Composition for functional layer of electrochemical element, functional layer for electrochemical element, laminate for electrochemical element, and electrochemical element

A functional layer composition with non-conductive heat-resistant particles and a particulate polymer with controlled particle size distribution and glass transition temperature addresses adhesion and performance issues, improving output and cycle characteristics in electrochemical elements.

JP7841426B2Active Publication Date: 2026-04-07ZEON CORP
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-03-12
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

Conventional functional layers in electrochemical elements, such as lithium-ion secondary batteries and electric double-layer capacitors, lack adequate adhesion, output characteristics, and cycle characteristics.

Method used

A functional layer composition comprising non-conductive heat-resistant particles and a particulate polymer with a specific particle size distribution (Dv/Dn of 1.00 to 1.10) and glass transition temperature of 10°C to 90°C, optionally with a binder, to enhance adhesion and improve output and cycle characteristics.

Benefits of technology

The composition forms a functional layer with excellent adhesion, output characteristics, and cycle characteristics, reducing delamination and enhancing the electrochemical element's performance.

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Abstract

This composition for an electrochemical element functional layer contains non-conductive heat resistant particles, and a particulate polymer for which the value of the particle size distribution (Dv / Dn) is 1.00 or greater and less than 1.10.
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Description

Technical Field

[0001] The present invention relates to a composition for an electrochemical device functional layer, a functional layer for an electrochemical device, a laminate for an electrochemical device, and an electrochemical device.

Background Art

[0002] Electrochemical devices such as lithium-ion secondary batteries and electric double-layer capacitors are small, lightweight, have a high energy density, and can be repeatedly charged and discharged, and are used in a wide range of applications.

[0003] Here, for example, a lithium-ion secondary battery generally includes battery members such as a positive electrode, a negative electrode, and a separator that separates the positive electrode and the negative electrode to prevent a short circuit between the positive electrode and the negative electrode. And on the surface of the electrode and / or separator, a porous film layer for improving heat resistance and strength, an adhesive layer for improving the adhesion between battery members, etc. (hereinafter, these may be collectively referred to as "functional layers") may be laminated and provided. Specifically, an electrode formed by further forming a functional layer on an electrode substrate provided with an electrode mixture layer on a current collector, or a separator formed by forming a functional layer on a separator substrate is used as a battery member.

[0004] Conventionally, attempts have been made to improve the functional layer of secondary batteries in order to further enhance their performance. For example, Patent Document 1 discloses a composition for a non-aqueous secondary battery functional layer that contains aromatic monovinyl monomer units and polyvalent ethylenically unsaturated crosslinkable monomer units in predetermined proportions, and includes a particulate polymer having a volume-average particle diameter of 0.5 μm or more and 5 μm or less, and a swelling degree of more than 1 and less than 3 times in relation to the electrolyte. A functional layer formed using the functional layer composition according to Patent Document 1 can exhibit high adhesive ability and can provide secondary batteries with excellent battery characteristics (particularly life characteristics and output characteristics). Furthermore, Patent Document 2 discloses a composition for a porous membrane of a non-aqueous secondary battery that contains inorganic particles having a volume-average particle diameter of 0.1 μm or more and 1.0 μm or less and a particulate polymer in predetermined proportions, wherein the volume-average particle diameter d1 of the particulate polymer and the volume-average particle diameter d0 of the inorganic particles satisfy the relationship d1 / d0>1. A porous membrane formed using the porous membrane composition described in Patent Document 2 is less prone to blocking and easy to handle, and can provide excellent battery characteristics (especially lifespan characteristics) to secondary batteries. [Prior art documents] [Patent Documents]

[0005] [Patent Document 1] International Publication No. 2018 / 034093 [Patent Document 2] International Publication No. 2018 / 034094 [Overview of the Initiative] [Problems that the invention aims to solve]

[0006] However, the functional layer obtained according to the conventionally proposed technologies described above had room for further improvement in terms of adhesion. Furthermore, the electrochemical element equipped with the functional layer obtained according to the conventionally proposed technologies described above also had room for further improvement in terms of output characteristics and cycle characteristics.

[0007] Therefore, the present invention aims to provide a functional layer composition that has excellent adhesive properties and can form a functional layer that can impart excellent output characteristics and cycle characteristics to an electrochemical element. Furthermore, the present invention aims to provide a functional layer for electrochemical elements that has excellent adhesive properties and can impart excellent output characteristics and cycle characteristics to the electrochemical element. Furthermore, the present invention aims to provide a laminate for electrochemical elements that can impart excellent output characteristics and cycle characteristics to the electrochemical elements. Furthermore, the present invention aims to provide an electrochemical element capable of exhibiting excellent output characteristics and cycle characteristics. [Means for solving the problem]

[0008] The inventors diligently conducted research to achieve the above objectives. They then discovered that by using a composition for an electrochemical element functional layer comprising non-conductive heat-resistant particles and a particulate polymer having a particle size distribution within a predetermined range, it is possible to form a functional layer that exhibits excellent adhesion and can impart excellent output characteristics and cycle characteristics to the electrochemical element, thus completing the present invention.

[0009] In other words, the present invention aims to advantageously solve the above problems, and the electrochemical element functional layer composition of the present invention is an electrochemical element functional layer composition comprising non-conductive heat-resistant particles and a particulate polymer, characterized in that the particle size distribution value expressed as Dv / Dn is 1.00 or more and less than 1.10, where Dv is the volume average particle diameter and Dn is the number average particle diameter. In this way, by incorporating a particulate polymer having a particle size distribution value within a predetermined range into the functional layer composition, it is possible to form a functional layer that has excellent adhesion and can impart excellent output characteristics and cycle characteristics to the electrochemical element. Furthermore, the "volume-average particle diameter" and the "number-average particle diameter" can be measured by the methods described in the examples of this specification.

[0010] In this case, it is preferable that the volume-average particle diameter Dv of the particulate polymer in the electrochemical element functional layer composition of the present invention is 1.0 μm or more and 10.0 μm or less. If the volume-average particle diameter Dv of the particulate polymer contained in the functional layer composition is within the above range, the adhesion of the resulting functional layer can be further enhanced, and the output characteristics and cycle characteristics of the resulting electrochemical element can be further enhanced.

