, in WO 2017 / 209596.
[0011] Another object is to provide a polymer latex composition having an increased pot life while maintaining the advantageous properties of the polymer latexes described, for example, in WO 2017 / 209596. Summary of the Invention
[0012] Thus, according to one aspect, the present invention relates to a polymer latex for the preparation of an elastomeric film, said polymer latex comprising the following components: (A) particles of a latex polymer (A) obtained by free radical emulsion polymerization of a mixture of ethylenically unsaturated monomers, the particles of the latex polymer containing a plurality of functional groups (x); and (B) a compound having a β-hydroxy ester bond and at least one additional functional group (y) reactive with the functional group (x) on the latex polymer (A).
[0013] According to a further aspect, the present invention relates to a method for preparing a polymer latex, the method comprising the steps of: (i) polymerizing, in an emulsion polymerization process, a mixture of ethylenically unsaturated monomers for a latex polymer (A), including at least one monomer that provides a functional group (x) after polymerization, to obtain a latex comprising particles of the latex polymer (A) having a plurality of functional groups (x); and (ii) adding a compound (B) having a β-hydroxy ester bond and at least one additional functional group (y) that is reactive with the functional group (x) on the latex polymer (A);
[0014] The present invention further relates to the use of a polymer latex as defined above for the manufacture of an article or for coating or impregnating a substrate, preferably a textile substrate.
[0015] The present invention further relates to a compounded latex composition suitable for the manufacture of articles comprising the polymer latex defined above and optionally an adjuvant selected from a sulfur vulcanizing agent, an accelerator for sulfur vulcanization, a crosslinking agent, a polyvalent cation, and combinations thereof.
[0016] As mentioned above, the polymer latex of the present invention can be successfully used without sulfur vulcanizing agents and sulfur vulcanization accelerators without impairing the required mechanical properties. Therefore, it is preferred that the compounded latex composition of the present invention does not contain sulfur vulcanizing agents and sulfur vulcanization accelerators.
[0017] The present invention further relates to a method for producing a dip-molded article by the following steps: (a) providing a compounded latex according to the present invention; (b) immersing a form having the desired shape of the final article in a coagulant bath containing a solution of metal salts; (c) removing the mold from the coagulant bath and optionally drying the mold; (d) immersing the former treated in steps (b) and (c) in the compounded latex composition of step (a); (e) solidifying a latex film onto the surface of the mold; (f) removing the latex-coated former from the compounded latex composition and optionally immersing the latex-coated former in a water bath; (g) optionally drying the latex-coated mold; (h) heat-treating the latex-coated form obtained from step (e) or (f) at a temperature of 40°C to 180°C and / or exposing the latex-coated form obtained from step (e) or (f) to UV radiation; and (i) Removing the latex article from the mold.
[0018] The present invention also relates to articles made using the polymer latex or compounded latex composition according to the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0019] The present invention relates to a polymer latex comprising the following components: (A) particles of a latex polymer (A) obtained by free radical emulsion polymerization of a mixture of ethylenically unsaturated monomers, the particles of the latex polymer containing a plurality of functional groups (x); and (B) a compound having a β-hydroxy ester bond and at least one additional functional group (y) reactive with the functional group (x) on the latex polymer (A).
[0020] Suitable functional groups (x) on the latex polymer (A) may be selected from groups having a carbon-carbon double bond, carboxylic acid functional groups, hydroxyl groups, epoxy groups, acetoacetyl groups, primary or secondary amino groups, acetoxy groups, isocyanate groups, alkoxysilyl groups, alkoxy groups, dioxolanone functional groups, and combinations thereof.
[0021] A latex polymer (A) containing multiple functional groups (x): The latex polymer (A) used in accordance with the present invention can be prepared by any suitable free radical emulsion polymerization process known in the art. Suitable process parameters are as described below.
[0022] The unsaturated monomers and their relative amounts used in preparing the latex polymer (A) are not particularly critical, so long as the monomer mixture contains at least one ethylenically unsaturated monomer that provides multiple functional groups (x) on the latex polymer (A). Monomer compositions containing a conjugated diene and an ethylenically unsaturated nitrile compound are particularly useful for dip molding applications.
[0023] According to the present invention, the monomer composition for the latex polymer (A) can comprise the following components: (a) 15 to 99 wt. % conjugated dienes; (b) 1 to 80% by weight of a monomer selected from ethylenically unsaturated nitrile compounds; (c) 0 to 10% by weight of an ethylenically unsaturated compound having a functional group (x) different from a conjugated diene; (d) 0 to 80 weight percent vinyl aromatic monomer; and (e) 0 to 65% by weight of an alkyl ester of an ethylenically unsaturated acid; Here, the weight percent is based on the total weight of the monomers in the monomer mixture.
[0024] Conjugated diene monomers suitable for preparing the latex polymer (A) according to the present invention include 1,3-butadiene, isoprene, 2,3-dimethyl-1,3-butadiene, 2-chloro-1,3-butadiene, 1,3-pentadiene, 1,3-hexadiene, 2,4-hexadiene, 1,3-octadiene, 2-methyl-1,3-pentadiene, 2,3-dimethyl-1,3-pentadiene, 3,4-dimethyl-1,3-hexadiene, 2,3-diethyl-1,3-butadiene, 4,5-diethyl-1,3-octadiene, 3-butyl-1,3-octadiene, 3,7-dimethyl-1,3,6-octatriene, 2-methyl-6-methylene-1,7-octadi ... The conjugated diene monomers include those selected from the group consisting of butadiene, 7-methyl-3-methylene-1,6-octadiene, 1,3,7-octatriene, 2-ethyl-1,3-butadiene, 2-amyl-1,3-butadiene, 3,7-dimethyl-1,3,7-octatriene, 3,7-dimethyl-1,3,6-octatriene, 3,7,11-trimethyl-1,3,6,10-dodecatetraene, 7,11-dimethyl-3-methylene-1,6,10-dodecatriene, 2,6-dimethyl-2,4,6-octatriene, 2-phenyl-1,3-butadiene, 2-methyl-3-isopropyl-1,3-butadiene, and 1,3-cyclohexadiene. 1,3-Butadiene, isoprene, and combinations thereof are preferred conjugated dienes. 1,3-butadiene is the most preferred diene. Typically, the amount of conjugated diene monomer ranges from 15 to 99 weight percent, preferably 20 to 99 weight percent, more preferably 30 to 75 weight percent, and most preferably 40 to 70 weight percent, based on the total weight of the monomers. Thus, the conjugated diene can be present in an amount of at least 15 weight percent, at least 20 weight percent, at least 22 weight percent, at least 24 weight percent, at least 26 weight percent, at least 28 weight percent, at least 30 weight percent, at least 32 weight percent, at least 34 weight percent, at least 36 weight percent, at least 38 weight percent, or at least 40 weight percent, based on the total weight of the ethylenically unsaturated monomers for the latex polymer (A).
[0025] Thus, conjugated diene monomer can be used in amounts of 95% by weight or less, 90% by weight or less, 85% by weight or less, 80% by weight or less, 78% by weight or less, 76% by weight or less, 74% by weight or less, 72% by weight or less, 70% by weight or less, 68% by weight or less, 66% by weight or less, 64% by weight or less, 62% by weight or less, 60% by weight or less, 58% by weight or less, or 56% by weight or less. One of ordinary skill in the art will understand that any range between any of the explicitly disclosed lower and upper limits is disclosed herein.
[0026] Unsaturated nitrile monomers that can be used in the present invention include polymerizable unsaturated aliphatic nitrile monomers containing 2 to 4 carbon atoms in a linear or branched configuration, which may be substituted with either an acetyl group or an additional nitrile group. Such nitrile monomers include acrylonitrile, methacrylonitrile, α-cyanoethyl acrylonitrile, fumaronitrile, and combinations thereof, with acrylonitrile being most preferred. These nitrile monomers may be included in an amount of 1 to 80% by weight, preferably 10 to 70% by weight, or 1 to 60% by weight, more preferably 15 to 50% by weight, even more preferably 20 to 50% by weight, and most preferably 23 to 43% by weight, based on the total weight of the ethylenically unsaturated monomers for the latex polymer (A).
[0027] Thus, the unsaturated nitrile can be present in an amount of at least 1 weight percent, 5 weight percent, at least 10 weight percent, at least 12 weight percent, at least 14 weight percent, at least 16 weight percent, at least 18 weight percent, at least 20 weight percent, at least 22 weight percent, at least 24 weight percent, at least 26 weight percent, at least 28 weight percent, at least 30 weight percent, at least 32 weight percent, at least 34 weight percent, at least 36 weight percent, at least 38 weight percent, or at least 40 weight percent based on the total weight of the ethylenically unsaturated monomers for the latex polymer (A).
[0028] Thus, the unsaturated nitrile monomer can be used in an amount of 80% by weight or less, 75% by weight or less, 73% by weight or less, 70% by weight or less, 68% by weight or less, 66% by weight or less, 64% by weight or less, 62% by weight or less, 60% by weight or less, 58% by weight or less, 56% by weight or less, 54% by weight or less, 52% by weight or less, 50% by weight or less, 48% by weight or less, 46% by weight or less, or 44% by weight or less. One of ordinary skill in the art would understand that any range between any of the explicitly disclosed lower and upper limits is disclosed herein.
[0029] In the monomer composition for preparing the latex polymer (A) according to the present invention, the ethylenically unsaturated compound having a functional group (x), which is different from the conjugated diene, can be selected from the following: (c1) an ethylenically unsaturated compound having at least two different ethylenically unsaturated groups; (c2) Ethylenically unsaturated acids and their salts; (c3) hydroxy-functional ethylenically unsaturated compounds; (c4) oxirane-functional ethylenically unsaturated compounds; (c5) acetoacetyl-functional ethylenically unsaturated compounds; (c6) Ethylenically unsaturated compounds having a primary or secondary amino group; (c7) acetoxy-functional ethylenically unsaturated compounds; (c8) isocyanate-functional ethylenically unsaturated compounds; (c9) alkoxysilyl-functional ethylenically unsaturated compounds; (c10) alkoxy-functional ethylenically unsaturated compounds; (c11) dioxolanone-functional ethylenically unsaturated compounds; and combinations thereof.
