Compositions containing inorganic / organic hybrid compounds

A non-porous membrane using an inorganic/organic hybrid compound addresses gas permeation and durability issues in electrolysis devices and batteries, enhancing efficiency and purity while lowering production costs.

JP7813300B2Active Publication Date: 2026-02-12SHIN ETSU CHEMICAL CO LTD +1
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Patent Information

Application Number
JP2023571086
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-12-28
Filing Date
2022-12-27
Publication Date
2026-02-12
Estimated Expiration
2042-12-27

AI Technical Summary

Technical Problem

Conventional porous diaphragms in electrolysis devices and batteries using alkaline electrolytes suffer from gas permeation, energy loss, and durability issues due to gas penetration, leading to reduced efficiency and purity of hydrogen production, as well as short circuits and self-discharge in batteries.

Method used

A non-porous membrane composed of an inorganic/organic hybrid compound, chemically bonded to a polyvinyl alcohol resin and a hydrophobic resin, which is produced without an acidic heating step, providing excellent alkali resistance and hydroxide ion conductivity.

Benefits of technology

The membrane effectively blocks gas permeation, enhances energy efficiency, improves hydrogen purity, and increases durability by preventing short circuits, while reducing production costs through equipment requirements.

✦ Generated by Eureka AI based on patent content.

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Abstract

Provided is a novel composition (a composition containing an inorganic / organic hybrid compound). The composition contains: an inorganic / organic hybrid compound in which a metal oxide is chemically bonded to a polyvinyl alcohol-based resin; and a hydrophobic resin.
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Description

[Technical Field]

[0001] The present invention relates to a novel composition (a composition containing an inorganic / organic hybrid compound), a novel composition useful for a diaphragm for an electrolysis device or a battery using an (aqueous) alkaline electrolyte, etc. [Background technology]

[0002] Electrolysis devices and batteries using alkaline electrolytes have been known for some time. An electrolytic hydrogen production device has been put into practical use as an electrolysis device using alkaline electrolyte. This device applies a voltage to two pairs of electrodes separated by a porous sheet diaphragm in alkaline electrolyte, electrolyzing water to generate hydrogen. Nickel is typically used as the electrodes, and porous sheets such as nonwoven fabrics composed of asbestos fibers have been used historically as diaphragms, but more recently, nonwoven fabrics composed of polyphenylene sulfide fibers have been used. Diaphragms with fine pores composed of a mixture of organic polymers and inorganic compound particles have also been proposed (Patent Documents 1 and 2). In actual electrolysis devices, many of these basic unit cells are stacked in series, and electricity is applied to many cells at once to generate large amounts of hydrogen. To improve energy efficiency, each cell is heated to approximately 80°C.

[0003] There are many types of batteries that use aqueous alkaline electrolyte, including alkaline dry batteries, nickel-cadmium batteries, nickel-metal hydride batteries, nickel-iron batteries, nickel-zinc batteries, air-zinc batteries, and alkaline fuel cells. All of these batteries have a structure in which positive and negative electrodes are separated by a porous sheet membrane (separator), which contains alkaline electrolyte. The electrodes vary depending on the type of battery, but the membrane is generally made of a porous sheet such as a nonwoven fabric made from various organic polymer materials. In alkaline fuel cells, a porous sheet made of asbestos, an inorganic material, has also been used as the membrane. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Japanese Patent Application Publication No. 2020-050908 [Patent Document 2] Japanese Patent Application Publication No. 2018-126318 [Patent Document 3] Patent No. 3848882 [Patent Document 4] Patent No. 4081343 [Patent Document 5] Patent No. 5095249 [Patent Document 6] Patent No. 4871225 [Patent Document 7] Patent No. 6088932 Summary of the Invention [Problem to be solved by the invention]

[0005] An object of the present invention is to provide a novel composition (a composition containing an inorganic / organic hybrid compound) and the like.

[0006] Another object of the present invention is to provide a novel film (a film formed from a composition containing an inorganic / organic hybrid compound) having good alkali resistance (and further, hot alkali resistance).

[0007] Another object of the present invention is to provide a novel method for producing a film (a method for producing a film formed from a composition containing an inorganic / organic hybrid compound).

[0008] Another object of the present invention is to provide a method for producing a film formed from a composition containing an inorganic / organic hybrid compound, which does not require a heating step under acidic conditions. [Means for solving the problem]

[0009] In an electrolytic hydrogen production device, when a DC voltage is applied to two pairs of electrodes separated by a diaphragm, hydrogen gas is generated from the negative electrode and oxygen gas is generated from the positive electrode (reaction equations (1) and (2)). Reaction (1) 2H2O + 2e - →H2+2OH - Reaction formula (2) 2OH - →1 / 2O2+H2O+2e - For these reactions to occur, hydroxide ions must be conducted between the positive and negative electrodes. As mentioned above, conventional diaphragms are porous sheets, because ions are conducted by an electrolyte solution filled in the pores of the diaphragm. Therefore, the pores of the diaphragm must penetrate between the positive and negative electrodes. However, in this case, the generated hydrogen and oxygen gases also pass through the diaphragm and reach the opposing electrode. The oxygen gas that reaches the negative electrode is reduced on the negative electrode, or is reduced by the hydrogen generated at the negative electrode (reaction equations (3) and (4)). Reaction (3) 1 / 2O2 + H2O + 2e - →2OH - Reaction equation (4) 1 / 2O2 + H2 → H2O If the reaction in equation (3) occurs at the negative electrode, the current used to generate hydrogen gas at the negative electrode will be reduced, resulting in a decrease in energy efficiency. If the reaction in equation (4) occurs, some of the hydrogen gas generated at the negative electrode will be converted back to water, resulting in a decrease in energy efficiency. Both of these reactions generate a large amount of heat. On the other hand, hydrogen gas that reaches the counter electrode (positive electrode) is oxidized on the positive electrode or is oxidized by oxygen generated at the positive electrode (reaction equations (5) and (4)). Reaction (5) H2+2OH - →2H2O+2e - These reactions convert the produced hydrogen back into water, resulting in a decrease in energy efficiency. These reactions also generate a large amount of heat.

[0010] As the generated hydrogen gas and oxygen gas pass through the diaphragm, a portion of the input energy is wasted simply on converting it into heat, resulting in significant energy loss. It also makes it difficult to control the temperature of the entire electrolysis cell. Furthermore, if the oxygen gas that reaches the negative electrode does not undergo reduction as shown in reactions (3) and (4), it will simply mix with the generated hydrogen gas, reducing the purity of the hydrogen gas. Thus, in systems that rely on ionic conduction through the pores of the diaphragm, the generated gas also passes through, causing the problems described above. These problems caused by product permeation occur not only in hydrogen production devices, but in electrolysis devices in general.

[0011] Regardless of the hydrogen production device, in an electrolysis device, it is ideal for the distance between the positive and negative electrodes to be as short as possible. If this distance is long, the resistance to ion conduction increases, resulting in energy loss, so it is desirable for the diaphragm to be as thin as possible. However, if the diaphragm separating the electrodes is too thin, the positive and negative electrodes are likely to come into contact and cause a short circuit. For high performance, the electrodes should ideally be made of materials with a large surface area, such as powder, whiskers, or fibers. However, if the diaphragm is a porous sheet, it is difficult to make it thin because there is a high risk of the diaphragm being penetrated. Furthermore, in the case of a porous sheet, making it thin makes it more susceptible to tearing and makes it difficult to maintain its strength.

[0012] The problems associated with using a porous sheet as a separator also exist in batteries. Among batteries that use aqueous alkaline electrolytes, nickel-zinc batteries are rechargeable secondary batteries that combine a positive electrode made of nickel hydroxide or nickel oxyhydroxide with a negative electrode made of zinc oxide or metallic zinc. At the negative zinc electrode, the following reactions (7) and (8) occur during charging and discharging, respectively. Reaction (7) [Charging] ZnO + H2O + 2e - →Zn+2OH - Reaction (8) [Discharge] Zn + 2OH- → ZnO + H2O + 2e - However, in the negative zinc electrode, the oxidized zinc produced during discharge is converted into zincate ions (Zn(OH)4 2 -), which easily dissolves in alkaline electrolytes. In other words, the charge / discharge reaction of a zinc electrode occurs as a dissolution / precipitation reaction, and if the diaphragm is porous, the resulting dendrites of metallic zinc can penetrate the diaphragm, causing a short circuit. Due to this dendrite formation, batteries currently do not have sufficient durability.

[0013] In an air-zinc battery, the positive electrode active material of the nickel-zinc battery is replaced with air (oxygen) instead of nickel hydroxide or nickel oxyhydroxide. However, when the diaphragm between the electrodes is made of a porous sheet, as in conventional batteries, oxygen taken in from the positive electrode penetrates the diaphragm and reaches the zinc electrode (negative electrode), as in the case of the electrolysis device, where it oxidizes the zinc, i.e., causes discharge. Therefore, a large self-discharge always occurs. For these reasons, air-zinc batteries are currently limited to use in devices such as hearing aids that are constantly operating and consume oxygen at the positive electrode.

[0014] Alkaline fuel cells are the reverse reaction of the electrolysis hydrogen production device, and generate electricity by supplying hydrogen to the anode and air (oxygen) to the cathode. However, if the diaphragm is a porous sheet, the same problem of gas penetration occurs. That is, if hydrogen gas and oxygen gas penetrate the diaphragm and reach the opposing electrode, energy loss occurs. In fuel cells, the fuel supplied to the anode is not limited to hydrogen, but if the diaphragm is porous, the same problem of membrane penetration occurs regardless of the fuel, as long as it is a fluid.

[0015] To solve these problems, the diaphragm is required to absorb the electrolyte, conduct the necessary ions, and block the passage of substances that would cause problems if they penetrate (for example, hydrogen gas, oxygen gas, zinc dendrites, or the zincate ions that cause them).To achieve this, it is desirable for the diaphragm to be non-porous, without macropores but capable of absorbing the electrolyte, rather than a conventional porous sheet with macropores. Examples of membranes with such functionality include cellulose-based semipermeable membranes such as cellophane, but these membranes lack alkali resistance and cannot be used in applications that use alkaline electrolytes. Polymer electrolyte membranes such as Nafion (trade name) can also be used, and while they are alkali-resistant, they are expensive. Furthermore, fluorine-based membranes are environmentally undesirable for applications in which they are used in large quantities, as they generate harmful substances when burned during disposal.

[0016] In this context, Patent Documents 3, 4, 5, and 6 disclose membranes made of an inorganic / organic hybrid compound of a zirconate compound and polyvinyl alcohol (hereinafter also referred to as "PVA") as non-porous membranes that absorb alkaline electrolytes and have hydroxide ion conductivity but are resistant to permeation of substances other than gases and hydroxide ions. These hybrid compounds can be produced by neutralizing zirconium salts or oxyzirconium salts with alkali in an aqueous solution coexisting with PVA, and it is disclosed that when these hybrid compounds are formed into a membrane and impregnated with alkali such as sodium hydroxide, sodium silicate, or sodium carbonate, they exhibit relatively high hydroxide ion conductivity (Patent Documents 3 and 4). However, the present inventors have found that this manufacturing method has the problem that gelation occurs when neutralized with alkali, making it extremely difficult to form into a film in good condition.