[0011] Furthermore, it is preferable that the volume-average particle diameter Dv of the particulate polymer in the electrochemical element functional layer composition of the present invention is 5 μm or less. If the volume-average particle diameter Dv of the particulate polymer is 5 μm or less, the output characteristics and cycle characteristics of the resulting electrochemical element can be improved.

[0012] Furthermore, it is preferable that the particulate polymer in the electrochemical element functional layer composition of the present invention has a glass transition temperature of 10°C or more and 90°C or less. If the glass transition temperature of the particulate polymer contained in the functional layer composition is within the above range, the adhesion of the resulting functional layer can be further improved, and blocking of the resulting functional layer can be suppressed. The "glass transition temperature" can be measured using the method described in the examples of this specification.

[0013] Furthermore, in the electrochemical element functional layer composition of the present invention, it is preferable that the particulate polymer contains (meth)acrylic acid ester monomer units. By including (meth)acrylic acid ester monomer units in the particulate polymer, the adhesion of the resulting functional layer can be further enhanced. In this specification, "(meth)acrylic" means acrylic or methacrylic. Furthermore, in the present invention, "a polymer containing monomer units" means "a polymer obtained using those monomers contains structural units derived from the monomers."

[0014] Furthermore, it is preferable that the electrochemical element functional layer composition of the present invention further contains a binder. If the functional layer composition contains a binder, the adhesion between non-conductive heat-resistant particles can be enhanced via the binder, and the adhesion between the functional layer and the substrate to which the functional layer is adhered (for example, a separator substrate and an electrode substrate) can be further enhanced.

[0015] Furthermore, in the electrochemical element functional layer composition of the present invention, it is preferable that the binder is a particulate binder with a lower glass transition temperature than the particulate polymer. If the functional layer composition contains a particulate binder with a lower glass transition temperature than the particulate polymer, the adhesion of the resulting functional layer can be further improved.

[0016] Furthermore, in the electrochemical element functional layer composition of the present invention, it is preferable that the non-conductive heat-resistant particles include inorganic particles. If the functional layer composition contains inorganic particles, the heat resistance of the resulting functional layer can be improved.

[0017] Furthermore, in the electrochemical element functional layer composition of the present invention, it is preferable that the inorganic particles include at least one of alumina, boehmite, barium sulfate, and magnesium hydroxide. If the functional layer composition includes at least one of the inorganic compounds listed above as non-conductive heat-resistant particles, the heat resistance of the resulting functional layer can be improved.

[0018] Furthermore, this invention aims to advantageously solve the above problems, and the functional layer for an electrochemical element of the present invention is a functional layer for an electrochemical element formed using any of the above-described electrochemical element functional layer compositions, and the functional layer for an electrochemical element is characterized by including a non-conductive heat-resistant particle layer containing the non-conductive heat-resistant particles. A functional layer formed using the functional layer composition of the present invention, which includes a non-conductive heat-resistant particle layer containing non-conductive heat-resistant particles, has excellent adhesion and can impart excellent output characteristics and cycle characteristics to an electrochemical element.

[0019] In addition, in the functional layer for an electrochemical element of the present invention, it is preferable that the value obtained by dividing the volume average particle diameter Dv of the particulate polymer by the layer thickness of the non-conductive heat-resistant particle layer is 0.75 or more and 4.00 or less. A functional layer in which the value obtained by dividing the volume average particle diameter Dv of the particulate polymer by the layer thickness of the non-conductive heat-resistant particle layer is within the above range has even better adhesion.

[0020] Here, in the functional layer for an electrochemical element of the present invention, it is preferable that the value obtained by dividing the volume average particle diameter Dv of the particulate polymer by the layer thickness of the non-conductive heat-resistant particle layer exceeds 1.00. That the value obtained by dividing the volume average particle diameter Dv of the particulate polymer by the layer thickness of the non-conductive heat-resistant particle layer exceeds 1.00 means that the volume average particle diameter Dv of the particulate polymer is larger than the layer thickness of the non-conductive heat-resistant particle layer. A functional layer satisfying such conditions has even better adhesion.

[0021] In addition, in the functional layer for an electrochemical element of the present invention, it is preferable that the embedding rate of the particulate polymer with respect to the non-conductive heat-resistant particle layer is 30% or less. If the proportion of the particulate polymer embedded in the non-conductive heat-resistant particle layer among the plurality of particulate polymers contained in the functional layer is 30% or less, a sufficient proportion of the particulate polymers protruding from the non-conductive heat-resistant particle layer exists, so that the adhesive ability due to the particulate polymer can be exhibited even better. The "embedding rate" of the particulate polymer with respect to the non-conductive heat-resistant particle layer can be calculated by the method described in the examples of this specification.

[0022] Furthermore, this invention aims to advantageously solve the above problems, and the laminate for an electrochemical element of the present invention is characterized in that any one of the above-described functional layers for an electrochemical element is laminated on a substrate. By using a laminate in which the functional layer of the present invention is laminated on a substrate, excellent output characteristics and cycle characteristics can be imparted to the electrochemical element.

[0023] And the present invention aims to advantageously solve the above problems, and the electrochemical device of the present invention is characterized by including any of the above-described functional layers for an electrochemical device. The electrochemical device including the functional layer for an electrochemical device of the present invention can exhibit excellent output characteristics and cycle characteristics.

Advantages of the Invention

[0024] According to the present invention, it is possible to provide a composition for a functional layer capable of forming a functional layer having excellent adhesiveness and capable of imparting excellent output characteristics and cycle characteristics to an electrochemical device. Further, according to the present invention, it is possible to provide a functional layer for an electrochemical device having excellent adhesiveness and capable of imparting excellent output characteristics and cycle characteristics to an electrochemical device. Furthermore, according to the present invention, it is possible to provide a laminate for an electrochemical device capable of imparting excellent output characteristics and cycle characteristics to an electrochemical device. And according to the present invention, it is possible to provide an electrochemical device capable of exhibiting excellent output characteristics and cycle characteristics.