[0030] Suitable ethylenically unsaturated compounds (c1) having at least two different ethylenically unsaturated groups may be selected from allyl (meth)acrylate and vinyl (meth)acrylate.
[0031] Suitable ethylenically unsaturated acids (c2) and their salts can be selected from ethylenically unsaturated carboxylic acid monomers, ethylenically unsaturated sulfonic acid monomers, and ethylenically unsaturated phosphorus-containing acid monomers. Ethylenically unsaturated carboxylic acid monomers suitable for use in the present invention include monocarboxylic acid and dicarboxylic acid monomers, monoesters of dicarboxylic acids, and carboxyalkyl esters of ethylenically unsaturated acids, such as 2-carboxyethyl (meth)acrylate. In practicing the present invention, it is preferable to use ethylenically unsaturated aliphatic mono- or dicarboxylic acids or anhydrides containing 3 to 5 carbon atoms. Examples of monocarboxylic acid monomers include acrylic acid, methacrylic acid, and crotonic acid, while examples of dicarboxylic acid monomers include fumaric acid, itaconic acid, maleic acid, and maleic anhydride. Examples of other suitable ethylenically unsaturated acids include vinyl acetate, vinyl lactate, vinyl sulfonic acid, 2-methyl-2-propene-1-sulfonic acid, styrene sulfonic acid, acrylamidomethylpropane sulfonic acid, and salts thereof. Particularly preferred are (meth)acrylic acid, crotonic acid, itaconic acid, maleic acid, fumaric acid and combinations thereof.
[0032] Examples of ethylenically unsaturated sulfonic acid monomers: vinyl sulfonic acid, phenyl vinyl sulfonic acid, sodium 4-vinylbenzenesulfonate, 2-methyl-2-propene-1-sulfonic acid, 4-styrenesulfonic acid, 3-allyloxy-2-hydroxy-1-propanesulfonic acid, 2-acrylamido-2-methyl-1-propanesulfonic acid and salts thereof.
[0033] Examples of ethylenically unsaturated phosphorus-containing acid monomers: vinylphosphonic acid, dimethyl vinylphosphonate, diethyl vinylphosphonate, diethyl allylphosphonate, allylphosphonic acid and salts thereof.
[0034] Suitable hydroxy-functional ethylenically unsaturated compounds (c3) may be selected from N-methylolacrylamide, and hydroxyalkyl esters of ethylenically unsaturated acids.
[0035] Hydroxyalkyl (meth)acrylate monomers that can be used to prepare the polymer latex according to the present invention include hydroxyalkyl acrylate and hydroxyalkyl methacrylate monomers based on ethylene oxide, propylene oxide, and higher alkylene oxides or mixtures thereof. For example, hydroxyethyl acrylate, hydroxypropyl acrylate, hydroxyethyl methacrylate, hydroxypropyl methacrylate, and hydroxybutyl acrylate are included. Preferably, the hydroxyalkyl (meth)acrylate monomer is 2-hydroxyethyl (meth)acrylate.
[0036] Suitable oxirane-functional ethylenically unsaturated monomers (c4) are glycidyl (meth)acrylate, allyl glycidyl ether, vinyl glycidyl ether, vinylcyclohexene oxide, limonene oxide, 2-ethylglycidyl acrylate, 2-ethylglycidyl methacrylate, 2-(n-propyl)glycidyl acrylate, 2-(n-propyl)glycidyl methacrylate, 2-(n-butyl)glycidyl acrylate, 2-(n-butyl)glycidyl methacrylate, glycidyl methyl methacrylate, glycidyl acrylate, (3',4'-epoxyheptyl)-2-ethyl acrylate, (3',4'-epoxyheptyl)-2-ethyl methacrylate. The acrylate may be selected from the group consisting of acrylate, (6',7'-epoxyheptyl)acrylate, (6',7'-epoxyheptyl)methacrylate, allyl-3,4-epoxyheptyl ether, 6,7-epoxyheptyl allyl ether, vinyl-3,4-epoxyheptyl ether, 3,4-epoxyheptyl vinyl ether, 6,7-epoxyheptyl vinyl ether, o-vinylbenzyl glycidyl ether, m-vinylbenzyl glycidyl ether, p-vinylbenzyl glycidyl ether, 3-vinylcyclohexene oxide, α-methylglycidyl methacrylate, 3,4-epoxycyclohexylmethyl (meth)acrylate, and combinations thereof. Glycidyl (meth)acrylate is particularly preferred.
[0037] Suitable acetoacetyl-functional ethylenically unsaturated compounds (c5) may be selected from acetoacetoxyethyl (meth)acrylate, acetoacetoxypropyl (meth)acrylate, allyl acetoacetate, acetoacetoxybutyl (meth)acrylate, 2,3-di(acetoacetoxy)propyl (meth)acrylate, (2-acetoacetamido-2-methylpropyl) (meth)acrylate, 3-(methacryloyloxy)-2,2-dimethylpropyl-3-oxobutanoate, 3-(methacryloyloxy)-2,2,4,4-tetramethylcyclobutyl-3-oxobutanoate, l-((meth)acryloyloxy)-2,2,4-trimethylpentan-3-yl-3-oxobutanoate, (4-((meth)acryloyloxymethyl)cyclohexyl)methyl-3-oxobutanoate.
[0038] Suitable ethylenically unsaturated compounds (c6) having a primary or secondary amino group may be selected from (meth)acrylamide, alkyl(meth)acrylamides such as N-ethyl(meth)acrylamide, N-tert-butyl(meth)acrylamide, N-phenyl(meth)acrylamide, N-(isobutoxymethyl)(meth)acrylamide, N-propyl(meth)acrylamide, aminoalkyl esters of ethylenically unsaturated acids such as 2-aminoethyl(meth)acrylate, N-(3-aminopropyl)(meth)acrylamide hydrochloride, 2-aminoethyl(meth)acrylamide hydrochloride, (2-(N-tert-butoxycarbonylamino)ethyl(meth)acrylate, and N-3-(dimethylamino)propyl(meth)acrylamide.
[0039] Suitable acetoxy-functional ethylenically unsaturated compounds (c7) can be selected from diacetone acrylamide.
[0040] Suitable isocyanate-functional ethylenically unsaturated compounds (c8) may be selected from 2-isocyanatoethyl (meth)acrylate, allyl isocyanate, vinyl isocyanate, 3-isopropenyl-α,α-dimethylbenzyl isocyanate.
[0041] Suitable alkoxysilyl-functional ethylenically unsaturated compounds (c9) may be selected from vinyltrimethoxysilane, vinyltriethoxysilane and 3-methacryloxypropyltrimethoxysilane.
[0042] Suitable alkoxy-functional ethylenically unsaturated compounds (c10) can be selected from N-methoxymethyl-(meth)acrylamide, Nn-butoxymethyl-(meth)acrylamide, N-isobutoxymethyl-(meth)acrylamide, 2-methoxyethyl (meth)acrylate, 2-ethoxyethyl (meth)acrylate, 2-butoxyethyl (meth)acrylate, and methoxyethoxyethyl acrylate. Preferred alkoxy-functional ethylenically unsaturated compounds are ethoxyethyl acrylate and methoxyethyl acrylate.
[0043] Suitable dioxolanone-functional ethylenically unsaturated compounds (c11) can be selected from glycerol carbonate (meth)acrylate and 4-vinyl-1,3-dioxolan-2-one (vinyl ethylene carbonate).
[0044] Monomer (c) provides functional group (x) reactive with functional group (y) on compound (B) according to the present invention. Furthermore, due to their polarity, they can affect the properties of the polymer dispersion. This determines the type and amount of these monomers. Typically, such amount is 0.05 to 10 wt. %, particularly 0.1 to 10 wt. %, or 0.5 to 7 wt. %, preferably 0.1 to 9 wt. %, more preferably 0.1 to 8 wt. %, even more preferably 1 to 7 wt. %, and most preferably 2 to 7 wt. %, based on the total weight of the ethylenically unsaturated monomers for latex polymer (a). Thus, the ethylenically unsaturated acid compound (c) may be present in an amount of at least 0.01 wt%, at least 0.05 wt%, at least 0.1 wt%, at least 0.3 wt%, at least 0.5 wt%, at least 0.7 wt%, at least 0.9 wt%, at least 1 wt%, at least 1.2 wt%, at least 1.4 wt%, at least 1.6 wt%, at least 1.8 wt%, at least 2 wt%, at least 2.5 wt%, or at least 3 wt%. Similarly, the ethylenically unsaturated compound (c) may be present in an amount of 10 wt% or less, 9.5 wt% or less, 9 wt% or less, 8.5 wt% or less, 8 wt% or less, 7.5 wt% or less, 7 wt% or less, 6.5 wt% or less, 6 wt% or less, 5.5 wt% or less, or 5 wt% or less, based on the total weight of the ethylenically unsaturated monomers for the latex polymer (A). One of ordinary skill in the art will recognize that any range defined by an explicitly disclosed lower limit and an explicitly disclosed upper limit is herein disclosed.