[0017] Patent Documents 5 and 6 disclose a method for producing a membrane by heating a solution containing a water-containing solvent, PVA, and a zirconium salt or oxyzirconium salt to remove the solvent, forming the membrane, and then contacting the resulting solution with an alkali. These membranes are inexpensive, but because polyvinyl alcohol and zirconium oxide are chemically bonded to form a hybrid compound, they are water-resistant, heat-resistant, and somewhat alkali-resistant. Patent Document 7 also suggests the use of these membranes as molecular filters, allowing the size of molecules that can pass through to be controlled, making it possible to block the permeation of products from various electrolysis devices, fuel cells, and zincate ions in zinc batteries. However, the inventors found that the alkali resistance of this membrane was insufficient. Specifically, they found that deterioration occurred in alkaline aqueous solutions due to swelling of the hybrid compound and elution of the zirconium oxide component, resulting in durability problems. In particular, when the membrane was used in alkaline electrolyte heated to about 80°C, such as in an electrolytic hydrogen production device, it was found that significant swelling and a decrease in strength occurred, resulting in insufficient hot alkali resistance.

[0018] In the methods described in Patent Documents 5 and 6, an aqueous PVA solution containing a zirconium salt or the like is heated and dried to form a film, which is then brought into contact with an alkali. However, this PVA aqueous solution containing zirconium salts and the like is acidic, and since the heating process is performed in an acidic environment, the equipment must be acid-resistant, which poses the problem of high equipment costs. If an alkali is added to an aqueous PVA solution in advance to neutralize the zirconium salt or oxyzirconium salt, and then the solution is heated and dried to form a film, the heating step in such an acidic environment can be avoided. However, as described above, if the solution is neutralized in the form of an aqueous solution, gelation will proceed immediately, making it difficult to form a good film.

[0019] The present inventors discovered that a film formed from a composition combining an inorganic / organic hybrid compound in which a metal oxide is chemically bonded to a polyvinyl alcohol-based resin with a hydrophobic resin has excellent alkali resistance (particularly, hot alkali resistance), and after further intensive research, they have completed the present invention.

[0020] That is, the present invention relates to the following inventions. [1] A composition comprising an inorganic / organic hybrid compound in which a metal oxide is chemically bonded to a polyvinyl alcohol resin (or the metal is bonded in the form of an oxide), and a hydrophobic resin (or resin A). [2] The composition according to [1], further comprising a metal oxide powder. [3] The composition according to [1] or [2], wherein the polyvinyl alcohol resin has a 4 mass % aqueous solution viscosity (20°C) of 5 mPa·s or more. [4] The composition according to any one of [1] to [3], wherein the polyvinyl alcohol resin has a 4 mass % aqueous solution viscosity (20°C) of 10 mPa·s or more. [5] The composition according to any one of [1] to [4], wherein the polyvinyl alcohol resin has a viscosity of 15 mPa·s or more in a 4% by mass aqueous solution (20° C.) and a degree of saponification of 85 mol % or more. [6] The composition according to any one of [1] to [5], wherein the metal oxide comprises at least one selected from zirconium oxide and titanium oxide (for example, at least zirconium oxide). [7] The SP value of the hydrophobic resin (or resin A) is 13 (cal / cm 3 ) 1 / 2 The composition according to any one of [1] to [6] below: [8] The composition according to any one of [1] to [7], wherein the hydrophobic resin (or resin A) includes at least one selected from polyolefin-based resins and polyvinyl chloride-based resins. [9] The composition according to any one of [2] to [8], wherein the metal oxide powder comprises at least one selected from zirconium oxide powder and titanium oxide powder (for example, at least zirconium oxide powder).

[10] The composition according to any one of [1] to [9], wherein the hydrophobic resin (or resin A or polyolefin-based resin) comprises a polyolefin-based resin [for example, a polypropylene-based resin (for example, polypropylene) and / or a polyethylene-based resin (for example, polyethylene)].

[11] The composition according to any one of [1] to

[10] , comprising 0.3 parts by mass or more of a hydrophobic resin per 1 part by mass of a polyvinyl alcohol-based resin.

[12] The composition according to any one of [2] to

[11] , comprising 0.7 parts by mass or more and 3.5 parts by mass or less of zirconium oxide powder per 1 part by mass of polyvinyl alcohol-based resin.

[13] The composition according to any one of [1] to

[12] , for forming a membrane (for example, a diaphragm for an electrolysis device or a battery using an alkaline electrolyte).

[14] The composition according to any one of [1] to

[13] , which is a composition for forming a film in which the inorganic / organic hybrid compound and the hydrophobic resin exist independently of each other (or in which the inorganic / organic hybrid compound and the hydrophobic resin (or resin A) exist independently of each other).

[15] A film formed from the composition according to any one of [1] to

[14] .

[16] The membrane according to

[15] , which is a diaphragm for an electrolysis device or a battery.

[17] The membrane according to

[15] or

[16] , wherein the inorganic / organic hybrid compound and the hydrophobic resin (or resin A) exist independently of each other.

[18] The membrane according to any one of

[15] to

[17] , further comprising a porous or porous membrane support.

[19]

[18] The membrane according to

[18] , wherein the support of the membrane comprises a polypropylene sheet or a polyethylene sheet.

[20] The membrane according to any one of

[16] to

[19] , wherein the electrolysis device or battery uses an alkaline electrolyte. [twenty one] The membrane according to any one of

[16] to

[20] , wherein the electrolysis device is an electrolytic hydrogen production device, an ammonia production device, or a carbonate reduction device. [twenty two] The film according to any one of

[15] to

[21] , which has a thickness of 300 μm or less. [twenty three] The membrane according to any one of

[16] to

[22] , wherein the battery is a nickel-zinc battery, a manganese-zinc battery, an air-zinc battery, an air-iron battery, or a fuel cell. [twenty four] The film according to any one of

[15] to

[23] , which has a thickness of 100 μm or less. [twenty five] The membrane according to any one of

[15] to

[24] , for use in an electrolysis device or battery having a configuration in which an electrode is in contact with a diaphragm.

[26] An electrolysis device or battery using (or including) the membrane according to any one of

[15] to

[25] .

[27] A method for producing a film, comprising the step of forming a film using the composition according to any one of [1] to

[14] (forming the composition into a film).

[28] A method for producing an inorganic / organic hybrid compound in which a metal oxide is chemically bonded to a polyvinyl alcohol-based resin, the method comprising the step of adding an alkali to an aqueous solution containing a compound (A) having a molecular weight of 350 g / mol or less and having two or more hydroxyl groups in the molecule, a salt corresponding to the metal oxide (e.g., a metal salt or an oxymetal salt), and a polyvinyl alcohol-based resin.

[29] The production method according to

[28] , wherein the content of the compound (A) in the aqueous solution is 0.5 parts by mass or more and 6 parts by mass or less per part by mass of the polyvinyl alcohol-based resin.

[30] The method according to

[28] or

[29] , wherein the compound (A) is at least one selected from glycerin, diethylene glycol, monosaccharides, and disaccharides.

[31] The method according to any one of

[28] to

[30] , wherein the compound (A) contains glycerin.

[32] A method for producing a composition containing an inorganic / organic hybrid compound in which a metal oxide is chemically bonded to a polyvinyl alcohol-based resin, or a film formed from the composition (the composition or film according to any one of [1] to

[25] ), the method comprising the production method (step) according to any one of

[28] to

[31] .

[33] The manufacturing method according to

[32] , further comprising a step of adding a hydrophobic resin (a step of mixing the inorganic / organic hybrid compound with the hydrophobic resin).

[34]

[33] The manufacturing method according to

[33] , wherein the hydrophobic resin is an aqueous dispersion [e.g., an aqueous dispersion of a polyolefin-based resin] [or a hydrophobic resin (or resin A, e.g., a polyolefin-based resin) in the form of an aqueous dispersion is mixed].

[35] The production method according to

[34] , wherein the hydrophobic resin (e.g., a polyolefin-based resin, or the hydrophobic resin (or resin A, e.g., a polyolefin-based resin) constituting the aqueous dispersion is an acid-modified hydrophobic resin (a polyolefin-based resin, e.g., a hydrophobic resin having maleic acid attached to the particle surface of the hydrophobic resin). [Effects of the Invention]

[0021] According to the present invention, a novel composition (a composition containing an inorganic / organic hybrid compound) can be provided.

[0022] According to one embodiment of the composition of the present invention, a film having good alkali resistance (particularly, hot alkali resistance) can be provided.

[0023] According to one aspect of the present invention, a low-cost membrane can be provided.

[0024] According to one aspect of the present invention, a membrane having excellent hydroxide ion conductivity can be provided.

[0025] According to one aspect of the present invention, a non-porous membrane (without macropores) may be provided. Such a membrane can suppress the permeation of gases and other substances other than the ions that need to permeate, and can solve the above-mentioned problems of the conventional membranes for electrolysis devices or batteries that use aqueous alkaline electrolytes. Furthermore, such films can be made thin because they are not porous, which may allow devices or batteries to be made more compact.

[0026] According to one aspect of the present invention, a method for producing a novel inorganic / organic hybrid compound can be provided.

[0027] According to one aspect of the present invention, a novel method for producing a film (a method for producing a film formed from a composition containing an inorganic / organic hybrid compound) can be provided.

[0028] According to one aspect of the present invention, there can be provided a method for producing a film formed from a composition containing an inorganic / organic hybrid compound, which does not require a heating step under acidic conditions. According to such a manufacturing method, there is no need for equipment with excellent acid resistance, which can reduce the cost of manufacturing equipment. Furthermore, in conventional methods for producing membranes using inorganic / organic hybrid compounds, the PVA aqueous solution is heated under acidic conditions, which has the problem of easily causing deterioration of the PVA (particularly deterioration due to the progression of intramolecular dehydration reactions). On the other hand, the membrane production method of the present invention does not require a step of heating the PVA aqueous solution under acidic conditions, which makes it easier to prevent PVA deterioration during production.

[0029] The membrane (or diaphragm) of one embodiment of the present invention can more efficiently suppress the permeation of gases produced by electrolysis and products other than gases than conventional porous sheets, and therefore can improve energy efficiency and the purity of products. [Brief explanation of the drawings]

[0030] [Figure 1] 1 shows a schematic diagram of a typical manufacturing process for the membrane of the present invention. [Figure 2] 1 shows a schematic diagram of the electrolysis apparatus of Example 13. [Figure 3] 1 shows the relationship between current density and voltage in the electrolytic hydrogen production tests of Examples 13 to 15. [Figure 4] 1 shows a nickel-zinc battery (Example 17) using a membrane of the present invention (a. membrane, b. nonwoven porous sheet, c. negative electrode, d. positive electrode, e. Teflon container, f. stainless steel container, g. electrolyte). [Figure 5] 1 shows the charge / discharge voltage curves of a nickel-zinc battery (Example 17) using a membrane according to the present invention. [Figure 6] 1 shows a field emission scanning electron microscope image of the film of Example 18. DETAILED DESCRIPTION OF THE INVENTION

[0031] [Composition] The composition of the present invention contains an inorganic / organic hybrid compound in which a metal oxide is chemically bonded to a polyvinyl alcohol-based resin, and a hydrophobic resin (or resin A; hereinafter, these may be collectively referred to as "hydrophobic resin" or "resin A"). The inorganic / organic hybrid compound may have a metal bonded to a polyvinyl alcohol resin in the form of an oxide.

[0032] (Polyvinyl alcohol resin) A polyvinyl alcohol resin (hereinafter simply referred to as a "PVA resin") may be a saponified polymer containing at least a vinyl ester monomer as a polymerization component. Such a polyvinyl alcohol resin may contain vinyl alcohol units, and may also contain units derived from vinyl ester monomers or other unsaturated monomers.

[0033] Examples of the vinyl ester monomer used in producing the polyvinyl alcohol resin include fatty acid vinyl esters. The fatty acid vinyl ester is not particularly limited, but examples thereof include vinyl formate, vinyl acetate, vinyl propionate, and vinyl pivalate, with vinyl acetate being industrially preferred. The vinyl ester monomer can be polymerized by various polymerization methods such as conventionally known bulk polymerization, solution polymerization, suspension polymerization, and emulsion polymerization. Among these, solution polymerization using an alcohol solvent such as methanol is industrially preferred.