Modes for Carrying Out the Invention

[0025] Hereinafter, embodiments of the present invention will be described in detail. Here, the composition for a functional layer of an electrochemical device of the present invention (hereinafter, also simply referred to as "composition for a functional layer") is used as a material when forming the functional layer for an electrochemical device of the present invention (hereinafter, also simply referred to as "functional layer"). And the functional layer for an electrochemical device of the present invention is formed using the composition for a functional layer of the present invention. Further, the laminate for an electrochemical device of the present invention is a member for an electrochemical device in which the functional layer of the present invention is laminated on a base material. Furthermore, the electrochemical device of the present invention is an electrochemical device including at least the functional layer for an electrochemical device of the present invention.

[0026] (Composition for a Functional Layer of an Electrochemical Device) The electrochemical element functional layer composition of the present invention contains non-conductive heat-resistant particles and a predetermined particulate polymer, and optionally further contains a binder, a solvent, and other components. By using the functional layer composition of the present invention, a functional layer can be formed that has excellent adhesion and can impart excellent output characteristics and cycle characteristics to the electrochemical element.

[0027] <Non-conductive heat-resistant particles> Non-conductive heat-resistant particles are particles that are both non-conductive and heat-resistant. Furthermore, when a functional layer is formed, the shape of the non-conductive heat-resistant particles can be maintained within the functional layer. Moreover, non-conductive heat-resistant particles are electrochemically stable and exist stably within the functional layer under the operating environment of the electrochemical element. Therefore, by including non-conductive heat-resistant particles in the functional layer composition, the resulting functional layer can be given heat shrinkage resistance and strength.

[0028] Specifically, the non-conductive heat-resistant particles may be organic particles or inorganic particles. Among these, it is preferable that the non-conductive heat-resistant particles include inorganic particles. If the functional layer composition contains inorganic particles, the heat shrinkage resistance of the resulting functional layer can be further enhanced. Furthermore, organic particles and inorganic particles may be used as non-conductive heat-resistant particles in any ratio.

[0029] <<Organic particles>> The organic particles are not particularly limited and include various particles composed of polymers. Preferably, the organic particles contain polyfunctional ethylenically unsaturated monomer units such as ethylene glycol dimethacrylate in a proportion of 55% to 90% by mass, and repeating units other than polyfunctional ethylenically unsaturated monomer units (other repeating units) in a proportion of 10% to 45% by mass. The polyfunctional ethylenically unsaturated monomers used to form the polyfunctional ethylenically unsaturated monomer units include monomers having two or more ethylenically unsaturated bonds per molecule (excluding aliphatic conjugated diene monomers such as 1,3-butadiene). Other repeating units include, for example, (meth)acrylic acid ester monomer units as described in the "Particulate Polymers" section below, and nitrile group-containing monomer units and acid group-containing monomer units as described in the "Binding Agents" section below. Suitable organic particles for use as non-conductive heat-resistant particles include, for example, the organic particles described in International Publication No. 2019 / 065416. The organic particles may be used individually or in combination of two or more types in any ratio. Here, organic particles as non-conductive heat-resistant particles differ from particulate polymers and binders (described later) in that particulate polymers and binders possess binding ability, while organic particles do not. More specifically, organic particles as non-conductive heat-resistant particles preferably have a glass transition temperature of 100°C or higher, and more preferably 200°C or higher. As will be described later, particulate polymers preferably have a glass transition temperature of 90°C or lower, and binders preferably have a glass transition temperature of less than 30°C.

[0030] Organic particles can be produced by polymerizing a monomer composition containing the above-mentioned monomers in an aqueous solvent such as water. In this case, the content ratio of each monomer in the monomer composition can be determined in accordance with the content ratio of each repeating unit (monomer unit) in the organic particles. Furthermore, there are no particular restrictions on the polymerization method; any method such as solution polymerization, suspension polymerization, bulk polymerization, or emulsion polymerization can be used. In addition, any polymerization reaction such as ionic polymerization, radical polymerization, or living radical polymerization can be used. Seed polymerization may be performed using seed particles. Polymerization conditions can be adjusted as appropriate depending on the polymerization method. Furthermore, known additives such as emulsifiers, polymerization initiators, and chain transfer agents may be used in polymerization, and the amounts used should be those commonly used.

[0031] Examples of inorganic particles that are not particularly limited include oxide particles such as aluminum oxide (alumina), aluminum oxide hydrate (boehmite (AlOOH)), gibbsite (Al(OH3)), silicon dioxide, magnesium oxide (magnesia), magnesium hydroxide, calcium oxide, titanium dioxide (titania), barium titanate (BaTiO3), zirconium oxide (ZrO), and alumina-silica composite oxides; nitride particles such as aluminum nitride and boron nitride; covalent crystalline particles such as silicon and diamond; sparingly soluble ionic crystalline particles such as barium sulfate, calcium fluoride, and barium fluoride; and clay fine particles such as talc, montmorillonite, kaolin, and calcined kaolin. Among these, aluminum oxide (alumina), boehmite, barium sulfate, and magnesium hydroxide are preferred from the viewpoint of excellent electrochemical stability. These inorganic particles may be used individually or in combination of two or more types in any ratio.

[0032] <Volume-average particle diameter of non-conductive heat-resistant particles> Furthermore, the volume-average particle diameter (D50) of the non-conductive heat-resistant particles is preferably 0.1 μm or more, more preferably 0.2 μm or more, even more preferably 0.3 μm or more, preferably 1 μm or less, more preferably 0.9 μm or less, and even more preferably 0.8 μm or less. If the volume-average particle diameter of the non-conductive heat-resistant particles is above the lower limit, it is possible to suppress an excessive increase in the density of non-conductive heat-resistant particles in the functional layer, thereby suppressing a decrease in ionic conductivity in the functional layer and improving the electrochemical properties (especially the output characteristics) of the electrochemical element. Also, if the volume-average particle diameter of the non-conductive heat-resistant particles is below the upper limit, the capacitance of the electrochemical element can be increased.

[0033] <Particulate polymer> The particulate polymer contained in the functional layer composition must have a particle size distribution value expressed as Dv / Dn, where Dv is the volume-average particle size and Dn is the number-average particle size, such that Dv / Dn is 1.00 or greater and less than 1.10. Furthermore, the particulate polymer is a polymer that exists in particulate form within the functional layer composition. After bonding components together via the functional layer formed using the functional layer composition, the particulate polymer may remain in particulate form or take on any other arbitrary shape.