[0045] Representative examples of vinyl aromatic monomers include, for example, styrene, α-methylstyrene, vinyltoluene, o-methylstyrene, p-methylstyrene, p-tert-butylstyrene, 2,4-dimethylstyrene, 2-methylstyrene, 3-methylstyrene, 4-methylstyrene, 2-ethylstyrene, 3-ethylstyrene, 4-ethylstyrene, 2,4-diisopropylstyrene, 2,4-dimethylstyrene, 4-t-butylstyrene, 5-t-butyl-2-methylstyrene, 2-chlorostyrene, 3-chlorostyrene, 4-chlorostyrene, 4-bromostyrene, 2-methyl-4,6-dichlorostyrene, 2,4-dibromostyrene, vinylnaphthalene, vinyltoluene, vinylxylene, 2-vinylpyridine, 4-vinylpyridine, 1,1-diphenylethylene, substituted 1,1-diphenylethylene, 1,2-diphenylethene, and substituted 1,2-diphenylethylene. Mixtures of one or more vinyl aromatic compounds can also be used. Preferred monomers are styrene and α-methylstyrene. The vinyl aromatic compound can be used in an amount of 0 to 80% by weight, or 0 to 70% by weight, or 0 to 50% by weight, preferably 0 to 40% by weight, more preferably 0 to 25% by weight, even more preferably 0 to 15% by weight, and most preferably 0 to 10% by weight, based on the total weight of the ethylenically unsaturated monomers for the latex polymer (A). Thus, the vinyl aromatic compound can be present in an amount of 80% by weight or less, 75% by weight or less, 60% by weight or less, 50% by weight or less, 40% by weight or less, 35% by weight or less, 30% by weight or less, 25% by weight or less, 20% by weight or less, 18% by weight or less, 16% by weight or less, 14% by weight or less, 12% by weight or less, 10% by weight or less, 8% by weight or less, 6% by weight or less, 4% by weight or less, 2% by weight or less, or 1% by weight or less, based on the total weight of the ethylenically unsaturated monomers for the latex polymer (A). The vinyl aromatic compound may also be completely absent.
[0046] Suitable alkyl esters of ethylenically unsaturated acids for use in accordance with the present invention include n-, iso-, or tert-alkyl esters of (meth)acrylic acid, in which the alkyl group has 1 to 20 carbon atoms, and reaction products of methacrylic acid with glycidyl esters of neoacids, such as versatic, neodecanoic, or pivalic acid.
[0047] Generally, preferred alkyl esters of (meth)acrylic acid are C1-C 10 It can be selected from alkyl (meth)acrylates, preferably C1-C8 alkyl (meth)acrylates. Examples of such acrylate monomers include n-butyl acrylate, sec-butyl acrylate, ethyl acrylate, hexyl acrylate, tert-butyl acrylate, 2-ethylhexyl acrylate, isooctyl acrylate, 4-methyl-2-pentyl acrylate, 2-methylbutyl acrylate, methyl methacrylate, butyl methacrylate, n-butyl methacrylate, isobutyl methacrylate, ethyl methacrylate, isopropyl methacrylate, hexyl methacrylate, cyclohexyl methacrylate and cetyl methacrylate. Methyl (meth)acrylate, ethyl (meth)acrylate, propyl (meth)acrylate, butyl (meth)acrylate, 2-ethylhexyl (meth)acrylate and combinations thereof are preferred.
[0048] Typically, the alkyl ester of an ethylenically unsaturated acid can be present in an amount of 65% by weight or less, 60% by weight or less, 55% by weight or less, 50% by weight or less, 45% by weight or less, 40% by weight or less, 35% by weight or less, 30% by weight or less, 25% by weight or less, 20% by weight or less, 18% by weight or less, 16% by weight or less, 14% by weight or less, 12% by weight or less, 10% by weight or less, 8% by weight or less, 6% by weight or less, 4% by weight or less, 2% by weight or less, or 1% by weight or less, based on the total weight of the ethylenically unsaturated monomers for latex polymer (A).
[0049] Furthermore, the mixture of ethylenically unsaturated monomers for the latex polymer (A) according to the present invention can contain additional ethylenically unsaturated monomers different from the monomers defined above, which can be selected from vinyl esters and monomers having two identical ethylenically unsaturated groups.
[0050] Vinyl ester monomers that can be used in accordance with the present invention include vinyl acetate, vinyl propionate, vinyl butyrate, vinyl benzoate, vinyl-2-ethylhexanoate, vinyl stearate, and vinyl esters of Versatic acid. The most preferred vinyl ester monomer for use in the present invention is vinyl acetate. Typically, the vinyl ester monomer can be present in an amount of 18% by weight or less, 16% by weight or less, 14% by weight or less, 12% by weight or less, 10% by weight or less, 8% by weight or less, 6% by weight or less, 4% by weight or less, 2% by weight or less, or 1% by weight or less, based on the total weight of the ethylenically unsaturated monomers for latex polymer (a).
[0051] Additionally, monomers having at least two identical ethylenically unsaturated groups can be present in the monomer mixture for preparing the polymer latex of the present invention in an amount of 0 to 6.0 wt %, preferably 0.1 to 3.5 wt %, based on the total weight of the ethylenically unsaturated monomers. Typically, these monomers can be present in an amount of 6 wt % or less, 4 wt % or less, 2 wt % or less, or 1 wt % or less, based on the total weight of the ethylenically unsaturated monomers. Suitable difunctional monomers capable of providing internal crosslinking and branching in the polymer (known herein as multifunctional monomers) can be selected from divinylbenzene and diacrylates and di(meth)acrylates. Examples include ethylene glycol di(meth)acrylate, hexanediol di(meth)acrylate, tripropylene glycol di(meth)acrylate, butanediol di(meth)acrylate, neopentyl glycol di(meth)acrylate, diethylene glycol di(meth)acrylate, triethylene glycol di(meth)acrylate, and dipropylene glycol di(meth)acrylate. The monomer having at least two ethylenically unsaturated groups is preferably selected from divinylbenzene, 1,2-ethylene glycol di(meth)acrylate, 1,4-butanediol di(meth)acrylate and 1,6-hexanediol di(meth)acrylate.
[0052] According to the present invention, the amounts of the above-defined monomers for the preparation of the latex polymer (A) can total 100% by weight.
[0053] The mixture of ethylenically unsaturated monomers for the latex polymer (A) may consist of the following components: - 20 to 99% by weight of a conjugated diene, preferably chosen from butadiene, isoprene and combinations thereof, more preferably butadiene; - 1 to 60% by weight of a monomer chosen from ethylenically unsaturated nitrile compounds, preferably acrylonitrile; - 0 to 70% by weight of a vinyl aromatic monomer, preferably styrene; - 0 to 25% by weight of C1 to C8 alkyl (meth)acrylates; - 0.05 to 7% by weight of an ethylenically unsaturated acid, preferably (meth)acrylic acid; and - 0 to 10% by weight of vinyl esters: Here, the weight percentages are based on the total monomers present in the mixture.
[0054] Method for preparing the polymer latex of the present invention: The latex polymer (A) according to the present invention can be prepared by any emulsion polymerization process known to those skilled in the art, provided that the monomer mixture defined herein is used. The process described in EP-A-792891 is particularly suitable.
[0055] The emulsion polymerization for preparing the latex polymer (A) of the present invention may employ a seed latex. Any seed particles known to those skilled in the art may be used.
[0056] The seed latex particles are preferably present in an amount of 0.01 to 10, preferably 1 to 5 parts by weight, based on 100 parts by weight of all ethylenically unsaturated monomers used in the polymer latex, including those used to make the seed particles, such as oxirane-functional latex particles (b). Thus, the lower limit of the amount of seed latex particles can be 0.01, 0.05, 0.1, 0.2, 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, 0.9, 1.0, 1.1, 1.2, 1.3, 1.4, 1.5, 1.6, 1.7, 1.8, 1.9, 2.0, 2.1, 2.2, 2.3, 2.4, or 2.5 parts by weight. The upper limit of the above amount can be 10, 9, 8, 7, 6, 5.5, 5, 4.5, 4, 3.8, 3.6, 3.4, 3.3, 3.2, 3.1, or 3 parts by weight. One of ordinary skill in the art will recognize that any range formed by any of the explicitly disclosed lower and upper limits is expressly encompassed herein.
[0057] The above-mentioned process for preparing the polymer latex can be carried out in the presence or absence of one or more emulsifiers, in the presence or absence of one or more colloids, and in the presence of one or more initiators at temperatures of 0 to 130° C., preferably 0 to 100° C., particularly preferably 5 to 70° C., and very particularly preferably 5 to 60° C., including all values and subvalues therebetween, in particular 5, 10, 15, 20, 25, 30, 35, 40, 45, 50, 55, 60, 65, 70, 75, 80, 85, 90, 95, 100, 105, 110, 115, 120, and 125° C.
[0058] Initiators that can be used in the practice of the present invention include water-soluble and / or oil-soluble initiators that are effective for polymerization purposes. Alternative initiators are well known in the art and include, for example, azo compounds (e.g., AIBN, AMBN, and cyanovaleric acid), inorganic peroxy compounds (e.g., hydrogen peroxide, sodium peroxydisulfate, potassium peroxydisulfate, and ammonium peroxydisulfate), peroxycarbonates and peroxyborates, organic peroxy compounds (e.g., alkyl hydroperoxides, dialkyl peroxides, acyl hydroperoxides, and diacyl peroxides), esters (e.g., tert-butyl perbenzoate), and combinations of inorganic and organic initiators.
[0059] The initiator is used in an amount sufficient to initiate the polymerization reaction at the desired rate. Generally, an amount of initiator between 0.01 and 5 weight percent, preferably between 0.1 and 4 weight percent, based on the weight of the total polymer, is sufficient. Most preferably, the amount of initiator is between 0.01 and 2 weight percent, based on the total weight of the polymer. The amount of initiator includes all values and subvalues therebetween, particularly 0.01, 0.1, 0.5, 1, 1.5, 2, 2.5, 3, 4, and 4.5 weight percent, based on the total weight of the polymer.
[0060] The inorganic and organic peroxy compounds described above can also be used alone or in combination with one or more suitable reducing agents, as is well known in the art. Examples of such reducing agents include sulfur dioxide, alkali metal disulfite, alkali metal and ammonium hydrogen sulfite, thiosulfate, dithionite, and formaldehyde sulfoxylate, hydroxylamine hydrochloride, hydrazine sulfate, iron(II) sulfate, copper naphthenate, glucose, sulfonic acid compounds such as sodium methanesulfonate, amine compounds such as dimethylaniline, and ascorbic acid. The amount of reducing agent is preferably 0.03 to 10 parts by weight per part by weight of the polymerization initiator.