[0034] When polymerizing the vinyl ester monomer, other copolymerizable unsaturated monomers may be used within the range that does not impair the effects of the present invention. Examples of other unsaturated monomers include carboxyl group-containing unsaturated monomers [e.g., (meth)acrylic acid, maleic acid, maleic anhydride, fumaric acid, crotonic acid, itaconic acid, undecylenic acid, etc.], unsaturated dibasic acid monoalkyl esters (e.g., monomethyl maleate, monomethyl itaconate, etc.), amide group-containing unsaturated monomers (e.g., acrylamide, dimethylacrylamide, dimethylaminoethylacrylamide, diethylacrylamide, dimethylaminopropylacrylamide, isopropylacrylamide, N-methylolacrylamide, N-vinylformamide, N-vinylacetate, etc.), and the like. vinyl halides (e.g., vinyl chloride, vinyl fluoride, etc.), unsaturated monomers having a glycidyl group (e.g., allyl glycidyl ether, glycidyl methacrylate, etc.), lactam group-containing unsaturated monomers {e.g., N-vinylpyrrolidones [e.g., N-vinyl-2-pyrrolidone, N-vinyl-alkylpyrrolidone (e.g., N-vinyl-3-propyl-2-pyrrolidone, N-vinyl-5-methyl-2-pyrrolidone, N-vinyl-5,5-dimethyl-2-pyrrolidone, N-vinyl-3,5-dimethyl-2-pyrrolidone, N-vinyl-mono- or di-C 1-4 alkylpyrrolidones), etc.], N-allylpyrrolidones (e.g., N-allyl-2-pyrrolidone, etc.), N-vinylpiperidones [e.g., N-vinyl-mono- or di-C such as N-vinyl-2-piperidone, N-vinyl-alkylpiperidones (e.g., N-vinyl-6-methyl-2-piperidone, N-vinyl-6-ethyl-2-piperidone, etc.] 1-4 alkylpiperidones), etc.], N-vinyl caprolactams [for example, N-vinyl-ε-caprolactam, N-vinyl-alkyl caprolactams (for example, N-vinyl-mono- or di-C such as N-vinyl-7-methyl-2-caprolactam and N-vinyl-7-ethyl-2-caprolactam] 1-4 alkyl caprolactams, etc.)]}, alkyl vinyl ethers [e.g., C 1―20alkyl vinyl ethers (e.g., methyl vinyl ether, n-propyl vinyl ether, i-propyl vinyl ether, n-butyl vinyl ether, i-butyl vinyl ether, t-butyl vinyl ether, lauryl vinyl ether, dodecyl vinyl ether, stearyl vinyl ether, etc.), nitriles (e.g., acrylonitrile, methacrylonitrile, etc.), hydroxyl group-containing unsaturated monomers [e.g., C 1―20 Monoalkylallyl alcohols (e.g., allyl alcohol, isopropenyl allyl alcohol, etc.), C 1―20 Dialkylallyl alcohol (e.g., dimethylallyl alcohol, etc.), hydroxy C 1―20 alkyl vinyl ethers (e.g., hydroxyethyl vinyl ether, hydroxybutyl vinyl ether, etc.)], acetyl group-containing unsaturated monomers [e.g., C 1―20 alkyl allyl acetates (e.g., allyl acetate, dimethyl allyl acetate, isopropenyl allyl acetate, etc.), etc.), (meth)acrylic acid esters {e.g., (meth)acrylic acid alkyl esters [e.g., (meth)acrylic acid C such as methyl (meth)acrylate, ethyl (meth)acrylate, 2-ethylhexyl acrylate, n-butyl acrylate, etc.], 1-20alkyl] etc.}, vinyl silanes (e.g., trimethoxyvinylsilane, tributylvinylsilane, diphenylmethylvinylsilane, etc.), polyoxyalkylene (meth)acrylates [e.g., polyoxyethylene (meth)acrylate, polyoxypropylene (meth)acrylate, etc.], polyoxyalkylene (meth)acrylic acid amides [e.g., polyoxyethylene (meth)acrylic acid amide, polyoxypropylene (meth)acrylic acid amide, etc.], polyoxyalkylene vinyl ethers (e.g., polyoxyethylene vinyl ether, polyoxypropylene vinyl ether, etc.), polyoxyalkylene alkyl vinyl ethers (e.g., polyoxyethylene allyl ether, polyoxypropylene allyl ether, polyoxyethylene butyl vinyl ether, polyoxypropylene butyl vinyl ether, etc.), α-olefins (e.g., ethylene, propylene, n-butene, 1-hexene, etc.), butenes (e.g., 3,4-dihydroxy-1-butene, 3,4-diacyloxy-1-butene, 3,4-dimethyl ... -acyloxy-4-hydroxy-1-butene, 4-acyloxy-3-hydroxy-1-butene, 3,4-diacyloxy-2-methyl-1-butene, etc.), pentenes (for example, 4,5-dihydroxy-1-pentene, 4,5-diacyloxy-1-pentene, 4,5-dihydroxy-3-methyl-1-pentene, 4,5-diacyloxy-3-methyl-1-pentene, etc.), hexenes (for example, 5,6-dihydroxy-1-hexene, 5,6-diacyloxy-1-hexene, etc.), amine-based unsaturated monomers [for example, N,N-dimethylallylamine, N-allylpropanol, 3-piperidine acrylic acid ethyl ester, 2-vinylpyridine, 4-vinylpyridine, 2-methyl-6-vinylpyridine, 5-ethyl-2-vinylpyridine, 5-butenylpyridine, 4-pentenylpyridine, 2-(4-pyridyl)allyl alcohol, etc.], unsaturated monomers having quaternary ammonium compounds (e.g., dimethylaminoethyl acrylate methyl chloride quaternary salt, N,N-dimethylaminopropylacrylamide methyl chloride quaternary salt, N,N-dimethylaminopropylacrylamidomethylbenzenesulfonic acid quaternary salt, etc.), aromatic unsaturated monomers (e.g., styrene, etc.), unsaturated monomers containing a sulfonic acid group (e.g., 2-acrylamido-2-methylpropanesulfonic acid or its alkali metal salts, ammonium salts, or organic amine salts; 2-acrylamido-1-methylpropanesulfonic acid or its alkali metal salts, ammonium salts, or organic amine salts; 2-methacrylamido-2-methylpropanesulfonic acid or its alkali metal salts, ammonium salts, or organic amine salts; vinylsulfonic acid or its alkali metal salts, ammonium salts, or organic amine salts; allylsulfonic acid or its alkali metal salts, ammonium salts, or organic amine salts; methallylsulfonic acid or its alkali metal salts, ammonium salts, or organic amine salts, etc.), diacetone acrylamide, diacetone methacrylamide, diacetone acrylate, diacetone methacrylate, acetoacetoxyacrylamide, acetoacetoxymethacrylamide, glycerin monoallyl ether, 1,3-diacetoxy-2-methylenepropane, 2,3-diacetoxy-1-allyloxypropane, 2-acetoxy-1-allyloxy-3-hydroxypropane, 3-acetoxy-1-allyloxy-3-hydroxypropane, 3-acetoxy-1-allyloxy-2-hydroxypropane, 3,4-diacetoxy-1-butene, glycerin monovinyl ether, glycerin monoisopropenyl ether, acryloylmorpholine, vinyl ethylene carbonate, vinyl imidazole, vinyl carbazole, and the like.

[0035] The content of the other unsaturated monomer is not particularly limited, but may be, for example, 20 moles or less, 15 moles or less, 10 moles or less, etc. per 100 moles of the vinyl ester monomer.

[0036] Furthermore, the obtained polyvinyl alcohol-based resin may be post-modified by a known method such as acetalization, urethanization, etherification, grafting, phosphate esterification, sulfonation, acetoacetylation, cationization, amination, or hydrazide conversion, within the scope of not impairing the effects of the present invention.

[0037] The polymerization catalyst used in polymerizing the vinyl ester monomer is not particularly limited, but an azo compound or a peroxide is usually used. During the polymerization, an organic acid such as tartaric acid, citric acid, or acetic acid may be added to prevent hydrolysis of the fatty acid vinyl ester. To terminate the polymerization, a polymerization terminator can be used, although the polymerization terminator is not particularly limited, and examples thereof include m-dinitrobenzene.

[0038] During polymerization, any of the shape of the polymerization vessel, the type of polymerization stirrer, the polymerization temperature, the pressure inside the polymerization vessel, and the like may be determined in a known manner.

[0039] In order to adjust the degree of polymerization, a chain transfer agent such as 2-mercaptoethanol, 1-dodecanethiol, or acetaldehyde may be used.

[0040] The method for saponifying the polymer is not particularly limited and may be any conventionally known method. For example, alcoholysis or hydrolysis using a conventionally known basic catalyst such as sodium hydroxide, potassium hydroxide, or sodium methoxide, or an acidic catalyst such as hydrochloric acid, sulfuric acid, or p-toluenesulfonic acid can be applied. Examples of solvents used in the saponification reaction include alcohols such as methanol and ethanol, esters such as methyl acetate, ketones such as acetone and methyl ethyl ketone, aromatic hydrocarbons such as benzene and toluene, and tetrahydrofuran, which can be used alone or in combination of two or more. There are no particular limitations on the saponification temperature, time, etc. The methods for drying, pulverizing and washing the saponified product are not particularly limited, and known methods may be used.

[0041] The viscosity (20°C) of a 4 mass% aqueous solution of the polyvinyl alcohol resin is not particularly limited, and may be, for example, 1 mPa·s or more, 2 mPa·s or more, 3 mPa·s or more, 7 mPa·s or more, 10 mPa·s or more, 20 mPa·s or more, 30 mPa·s or more, or 3000 mPa·s or less, 2000 mPa·s or less, 1000 mPa·s or less, 800 mPa·s or less, 500 mPa·s or less, 200 mPa·s or less, 150 mPa·s or less, 100 mPa·s or less, 90 mPa·s or less, etc.

[0042] Typically, from the viewpoint of alkali resistance (particularly, alkali resistance of a film formed from the composition) and ion permeability of the film (and further the balance between these), a polyvinyl acetate composition having a viscosity (20°C) of 4 mass% aqueous solution of 3 mPa·s or more (for example, 5 mPa·s or more, 8 mPa·s or more, 10 mPa·s or more, 12 mPa·s or more, 15 mPa·s or more, 18 mPa·s or more, 20 mPa·s or more, 22 mPa·s or more, 25 mPa·s or more, 20 to 500 mPa·s) is used. Alcohol-based resins may be preferably used, and polyvinyl alcohol-based resins having a 4 mass% aqueous solution viscosity (20°C) of about 2000 mPa·s or less (e.g., 1500 mPa·s or less, 1400 mPa·s or less, 1200 mPa·s or less, 1000 mPa·s or less, 800 mPa·s or less, 700 mPa·s or less, 600 mPa·s or less, 500 mPa·s or less, 400 mPa·s or less, 300 mPa·s or less, 200 mPa·s or less) may be preferably used. For example, from the viewpoint of alkali resistance (particularly the alkali resistance of a film formed from the composition) and the ion permeability of the film (and further the balance between these), the viscosity of a 4 mass% aqueous solution of the polyvinyl alcohol resin (20°C) is preferably about 5 to 3000 mPa·s, more preferably about 10 to 2500 mPa·s (e.g., 20 to 2500 mPa·s), and even more preferably about 10 to 1500 mPa·s (e.g., 15 to 1500 mPa·s, 12 to 1000 mPa·s, 20 to 1500 mPa·s, 40 to 1500 mPa·s, 30 to 800 mPa·s, etc.).

[0043] The viscosity of a 4% by mass aqueous solution of a polyvinyl alcohol resin (viscosity of a 4% by mass aqueous solution at 20° C.) can be measured, for example, according to JIS K6726.