[0034] <<Particle size distribution values ​​(Dv / Dn) of particulate polymers>> The particle size distribution (Dv / Dn) of the particulate polymer must be between 1.00 and less than 1.10, preferably 1.06 or less, and more preferably 1.03 or less. If the particle size distribution (Dv / Dn) is between 1.00 and less than 1.10, the adhesion of the resulting functional layer can be improved, as well as the output characteristics and cycle characteristics of the electrochemical element equipped with such a functional layer. More specifically, if the particle size distribution (Dv / Dn) is between 1.00 and less than 1.10, there is less variation in the particle size of the particulate polymer contained in the functional layer composition. This improves the adhesion of the functional layer before immersion in the electrolyte (hereinafter sometimes referred to as "dry adhesion") and the adhesion of the functional layer after immersion in the electrolyte (hereinafter sometimes referred to as "wet adhesion"). Furthermore, if the dry adhesion of the functional layer is high, the adhesive strength when components are bonded together via the functional layer during the process of manufacturing the electrochemical element is increased. Therefore, by suppressing the delamination of components that adhere to each other and constitute a laminate during the manufacturing process of the electrochemical element, the occurrence of defective products in the manufacturing process can be suppressed. Accordingly, by including a particulate polymer with a particle size distribution value (Dv / Dn) of 1.00 or more and less than 1.10 in the functional layer composition, the yield rate in the manufacturing process can be increased. Furthermore, since a functional layer containing a particulate polymer with a particle size distribution value (Dv / Dn) of 1.00 or more and less than 1.10 has excellent wet adhesion, such a functional layer can ensure a good laminated structure between components when incorporated into an electrochemical element and immersed in an electrolyte. Therefore, by suppressing the deterioration of the laminated structure due to repeated charging and discharging, the cycle characteristics of the electrochemical element can be improved, and by suppressing the decrease in the conductivity of ions that contribute to the electrochemical reaction within the element, the output characteristics of the electrochemical element can be improved. Here, the decrease in the conductivity of ions that contribute to the electrochemical reaction within the element can also be suppressed by setting the particle size distribution value (Dv / Dn) of the particulate polymer to less than or equal to the above upper limit.When the particle size variation of particulate polymers is large, the proportion of particulate polymers that are embedded in the non-conductive heat-resistant particle layer and do not contribute to adhesion increases, making it necessary to add a large amount of particulate polymer to achieve the desired adhesion. Particulate polymers can also act as resistance to ion conduction. However, by reducing the particle size variation of particulate polymers, the desired adhesion to the functional layer can be achieved without the need to add a large amount of particulate polymer. Therefore, by reducing the particle size variation of the particulate polymers contained in the functional layer composition, it is possible to achieve both adhesion and ion conductivity in the resulting functional layer.

[0035] In particular, if the particle size distribution (Dv / Dn) of the particulate polymer is 1.06 or less, the dry adhesion of the resulting functional layer can be further improved, and as a result, the yield rate when manufacturing electrochemical elements using such a functional layer can be increased. Furthermore, if the particle size distribution (Dv / Dn) of the particulate polymer is 1.06 or less, the output characteristics of the resulting electrochemical element can be further improved. Moreover, if the particle size distribution (Dv / Dn) of the particulate polymer is 1.03 or less, the wet adhesion of the resulting functional layer can be further improved, and the cycle characteristics of the resulting electrochemical element can be further improved.

[0036] Furthermore, the particle size distribution value (Dv / Dn) of a particulate polymer can be adjusted by appropriately changing the conditions when preparing the particulate polymer. For example, when preparing a particulate polymer by seed polymerization using seed particles and a monomer composition, seed particles satisfying a certain particle size distribution can be obtained by appropriately adjusting the type and amount of polymerization solvent, polymerization initiator, and additives (such as pH buffers and dispersion stabilizers) optionally added to the reaction solution when preparing the seed particles. Then, by carrying out seed polymerization using these seed particles and the monomer composition, a particulate polymer satisfying a desired particle size distribution value (Dv / Dn) can be obtained.

[0037] <<Volume-average particle size Dv of particulate polymer>> Furthermore, the particulate polymer preferably has a volume average particle diameter Dv of 1.0 μm or more, more preferably 3.0 μm or more, even more preferably 4.0 μm or more, preferably 10.0 μm or less, more preferably 6.0 μm or less, even more preferably 5.5 μm or less, and particularly preferably 5 μm or less. If the volume average particle diameter Dv of the particulate polymer is above the lower limit, better dry adhesion and wet adhesion can be obtained when a functional layer is formed using the functional layer composition. On the other hand, if the volume average particle diameter Dv of the particulate polymer is below the upper limit, a thinner functional layer can be formed, thereby increasing the energy density of the resulting electrochemical element. This allows for even better dry adhesion and wet adhesion, as well as further improvement of the output characteristics and cycle characteristics of the resulting electrochemical element. Furthermore, the volume-average particle diameter Dv of the particulate polymer can be adjusted by appropriately changing the conditions when preparing the particulate polymer. For example, when preparing a particulate polymer by seed polymerization using seed particles and a monomer composition, increasing the ratio of the monomer composition to the seed particles can increase the diameter of the resulting particulate polymer, while conversely, decreasing the ratio of the monomer composition to the seed particles can decrease the diameter of the resulting particulate polymer.

[0038] <<Glass transition temperature of particulate polymers>> Furthermore, the glass transition temperature (Tg) of the particulate polymer is preferably 10°C or higher, more preferably 20°C or higher, even more preferably 30°C or higher, preferably 90°C or lower, more preferably 80°C or lower, and even more preferably 70°C or lower. If the glass transition temperature of the particulate polymer is above the lower limit, blocking of the functional layer can be suppressed, for example, while storing an electrochemical element equipped with a functional layer. On the other hand, if the glass transition temperature of the particulate polymer is below the upper limit, the dry adhesion of the functional layer can be further improved.