[0061] Suitable surfactants or emulsifiers for stabilizing latex particles include conventional surfactants for polymerization processes. Surfactants can be added to the aqueous phase and / or the monomer phase. In seeded processes, an effective amount of surfactant is an amount selected to support colloidal stabilization of the particles, minimize interparticle contact, and prevent agglomeration. In non-seeded processes, an effective amount of surfactant is an amount selected to affect particle size.
[0062] Representative surfactants include, for example, saturated and ethylenically unsaturated sulfonic acids or their salts, such as unsaturated hydrocarbon sulfonic acids and their salts, such as vinyl sulfonic acid, allyl sulfonic acid, and methallyl sulfonic acid; aromatic hydrocarbon acids and their salts, such as p-styrene sulfonic acid, isopropenyl benzene sulfonic acid, and vinyloxybenzene sulfonic acid; sulfoalkyl esters of acrylic acid and methacrylic acid, such as sulfoethyl methacrylate and sulfopropyl methacrylate and their salts, and 2-acrylamido-2-methylpropane sulfonic acid and its salts; alkylated diphenyloxide disulfonates, sodium dodecylbenzene sulfonate, dihexyl ester of sodium sulfosuccinate, sodium alkyl sulfonate esters, ethoxylated alkylphenols, and ethoxylated alcohols; and fatty alcohol (poly)ether sulfates.
[0063] The type and amount of surfactant are typically governed by the number of particles, their size, and their composition. Typically, surfactants are used in amounts of 0 to 20, preferably 0 to 10, and more preferably 0 to 5 wt. % based on the total weight of monomers. The amount of surfactant includes all values and subvalues therebetween, particularly 0, 0.1, 0.5, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, and 19 wt. % based on the total weight of monomers. According to one embodiment of the present invention, the polymerization is carried out without the use of a surfactant.
[0064] Various protective colloids can be used instead of or in addition to the surfactants listed above. Suitable colloids include partially acetylated polyvinyl alcohol, casein, hydroxyethyl starch, carboxymethyl cellulose, hydroxyethyl cellulose, hydroxypropyl cellulose, polysaccharides and degraded polysaccharides, polyethylene glycol, and polyhydroxy compounds such as gum arabic. Preferred protective colloids are carboxymethyl cellulose, hydroxyethyl cellulose, and hydroxypropyl cellulose. Generally, these protective colloids are used in amounts of 0 to 10, preferably 0 to 5, and more preferably 0 to 2 parts by weight based on the total weight of the monomers. The amount of protective colloid includes all values and subvalues therebetween, particularly 1, 2, 3, 4, 5, 6, 7, 8, and 9% by weight based on the total weight of the monomers.
[0065] Those skilled in the art will understand that the types and amounts of polar functional monomers, surfactants, and protective colloids are selected to make the polymer latex of the present invention suitable for dip molding applications. Therefore, it is preferred that the polymer latex composition of the present invention has a certain maximum electrolyte stability (measured at pH 10 and 23°C for 0.1% total solids of the composition) determined as a critical coagulation concentration of CaCl2 of less than 30 mmol / L, preferably less than 25 mmol / L, more preferably less than 20 mmol / L, and most preferably less than 10 mmol / L.
[0066] If the electrolyte is too stable, it will be difficult to coagulate the polymer latex during the dip-molding process, resulting in either no continuous film of polymer latex being formed on the former or the resulting product having an uneven thickness.
[0067] It is within the routine skill of those skilled in the art to properly adjust the electrolyte stability of the polymer latex. The electrolyte stability depends on certain different factors, such as the amount and selection of monomers (especially those containing polar functional groups) used to prepare the polymer latex, and the selection and amount of a stabilizing system (e.g., an emulsion polymerization process for preparing the polymer latex). The stabilizing system can contain a surfactant and / or a protective colloid.
[0068] Those skilled in the art will be able to tailor the stabilization system to achieve electrolyte stability according to the present invention depending on the monomers selected and their relative amounts for preparing the polymer latex of the present invention.
[0069] Since there are so many different influences on electrolyte stability, adjustments are best made by trial and error experimentation, but this can be easily done without undue effort using the test methods for electrolyte stability as disclosed above.
[0070] It is often recommended to carry out emulsion polymerization in the presence of buffer substances and chelating agents. Suitable substances are, for example, alkali metal phosphates and pyrophosphates (buffer substances) and alkali metal salts of ethylenediaminetetraacetic acid (EDTA) or hydroxyl-2-ethylenediaminetriacetic acid (HEEDTA) as chelating agents. The amount of buffer substances and chelating agents is usually 0.001 to 1.0% by weight, based on the total amount of monomers.
[0071] Additionally, it may be advantageous to use chain transfer agents (regulators) in the emulsion polymerization. Typical agents are, for example, thioesters, 2-mercaptoethanol, 3-mercaptopropionic acid, and C1-C 12 The chain transfer agent is an organic sulfur compound such as an alkyl mercaptan, with n-dodecyl mercaptan and t-dodecyl mercaptan being preferred. The amount of chain transfer agent, if present, is usually 0.05 to 3.0% by weight, preferably 0.2 to 2.0% by weight, based on the total weight of the monomers used.
[0072] Additionally, it may be beneficial to introduce partial neutralization into the polymerization process. Those skilled in the art will appreciate that by appropriate selection of this parameter the necessary control can be achieved.
[0073] Various other additives and ingredients can be added to prepare the latex composition of the present invention. Such additives include, for example, defoamers, wetting agents, thickeners, plasticizers, fillers, pigments, dispersants, optical brighteners, crosslinkers, accelerators, antioxidants, biocides, and metal chelating agents. Known defoamers include silicone oil and acetylene glycol. Commonly known wetting agents include alkylphenol ethoxylates, alkali metal dialkyl sulfosuccinates, acetylene glycol, and alkali metal alkyl sulfates. Typical thickeners include polyacrylates, polyacrylamides, xanthan gum, modified cellulose, or granular thickeners (e.g., silica and clay). Typical plasticizers include mineral oil, liquid polybutene, liquid polyacrylate, and lanolin. Zinc oxide is a preferred crosslinking agent. Titanium dioxide (TiO2), calcium carbonate, and clay are typically used fillers. Known accelerators and secondary accelerators include dithiocarbamates (e.g., zinc diethyldithiocarbamate, zinc dibutyldithiocarbamate, zinc dibenzyldithiocarbamate, zinc pentamethylenedithiocarbamate (ZPD)), xanthates, thiurams (e.g., tetramethylthiuram monosulfide (TMTM), tetramethylthiuram disulfide (TMTD), tetraethylthiuram disulfide (TETD), dipentamethylenethiuram hexasulfide (DPTT)), and amines (e.g., diphenylguanidine (DPG), di-o-tolylguanidine (DOTG), o-tolylbiguanidine (OTBG)).
[0074] Compound (B) According to the present invention, any compound containing a β-hydroxy ester bond and at least one additional functional group (y) reactive with the functional group (x) on the latex polymer (A) can be used. Depending on the type of functional group (x) on the latex polymer (A), the functional group (y) can be selected from a carbon-carbon double bond, an epoxy group, a thiol group, a hydroxy group, a primary or secondary amino group, an isocyanate group, an oxazolino group, an aziridino group, an imino group, a carbodiimide group, a glycol group, an ester group, an acetoxy group, a carboxylic acid group, an alkoxysilyl group, a dioxolanone group, a hydrazide group, and combinations thereof.
[0075] The functional group (y) provides crosslinking capability with the functional group (x) on the latex polymer (A), ensuring that the elastomeric film of the final dip-molded article exhibits the desired mechanical properties even without sulfur vulcanization. It is preferred that compound (B) contains multiple, e.g., two or three, preferably two, functional groups (y). However, compound (B) may contain only one functional group. (y) It is sufficient to include β- This is because the hydroxy ester bond can react with functional groups on the latex polymer chain, such as hydroxy or alkoxy groups, in a transesterification reaction to provide crosslinks. It is particularly suitable, but not essential, for functional group (y) to be in a terminal position on compound (B).
[0076] β- The hydroxy ester bond can be reversibly opened and reformed, which provides the self-healing properties and reusability of elastomeric films formed from the polymer latexes of the present invention, as shown in co-pending application PCT / MY2019 / 000017, where compound (B) has only one functional group (y): β- This also applies when hydroxy ester bonds participate in the crosslinking reaction via transesterification. Thus, in the final crosslinked film, there are still thermally unstable β- A hydroxy ester bond is present.
[0077] The functional group (x) on the latex polymer (A) and the functional group (y) on the compound (B) can be selected to provide the following combination: - the functional group (x) is selected from groups having a carbon-carbon double bond and the functional group (y) is selected from groups having a carbon-carbon double bond and thiol groups; or - the functional group (x) is selected from carboxylic acid functional groups and the functional group (y) is selected from epoxy groups, thiol groups, hydroxy groups, primary or secondary amino groups, isocyanate groups, oxazolino groups, aziridino groups, imino groups, carbodiimide groups, glycol groups, ester groups, and acetoxy groups; or - the functional group (x) is selected from hydroxyl groups and the functional group (y) is selected from alkoxysilyl groups, carboxylic acid functional groups, isocyanate groups, primary or secondary amino groups, and ester groups; or - the functional group (x) is selected from epoxy groups and the functional group (y) is selected from carboxylic acid functional groups, hydroxyl groups and ester groups; or - the functional group (x) is selected from an acetoacetyl group and the functional group (y) is selected from a group having a carbon-carbon double bond, an isocyanate group and a primary or secondary amino group; or - functional group (x) is selected from primary or secondary amino groups and functional group (y) is selected from carboxylic acid functional groups, epoxy groups, ester groups and dioxolanone groups; or - functional group (x) is selected from an acetoxy group and functional group (y) is selected from a hydrazide group and a primary or secondary amino group; or - functional group (x) is selected from isocyanate groups and functional group (y) is selected from carboxylic acid functional groups, hydroxyl groups, primary or secondary amino groups and thiol groups; or - the functional group (x) is selected from alkoxysilyl groups and the functional group (y) is selected from hydroxyl groups and alkoxysilyl groups; or - functional group (x) is selected from alkoxy groups and functional group (y) is selected from ester groups; or - functional group (x) is selected from ester groups and functional group (y) is selected from hydroxyl groups, carboxylic acid groups and ester groups; or The functional group (x) is selected from dioxolanone groups and the functional group (y) is selected from primary or secondary amino groups.