[0044] The polyvinyl alcohol resin can be selected depending on its type, composition, etc., and is not particularly limited. It may be a fully saponified polyvinyl alcohol resin (for example, a saponification degree of 97 mol % or more) or a partially saponified polyvinyl alcohol resin (for example, a saponification degree of less than 97 mol %).

[0045] From the viewpoints of water solubility, handleability, alkali resistance (particularly, the alkali resistance of a film formed from the composition), ion permeability of the film, and the like, the degree of saponification of the polyvinyl alcohol resin may be preferably 70 mol % or more (e.g., 70 to 100 mol %, 70 to 99.9 mol %), 75 mol % or more (e.g., 78 to 99.9 mol %), 80 mol % or more (e.g., 80 to 99.9 mol %), 82 mol % or more, 85 mol % or more, 86 mol % or more (e.g., 86 to 99.9 mol %), 90 mol % or more (e.g., 90 to 99.9 mol %), 95 mol % or more (e.g., 95 to 99.9 mol %), and the like.

[0046] The degree of saponification (average degree of saponification) can be measured, for example, according to JIS K6726.

[0047] The polyvinyl alcohol resins may be used alone or in combination of two or more.

[0048] (metal oxides) Examples of metal oxides that bond to polyvinyl alcohol resins include oxides of typical metals [e.g., Group 13 elements (e.g., aluminum)] and transition metals [e.g., Group 4 elements (e.g., titanium, zirconium)], with zirconium oxide and titanium oxide being preferred, and zirconium oxide being more preferred. The metal oxide may be the metal oxide itself, a hydrate of the metal oxide, a derivative of the metal oxide [or a compound formed from the metal oxide (for example, a salt derived from the metal oxide)], etc. The metal oxide may be partially substituted with another element.

[0049] For example, zirconium oxides have ZrO2 as a base unit, and examples thereof include zirconate compounds containing water and expressed by the general formula ZrO2·xH2O (x is an integer greater than or equal to 1), as well as other derivatives of ZrO2. The term "zirconium oxide" refers to compounds generally based on ZrO2 (e.g., zirconate salts, zirconium hydroxide, etc.). Note that zirconium oxides may be partially substituted with other elements as long as the properties of ZrO2 are not impaired, and deviations from the stoichiometric composition or the addition of additives are also permitted. For example, zirconate salts and zirconium hydroxides also have ZrO2 as a base unit, and derivatives based on salts or hydroxides, or compounds based on these, are also included in the zirconium oxides of the present invention.

[0050] The metal oxides may be used alone or in combination of two or more.

[0051] (inorganic / organic hybrid compounds) The inorganic / organic hybrid compound is formed by bonding (chemically bonding) a metal oxide and a PVA-based resin through dehydration condensation via the hydroxyl groups of the PVA-based resin. That is, in the inorganic / organic hybrid compound, the metal oxide (or metal) is bonded to the PVA-based resin (particularly to oxygen atoms derived from the hydroxyl groups of the PVA-based resin). In the inorganic / organic hybrid compound, it is sufficient that the metal oxide (or metal) is bonded to at least some of the oxygen atoms derived from the hydroxyl groups of the PVA-based resin. Hybrid compounds are compounds and are distinguished from mixtures formed by physically mixing zirconium oxide or the like with polyvinyl alcohol. That is, unlike mixtures, the chemical properties of each component in hybrid compounds are not necessarily maintained after hybridization. For example, polyvinyl alcohol, a component of the hybrid compound in the present invention, is water-soluble (hot water-soluble) on its own, but after forming a hybrid compound with zirconium oxide or the like, it is essentially insoluble in hot water. Furthermore, by hybridizing with zirconium oxide or the like, which has excellent heat resistance and oxidation resistance, the heat resistance and oxidation resistance of polyvinyl alcohol are improved compared to when it is used alone.

[0052] In the inorganic / organic hybrid compound, the proportion of the metal oxide is, for example, 0.001 to 10 parts by mass relative to 1 part by mass of the PVA-based resin, and from the viewpoints of water resistance, heat resistance, oxidation resistance, strength, flexibility, hydroxide ion permeability, etc., it is preferably 0.01 to 1 part by mass. For example, in an inorganic / organic hybrid compound, when zirconium oxide or the like is bonded to a PVA-based resin, the content of the zirconium oxide or the like in the inorganic / organic hybrid compound is preferably controlled so that the amount of ZrO2 or the like contained therein is 0.01 part by mass or more (e.g., 0.05 part by mass or more) per part by mass of the PVA-based resin from the viewpoints of the water resistance, heat resistance, oxidation resistance, strength, and resistance to permeation of substances that should not be permeated of the membrane, and is preferably controlled so that the amount is 1 part by mass or less (e.g., 0.8 part by mass or less) from the viewpoints of the flexibility of the membrane, hydroxide ion conductivity, etc.

[0053] (Method of manufacturing inorganic / organic hybrid compounds) The inorganic / organic hybrid compound can be produced, for example, by a process (or production method) of adding an alkali to an aqueous solution containing a water-soluble compound having a hydroxyl group, a salt corresponding to the metal oxide (e.g., a metal salt or an oxymetal salt), and a polyvinyl alcohol-based resin. That is, the present invention also encompasses a production method of an inorganic / organic hybrid compound in which a metal oxide is chemically bonded to a polyvinyl alcohol-based resin, which includes such a process. Through these steps, the salt corresponding to the metal oxide is converted into the metal oxide, which then bonds with the hydroxyl groups of the PVA resin to obtain an inorganic / organic hybrid compound. The salt corresponding to the metal oxide may be any salt capable of forming the desired metal oxide, and examples thereof include inorganic salts, organic salts, metal salts, and oxymetal salts (e.g., chlorides, nitrates, sulfates, acetates, etc.). For example, when forming zirconium oxide, zirconium salts, oxyzirconium salts, etc. can be used as salts corresponding to the metal oxide. The alkali is not particularly limited, and examples thereof include sodium hydroxide, potassium hydroxide, lithium hydroxide, and ammonia.

[0054] The water-soluble compound having a hydroxyl group may have one or more hydroxyl groups. Examples of water-soluble compounds having a hydroxyl group include polyhydric alcohols (e.g., glycerin, diglycerin, polyglycerin, diethylene glycol, polyethylene glycol, etc.), low-molecular-weight polyvinyl alcohols, sugars (e.g., monosaccharides such as glucose, disaccharides such as sucrose, etc.) and derivatives thereof, sugar alcohols (e.g., xylitol, sorbitol, maltitol, etc.) and derivatives thereof, polyoxyalkylene polyglyceryl ethers (e.g., polyoxyethylene polyglyceryl ether, polyoxypropylene polyglyceryl ether, etc.), polyoxyalkylene glyceryl ethers (e.g., polyoxyethylene glyceryl ether, polyoxypropylene glyceryl ether, polyoxyethylene diglyceryl ether, polyoxypropylene diglyceryl ether, etc.), and the like. The water-soluble compound having a hydroxyl group may have a relatively low molecular weight, for example, a molecular weight of 350 g / mol or less. Representative examples of the water-soluble compound having a hydroxyl group include a compound (A) having a molecular weight of 350 g / mol or less and two or more hydroxyl groups in the molecule. Examples of compound (A) include polyhydric alcohols having a molecular weight of 350 g / mol or less (e.g., glycerin, diglycerin, low-molecular-weight polyglycerins having a molecular weight of 350 g / mol or less, diethylene glycol, low-molecular-weight polyethylene glycols having a molecular weight of 350 g / mol or less, etc.), low-molecular-weight polyvinyl alcohols having a molecular weight of 350 g / mol or less, sugars (e.g., monosaccharides such as glucose, disaccharides such as sucrose, etc.) and derivatives thereof, sugar alcohols (e.g., xylitol, sorbitol, maltitol, etc.) and derivatives thereof, polyoxyalkylene polyglyceryl ethers having a molecular weight of 350 g / mol or less, and polyoxyalkylene glyceryl ethers having a molecular weight of 350 g / mol or less. The water-soluble compound having a hydroxyl group, such as compound (A), may be used singly or in combination of two or more kinds.

[0055] The pH of the aqueous solution obtained through the above steps is, for example, 8 to 14.

[0056] A method for producing such an inorganic / organic hybrid compound will be described in detail in steps 1 and 2 of the film production method described below. That is, the method described in steps 1 and 2 described below may be used as a method for producing such an inorganic / organic hybrid compound.

[0057] (Hydrophobic resin or Resin A) Resin A is not particularly limited, but may be hydrophobic. Such a hydrophobic resin (resin A) is not particularly limited, but for example, it may be a resin having an SP value (solubility parameter) of, for example, 5 (cal / cm 3 ) 1 / 2 or more, and may be 20 (cal / cm 3 ) 1 / 2 Below, 18(cal / cm 3 ) 1 / 2 Below, 15(cal / cm 3 ) 1 / 2 Below, 14(cal / cm 3 ) 1 / 2 Below, 13(cal / cm 3) 1 / 2 It may be the following, etc.

[0058] The SP value may be, for example, the value at 25°C. The SP value may be determined by, for example, the Hildebrand method, the Hansen method, the Fedors method (for example, the method described in RF Fedors, Polym. Eng. Sci., 14, 147 (1974)), the van Krevelen & Hoftyzer method, or a method of determining the SP value from the molecular attractive constant [for example, a method of determining the SP value = ΣG / V from the molecular attractive constant (G) and molar volume (V) of each functional group or atomic group constituting the resin molecule (DASmall, J. Appl. Chem., 3, 71 (1953), KL Hoy, J. Paint Technol., 42, 76 (1970))], or known literature values ​​may be used. For example, the Fedors method is used (for example, the monomer model of J-OCTA (JSOL Corporation)) to model the structural repeating unit of the polymer, and the Fedors type solubility parameter (SP value) is calculated using the simple property value estimation function of the software, and the conversion formula: SP value [(cal / cm 3 ) 1 / 2 ]=SP value [(J / cm 3 ) 1 / 2 The calculated SP value of the ethylene homopolymer is 8.55 (cal / cm 3 ) 1 / 2 The SP value of propylene homopolymer is 8.18 (cal / cm 3 ) 1 / 2 The SP value of vinyl chloride homopolymer is 10.32 (cal / cm 3 ) 1 / 2 etc.

[0059] Examples of hydrophobic resins (resin A) include polyolefin resins, polystyrene resins, halogen-based (halogen-containing) resins [e.g., polyvinyl chloride resins (polyvinyl chloride, copolymers of vinyl chloride with other monomers (e.g., acrylic monomers, etc.)], polysulfone resins, etc., with polyolefin resins (e.g., polypropylene, polyethylene, etc.) and polyvinyl chloride resins being preferred, and polyolefin resins being preferred. The hydrophobic resins may be used alone or in combination of two or more. The hydrophobic resin (resin A) may be modified (for example, an acid-modified hydrophobic resin). Examples of acid-modified resins (hydrophobic resins) include those in which an acid (for example, maleic acid) is added to the particle surface of a resin (hydrophobic resin). For example, polyolefin resins that can be used include those having a substituent, those copolymerized with units derived from monomers other than olefins, and those whose surfaces are modified with other compounds. For example, when the polyolefin resin is polyethylene, the melting point of polyethylene alone is less than 140°C. However, even when the composition of the present invention contains polyethylene, the film is less likely to melt and can maintain its shape even when produced at 140°C.

[0060] The hydrophobic resin (resin A) may be dispersed in a solvent (for example, an aqueous dispersion, an aqueous dispersion, etc.).