[0039] <<Composition of particulate polymer>> Furthermore, the composition of the particulate polymer is not particularly limited, as long as the particle size distribution value (Dv / Dn) is within the range of 1.00 or more and less than 1.10.

[0040] Examples of monomer units constituting the particulate polymer include aromatic vinyl monomer units, (meth)acrylic acid ester monomer units, and crosslinkable monomer units. Furthermore, from the viewpoint of further improving the dry and wet adhesion of the resulting functional layer, it is preferable that the particulate polymer contains (meth)acrylic acid ester monomer units.

[0041] -Aromatic vinyl monomer units- Here, examples of aromatic vinyl monomers that can form aromatic vinyl monomer units are not particularly limited, but include, for example, styrene, α-methylstyrene, styrene sulfonic acid, butoxystyrene, vinylnaphthalene, etc., with styrene being preferred among them. These aromatic vinyl monomers may be used individually or in combination of two or more in any ratio.

[0042] Furthermore, the content of aromatic vinyl monomer units in the particulate polymer is preferably 20% by mass or more, more preferably 40% by mass or more, preferably 95% by mass or less, more preferably 90% by mass or less, and even more preferably 85% by mass or less, when the total monomer units in the particulate polymer are considered to be 100% by mass. If the content of aromatic vinyl monomer units is within the above range, the dry adhesion and wet adhesion of the functional layer can be further improved. In particular, if the content of aromatic vinyl monomer units is above the lower limit, blocking of the functional layer can be suppressed. In this invention, the "content ratio of each monomer unit" is as follows: 1 It can be measured using nuclear magnetic resonance (NMR) methods such as 1H-NMR.

[0043] -(meth)acrylic acid ester monomer unit- Examples of (meth)acrylic acid ester monomers that can form (meth)acrylic acid ester monomer units include butyl acrylates such as methyl acrylate, ethyl acrylate, n-propyl acrylate, isopropyl acrylate, n-butyl acrylate and t-butyl acrylate, octyl acrylates such as pentyl acrylate, hexyl acrylate, heptyl acrylate and 2-ethylhexyl acrylate, nonyl acrylate, decyl acrylate, lauryl acrylate, n-tetradecyl acrylate and stearyl acrylate. Examples include alkyl methacrylates; as well as butyl methacrylates such as methyl methacrylate, ethyl methacrylate, n-propyl methacrylate, isopropyl methacrylate, n-butyl methacrylate, and t-butyl methacrylate; octyl methacrylates such as pentyl methacrylate, hexyl methacrylate, heptyl methacrylate, and 2-ethylhexyl methacrylate; nonyl methacrylate, decyl methacrylate, lauryl methacrylate, n-tetradecyl methacrylate, and stearyl methacrylate. Among these, n-butyl acrylate, 2-ethylhexyl acrylate, and methyl methacrylate are preferred, and n-butyl acrylate is more preferred. These (meth)acrylic acid ester monomers may be used individually or in combination of two or more in any ratio.

[0044] Furthermore, the content of (meth)acrylic acid ester monomer units in the particulate polymer is preferably 10% by mass or more, preferably 70% by mass or less, more preferably 50% by mass or less, and even more preferably 40% by mass or less, when the total repeating units of the particulate polymer are considered to be 100% by mass. If the content of (meth)acrylic acid ester monomer units is above the lower limit, the dry adhesion and wet adhesion of the resulting functional layer can be further improved. On the other hand, if the content of (meth)acrylic acid ester monomer units is below the upper limit, the glass transition temperature of the particulate polymer can be avoided to the point of excessive decrease, thereby improving the blocking resistance of the resulting functional layer.

[0045] -Cross-linkable monomer units- A crosslinkable monomer unit is a monomer that can form a crosslinked structure during or after polymerization by heating or irradiation with energy rays. Examples of monomers that can form crosslinkable monomer units include polyfunctional monomers having two or more polymerization-reactive groups. Examples of such polyfunctional monomers include divinyl compounds such as allyl methacrylate and divinylbenzene; di(meth)acrylic acid ester compounds such as diethylene glycol dimethacrylate, ethylene glycol dimethacrylate, diethylene glycol diacrylate, and 1,3-butylene glycol diacrylate; tri(meth)acrylic acid ester compounds such as trimethylolpropane trimethacrylate and trimethylolpropane triacrylate; and ethylenically unsaturated monomers containing epoxy groups such as allyl glycidyl ether and glycidyl methacrylate. Among these, ethylene glycol dimethacrylate is preferred. These crosslinkable monomers may be used individually or in combination of two or more types in any ratio.

[0046] Furthermore, the content of crosslinkable monomer units in the particulate polymer is preferably 0.02% by mass or more, more preferably 0.10% by mass or more, preferably 2.0% by mass or less, more preferably 1.5% by mass or less, and even more preferably 1.0% by mass or less, when the total amount of monomer units in the particulate polymer is taken as 100% by mass. If the content of crosslinkable monomer units is within the above range, the elution of the particulate polymer into the electrolyte can be sufficiently suppressed.

[0047] -Other monomeric units- Furthermore, particulate polymers may contain monomer units other than those listed above. These other monomer units are not particularly limited, but examples include nitrile group-containing monomer units and acid group-containing monomer units, as described in the "Binding Agents" section below, and fluorine atom-containing monomer units listed below.

[0048] -Fluorine atom-containing monomer unit- Examples of fluorine atom-containing monomers that can form fluorine atom-containing monomer units are not particularly limited, but include, for example, vinylidene fluoride, tetrafluoroethylene, hexafluoropropylene, vinyl trifluoride, vinyl fluoride, and perfluoroalkyl vinyl ether. Among these, vinylidene fluoride is preferred. These fluorine atom-containing monomers may be used individually or in combination of two or more in any ratio.

[0049] Furthermore, the content of other monomer units in the particulate polymer is preferably 20% by mass or less, more preferably 10% by mass or less, and even more preferably 5% by mass or less. If the content of other monomer units is 20% by mass or less, it is possible to suppress a decrease in the stability of the functional layer composition.

[0050] Furthermore, the content of particulate polymer in the functional layer composition is preferably 1% by mass or more and 50% by mass or less, relative to the total amount (100% by mass) of particulate polymer, binder, and non-conductive heat-resistant particles.