[0078] Preferably, compound (B) is selected from glycerol dimethacrylate (GDMA), glycerol 1,3-diglycerolate diacrylate (GDGDA), 3-(acryloyloxy)-2-hydroxypropyl methacrylate, bisphenol A glycerolate diacrylate, levulinic acid methacrylate (KEMA), glyceryl monomethacrylate, fatty acid modified glycidyl methacrylate bisphenol A glycerolate diacrylate, 2-hydroxy-3-phenoxypropyl (meth)acrylate, eugenyl-2-hydroxypropyl methacrylate, and combinations thereof.
[0079] The polymer latex of the present invention may contain 80 to 99.9 wt%, preferably 85 to 99.9 wt%, more preferably 90 to 99.5 wt%, even more preferably 92 to 99.5 wt%, and most preferably 95 to 99.2 wt%, of particles of latex polymer (A) based on the total weight of latex polymer (A) and compound (B), and 0.1 to 20 wt%, preferably 0.1 to 15 wt%, more preferably 0.5 to 10 wt%, even more preferably 0.5 to 8 wt%, and most preferably 0.8 to 5 wt% of compound (B). Therefore, the lower limit of the amount of particles of latex polymer (a) may be 80 wt%, 82 wt%, 84 wt%, 86 wt%, 88 wt%, or 90 wt%, based on the total weight of latex particles in the composition. The upper limit of the amount of particles of latex polymer (a) can be 99.9 wt%, or 99.5 wt%, or 99 wt%, or 98 wt%, or 97 wt%, or 96 wt%, or 95 wt%, or 94 wt%, or 93 wt%, or 92 wt%, based on the total weight of latex polymer (A) and compound (B). The lower limit of the amount of compound (B) can be 0.1 wt%, or 0.2 wt%, or 0.3 wt%, or 0.4 wt%, or 0.5 wt%, or 0.6 wt%, or 0.8 wt%, or 1 wt%, or 1.5 wt%, or 2 wt%, or 2.5 wt%, or 3 wt%, based on the total weight of latex particles in the composition. The upper limit for the amount of compound (B) can be 20% by weight, or 18% by weight, or 16% by weight, or 14% by weight, or 12% by weight, or 10% by weight, or 9% by weight, or 8% by weight, or 5% by weight, based on the total weight of latex polymer (A) and compound (B). One of ordinary skill in the art will understand that any range formed by any of the explicitly disclosed lower and upper limits is expressly disclosed herein.
[0080] According to the present invention, the latex polymer (A) is prepared by aqueous emulsion polymerization as described above. Compound (B) is added to the resulting polymer latex containing particles of latex polymer (A) at any appropriate stage, for example, before forming an article containing an elastomeric film obtained from the polymer latex of the present invention. For example, compound (B) may be added before or after the polymer latex containing latex polymer (A) is formulated into a dip-molding composition. If compound (B) is inert to the emulsion polymerization conditions used to prepare latex polymer (A), the monomer mixture for latex polymer (A) can also be polymerized in the presence of compound (B). Compared to WO 2017 / 209596, the present invention has the economic advantage that only one type of latex needs to be prepared, and many suitable compounds (B) are commercially available and can be added to the composition in any convenient manner.
[0081] Formulated latex composition for the production of dip-molded articles: The polymer latex of the present invention is particularly suitable for dip-molding processes. Therefore, according to one aspect of the present invention, the polymer latex is formulated to produce a curable polymer latex formulation that can be directly used in the dip-molding process. To obtain reproducible and good physical film properties, it is desirable to adjust the pH of the formulated polymer latex composition to a range of 7 to 11, preferably 8 to 10, and more preferably 9 to 10, using a pH adjuster for dipping to produce thin disposable gloves. For producing unsupported and / or supported reusable gloves, it is desirable to adjust the pH of the formulated polymer latex composition to a range of 8 to 10, preferably 8.5 to 9.5, using a pH adjuster. The formulated polymer latex composition comprises the polymer latex of the present invention, optionally including a pH adjuster, preferably ammonia or an alkali hydroxide, and optionally including additives typically used in these compositions, such as antioxidants, pigments, TiO, fillers, and dispersants.
[0082] Alternatively, instead of compounding the polymer latex of the present invention, a polymer latex containing the above-defined latex polymer (A) can be compounded in the same manner as above, and the above-defined compound (B) can be added during or after the compounding step to provide the compounded latex composition of the present invention. Of course, all of the above-mentioned variations regarding the latex polymer (A), compound (B), and their relative amounts can be used.
[0083] The polymer latex compositions prepared according to the present invention can be used in dip-molding processes by adding conventional vulcanization systems, for example, sulfur in combination with accelerators such as thiurams and carbamates and zinc oxide to achieve curability. Alternatively, or in addition, crosslinker components, such as multivalent cations or other multifunctional organic compounds, suitable for reacting with functional groups on the latex particles may be added to achieve chemical crosslinking. However, a significant advantage of the present invention is that sulfur vulcanization systems and crosslinkers can be avoided entirely, and the polymer latex compounds of the present invention are still curable to provide dip-molded articles with the required tensile properties. The use of multivalent cations, such as ZnO, as an additional crosslinker component is preferred to appropriately tailor the mechanical properties of very thin elastomeric films, particularly those with film thicknesses of 0.1 mm or less, preferably 0.01 to 0.1 mm, and more preferably 0.03 to 0.08 mm.
[0084] In certain heavy-duty applications, such as industrial gloves, it may be advantageous to use a conventional sulfur vulcanization system, as described above, to further increase the mechanical strength of the dip-molded article in addition to the self-crosslinking properties of the polymer latex of the present invention.
[0085] Dip molding manufacturing method: A suitable method for producing dip-molded latex articles begins by immersing a mold having the desired shape of the final article in a coagulant bath containing a solution of a metal salt. The coagulant is typically used as a solution in water, alcohol, or a mixture thereof. Specific examples of coagulants include metal halides such as calcium chloride, magnesium chloride, barium chloride, zinc chloride, and aluminum chloride; metal nitrates such as calcium nitrate, barium nitrate, and zinc nitrate; metal sulfates such as calcium sulfate, magnesium sulfate, and aluminum sulfate; and acetates such as calcium acetate, barium acetate, and zinc acetate. Calcium chloride and calcium nitrate are most preferred. The coagulant solution may also contain additives to improve the wetting behavior of the mold.
[0086] The mold is then removed from the bath and optionally dried. The treated mold is then immersed in a formulated latex composition according to the present invention, which solidifies a thin film of latex on the mold surface. Alternatively, the latex film can be obtained by multiple immersion steps, particularly two immersion steps, performed sequentially.
[0087] The former is then removed from the latex composition and optionally immersed in a water bath to extract, for example, polar components from the composition and to wash the coagulated latex film.
[0088] The latex coated former is then optionally dried at a temperature below 80°C.
[0089] Finally, the latex-coated mold is heat-treated at temperatures between 40 and 180°C and / or exposed to UV radiation to achieve the desired mechanical properties of the final film product. The final latex film is then removed from the mold. The duration of the heat treatment depends on the temperature and typically ranges from 1 to 60 minutes. Higher temperatures require shorter treatment times.
[0090] The present inventors have surprisingly discovered that when using the polymer latex of the present invention, the dip-molding process can be carried out more economically. In particular, it has been discovered that the time required between forming the compounded latex composition of the present invention and carrying out the dip-molding process (aging time) can be significantly reduced to 180 minutes or less, compared to compounds made from standard latex, which require aging times well in excess of 180 minutes.
[0091] Furthermore, the inventors have found that the temperature of the heat treatment step can be significantly reduced within the range of 40°C to less than 120°C without compromising the mechanical properties of the final dip-molded article. Conventional latexes require temperatures of 120°C or higher to achieve the desired mechanical properties. Therefore, when using the polymer latex of the present invention, the dip-molding process becomes less time-consuming, less energy-intensive, and more economical.
[0092] Therefore, according to the present invention, the following are preferred: - in the compounding step (a) (i) the polymer latex according to the present invention is prepared by adjusting the pH to a range of 7 to 12, preferably 7.5 to 11, more preferably 8 to 10, and optionally adding ZnO; or (ii) a polymer latex comprising particles of the above-defined latex polymer (a) is prepared by adjusting the pH to a range of 7 to 12, preferably 7.5 to 11, more preferably 8 to 10, and optionally adding ZnO, followed by adding preformed particles of the above-defined latex polymer (b); or (iii) the polymer latex containing particles of polymer (b) defined above is prepared by adjusting the pH to a range of 7 to 12, preferably 7.5 to 11, more preferably 8 to 10, and optionally adding ZnO, followed by adding preformed particles of latex polymer (a) defined above; and The compounded latex composition thus obtained does not contain any sulfur vulcanizing agent or sulfur vulcanization accelerator, and is aged for less than 180 minutes, preferably from 10 to 150 minutes, more preferably from 20 to 120 minutes, and most preferably from 30 to 90 minutes, before being used in the immersion step (d); and / or In the heat treatment step (h), the latex coated mold is heat treated at a temperature of from 40°C to less than 120°C, preferably from 60°C to 100°C, more preferably from 70°C to 90°C.
[0093] The final heat-treated or UV-cured polymer latex film has a tensile strength of at least about 7 MPa and an elongation to break of at least about 300%, preferably a tensile strength of at least about 10 MPa and an elongation to break of at least about 350%, more preferably a tensile strength of at least about 15 MPa and an elongation to break of at least about 400%, and even more preferably a tensile strength of at least about 20 MPa and an elongation to break of at least about 500%. These mechanical properties were measured according to ASTM D412.
[0094] This method can be used with any latex article that can be made by dip molding processes known in the art.