[0061] The inorganic / organic hybrid compounds are highly hydrophilic and have the property of absorbing water, including aqueous alkaline electrolytes. Therefore, membranes formed from inorganic / organic hybrid compounds are permeable to hydroxide ions even when non-porous. Because polyvinyl alcohol, a component of the hybrid compound, is impermeable to gases, hybridization with denser materials such as zirconium oxide is thought to further reduce the membrane's gas permeability. Furthermore, the polyvinyl alcohol region of the hybrid compound may allow dissolved components other than hydroxide ions to pass through when it absorbs water, but the size of the permeable ions can be controlled by the amount (concentration) of the zirconium oxide used for hybridization. Therefore, it is possible to block the permeation of unnecessary components dissolved in water other than gases.

[0062] As described above, inorganic / organic hybrid compounds exhibit hydroxide ion conductivity (permeability) upon absorbing aqueous alkaline electrolyte. However, this absorption of alkaline electrolyte causes the hybrid compound to swell significantly, making the hybrid molecules fragile. As swelling progresses, each molecule becomes exposed to the alkali, facilitating hydrolysis and decomposition of the hybrid compound. While fully grown zirconium oxide is inherently insoluble in alkali and stable, in the hybrid compound it is bound to polyvinyl alcohol at nanoscale levels, making it more soluble. If the hybrid compound swells significantly, the elution of zirconium oxide and other elements further accelerates decomposition of the hybrid compound. This degradation of the hybrid compound is further accelerated in high-temperature alkaline solutions. For these reasons, conventional membranes composed solely of hybrid compounds lack sufficient alkali resistance. Furthermore, due to the inorganic components, the membranes formed from inorganic / organic hybrid compounds have low flexibility and are prone to breakage.

[0063] On the other hand, since the composition of the present invention contains a hydrophobic resin, the formed film can be imparted with flexibility to the entire film. Furthermore, the hydrophobic resin acts to suppress swelling of the inorganic / organic hybrid compound, effectively suppressing size changes associated with swelling of the entire film, and can efficiently suppress deterioration due to swelling of the inorganic / organic hybrid compound. That is, by including a hydrophobic resin in the composition of the present invention, it is easy to obtain a composition and film with excellent alkali resistance. From the viewpoint of easily achieving such effects, the proportion of the hydrophobic resin (resin A) in the composition is, for example, 0.3 parts by mass or more, preferably 0.4 parts by mass or more, and for example, 10 parts by mass or less, 5 parts by mass or less, 3 parts by mass or less, 1 part by mass or less, etc., per 1 part by mass of the polyvinyl alcohol-based resin. Polyolefins are hydrophobic and do not absorb alkaline electrolytes, so individual molecules are not exposed to alkali and are inherently stable in alkaline environments. Although polyolefins do not necessarily have excellent oxidation and heat resistance, this is essentially negligible when mixed at the microscopic level with inorganic / organic hybrid compounds that have excellent oxidation and heat resistance, as mentioned above.

[0064] (metal oxide powder) The compositions of the present invention may suitably contain metal oxide powders. As described above, hydrophobic resins can suppress the swelling of inorganic / organic hybrid compounds in alkaline electrolytes due to their hydrophobicity, thereby preventing deterioration. However, in electrolysis devices, if the diaphragm surface is highly water-repellent, generated gases may be adsorbed onto the diaphragm surface, inhibiting the electrolysis reaction. Furthermore, in batteries, impairing the wettability of the interface between the diaphragm and the electrodes may inhibit the charge / discharge reaction. In the composition of the present invention, by using a metal oxide powder in addition to a hydrophobic resin, swelling of the inorganic / organic hybrid compound in an alkaline electrolyte is efficiently suppressed, while the above-mentioned electrolytic reaction and charging reaction are less likely to be inhibited.

[0065] Metal oxide powder does not swell by itself and forms a strong bond with the inorganic / organic hybrid compound, which is thought to help prevent the inorganic / organic hybrid compound from swelling in alkaline environments. Furthermore, its high hydrophilicity can mitigate the water repellency of the diaphragm surface, which is thought to help prevent water repellency from interfering with electrolysis and charge / discharge reactions. If only the inorganic / organic hybrid compound and metal oxide powder were used, the diaphragm would be hard and prone to damage. However, the combination of the inorganic / organic hybrid compound, a hydrophobic resin such as polyolefin, and a metal oxide powder such as zirconium oxide powder results in a favorable condition.

[0066] As the metal oxide powder, powders of the metal oxides exemplified above (for example, zirconium oxide powder, titanium oxide powder, alumina powder, etc.) can be used. The metal oxide powder may be the same metal oxide powder as the metal oxide used in the inorganic / organic hybrid compound, or may be a powder of a different metal oxide, but is preferably the same metal oxide powder. For example, when the metal oxide used in the inorganic / organic hybrid compound contains zirconium oxide, the metal oxide powder preferably contains zirconium oxide powder, which is particularly excellent in alkali resistance and oxidation resistance.

[0067] The metal oxide powders may be used alone or in combination of two or more.

[0068] The average particle size of the metal oxide powder varies depending on the type, but is, for example, 20 μm or less (eg, 15 μm or less), preferably 10 μm or less (eg, 5 μm or less). The method for measuring the average particle size is not particularly limited, and any known method may be used. For example, the average particle size can be measured using a laser diffraction particle size distribution analyzer, a dynamic light scattering particle size distribution analyzer, or the like.

[0069] In the composition, the content of the metal oxide powder is, for example, 0.5 parts by mass or more and 4 parts by mass or less, preferably 0.7 parts by mass or more and 3.5 parts by mass or less, and more preferably 1.4 parts by mass or more and 2.8 parts by mass or less, relative to 1 part by mass of the polyvinyl alcohol-based resin, from the viewpoints of suppressing the swelling, suppressing the inhibition of the electrolytic reaction and the charge / discharge reaction, and improving the flexibility and strength of the film.

[0070] (Other ingredients) The composition of the present invention may contain, as necessary, other components in addition to the inorganic / organic hybrid compound and hydrophobic resin (and further, metal oxide powder), such as water, inorganic compounds, and resins that do not belong to the categories of the PVA-based resin and hydrophobic resin.

[0071] The other components may be used alone or in combination of two or more.

[0072] Components (raw materials) used in producing the composition or film, and components derived from those components (for example, solvent components, water-soluble compounds having a hydroxyl group such as compound (A)) may remain in the composition of the present invention as long as they do not impair the performance of the composition or film, but depending on the components, etc., they may be reduced to the extent possible (purified). On the other hand, depending on the amount, leaving them may be preferable in terms of the performance of the composition or film. For example, in the composition of the present invention, the content of the water-soluble compound having a hydroxyl group (e.g., compound (A)) is, for example, 5% by mass or less, preferably 0.5% by mass or less, and for example, 0.01% by mass or more, 0.1% by mass or more, relative to the total composition.

[0073] The composition of the present invention can be obtained by mixing the components. The components may be mixed all at once, or two or more pre-prepared components may be mixed together and then the remaining components may be mixed. The mixing method is not particularly limited, and a conventional method may be used.

[0074] [film] The composition of the present invention can be used to form various films (or the composition (itself) can be formed into a film). That is, the present invention also encompasses films formed from the composition of the present invention. As the membrane, in particular, a diaphragm [a diaphragm for an electrolytic device or a battery (for example, an electrolytic device or a battery using an alkaline electrolyte)] can be suitably produced. The membrane may be formed using the composition of the present invention as a material, and may be a membrane formed from the composition of the present invention itself, or may include a membrane support (or reinforcing material).

[0075] In the membrane, the inorganic / organic hybrid compound and the hydrophobic resin may exist independently of each other, or one of the components may be dispersed in the other. For example, the inorganic / organic hybrid compound and the hydrophobic resin may form a sea-island structure. When a sea-island structure is formed, the particle diameter of the island-like components is, for example, 50 μm or less, with a maximum particle diameter. The size of each region (or particle diameter) such as the particle diameter can be confirmed, for example, by a scanning electron microscope.

[0076] Examples of the membrane support include porous or porous membranes (or sheets), such as polyolefin sheets such as polypropylene and polyethylene. The membrane supports may be used alone or in combination of two or more.

[0077] The thickness of the membrane support is, for example, 5 to 5000 μm, and preferably 20 to 1000 μm.

[0078] The form in which the membrane support is contained is not particularly limited, but it may be incorporated inside the membrane formed from the composition of the present invention, or it may be in contact with the outside (or surface) of the membrane, but it is preferable that it be incorporated inside the membrane. The membrane supports may be used alone or in combination of two or more.

[0079] An example of an electrolysis device in which the membrane of the present invention can be used is an electrolytic hydrogen production device that uses an alkaline electrolyte (for example, an aqueous alkaline electrolyte). In addition, since the electrolytic hydrogen production system produces hydrogen, it is possible to obtain other products through reduction or hydrogenation. For example, it is possible to use a system that reduces carbon dioxide dissolved in the electrolyte, i.e., carbonate, to obtain organic matter (carbonate reduction system), or a system that reacts with nitrogen to obtain ammonia (ammonia production system).

[0080] Examples of batteries in which the (non-porous) diaphragm of the present invention can be used include nickel-zinc batteries, manganese-zinc batteries, air-zinc batteries, air-iron batteries, and fuel cells. When used as a diaphragm for a nickel-zinc battery, the membrane of the present invention is non-porous, unlike conventional porous sheet diaphragms, and therefore can prevent dendrites growing from the zinc electrode from penetrating the diaphragm. Since dendrites grow as dissolved zincate ions are reduced during charging, if the diaphragm prevents the permeation of zincate ions, they will not penetrate the diaphragm. Therefore, by using the membrane (diaphragm) of the present invention, short circuits caused by dendrite formation in nickel-zinc batteries can be prevented and durability can be improved. It is believed that the same effect can be obtained when used in manganese-zinc batteries that use a manganese compound as the positive electrode active material. Furthermore, in alkaline fuel cells, the diaphragm of the present invention prevents hydrogen or other fuels supplied to the anode and oxygen supplied to the cathode from penetrating the diaphragm, thereby improving energy efficiency. Furthermore, unlike conventional non-porous diaphragms made solely of an inorganic / organic hybrid compound in which polyvinyl alcohol and zirconium oxide are chemically bonded, the diaphragm of the present invention has improved alkali resistance and therefore excellent durability.

[0081] When the (non-porous) diaphragm of the present invention is used in an air-zinc battery, it can efficiently prevent oxygen supplied to the positive electrode from passing through the diaphragm and reaching the negative electrode, thereby suppressing self-discharge. It is also believed that the same effect can be achieved when the diaphragm is used in other metal-air batteries such as iron-air batteries. Furthermore, in alkaline fuel cells, the diaphragm of the present invention prevents hydrogen or other fuels supplied to the anode and oxygen supplied to the cathode from penetrating the diaphragm, thereby improving energy efficiency. Furthermore, unlike conventional non-porous diaphragms made solely of an inorganic / organic hybrid compound in which polyvinyl alcohol and zirconium oxide are chemically bonded, the diaphragm of the present invention has improved alkali resistance and therefore excellent durability.

[0082] An electrolytic device or battery in which the membrane of the present invention is used may have a configuration in which an electrode (for example, an electrode containing a metal powder) is in contact with (or in close contact with) the membrane (diaphragm) of the present invention.

[0083] The thickness of the film of the present invention can be appropriately set depending on the application, etc., but the thickness of the film itself formed from the composition of the present invention is, for example, 5000 μm or less, preferably 300 μm or less, more preferably 100 μm or less, and for example, 5 μm or more, preferably 10 μm or more, more preferably 20 μm or more.