[0051] [Preparation of particulate polymers] Particulate polymers can be prepared by polymerizing a monomer composition containing the above-mentioned monomers in a solvent. Here, the proportion of each monomer in the monomer composition is usually the same as the proportion of each monomer unit in the particulate polymer.

[0052] Furthermore, the polymerization method is not particularly limited, and any method such as suspension polymerization or emulsion polymerization can be used. Among these, emulsion polymerization using seed particles and suspension polymerization accompanied by classification treatment are preferred from the viewpoint of easily adjusting the particle size distribution value (Dv / Dn) of the particulate polymer to a range of 1.00 or more and less than 1.10. When emulsion polymerization using seed particles is selected, the polymerization method of the seed particles is not particularly limited, but for example, seed particles with a well-controlled particle size distribution can be obtained by following emulsion polymerization using a pH buffer or dispersion stabilizer as optional. Among these, it is preferable to use seed particles obtained by emulsion polymerization in the presence of a pH buffer. Furthermore, when carrying out the polymerization reaction using seed particles (seed polymerization), it is preferable to carry out swollen seed polymerization, in which the seed particles are swollen with a plasticizer such as dibutyl phthalate before seed polymerization. In addition, any polymerization reaction such as radical polymerization or living radical polymerization can be used as the polymerization reaction.

[0053] Furthermore, the amounts of various additives (pH buffers, dispersants, polymerization initiators, polymerization aids, etc.) used optionally in polymerization can be the amounts commonly used.

[0054] <Binding agent> The binder contained in the functional layer composition is used to suppress the shedding of components such as particulate polymers contained in the functional layer formed using the functional layer composition of the present invention from the functional layer. Preferably, the binder is a particulate binder that is in the form of particles in the functional layer composition. After bonding the components together via the functional layer formed using the functional layer composition, the particulate binder may remain in the form of particles or take on any other shape. If the binder contained in the functional layer composition is a particulate binder, the shedding of components contained in the functional layer can be effectively suppressed.

[0055] The binder is not particularly limited, but includes known polymers that are water-insoluble and dispersible in a dispersion medium such as water. Among these, conjugated diene polymers and acrylic polymers are preferred, with acrylic polymers being more preferred. These binders may be used individually or in combination of two or more types in any ratio.

[0056] Here, a conjugated diene polymer refers to a polymer containing conjugated diene monomer units. Specific examples of conjugated diene polymers are not limited to styrene-butadiene copolymers (SBR) and other copolymers containing aromatic vinyl monomer units and aliphatic conjugated diene monomer units, butadiene rubber (BR), acrylic rubber (NBR) (a copolymer containing acrylonitrile units and butadiene units), and their hydrides.

[0057] Furthermore, acrylic polymers refer to polymers containing (meth)acrylic acid ester monomer units. Acrylic polymers that can be preferably used as binders are not particularly limited, but include, for example, monomers containing the aforementioned (meth)acrylic acid ester monomer units, crosslinkable monomer units, and acid group-containing monomer units and nitrile group-containing monomer units described below.

[0058] - Acid group-containing monomer units - Examples of acid group-containing monomers that can form acid group-containing monomer units include monomers having a carboxylic acid group, monomers having a sulfonic acid group, monomers having a phosphate group, and monomers having a hydroxyl group.

[0059] Examples of monomers having a carboxylic acid group include monocarboxylic acids and dicarboxylic acids. Examples of monocarboxylic acids include acrylic acid, methacrylic acid, and crotonic acid. Examples of dicarboxylic acids include maleic acid, fumaric acid, and itaconic acid. Examples of monomers having a sulfonic acid group include vinyl sulfonic acid, methyl vinyl sulfonic acid, (meth)allyl sulfonic acid, ethyl (meth)acrylate-2-sulfonate, 2-acrylamido-2-methylpropanesulfonic acid, and 3-alyloxy-2-hydroxypropanesulfonic acid. In this specification, "(meth)allyl" means allyl or metallyl. Furthermore, examples of monomers having a phosphate group include 2-(meth)acryloyloxyethyl phosphate, methyl-2-(meth)acryloyloxyethyl phosphate, and ethyl-(meth)acryloyloxyethyl phosphate. In this specification, "(meth)acryloyl" means acryloyl or methacryloyl. Examples of monomers having a hydroxyl group include 2-hydroxyethyl acrylate, 2-hydroxypropyl acrylate, 2-hydroxyethyl methacrylate, and 2-hydroxypropyl methacrylate. These acid group-containing monomers may be used individually or in combination of two or more in any ratio.

[0060] -Nitrile group-containing monomer units- Here, examples of nitrile group-containing monomers that can form nitrile group-containing monomer units include α,β-ethylenically unsaturated nitrile monomers. Specifically, the α,β-ethylenically unsaturated nitrile monomer is not particularly limited as long as it is an α,β-ethylenically unsaturated compound having a nitrile group, but examples include acrylonitrile; α-halogenoacrylonitriles such as α-chloroacrylonitrile and α-bromoacrylonitrile; and α-alkylacrylonitriles such as methacrylonitrile and α-ethylacrylonitrile. These nitrile group-containing monomers may be used individually or in combination of two or more in any ratio.

[0061] -The content ratio of each monomer unit in acrylic polymers used as binders- The proportion of (meth)acrylic acid ester monomer units in the acrylic polymer used as a binder is preferably 50% by mass or more, more preferably 55% by mass or more, even more preferably 58% by mass or more, preferably 98% by mass or less, more preferably 97% by mass or less, and even more preferably 96% by mass or less. By setting the proportion of (meth)acrylic acid ester monomer units above the lower limit, the dry and wet adhesion properties of the functional layer can be further improved. Furthermore, by setting the proportion of (meth)acrylic acid ester monomer units below the upper limit, the electrochemical properties of the electrochemical element equipped with the functional layer can be further improved.

[0062] Furthermore, the proportion of crosslinkable monomer units in the acrylic polymer used as a binder is preferably 0.1% by mass or more, more preferably 1.0% by mass or more, preferably 3.0% by mass or less, and more preferably 2.5% by mass or less. By setting the proportion of crosslinkable monomer units above the lower limit, the electrochemical properties of the electrochemical element equipped with the functional layer can be further enhanced. Also, by setting the proportion of crosslinkable monomer units below the upper limit, the dry and wet adhesion properties of the functional layer can be further improved.