[0095] Alternatively, a cutting and sealing process may be used. In the first step, a continuous elastomeric film of polymer latex is produced, for example, by a casting process and optional curing by heating and / or UV curing. In the next step, two separate continuous elastomeric films are aligned in parallel, and then the aligned continuous elastomeric films are cut / stamped into a preselected shape to obtain two overlapping layers of elastomeric film of a preselected shape. The overlapping layers of elastomeric film are bonded to each other at least in a preselected portion of the periphery of the overlapping layers to form an elastomeric article. The bonding can be achieved by using thermal means, preferably selected from heat sealing and welding, or by adhesion, or by a combination of heating and adhesion.
[0096] The present invention is particularly applicable to latex articles selected from surgical gloves, examination gloves, condoms, healthcare devices such as catheters, balloons and tubing, or all various types of industrial and household gloves.
[0097] Furthermore, the polymer latex of the present invention can also be used to coat and impregnate substrates, preferably fabric substrates, and a suitable product obtained thereby is a fabric-backed glove.
[0098] The invention will now be further described with reference to the following examples. [Example]
[0099] Measurement of physical parameters: The dispersions were characterized by measuring the total solids content (TSC), pH value, gel content, viscosity (Brookfield LVT) and z-average particle size. Additionally, the final films were tested for tensile properties.
[0100] Total Solids Content (TSC) Determination: The determination of total solids was based on a gravimetric method. 1-2 g of the dispersion was placed in a pre-weighed aluminum pan on an analytical balance. The pan was stored at 120°C in an air-circulating oven for 1 hour until a constant mass was reached. After cooling to room temperature, the final weight was remeasured. The solids content was calculated as follows:
number
[0101] pH measurement: The pH value was measured according to DIN ISO 976. After applying a two-point calibration with a buffer solution, the electrode of a Schott CG840 pH meter was immersed in the dispersion at 23°C and the constant value on the display was recorded as the pH value.
[0102] Gel content measurement The latex sample under test was sieved through a white filter cloth to remove any skin or coagulum. A thin film of latex was then cast onto a glass plate and spread using an applicator until a film thickness of approximately 0.1-0.3 mm was obtained.
[0103] The glass plate was placed in an air-circulating oven at 55-60°C for 2 hours. After drying, the polymer was removed from the plate and cut into small pieces. Approximately 1 gram of dried polymer was weighed into a 175 ml glass container, and the polymer weight was recorded. 100 ml (±1 ml) of MEK (methyl ethyl ketone) and a magnetic stir bar were then added. The container was sealed with a lid and placed in a water bath on a magnetic stirrer set at 35°C. Stirring continued for 16 hours. The sample was then removed from the water bath and allowed to cool to ambient temperature. A shallow foil cup was accurately weighed. The container was set aside for a while to separate the solvent and undissolved polymer. 15 ml of the solution was filtered through filter paper into a clear glass container, and then 5 ml of this solution was transferred to the shallow foil cup using a pipette. The cup was placed under an IR (infrared) lamp (115-120°C) in a fume cupboard for 30 minutes. Finally, the cup was removed from the IR lamp and allowed to cool to room temperature before being reweighed. Weight of dry sample = A Weight of shallow foil cup = B Shallow foil cup + weight of dry matter = C %TSC of solvent (W / V) = (CB) x 100 = D Total weight of dissolved polymer (in 100 ml) = 100 x D / 100 = E % gel content = (1-E / A) x 100 (2)
[0104] Viscosity measurement: Latex viscosity was measured at 23°C using a Brookfield LVT viscometer. Approximately 220 ml of liquid (without air bubbles) was filled into a 250 ml beaker and the viscometer spindle was immersed up to the mark on the spindle. The viscometer was then turned on and recorded until a constant value was reached after approximately 1 minute. The viscosity range determines the choice of spindle and rotation speed and the factors in the recorded value for calculating viscosity. Information about the spindle and rotation speed used is given in parentheses for Examples 1, 2 and 8.
[0105] Particle size (PS) measurement: Dynamic light scattering was used to measure the z-average particle size using a Malvern Zetasizer Nano S (ZEN1600). The latex sample was diluted with deionized water to the turbidity level specified in the manual and transferred to a test cuvette. The cuvette was gently mixed to homogenize the sample, and then placed in the measurement instrument. The value was recorded as the z-average particle size generated by the software.
[0106] Preparation of immersion films: The latex with or without formulation at the desired pH value was stirred at room temperature for 3 hours and then soaked with a flocculant as described below.
[0107] The ceramic spades or molds were washed with soap and then rinsed thoroughly with deionized water, after which they were dried in an air-circulating oven set at 65-70°C (spade temperature, 55-60°C) until dry.
[0108] A coagulant solution was prepared by dissolving calcium nitrate (18 wt%) and calcium carbonate (2 wt%) in deionized water.
[0109] The dried spade or mold was then immersed in a salt solution, removed, and dried in an air-circulating oven set at 70-75°C (spades at 60-65°C) until dry. The salt-coated spade or mold was then immersed in the desired formulated latex (having a total solids content of 18% by weight, which had been formulated and aged at room temperature for 24 hours) for a 5-second dwell time, removed, and the latex-coated spade or mold was placed in an air-circulating oven set at 100°C for 1 minute to gel the film. The gelled film was then washed in a tank of deionized water set at 50-60°C for 1 minute, followed by curing in an air-circulating oven set at 120°C for 20 minutes. The cured / vulcanized film was then cooled, removed from the spade, and aged in an air-circulating oven set at 100°C for 22 hours.
[0110] Finally, the cured glove was manually stripped from the spade or former, with a typical dry film thickness of 0.056-0.066 mm.
[0111] Gloves made from latex were tested for their tensile strength properties.
[0112] Measurement of tensile strength properties on initial glove samples: The tensile properties of the vulcanized gloves were tested according to ISO 37-77 (5th edition 2011-12-15). Dumbbell specimens were cut from gloves made from each latex compound using an ISO 37-2 type cutter (narrow width = 4 mm, narrow length = 25 mm, total length = 75 mm; dumbbell thickness is listed in the results table). These specimens were then tested at an extension rate of 500 mm / min using a Hounsfield HK10KS tensile tester fitted with an H500LC extensometer.
[0113] The tensile properties of vulcanized gloves were also tested according to EN 455-2. Dumbbell specimens were cut from gloves made from each latex compound using a D-cutter (narrow width = 3 mm, narrow length = 33 mm, total length = 100 mm; dumbbell thickness is listed in the results table). They were then tested on a Hounsfield HK10KS tensile tester equipped with an H500LC extensometer at an extension rate of 500 mm / min. Stress values were automatically reported by the machine software at given strains (typically 100, 300, and 500% strain), as were modulus values. Both unaged and aged ("aged" refers to specimens placed in an oven at 100 °C for 22 hours before testing tensile properties) results are reported in Tables 2 and 3, respectively.
[0114] The following abbreviations are used in the examples: MAA = methacrylic acid Bd = butadiene ACN = acrylonitrile GMA = glycidyl methacrylate tDDM = tert-dodecyl mercaptan Na4EDTA = tetrasodium salt of ethylenediaminetetraacetic acid tBHP = tert-butyl hydroperoxide TSC = Total Solids PS = particle size ZnO = zinc oxide
[0115] Below, all parts and percentages are by weight unless otherwise stated.
[0116] Example 1: Preparation of an oxirane-free carboxylated nitrile latex (low gel content) Two parts by weight (based on polymer solids) of oxirane-free seed latex (average particle size 36 nm) and 80 parts by weight of water (based on 100 parts by weight of monomer containing seed latex) were added to a nitrogen-purged autoclave, which was then heated to 30°C. 0.005 parts by weight of Bruggolite® FF6 dissolved in 0.01 parts by weight of Na4EDTA and 2 parts by weight of water were then added, followed by 0.08 parts by weight of sodium persulfate dissolved in 2 parts by weight of water. Next, monomers (35 parts by weight of acrylonitrile, 58 parts by weight of butadiene, 5 parts by weight of methacrylic acid) were added over 4 hours along with 0.6 parts by weight of tDDM. Over 10 hours, 2.2 parts by weight of sodium dodecylbenzenesulfonate, 0.2 parts by weight of tetrasodium pyrophosphate, and 22 parts by weight of water were added. A coactivator feed of 0.13 parts by weight of Bruggolite FF6 in 8 parts by weight of water was added over 9 hours. The temperature was maintained at 30°C until 95% conversion and 45% total solids were achieved. The polymerization was briefly stopped by the addition of 0.08 parts by weight of a 5% aqueous solution of diethylhydroxylamine. The pH was adjusted to pH 7.5 with potassium hydroxide (5% aqueous solution), and residual monomer was removed by vacuum distillation at 60°C. 0.5 parts by weight of Wingstay L-type antioxidant (60% dispersion in water) was added to the raw latex, and the pH was adjusted to 8.2 by the addition of a 5% aqueous solution of potassium hydroxide.
[0117] For Example 1, the following characterization results were obtained: TSC=44.9wt% pH=8.2 Tg=-18℃ Gel content = 0% Viscosity=38mPas(1 / 60) Particle size P z =121nm
[0118] Example 2: Preparation of Oxirane-Functional Latex A nitrogen-purged autoclave was charged with 2.0 parts by weight of diphenyloxide disulfonate dissolved in 185 parts by weight of water per 100 parts by weight of monomer and heated to a temperature of 70°C. 0.1 parts by weight of tDDM and 0.05 parts by weight of Na4EDTA were added to the initial charge, while 0.7 parts by weight of ammonium peroxodisulfate (12% aqueous solution) was added portionwise. Next, a solution of 45.4 parts by weight of butadiene, 14.6 parts by weight of acrylonitrile, and 5.0 parts by weight of diphenyloxide disulfonate dissolved in 50 parts by weight of water was added over 6.5 hours. The addition of 40 parts by weight of GMA was started after 1 hour and added over 6.5 hours. After the addition of the monomers, the temperature was maintained at 70°C. The polymerization was maintained to 99% conversion. The reaction mixture was cooled to room temperature and sieved through a filter screen (90 μm).