[0084] For example, in the case of a membrane for an electrolytic device, the thickness of the membrane (the membrane itself) formed from the composition of the present invention is, for example, 5000 μm or less, preferably 300 μm or less, more preferably 100 μm or less, and for example, 5 μm or more, preferably 20 μm or more, more preferably 50 μm or more. In electrolysis equipment, it is ideal for the electrodes to be made of materials with a large surface area, such as powder, whiskers, or fibers, in order to reduce reaction resistance. On the other hand, it is desirable for the diaphragm to be as thin as possible with low resistance (high ionic conductivity). However, if conventional porous sheet diaphragms were too thin, there was a high risk of the powder, whiskers, or fibers penetrating the electrodes, and they were prone to tearing, so they were often made thicker than 300 μm. On the other hand, the membrane (diaphragm) of the present invention does not have macropores like conventional membranes, and therefore is less likely to short circuit or tear even when thin, allowing it to be made 300 μm or less in thickness. Electrolysis devices are usually constructed by stacking a large number of cells in series, but the membrane (diaphragm) of the present invention allows the diaphragm to be thin, making it possible to make the entire device more compact. Furthermore, it also becomes possible to use high-performance thin electrodes made of, for example, fine powder with a large surface area, in close contact with the diaphragm, thereby enabling further compactness.

[0085] In the case of a membrane for a battery, the thickness of the membrane (the membrane itself) formed from the composition of the present invention is, for example, 100 μm or less (e.g., less than 100 μm), preferably 20 μm or less, more preferably 10 μm or less, and for example, 1 μm or more, preferably 2 μm or more, more preferably 5 μm or more. In batteries, electrodes may contain fine powders that are prone to short circuits as active materials or conductive agents, or burrs on the current collecting substrate may make short circuits more likely. For this reason, porous sheet membranes are often made thicker than 100 μm. On the other hand, the membrane (diaphragm) of the present invention does not have macropores and is therefore unlikely to short-circuit even when made thin, so it can be made thinner than 100 μm, which can contribute to making batteries more compact.

[0086] The membrane of the present invention may contain a water-soluble compound having a hydroxyl group, such as compound (A). In the film of the present invention, the content of the water-soluble compound having a hydroxyl group (e.g., compound (A)) is, for example, 5 parts by mass or less, preferably 0.5 parts by mass or less, and for example, 0.01 parts by mass or more, 0.1 parts by mass or more, relative to 1 part by mass of the PVA-based resin.

[0087] [Membrane manufacturing method] The present invention also includes a method for producing a film using the composition of the present invention. A film can be produced by casting the composition of the present invention onto a support and subjecting it to a heat treatment. The composition is in a solution state when cast, and may be subjected to a degassing treatment before casting.

[0088] The temperature for the heat treatment is not particularly limited and can be changed appropriately depending on the hydrophobic resin used, etc., but is, for example, about 50 to 140° C. The heating temperature may be changed stepwise, for example, after casting onto the base at 50 to 60° C., the temperature may be further increased (for example, to 100 to 140° C.). The time for the heat treatment is not particularly limited and can be changed appropriately depending on the thickness of the film to be produced, and may be, for example, 30 minutes to 5 hours (preferably 1 to 3 hours).

[0089] The membrane produced by the heat treatment may be subjected to treatments such as washing (for example, washing in hot water (for example, hot water at 50 to 80° C.)) and drying. The washing time is not particularly limited and may be, for example, 15 minutes to 3 hours. The drying temperature is not particularly limited and may be, for example, 50 to 120° C. The drying time is not particularly limited and may be, for example, 15 minutes to 3 hours. The cleaning and drying processes may be repeated multiple times.

[0090] The above-mentioned casting, heating, washing and drying can be carried out using known devices or methods.

[0091] The present invention also encompasses a method for producing a film, which includes the method (or production process) for producing the inorganic / organic hybrid compound of the present invention described above.

[0092] Representative examples of the method for producing the membrane of the present invention are given below. Figure 1 shows a schematic diagram of a typical membrane manufacturing process. First, in step 1, a raw material solution is obtained by mixing a solvent, a water-soluble compound having a hydroxyl group (for example, a compound (A) having a molecular weight of 350 g / mol or less and having two or more hydroxyl groups in the molecule), a salt corresponding to a metal oxide (for example, a metal salt or oxymetal salt such as a zirconium salt or an oxyzirconium salt), and a polyvinyl alcohol-based resin.

[0093] The polyvinyl alcohol resin, the salt corresponding to the metal oxide, and the water-soluble compound having a hydroxyl group (for example, compound (A)) all have excellent solubility in water, so the solvent preferably contains water.

[0094] Examples of the compound (A) that can be used include the above-mentioned glycerin, diglycerin, low-molecular-weight polyglycerin having a molecular weight of 350 g / mol or less, diethylene glycol, low-molecular-weight polyethylene glycol having a molecular weight of 350 g / mol or less, low-molecular-weight polyvinyl alcohol having a molecular weight of 350 g / mol or less, sugars (e.g., monosaccharides such as glucose, disaccharides such as sucrose) and derivatives thereof, sugar alcohols (e.g., xylitol, sorbitol, maltitol) and derivatives thereof, and polyoxyalkylene polyglyceryl ethers having a molecular weight of 350 g / mol or less. These may be used alone or in combination of two or more. As salts corresponding to metal oxides, the chlorides, nitrates, sulfates, acetates, etc., exemplified above, can be used.

[0095] Next, in step 2, an alkali is added to the raw material solution obtained in step 1. By adding an alkali, a salt corresponding to a metal oxide, such as a zirconium salt or an oxyzirconium salt, is converted into a metal oxide, such as zirconium oxide. The alkali to be used is not particularly limited, and examples thereof include sodium hydroxide, potassium hydroxide, lithium hydroxide, and ammonia. The newly formed small metal oxides, such as zirconium oxide, produced by the addition of alkali are unstable, so if polyvinyl alcohol is not present, they will bond together and grow, resulting in the precipitation of simple powder of metal oxide, such as zirconium oxide. However, when polyvinyl alcohol is present, as in the manufacturing process in question, the newly formed small, unstable metal oxides will bond with the hydroxyl groups of nearby polyvinyl alcohol through dehydration condensation, forming an inorganic / organic hybrid compound. The aqueous solution does not have to be completely neutralized by adding an alkali, and may be weakly alkaline.

[0096] A water-soluble compound having a hydroxyl group, such as compound (A), can efficiently prevent gelation caused by the addition of the alkali. If an alkali is added to a raw material solution containing these compounds, it is difficult for gelation to occur immediately, and it is difficult for the solution to solidify, making it easier to form a good film. Although it is unclear why water-soluble compounds having hydroxyl groups, such as compound (A), can prevent gelation in this way, it is thought that these compounds temporarily attach to and cap the hydroxyl groups of polyvinyl alcohol, thereby preventing the rapid hybridization with metal oxides, such as zirconium oxide, and thereby preventing gelation. In the aqueous solution, the content of the water-soluble compound having a hydroxyl group (e.g., compound (A)) is, for example, 0.3 parts by mass or more, preferably 0.5 parts by mass or more, relative to 1 part by mass of the polyvinyl alcohol-based resin, from the viewpoint of preventing gelation during neutralization of the raw material solution, and is, for example, 8 parts by mass or less, preferably 6 parts by mass or less, from the viewpoint of not increasing the amount of waste of unnecessary organic matter. A preferred compound (A) from the viewpoint of preventing gelation is glycerin.

[0097] In step 3, a hydrophobic resin such as polyolefin and a metal oxide powder such as zirconium oxide powder are added to the raw material solution obtained in step 2. The method of adding the hydrophobic resin is not particularly limited, but since standard solutions use aqueous solvents, it is difficult to uniformly disperse hydrophobic polyolefin powder, so it is preferable to add it as an aqueous dispersion. As the hydrophobic resin and its aqueous dispersion, and the metal oxide powder, those exemplified above can be used.

[0098] In step 4, the raw material solution obtained in step 3 is formed into a membrane. For example, the raw material solution can be formed into a film by a conventional casting method, and the solvent can be removed by heating to form a film. After the solvent is removed, the film may be further heated to promote hybridization and increase the strength of the film, etc. In this case, the additional heating temperature is preferably 100°C or higher, more preferably 120 to 140°C. When a membrane containing a membrane support is produced, the support can be introduced in this membrane formation process. The introduction method is not particularly limited, and for example, the raw material solution can be cast on the support, or the support can be placed on the cast raw material solution, or the raw material solution can be further placed on the support and sandwiched therebetween.

[0099] In step 5, the membrane obtained in step 4 is washed. Washing may be carried out in water or in hot water (for example, hot water at 50 to 80°C). This washing makes it possible to remove unnecessary salts generated during the addition of the alkali, compound (A), etc. Compound (A) etc. also has the effect of suppressing hybridization of polyvinyl alcohol and metal oxide, so it is preferable to wash and remove it in this step.

[0100] The membrane after washing in step 5 may be dried and used as is, or may be further heated in step 6 to further increase membrane strength. By removing compound (A) and the like in the washing step, further hybridization proceeds in this heating step, increasing strength. The heating temperature is preferably 100°C or higher, more preferably 120 to 140°C.

[0101] [Battery or electrolytic device] The present invention also includes a battery or electrolytic device formed with the membrane of the present invention. The battery or electrolytic device may be any of those exemplified above. The method for producing the battery or electrolysis device is not particularly limited, and known methods can be used. [Example]

[0102] The present invention will be specifically described below with reference to examples, but the present invention is not limited to the contents of these examples.

[0103] Example 1 A solution was prepared by mixing an aqueous solution of 1.7 g of glycerin (molecular weight 92.1 g / mol) and 0.65 g of zirconium oxyacetate (ZrO(CHCOO)), with 10 g of a 12 mass% aqueous solution of polyvinyl alcohol (JP-33, manufactured by Nippon Vinyl Acetate & Poval) (viscosity of 4 mass% aqueous solution: 75.2 mPa·s, degree of saponification: 87.3 mol%) in 10 cc of water. While stirring this solution, 1.9 mL of a 3N aqueous solution of sodium hydroxide was added dropwise to neutralize it to a weak alkaline solution. Furthermore, while stirring the solution, 3.9 g of polyethylene (PE) aqueous dispersion (20.3 mass% Arrowbase RSD1010 manufactured by Unitika) was added dropwise, followed by the addition of 3.4 g of zirconium oxide powder (average particle size 1 μm) dispersed in 5 cc of water to obtain a raw material solution. In this raw material liquid, the proportions of glycerin, zirconium oxide (ZrO2) in zirconium oxyacetate, polyethylene, and zirconium oxide powder per 1 part by mass of polyvinyl alcohol were 1.4 parts by mass, 0.3 parts by mass, 0.66 parts by mass, and 2.8 parts by mass, respectively. After degassing, this raw material solution was cast onto a polyester film placed on a flat base of a flat heater. The base was heated to 50-60°C. Immediately after casting, a doctor blade, whose gap with the base could be adjusted using a micrometer, was swept over the raw material solution to ensure a consistent thickness. The solution was left to evaporate while being heated at 50-60°C. When the fluidity had almost completely disappeared, the base temperature was raised to 120°C and maintained at this temperature for 2 hours. The film thus produced was peeled off from the base and washed twice for 30 minutes in hot water at 60-70°C. It was then heated at 120°C for 1 hour to produce a membrane. The resulting membrane had a thickness of 110 μm.

[0104] Example 2 A membrane was prepared in the same manner as in Example 1, except that the ratio of polyethylene to 1 part by mass of polyvinyl alcohol was 0.43 parts by mass.

[0105] Example 3 A film was prepared in the same manner as in Example 1, except that the ratio of zirconium oxide powder to 1 part by mass of polyvinyl alcohol was 1.4 parts by mass.

[0106] Example 4 A film was prepared in the same manner as in Example 1, except that the ratio of zirconium oxide powder to 1 part by mass of polyvinyl alcohol was changed to 0.7 parts by mass.