[0063] Furthermore, the proportion of acid group-containing monomer units in the acrylic polymer used as a binder is preferably 0.1% by mass or more, more preferably 0.3% by mass or more, even more preferably 0.5% by mass or more, preferably 20% by mass or less, more preferably 10% by mass or less, and even more preferably 5% by mass or less. By setting the proportion of acid group-containing monomer units to above the lower limit, the dispersibility of the binder in the functional layer composition and in the functional layer can be improved, and the electrochemical properties of the electrochemical element equipped with the functional layer can be sufficiently improved. Also, by setting the proportion of acid group-containing monomer units to below the upper limit, the residual moisture content of the functional layer can be reduced, and the electrochemical properties of the electrochemical element can be sufficiently improved.

[0064] Furthermore, the content of nitrile group-containing monomer units in the acrylic polymer used as a binder is preferably 1% by mass or more, more preferably 2% by mass or more, preferably 30% by mass or less, and more preferably 20% by mass or less, when the total repeating units in the particulate polymer are considered to be 100% by mass. If the content of nitrile group-containing monomer units is above the lower limit, the binding strength of the acrylic polymer can be improved, and the dry and wet adhesion of the functional layer can be further enhanced. On the other hand, if the content of nitrile group-containing monomer units is below the upper limit, the flexibility of the acrylic polymer can be increased.

[0065] Furthermore, the acrylic polymer used as a binder may also contain other monomer units. Other monomers that can form other monomer units that may be included in acrylic polymers include aliphatic conjugated diene monomers such as 1,3-butadiene, 2-methyl-1,3-butadiene, 2,3-dimethyl-1,3-butadiene, and 2-chlor-1,3-butadiene; aromatic vinyl monomers as described in the section on "Composition of Particulate Polymers"; olefin monomers such as ethylene and propylene; halogen atom-containing monomers such as vinyl chloride and vinylidene chloride; vinyl ester monomers such as vinyl acetate, vinyl propionate, vinyl butyrate, and vinyl benzoate; vinyl ether monomers such as methyl vinyl ether, ethyl vinyl ether, and butyl vinyl ether; vinyl ketone monomers such as methyl vinyl ketone, ethyl vinyl ketone, butyl vinyl ketone, hexyl vinyl ketone, and isopropenyl vinyl ketone; and heterocyclic vinyl compound monomers such as N-vinylpyrrolidone, vinylpyridine, and vinylimidazole. These other monomers may be used individually or in combination of two or more in any ratio. Furthermore, the proportion of these other monomer units in the acrylic polymer can be adjusted as appropriate.

[0066] <<Glass transition temperature of the binder>> Furthermore, the glass transition temperature (Tg) of the binder is preferably lower than that of the particulate polymer. If the glass transition temperature of the binder is lower than that of the particulate polymer, the dry and wet adhesion of the resulting functional layer can be further improved. Moreover, the glass transition temperature of the binder is preferably -100°C or higher, more preferably -90°C or higher, even more preferably -80°C or higher, preferably less than 30°C, more preferably 20°C or lower, and even more preferably 15°C or lower. If the glass transition temperature of the binder is above the lower limit, the adhesion and strength of the binder can be improved. On the other hand, if the glass transition temperature of the binder is below the upper limit, the flexibility of the functional layer can be further improved.

[0067] <<Volume-average particle size of the binder>> Furthermore, the binder preferably has a volume-average particle diameter of 0.1 μm or more and 0.4 μm or less. If the volume-average particle diameter of the binder is above the lower limit, the decrease in ionic conductivity in the functional layer can be further suppressed, thereby improving the output characteristics of the electrochemical element. On the other hand, if the volume-average particle diameter of the binder is below the upper limit, the dry and wet adhesion of the resulting functional layer can be further enhanced. The volume-average particle size of the binder can be measured by the method described in the examples of this specification.

[0068] [Binding agent content] Furthermore, the binder content in the functional layer is preferably 0.1 parts by mass or more, more preferably 0.2 parts by mass or more, even more preferably 0.5 parts by mass or more, preferably 20 parts by mass or less, more preferably 15 parts by mass or less, and even more preferably 10 parts by mass or less, per 100 parts by mass of the total of the non-conductive heat-resistant particles and the particulate polymer. If the binder content in the functional layer is above the lower limit, it is possible to sufficiently prevent the particulate polymer from falling off the functional layer and to sufficiently improve the dry adhesion and wet adhesion of the functional layer. On the other hand, if the binder content in the functional layer is below the upper limit, it is possible to suppress the decrease in the ionic conductivity of the functional layer and suppress the decrease in the output characteristics of the electrochemical element.

[0069] The binder is not particularly limited, and can be prepared, for example, by polymerizing a monomer composition containing the above-mentioned monomers in an aqueous solvent such as water. Here, the proportion of each monomer in the monomer composition is usually the same as the proportion of each monomer unit in the binder.

[0070] Furthermore, the polymerization method and polymerization reaction are not particularly limited, and for example, the polymerization method and polymerization reaction mentioned above in the polymerization method for particulate polymers can be used.

[0071] <Mixing ratio of non-conductive heat-resistant particles and particulate polymer> Furthermore, the mixing ratio of non-conductive heat-resistant particles to particulate polymer in the functional layer composition is preferably 1.2 times or more by volume (non-conductive heat-resistant particles / particulate polymer), more preferably 1.5 times or more, even more preferably 2.5 times or more, preferably 99 times or less, more preferably 20 times or less, even more preferably 15 times or less, and particularly preferably 10 times or less. If the mixing ratio of non-conductive heat-resistant particles to particulate polymer is within the above range by volume, a good balance between the heat resistance and adhesion exhibited by the functional layer will be achieved.

[0072] <Other ingredients> The functional layer composition may contain any other components in addition to those described above. These other components are not particularly limited as long as they do not affect the electrochemical reactions in the electrochemical element, and include, for example, known additives such as dispersants, viscosity modifiers, and wetting agents. These other components may be used individually or in combination of two or more.