[0119] For Example 2, the following characterization results were obtained: TSC=37.7wt% pH=7.1 Tg=-9℃ Gel content = 96% Viscosity=15mPas(1 / 60) Particle size P z =39nm
[0120] Example 3: (Compare WO 2017 / 209596) To an aliquot of Example 1 (oxirane-free XNBR latex) was added an aliquot of Example 2 (oxirane-functional latex) such that the blend ratio of Example 1:Example 2 was 90:10 by wet weight.
[0121] A portion of the XNBR latex was adjusted to a pH of 10 using an aqueous solution of potassium hydroxide and compounded with 1 phr of zinc oxide and 1 phr of titanium dioxide. The compound was then adjusted to a concentration of 18 wt% solids and stirred for 3 hours. Dipped films were prepared as described above.
[0122] Example 4: 1 phr of compound (B) (2-hydroxy-1-acryloxy-3-methacryloxypropane) was used, without ZnO To the aliquot of Example 1 (oxirane-free XNBR latex) was added a 1 phr aliquot of 2-hydroxy-1-aryloxy-3-methacryloxypropane and stirred well for 2 hours.
[0123] The latex was adjusted to a pH value of 10 using aqueous potassium hydroxide solution, and after compounding, the salt-coated and dried spades were dipped therein and treated according to the procedure described in Example 3, except that no zinc oxide was added.
[0124] Example 5: 1 phr of compound (B) (2-hydroxy-1-acryloxy-3-methacryloxypropane) with ZnO To the aliquot of Example 1 (oxirane-free XNBR latex) was added a 1 phr aliquot of 2-hydroxy-1-aryloxy-3-methacryloxypropane and stirred well for 2 hours.
[0125] The latex was adjusted to a pH value of 10 using aqueous potassium hydroxide, and after compounding, the salt-coated and dried spades were dipped therein and treated according to the procedure described in Example 3.
[0126] Example 6: 2 phr of compound (B) (2-hydroxy-1-acryloxy-3-methacryloxypropane) with ZnO Same as Example 5 except that 2 phr of 2-hydroxy-1-acryloxy-3-methacryloxypropane was added.
[0127] Example 7: 3 phr of compound (B) (2-hydroxy-1-acryloxy-3-methacryloxypropane) with ZnO Same as Example 5 except that 3 phr of 2-hydroxy-1-acryloxy-3-methacryloxypropane was added.
[0128] Example 8: 5 phr of compound (B) (2-hydroxy-1-acryloxy-3-methacryloxypropane) with ZnO Same as Example 5, except that 5 phr of 2-hydroxy-1-acryloxy-3-methacryloxypropane was added.
[0129] The gel content data for several latex samples before immersion are summarized in Table 1. [Table 1]
[0130] The tensile strength data of the as-prepared films were measured as described above and are summarized in Tables 2 and 3.
[0131] Table 2: Unaged results for Examples 3-8 [Table 2]
[0132] Table 3: Aging results for Examples 3 to 8 [Table 3]
[0133] As shown in Table 2, when the amount of 2-hydroxy-1-acryloxy-3-methacryloxypropane was increased from 1 phr to 5 phr, the elongation at break increased from 645% to 713%. The flexibility effect from the crosslinker was also confirmed by the corresponding decrease in the 300% modulus from 3.9 MPa to 2.9 MPa. Note that without ZnO in the formulation, both the tensile strength and the force at break decreased significantly. A similar trend was observed from the aging results shown in Table 3, where the highest elongation at break and the lowest 300% modulus were achieved using 5 phr of compound (B) in the presence of ZnO.
[0134] Example 9: Preparation of an oxirane-free carboxylated nitrile latex Two parts by weight (based on polymer solids) of oxirane-free seed latex (average particle size 36 nm) and 80 parts by weight of water (based on 100 parts by weight of monomers containing the seed latex) were added to a nitrogen-purged autoclave, followed by heating to 30°C. Next, 0.01 parts by weight of Na4EDTA, 0.005 parts by weight of Bruggolite® FF6 dissolved in 2 parts by weight of water, and 0.3 parts by weight of tDDM were added, followed by 0.08 parts by weight of sodium persulfate dissolved in 2 parts by weight of water. Next, monomers (35 parts by weight of acrylonitrile, 56 parts by weight of butadiene, 7 parts by weight of methacrylic acid) along with 0.45 parts by weight of tDDM were added over 6 hours, with the exception of the 4.5 hours for tDDM. Over 10 hours, 2.2 parts by weight of sodium dodecylbenzenesulfonate, 0.2 parts by weight of tetrasodium pyrophosphate, and 22 parts by weight of water were added. A coactivator feed of 0.13 parts by weight of Bruggolite FF6 in 8 parts by weight of water was added over 9 hours. The temperature was maintained at 30°C until 95% conversion and 45% total solids were achieved. The polymerization was briefly stopped by the addition of 0.08 parts by weight of a 5% aqueous solution of diethylhydroxylamine. The pH was adjusted to pH 7.5 with potassium hydroxide (5% aqueous solution), and residual monomer was removed by vacuum distillation at 60°C. 0.5 parts by weight of Wingstay L-type antioxidant (60% dispersion in water) was added to the raw latex, and the pH was adjusted to 8.2 by the addition of a 5% aqueous solution of potassium hydroxide.
[0135] For Example 9, the following characterization results were obtained: TSC=44.5wt% pH=8.3 Tg=-13℃ Viscosity=50mPas(1 / 60) Particle size P z =127nm
[0136] Example 10: (Comparison) To an aliquot of Example 9 (oxirane-free XNBR latex) was added an aliquot of Example 2 (oxirane-functional latex) such that the blend ratio of Example 9:Example 2 was 90:10 by wet weight.
[0137] A portion of the XNBR latex was adjusted to a pH of 9.5 using an aqueous solution of potassium hydroxide and compounded with 1 phr of zinc oxide and 1 phr of titanium dioxide. The mixture was then adjusted to a concentration of 18% solids by weight and stirred for 3 hours.
[0138] After dipping the salt-coated and dried formers into the compounded latex solution, the films were gelled at 100°C for 1 minute, washed with deionized water for 1 minute (in a tank set at 50-60°C), and then dried and cured / vulcanized in an air-circulating oven set at 120°C for 20 minutes to ensure complete drying and crosslinking. Dipped films were prepared as described above.
[0139] Example 11: Using 1 phr of compound (B) (2-hydroxy-1-acryloxy-3-methacryloxypropane) An aliquot of 1 phr of 2-hydroxy-1-aryloxy-3-methacryloxypropane was added to an aliquot of Example 15 (oxirane-free XNBR latex) and stirred well for 2 hours.
[0140] The latex was adjusted to a pH value of 9.5 using aqueous potassium hydroxide, and after compounding, the salt-coated and dried formers were dipped into it and treated according to the procedure described in Example 10.
[0141] Example 12: (Comparison) To an aliquot of Example 9 (oxirane-free XNBR latex) was added an aliquot of Example 2 (oxirane-functional latex) such that the blend ratio of Example 9:Example 2 was 90:10 by wet weight.
[0142] A portion of the XNBR latex was adjusted to a pH of 9.5 using an aqueous solution of potassium hydroxide and compounded with 1 phr of zinc oxide and 1 phr of titanium dioxide. The compound was then adjusted to a concentration of 18% solids by weight and stirred for 3 hours. Dip films were prepared as above, except that the cure temperature was 70°C instead of 120°C.
[0143] Example 13: Using 1 phr of compound (B) (2-hydroxy-1-acryloxy-3-methacryloxypropane) To the aliquot of Example 9 (oxirane-free XNBR latex) was added a 1 phr aliquot of 2-hydroxy-1-aryloxy-3-methacryloxypropane and stirred well for 2 hours.
[0144] The latex was adjusted to a pH value of 9.5 using aqueous potassium hydroxide, and after compounding, the salt-coated and dried formers were dipped into it and treated according to the procedure described in Example 12.
[0145] The tensile properties of the vulcanized gloves were tested as described above. Both unaged and aged results are reported in Tables 4 and 5, respectively.
[0146] Table 4: Unaged results for Examples 10-13 [Table 4]
[0147] Table 5: Aging results for Examples 10-13 [Table 5]
[0148] As shown in Table 4, the elongation at break of the samples containing 2-hydroxy-1-acryloxy-3-methacryloxypropane was higher than that of the respective comparative examples. For example, Example 11 exhibited an elongation at break of 640%, which is significantly higher than the 556% elongation at break of Comparative Example 10. The flexibility benefit of 2-hydroxy-1-acryloxy-3-methacryloxypropane, as well as the elongation at break, was evidenced by the lower modulus of elasticity of 300% and 500% for all samples, i.e., Examples 11 and 13, both unaged in Table 4 and aged in Table 5. Surprisingly, 2-hydroxy-1-acryloxy-3-methacryloxypropane was also found to provide good lower cure temperature performance, even for extremely thin gloves. For example, the glove of Example 13 achieved a force at break of at least 6 Newtons at a very thin glove thickness of less than 0.050 mm.