[0107] Example 5 A membrane was prepared in the same manner as in Example 1, except that the ratio of glycerin to 1 part by mass of polyvinyl alcohol was changed to 0.5 parts by mass.

[0108] Example 6 A membrane was prepared in the same manner as in Example 1, except that the ratio of glycerin to 1 part by mass of polyvinyl alcohol was 2.8 parts by mass.

[0109] Example 7 A membrane was prepared in the same manner as in Example 1, except that the polyethylene aqueous dispersion was changed to a polypropylene (PP) aqueous dispersion (27.9 wt% Arrowbase RDC1010 manufactured by Unitika) and the ratio of polypropylene to 1 part by mass of polyvinyl alcohol was changed to 0.43 parts by mass.

[0110] Example 8 A membrane was produced in the same manner as in Example 1, except that glycerin was changed to diethylene glycol (molecular weight 106.1 g / mol) and the ratio of diethylene glycol to 1 part by mass of polyvinyl alcohol was changed to 2 parts by mass.

[0111] Example 9 A membrane was prepared in the same manner as in Example 1, except that glycerin was changed to D(+)-glucose (molecular weight 180.2 g / mol) and the ratio of D(+)-glucose to 1 part by mass of polyvinyl alcohol was changed to 3 parts by mass.

[0112] Example 10 A membrane was produced in the same manner as in Example 1, except that glycerin was changed to sucrose (molecular weight 342.3 g / mol) and the ratio of sucrose to 1 part by mass of polyvinyl alcohol was changed to 6 parts by mass.

[0113] Example 11 When casting the raw material solution, only half of it was first cast, a polypropylene mesh sheet (thickness 160 μm, 156 × 100 mesh) was placed on top of it, and the remaining raw material solution was further cast on top of that to introduce a porous sheet (mesh sheet) as a reinforcing material, so that a membrane was produced in the same manner as in Example 1. The thickness of the obtained membrane was 270 μm.

[0114] Example 12 A membrane was prepared in the same manner as in Example 1, except that no zirconium oxide powder was added and the ratio of polyethylene to 1 part by mass of polyvinyl alcohol was set to 0.43 parts by mass.

[0115] (Comparative Example 1) A film having a conventional composition and manufacturing method was prepared as follows. A raw material solution was prepared by mixing an aqueous solution of 0.65 g of zirconium oxyacetate (ZrO(CHCOO)) in 10 cc of water with 10 g of a 12 mass % aqueous solution of polyvinyl alcohol (JP-33, manufactured by Nippon Vinyl Acetate & Poval) (viscosity of 4 mass % aqueous solution: 75.2 mPa·s, degree of saponification: 87.3 mol%). After degassing, this raw material solution was cast onto a polyester film placed on a flat base of a flat heater. The base was heated to 50-60°C. Immediately after casting, a doctor blade, whose gap with the base could be adjusted using a micrometer, was swept over the raw material solution to ensure a consistent thickness. The solution was left to evaporate while being heated at 50-60°C. When the fluidity had almost completely disappeared, the temperature of the base was raised to 120°C and maintained at this state for two hours of heat treatment. The film thus produced was peeled off from the base and immersed in a 1.67% by mass aqueous ammonia solution at room temperature for 18 hours. It was then washed twice in hot water at 60-70°C for 30 minutes each, and then heated at 120°C for one hour to produce a film.

[0116] (heat-alkali resistance) The films prepared in Examples 1 to 12 and Comparative Example 1 were evaluated for hot alkali resistance by the following method. The membrane was cut into 3cm squares, immersed in 40cc of 1N sodium hydroxide solution, and left in a thermostatic chamber at 80°C for 24 hours. Immediately after removal, the size was measured, and the areal swelling ratio was calculated from the change in size before and after immersion in the alkaline solution. After removal, the membrane was washed with water, dried, and then its mass was measured to determine the mass loss ratio of the membrane before and after immersion in the alkaline solution.

[0117] (hydroxide ion conductivity) The membranes produced in Examples 1 to 12 and Comparative Example 1 were evaluated for hydroxide ion conductivity by the following method. Two glass chambers separated only by the membrane were filled with a 30% potassium hydroxide solution, and a 1 cm square nickel porous electrode was placed in each chamber. The cross-sectional area of ​​the membrane-separated section was 0.79 cm. 2 The electrode was placed away from the membrane, with a distance of 6 cm between the electrodes. A voltage was applied between the two electrodes from a DC power source to electrolyze water at 25°C, with a current of 10 to 100 mA / cm per membrane cross-sectional area. 2 The resistance was calculated by measuring the voltage between the electrodes while changing the current density between 0.01 and 0.1. Measurements were also taken in advance without the membrane as a partition, and the resistance without the membrane was calculated by subtracting the resistance with the membrane from the resistance with the membrane, and the hydroxide ion conductivity of the membrane was calculated.

[0118] The evaluation results of Examples 1 to 12 and Comparative Example 1 are shown in Table 1.

[0119] [Table 1]

[0120] The membrane of Comparative Example 1, which did not contain polyolefin and was produced by a conventional process, swelled significantly upon hot alkali immersion, increasing the membrane area by 71% and significantly reducing the membrane strength.The membrane also lost a large amount of mass upon hot alkali immersion, and its hot alkali resistance was poor. In contrast, the membranes of Examples 1 to 12 were superior in alkali resistance to the conventional membrane of Comparative Example 1, and showed sufficient resistance even in hot alkali. In addition, the hydroxide ion conductivity of each of the membranes of Examples 1 to 12 was 10 -3 ~10 -2 The conductivity was on the order of S / cm, which was sufficient at room temperature.

[0121] Example 13 Using the membrane of Example 1 (thickness 110 μm), an acrylic electrolysis device was constructed as shown in FIG. 2, in which the electrodes and membrane were closely attached, and the performance as an electrolytic hydrogen production device was compared. The positive and negative electrode compartments were separated by a membrane, and positive and negative electrodes made of porous nickel were attached to both sides of the membrane. The area separated by the membrane was 2 cm square, and the electrodes were 1.5 cm square and 1 mm thick. Each compartment was filled with an aqueous potassium hydroxide solution with a concentration of 30% by mass, and a voltage was applied between the two electrodes from a DC power source to electrolyze water at 25°C, with a current of 10 to 100 mA / cm per electrode cross-sectional area. 2 The current density was changed between 0.01 and 0.1, and the voltage between the electrodes was measured.

[0122] Example 14 The same measurements as in Example 13 were carried out except that the membrane of Example 12 was used instead of the membrane of Example 1.

[0123] Example 15 An electrolysis device was fabricated using the membrane of Example 1, with the exception that the electrodes were thin electrodes made of nickel fine powder, and its performance as an electrolytic hydrogen production device was evaluated. The electrodes were made by kneading 95 mass % nickel fine powder (VALE T255, particle size 2.2 to 2.8 μm) and 5 mass % polytetrafluoroethylene resin, stretching it into a sheet, and attaching it to the membrane; the electrodes were 1.5 cm square and 0.1 mm thick.

[0124] The evaluation results of Examples 13 to 15 are shown in FIG. As shown in FIG. 3, the electrolysis devices of Examples 13 and 15 exhibited particularly good electrolysis performance. The film of Example 1 is 110 μm thick, but even when a thin electrode containing fine powder is attached and used, no short circuit occurs (Example 15).In fact, it was found that this results in a lower voltage at the same current and higher energy efficiency. Furthermore, Example 13, which used the membrane of Example 1, had better electrolysis performance than Example 14, which used the membrane of Example 12. It is believed that the membrane of Example 1, which contains zirconium oxide powder, further reduced repelling of the aqueous alkaline electrolyte on the surface. This is thought to have prevented the gas generated by electrolysis from adsorbing to the membrane surface, and thus prevented the electrolysis reaction from being inhibited. Furthermore, there was no significant temperature rise in the electrolysis device in any of Examples 13 to 15. This is thought to be because the membranes in Examples 1 and 12 are film-like, unlike conventional porous sheet diaphragms, and the generated hydrogen gas and oxygen gas do not pass through the diaphragm. This indicates that self-discharge can be prevented and energy loss can be reduced not only in electrolysis devices but also in various metal-air batteries and fuel cells.

[0125] (Example 16) Zincate ion permeability The zincate ion permeability of the membrane prepared in Example 1 was examined by the following method. Two glass chambers separated only by the membrane of Example 1 were filled with a 30% by mass aqueous solution of potassium hydroxide, and 0.1 g of zinc oxide powder was placed in one of the chambers. The cross-sectional area of ​​the membrane-separated portion was 0.79 cm. 2 The glass cell was 1 cm in diameter, and the amount of potassium hydroxide solution in each chamber was 5 cc. After leaving this measurement glass cell at 80°C for 1 hour, 3 mL of sample was taken from each chamber, and the zinc concentration was measured by ICP. Of the two chambers of the measurement cell, the dissolved zinc concentration in the alkaline aqueous solution in the chamber containing zinc oxide was 3 g / L, while the zinc concentration in the chamber not containing zinc oxide was 0.02 g / L, which showed that the permeation of zincate ions was significantly suppressed by the membrane of Example 1.

[0126] Example 17 A nickel-zinc battery was fabricated using a membrane obtained by the same composition and manufacturing method as in Example 1, except that the membrane thickness was 60 μm. The zinc electrode was prepared by mixing and kneading 85% zinc oxide powder, 10% carbon black powder (Kishida Chemical), and 5% polytetrafluoroethylene resin, and then forming it into a circular sheet with a diameter of 20 mm. A 20-mm-diameter tin-plated copper mesh was sandwiched between two circular sheets and pressed under a pressure of 34 MPa to form an electrode. The zinc oxide content of the electrode was 0.18 g. The resulting anode was sandwiched between a 25-mm-wide membrane folded in half and a nonwoven porous sheet commonly used in nickel-metal hydride batteries, as shown in Figure 4. The anode surface was in contact with the membrane. A nickel hydroxide electrode (nickel hydroxide-filled nickel porous body, disc-shaped, 20 mm diameter) commonly used in nickel-metal hydride batteries was then sandwiched from the outside and placed in a Teflon and stainless steel cell container, as shown in Figure 4. 0.5 mL of alkaline electrolyte (27% KOH by mass, 3% NaOH by mass, 1% LiOH by mass) was poured into the battery. The battery was placed in a thermostatic chamber at 25°C and subjected to constant current charging and discharging at a current of 120 mA per 1 g of zinc oxide powder. The nickel-zinc battery obtained above could be charged and discharged without any particular problems (Figure 5). Furthermore, even after 40 charge / discharge cycles, no problems such as short circuits occurred, and the battery performed well.

[0127] (Comparative Example 2) A nickel-zinc battery was fabricated in the same manner as in Example 17 except that no membrane was used, and a battery test similar to that in Example 17 was carried out. Nickel-zinc batteries that did not use such a membrane showed a significant drop in charge / discharge voltage after the third or fourth cycle, and became unable to charge or discharge. It is believed that zinc dendrites penetrated the porous sheet, causing a short circuit.

[0128] Example 18 A film was produced in the same manner as in Example 1, except that the ratios of zirconium oxide (ZrO2) in zirconium oxyacetate and polyethylene per 1 part by mass of polyvinyl alcohol were 0.28 parts by mass and 1 part by mass, respectively, and no zirconium oxide powder was used.

[0129] The film of Example 18 was observed with a field emission scanning electron microscope (JSM-7800F PRIME, JEOL Ltd.) (10 kV, 500x magnification), and the results are shown in FIG. In Figure 6, the inorganic / organic hybrid compound region and the polyolefin region form islands, with the polyolefin (polyethylene (PE)) forming islands in this case. The polyolefin island region contains particles with a maximum particle size of 50 μm or less, indicating that the inorganic / organic hybrid compound region and the polyolefin are mixed at the microscopic level.