Claims
1. (A) particles of a latex polymer (A) obtained by free radical emulsion polymerization of a mixture of ethylenically unsaturated monomers, the particles of the latex polymer containing a plurality of functional groups (x); wherein the monomer mixture for the latex polymer (A) comprises: (a) 15 to 99 weight percent of a conjugated diene; (b) 1 to 80% by weight of a monomer selected from ethylenically unsaturated nitrile compounds; (c) 0 to 10% by weight of an ethylenically unsaturated compound other than a conjugated diene having a functional group (x); (d) 0 to 80 weight percent of a vinyl aromatic monomer; and (e) 0 to 65% by weight of an alkyl ester of an ethylenically unsaturated acid; The weight percentages are based on the total weight of the monomers in the monomer mixture; The functional group (x) on the latex polymer (A) is selected from a group having a carbon-carbon double bond, a carboxylic acid functional group, a hydroxy group, an epoxy group, an acetoacetyl group, a primary or secondary amino group, an acetoxy group, an isocyanate group, an alkoxysilyl group, an alkoxy group, a dioxolanone functional group, and combinations thereof; and (B) a compound having a β-hydroxy ester bond and at least one additional functional group (y) reactive with the functional group (x) on the latex polymer (A); 1. A polymer latex for making an elastomeric film, comprising:
2. (a) the conjugated diene is selected from butadiene, isoprene, 2,3-dimethyl-1,3-butadiene, 2-ethyl-1,3-butadiene, 1,3-pentadiene, and combinations thereof; (b) the ethylenically unsaturated nitrile compound is selected from (meth)acrylonitrile, α-cyanoethyl acrylonitrile, fumaronitrile, α-chloronitrile, and combinations thereof; (c) An ethylenically unsaturated compound other than a conjugated diene having a functional group (x) is (c1) an ethylenically unsaturated compound having at least two different ethylenically unsaturated groups; (c2) ethylenically unsaturated acids and their salts; (c3) a hydroxy-functional ethylenically unsaturated compound; (c4) an oxirane-functional ethylenically unsaturated compound; (c5) acetoacetyl-functional ethylenically unsaturated compounds; (c6) an ethylenically unsaturated compound having a primary or secondary amino group; (c7) acetoxy-functional ethylenically unsaturated compounds; (c8) isocyanate-functional ethylenically unsaturated compounds; (c9) alkoxysilyl-functional ethylenically unsaturated compounds; (c10) an alkoxy-functional ethylenically unsaturated compound; (c11) dioxolanone-functional ethylenically unsaturated compounds; and combinations thereof; (d) the vinyl aromatic monomer is selected from styrene, α-methylstyrene, and combinations thereof; (e) the alkyl ester of an ethylenically unsaturated acid is selected from methyl (meth)acrylate, ethyl (meth)acrylate, propyl (meth)acrylate, butyl (meth)acrylate, and 2-ethylhexyl (meth)acrylate; and combinations thereof; wherein the mixture of ethylenically unsaturated monomers for the latex polymer (A) optionally comprises (f) vinyl carboxylate; (g) a monomer having at least two identical ethylenically unsaturated groups; and and combinations thereof, The polymer latex of claim 1.
3. 3. The polymer latex of claim 1 or 2, wherein the mixture of ethylenically unsaturated monomers for the latex polymer (A) comprises: - 20 to 99% by weight of conjugated dienes; - 1 to 60% by weight of a monomer chosen from ethylenically unsaturated nitrile compounds; - 0 to 70% by weight of vinyl aromatic monomers; 0 to 25% by weight of C 1 ~C 8 Alkyl (meth)acrylate; - 0.05 to 7% by weight of an ethylenically unsaturated acid; and - 0 to 10% by weight of vinyl esters: Here, the weight percent is based on the total weight of the monomers in the monomer mixture.
4. 4. The polymer latex according to claim 1, wherein the functional group (y) in the compound (B) which reacts with the functional group (x) on the latex polymer (A) is selected from a carbon-carbon double bond, an epoxy group, a thiol group, a hydroxy group, a primary or secondary amino group, an isocyanate group, an oxazolino group, an aziridino group, an imino group, a carbodiimide group, a glycol group, an ester group, an acetoxy group, a carboxylic acid group, an alkoxysilyl group, a dioxolanone group, a hydrazide group, and a combination thereof.
5. The polymer latex according to any one of claims 1 to 4, wherein the functional group (y) in the compound (B) is at a terminal position.
6. The polymer latex according to any one of claims 1 to 5, the functional group (x) is selected from groups having a carbon-carbon double bond and the functional group (y) is selected from groups having a carbon-carbon double bond and thiol groups; or the functional group (x) is selected from carboxylic acid functional groups and the functional group (y) is selected from epoxy groups, thiol groups, hydroxy groups, primary or secondary amino groups, isocyanate groups, oxazolino groups, aziridino groups, imino groups, carbodiimide groups, glycol groups, ester groups, and acetoxy groups; or the functional group (x) is chosen from hydroxy groups and the functional group (y) is chosen from alkoxysilyl groups, carboxylic acid functional groups, isocyanate groups, primary or secondary amino groups, and ester groups; or the functional group (x) is chosen from epoxy groups and the functional group (y) is chosen from carboxylic acid functional groups, hydroxy groups and ester groups; or the functional group (x) is selected from acetoacetyl groups and the functional group (y) is selected from groups containing a carbon-carbon double bond, isocyanate groups and primary or secondary amino groups; or the functional group (x) is chosen from primary or secondary amino groups and the functional group (y) is chosen from carboxylic acid functional groups, epoxy groups, ester groups and dioxolanone groups; or the functional group (x) is selected from an acetoxy group and the functional group (y) is selected from a hydrazide group and a primary or secondary amino group; or the functional group (x) is chosen from isocyanate groups and the functional group (y) is chosen from carboxylic acid functional groups, hydroxy groups, primary or secondary amino groups and thiol groups; or the functional group (x) is selected from alkoxysilyl groups and the functional group (y) is selected from hydroxy groups and alkoxysilyl groups; or the functional group (x) is selected from alkoxy groups and the functional group (y) is selected from ester groups; or - a polymer latex in which the functional group (x) is chosen from dioxolanone groups and the functional group (y) is chosen from primary or secondary amino groups.
7. The polymer latex according to any one of claims 1 to 6, wherein the compound (B) is selected from glycerol dimethacrylate (GDMA), glycerol 1,3-diglycerolate diacrylate (GDGDA), 3-(acryloyloxy)-2-hydroxypropyl methacrylate, bisphenol A glycerolate diacrylate, levulinic acid methacrylate (KEMA), glyceryl monomethacrylate, fatty acid-modified glycidyl methacrylate, bisphenol A glycerolate diacrylate, 2-hydroxy-3-phenoxypropyl (meth)acrylate, eugenyl-2-hydroxypropyl methacrylate, and combinations thereof.
8. 8. The polymer latex according to claim 1, wherein the particles of the latex polymer (A) are present in an amount of 80 to 99.9% by weight, and the compound (B) is present in an amount of 0.1 to 20% by weight, based on the total weight of the latex polymer (A) and the compound (B).
9. (i) polymerizing in an emulsion polymerization process a mixture of ethylenically unsaturated monomers for a latex polymer (A), including at least one monomer that provides a functional group (x) after polymerization, to obtain a latex comprising particles of the latex polymer (A) having a plurality of functional groups (x); wherein the monomer mixture for the latex polymer (A) comprises: (a) 15 to 99 weight percent of a conjugated diene; (b) 1 to 80% by weight of a monomer selected from ethylenically unsaturated nitrile compounds; (c) 0 to 10% by weight of an ethylenically unsaturated compound other than a conjugated diene having a functional group (x); (d) 0 to 80 weight percent of a vinyl aromatic monomer; and (e) 0 to 65% by weight of an alkyl ester of an ethylenically unsaturated acid; The weight percentages are based on the total weight of the monomers in the monomer mixture; The functional group (x) on the latex polymer (A) is selected from a group having a carbon-carbon double bond, a carboxylic acid functional group, a hydroxy group, an epoxy group, an acetoacetyl group, a primary or secondary amino group, an acetoxy group, an isocyanate group, an alkoxysilyl group, an alkoxy group, a dioxolanone functional group, and combinations thereof; and (ii) adding a compound (B) having a β-hydroxy ester bond and at least one additional functional group (y) reactive with the functional group (x) on the latex polymer (A); A method for preparing a polymer latex comprising:
10. The method according to claim 9, wherein the latex polymer (A) and / or the compound (B) are defined as in any one of claims 1 to 7, and / or the amount of the latex polymer (A) and the compound (B) are defined as in claim 8.
11. Use of the polymer latex according to any one of claims 1 to 8 for the manufacture of elastomeric articles or for coating or impregnating a substrate.
12. 9. A compounded latex composition for producing a dip-molded article, comprising the polymer latex of any one of claims 1 to 8 and, optionally, an adjuvant selected from a sulfur vulcanizing agent, a sulfur vulcanization accelerator, a polyvalent cation, a free radical initiator, and combinations thereof.
13. 13. The compounded latex composition of claim 12, which is free of sulfur vulcanizing agents and sulfur vulcanization accelerators, and optionally includes multivalent cations.
14. (a) providing a compounded latex composition according to claim 12 or 13; (b) immersing a form having the desired shape of the final article in a coagulant bath containing a solution of metal salts; (c) removing the form from the coagulant bath and optionally drying the form; (d) immersing the former treated in steps (b) and (c) into the compounded latex composition of step (a); (e) solidifying a latex film onto the surface of the mold; (f) removing the latex-coated former from the compounded latex composition and optionally immersing the latex-coated former in a water bath; (g) optionally drying the latex coated former; (h) heat treating the latex-coated form obtained from step (e) or (f) at a temperature of from 40°C to 180°C and / or exposing the latex-coated form obtained from step (e) or (f) to UV radiation; and (i) removing the latex article from the mold; A method for manufacturing a dip-molded product.
15. - obtaining a continuous elastomeric film from a polymer latex according to any one of claims 1 to 8; - optionally heat treating the continuous elastomeric film and / or exposing the continuous elastomeric film to UV radiation; - two separate continuous elastomeric films aligned parallel to one another; - cutting / stamping the aligned continuous elastomeric film into a preselected shape to obtain two superimposed layers of elastomeric film of preselected shape; - bonding the superposed layers together at least in a preselected portion of the periphery to form an elastomeric article; A method for producing an elastomeric article comprising:
16. 16. The method of claim 15, wherein the bonding is performed by using thermal means, or by adhesive bonding, or by a combination of thermal means and adhesive bonding.
17. An article manufactured by using the polymer latex of any one of claims 1 to 8 or the compounded latex composition of claims 12 or 13.
18. 18. The article of claim 17, selected from surgical gloves, examination gloves, condoms, catheters, industrial gloves, fabric-supported gloves, household gloves, balloons, and tubing.
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