[0130] Example 19 A membrane was prepared in the same manner as in Example 1, except that JL-25E (manufactured by Nippon Vinyl Acetate & Poval) (viscosity of 4% by mass aqueous solution: 48.9 mPa s, degree of saponification: 79.6 mol%) was used as the polyvinyl alcohol instead of the JP-33. The membrane was evaluated, and the same results as in Example 1 were obtained.

[0131] Example 20 A membrane was prepared in the same manner as in Example 1, except that JP-45 (manufactured by Nippon Vinyl Acetate & Poval) (viscosity of 4% by mass aqueous solution: 181.6 mPa s, degree of saponification: 89.5 mol%) was used as the polyvinyl alcohol instead of the JP-33. The membrane was evaluated, and the same results as in Example 1 were obtained.

[0132] Example 21 A membrane was prepared in the same manner as in Example 1, except that VC-10 (manufactured by Nippon Vinyl Acetate & Poval) (viscosity of 4% by mass aqueous solution: 11.7 mPa s, degree of saponification: 99.6 mol%) was used as the polyvinyl alcohol instead of the JP-33. The membrane was evaluated, and the same results as in Example 1 were obtained.

[0133] Example 22 A membrane was prepared in the same manner as in Example 1, except that JM-17 (manufactured by Nippon Vinyl Acetate & Poval) (viscosity of 4% by mass aqueous solution: 27.9 mPa s, degree of saponification: 95.8 mol%) was used as the polyvinyl alcohol instead of the JP-33. The membrane was evaluated, and the same results as in Example 1 were obtained.

[0134] Example 23 A membrane was prepared in the same manner as in Example 1, except that JMR-800P (manufactured by Nippon Vinyl Acetate & Poval) (viscosity of 4% by mass aqueous solution: 1386 mPa s, degree of saponification: 88.8 mol%) was used as the polyvinyl alcohol instead of the JP-33. The membrane was evaluated, and the same results as in Example 1 were obtained.

[0135] The evaluation results of Examples 19 to 23 are shown in Table 2. Table 2 also shows the results of Example 1.

[0136] [Table 2]

[0137] Example 24 A membrane was prepared in the same manner as in Example 1, except that JL-05E (manufactured by Nippon Vinyl Acetate & Poval) (viscosity of 4 mass% aqueous solution: 5.0 mPa s, degree of saponification: 81.0 mol%) was used instead of the JP-33 as the polyvinyl alcohol. When the membrane was evaluated, the same results as in Example 1 were obtained (for example, the mass reduction rate was 5.4% and the area expansion rate was 17%).

[0138] Example 25 A membrane was prepared in the same manner as in Example 1, except that a vinyl chloride resin (Viniblan 985, PVC resin type, manufactured by Nissin Chemical Industry Co., Ltd.) was used instead of the polyethylene aqueous dispersion. When the membrane was evaluated, the same results as in Example 1 were obtained (for example, the mass reduction rate was 1.3%, the area expansion rate was 18%, and the hydroxide ion conductivity was 7.1 × 10 ―3 Scm -1 was).

[0139] Example 26 A membrane was prepared in the same manner as in Example 1, except that a vinyl chloride resin (Viniblan 278, vinyl chloride-acrylic copolymer type, manufactured by Nissin Chemical Industry Co., Ltd.) was used instead of the polyethylene aqueous dispersion. When the membrane was evaluated, the same results as in Example 1 were obtained (for example, the mass reduction rate was 0.4%, the area expansion rate was 15%, and the hydroxide ion conductivity was 2.2 × 10 ―3 Scm -1 was).

[0140] Example 27 A membrane was prepared in the same manner as in Example 1, except that titanium lactate was used instead of zirconium oxyacetate (ZrO(CH3COO)2) and the heat treatment conditions were changed. When the membrane was evaluated, the same results as in Example 1 were obtained (for example, the mass reduction rate was 1.5%, the area expansion rate was 14%, and the hydroxide ion conductivity was 6.1 × 10 ―3 Scm -1 was). The specific method for producing the film is as follows. A raw material solution was prepared in the same manner as in Example 1, using 3.9 g of titanium lactate (an amount equivalent to 0.13 parts by mass of titanium oxide (TiO) per part by mass of polyvinyl alcohol) instead of zirconium oxyacetate (ZrO(CHCOO)). The solution was degassed and cast onto a polyester film placed on the smooth base of a flat heater. The base was heated while controlling the temperature to 50-60°C. Immediately after casting, a doctor blade, whose gap with the base could be adjusted using a micrometer, was swept over the raw material solution to ensure a consistent thickness. The material was left to evaporate water while being heated at 50-60°C, and when the fluidity had almost completely disappeared, the temperature of the base was raised to 130°C and maintained at that state for 2 hours of heat treatment. The film thus produced was peeled off from the base, washed twice in hot water at 60-70°C for 30 minutes, and then heated at 130°C for 1 hour to produce a film. The resulting film had a thickness of 130 μm.

[0141] Example 28 A film was produced in the same manner as in Example 1, except that zirconium nitrate was used instead of zirconium oxyacetate (ZrO(CH3COO)2) and the heat treatment conditions were changed. When the film was evaluated, the same results as in Example 1 were obtained (for example, the mass loss rate was 0%). The specific method for producing the film is as follows. A raw material solution was prepared in the same manner as in Example 1, using 5.1 g of glycerin and 0.47 g of a 47% aqueous solution of zirconium nitrate instead of zirconium oxyacetate (ZrO(CH3COO)2) [an amount that would result in 0.10 parts by mass of zirconium oxide (ZrO2) per 1 part by mass of polyvinyl alcohol], and the solution was degassed and cast onto a polyester film placed on the smooth base of a flat heater. The base was heated while controlling the temperature to 50-60°C. Immediately after casting, a doctor blade, whose gap with the base could be adjusted using a micrometer, was swept over the raw material solution to ensure a consistent thickness. The material was left to evaporate water while being heated at 50-60°C, and when the fluidity had almost completely disappeared, the temperature of the base was raised to 130°C and maintained at that state for 2 hours of heat treatment. The film thus produced was peeled off from the base, washed twice in hot water at 60-70°C for 30 minutes, and then heated at 130°C for 1 hour to produce a film. The resulting film had a thickness of 130 μm. [Industrial Applicability]

[0142] According to the present invention, a composition useful for electrolysis devices using alkaline electrolytes, diaphragms for batteries, etc. can be provided.

Claims

1. A composition comprising: an inorganic / organic hybrid compound in which a metal oxide containing at least one selected from zirconium oxide and titanium oxide is chemically bonded to a polyvinyl alcohol resin; a hydrophobic resin containing at least one selected from a polyolefin resin and a polyvinyl chloride resin; and a metal oxide powder containing at least one selected from zirconium oxide powder and titanium oxide powder.

2. The composition according to claim 1, wherein the polyvinyl alcohol resin has a 4 mass % aqueous solution viscosity (20°C) of 5 mPa·s or more.

3. The composition according to claim 1, wherein the polyvinyl alcohol resin has a viscosity (20°C) of a 4% by mass aqueous solution of 10 mPa·s or more.

4. The composition according to claim 1, wherein the polyvinyl alcohol resin has a viscosity of 15 mPa·s or more in a 4% by mass aqueous solution (20° C.) and a degree of saponification of 85 mol % or more.

5. The composition of claim 1 , wherein the metal oxide powder comprises zirconium oxide powder.

6. The composition of claim 1 , wherein the hydrophobic resin comprises a polypropylene-based resin and / or a polyethylene-based resin.

7. The composition according to claim 1, comprising 0.3 parts by mass or more of a hydrophobic resin per 1 part by mass of the polyvinyl alcohol-based resin.

8. The composition according to claim 1, comprising 0.7 parts by mass or more and 3.5 parts by mass or less of zirconium oxide powder per 1 part by mass of the polyvinyl alcohol-based resin.

9. A film formed from the composition according to any one of claims 1 to 8.

10. 10. The membrane of claim 9, which is a diaphragm for an electrolytic device or battery.

11. 10. The membrane according to claim 9, wherein the inorganic / organic hybrid compound and the hydrophobic resin exist independently of each other.

12. 10. The membrane of claim 9, further comprising a porous or porous membrane support.

13. 13. The membrane of claim 12, wherein the membrane support comprises a polypropylene sheet or a polyethylene sheet.

14. 11. The membrane of claim 10, wherein the electrolytic device or battery uses an alkaline electrolyte.

15. The membrane of claim 10, wherein the electrolysis device is an electrolytic hydrogen production device, an ammonia production device, or a carbonate reduction device.

16. 10. The membrane of claim 9, having a thickness of 300 μm or less.

17. 11. The membrane of claim 10, wherein the battery is a nickel-zinc battery, a manganese-zinc battery, a zinc-air battery, an iron-air battery, or a fuel cell.

18. 10. The membrane of claim 9, having a thickness of 100 μm or less.

19. The membrane according to claim 9, for use in an electrolytic device or battery having an electrode in contact with the membrane.

20. 10. An electrolytic device or battery using the membrane according to claim 9.

21. A method for producing a film, comprising the step of forming a film using the composition according to any one of claims 1 to 8.

22. A method for producing a composition comprising: an inorganic / organic hybrid compound in which a metal oxide including at least one selected from zirconium oxide and titanium oxide is chemically bonded to a polyvinyl alcohol resin; a hydrophobic resin including at least one selected from a polyolefin resin and a polyvinyl chloride resin; and a metal oxide powder including at least one selected from zirconium oxide powder and titanium oxide powder, a step of adding an alkali to an aqueous solution containing a compound (A) having a molecular weight of 350 g / mol or less and having two or more hydroxyl groups in the molecule, a salt corresponding to a metal oxide, and a polyvinyl alcohol-based resin, the compound (A) containing at least one selected from a polyhydric alcohol having a molecular weight of 350 g / mol or less, a low-molecular-weight polyvinyl alcohol having a molecular weight of 350 g / mol or less, a sugar, a sugar alcohol, a polyoxyalkylene polyglyceryl ether having a molecular weight of 350 g / mol or less, and a polyoxyalkylene glyceryl ether having a molecular weight of 350 g / mol or less; adding a hydrophobic resin and a metal oxide powder.

23. The method according to claim 22, wherein the content of the compound (A) in the aqueous solution is 0.5 parts by mass or more and 6 parts by mass or less per 1 part by mass of the polyvinyl alcohol-based resin.

24. The method according to claim 22 or 23, wherein compound (A) is at least one selected from glycerin, diglycerin, polyglycerin having a molecular weight of 350 g / mol or less, diethylene glycol, polyethylene glycol having a molecular weight of 350 g / mol or less, monosaccharides, disaccharides, sugar alcohols, polyoxyalkylene polyglyceryl ethers having a molecular weight of 350 g / mol or less, and polyoxyalkylene glyceryl ethers having a molecular weight of 350 g / mol or less.

25. 24. The method according to claim 22 or 23, wherein the compound (A) is at least one selected from glycerin, diethylene glycol, monosaccharides, and disaccharides.

26. The method according to claim 22 or 23, wherein compound (A) comprises glycerin.

27. The method according to claim 22 or 23, wherein the hydrophobic resin is in the form of an aqueous dispersion.

28. The method according to claim 22 or 23, wherein the hydrophobic resin is an acid-modified hydrophobic resin.

29. 24. A method for producing a film formed from a composition containing an inorganic / organic hybrid compound in which a metal oxide containing at least one selected from zirconium oxide and titanium oxide is chemically bonded to a polyvinyl alcohol resin, a hydrophobic resin containing at least one selected from a polyolefin resin and a polyvinyl chloride resin, and a metal oxide powder containing at least one selected from zirconium oxide powder and titanium oxide powder, the method comprising the production method according to claim 22 or 23.

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