[0073] <Method for preparing compositions for functional layers of electrochemical elements> The method for preparing the functional layer composition is not particularly limited, and for example, it can be prepared by mixing the above-mentioned particulate polymer and non-conductive heat-resistant particles with optional components such as a binder, water as a dispersion medium, and other components. When the particulate polymer and binder are prepared by polymerizing the monomer composition in an aqueous solvent, the particulate polymer and binder may be mixed directly with other components in the form of an aqueous dispersion. Furthermore, when mixing the particulate polymer and binder in the form of an aqueous dispersion, the water in the aqueous dispersion may be used as the dispersion medium.

[0074] Here, the method of mixing the above-mentioned components is not particularly limited, but it is preferable to use a disperser as the mixing device in order to efficiently disperse each component. The disperser is preferably a device that can uniformly disperse and mix the above-mentioned components. Examples of dispersers include ball mills, sand mills, pigment dispersers, grinders, ultrasonic dispersers, homogenizers, and planetary mixers.

[0075] (Functional layer for electrochemical elements and laminate for electrochemical elements) The functional layer for electrochemical elements of the present invention is a functional layer for electrochemical elements formed using the functional layer composition of the present invention described above. The functional layer for electrochemical elements of the present invention comprises a non-conductive heat-resistant particle layer containing non-conductive heat-resistant particles. Since the functional layer is formed using the functional layer composition of the present invention, it contains non-conductive heat-resistant particles and a particulate polymer with a particle size distribution of 1.00 or more and less than 1.10, thus providing excellent adhesion and enabling the electrochemical element to be given excellent output characteristics and cycle characteristics. Furthermore, the functional layer may optionally contain binders and other components. Note that each component contained in the functional layer is the same as that contained in the functional layer composition described above, and the preferred ratio of each component is the same as the preferred ratio of each component in the functional layer composition.

[0076] Furthermore, the laminate for electrochemical elements of the present invention is formed by laminating the functional layer of the present invention on a substrate. By using a laminate in which the functional layer of the present invention is laminated on a substrate, excellent output characteristics and cycle characteristics can be imparted to the electrochemical element. The substrate is not particularly limited, but examples include an electrode substrate having an electrode composite layer provided on a current collector, and a separator substrate. Known electrode substrates and separator substrates can be used without particular limitation. Among these, a separator substrate is preferred as the substrate included in the laminate for electrochemical elements of the present invention.

[0077] The functional layer of the present invention, and the laminate for an electrochemical element of the present invention comprising such functional layer, can be formed, for example, by applying the functional layer composition of the present invention onto a suitable substrate. The method of applying the functional layer composition onto a suitable substrate is not particularly limited, and for example, 1) A method of applying a functional layer composition to the surface of a substrate and then drying it. 2) A method of immersing a substrate in a functional layer composition and then drying it. 3) A method of applying a functional layer composition onto a release substrate, drying it to form a functional layer, and transferring the obtained functional layer to the surface of the substrate. These are examples. The functional layer may be formed on only one side of the substrate, or on both sides of the substrate.

[0078] Among these, method 1) above is preferred because it allows for easy control of the thickness of the functional layer. Method 1) above may include, for example, a step of applying the functional layer composition onto a substrate (coating step) and a step of drying the functional layer composition applied onto the substrate to form a functional layer (functional layer formation step).

[0079] [Coating process] Furthermore, there are no particular restrictions on the method of applying the functional layer composition onto the substrate during the coating process. Examples include the doctor blade method, reverse roll method, direct roll method, gravure method, extrusion method, and brush coating method.

[0080] [Functional layer formation process] Furthermore, in the functional layer formation process, the method for drying the functional layer composition on the substrate is not particularly limited and known methods can be used, such as drying with hot air, hot air, or low-humidity air, vacuum drying, or drying by irradiation with infrared rays or electron beams. The drying conditions are not particularly limited, but the drying temperature is preferably 50 to 150°C and the drying time is preferably 1 to 30 minutes.

[0081] Furthermore, the functional layer formed on the substrate can be suitably used as a single layer that simultaneously exhibits the function of a heat-resistant layer that enhances the heat resistance of the substrate and the function of an adhesive layer that firmly bonds components together.

[0082] Furthermore, as described above, laminates for electrochemical elements formed using functional layer compositions can be manufactured with fewer steps and less time compared to conventional substrates equipped with heat-resistant layers and adhesive layers, thus offering higher productivity.

[0083] Here, the functional layer of the present invention includes a non-conductive heat-resistant particle layer containing non-conductive heat-resistant particles. In the non-conductive heat-resistant particle layer, a plurality of non-conductive heat-resistant particles are usually arranged so as to be stacked in the thickness direction. The thickness of the non-conductive heat-resistant particle layer is preferably 0.5 μm or more, more preferably 0.8 μm or more, even more preferably 1 μm or more, preferably 6 μm or less, more preferably 5 μm or less, and even more preferably 4 μm or less. If the thickness of the non-conductive heat-resistant particle layer is above the lower limit above, the heat resistance of the functional layer can be improved. On the other hand, if the thickness of the non-conductive heat-resistant particle layer is below the upper limit above, the output characteristics of the electrochemical element can be further improved by increasing the ion permeability of the functional layer.

[0084] [Value obtained by dividing the volume-average particle size Dv of the particulate polymer by the thickness of the non-conductive heat-resistant particle layer.] In the functional layer of the present invention, the value obtained by dividing the volume average particle diameter Dv of the particulate polymer by the thickness of the non-conductive heat-resistant particle layer is preferably 0.75 or more, more preferably greater than 1.00, more preferably 1.20 or more, preferably 4.00 or less, more preferably 3.00 or less, and even more preferably 2.00 or less. In the functional layer, if the value obtained by dividing the volume average particle diameter Dv of the particulate polymer by the thickness of the non-conductive heat-resistant particle layer, that is, the ratio of the volume average particle diameter Dv of the particulate polymer to the thickness of the non-conductive heat-resistant particle layer, is greater than or equal to the above lower limit, then the dry adhesion and wet adhesion are even better. Note that a value obtained by dividing the volume average particle diameter Dv of the particulate polymer by the thickness of the non-conductive heat-resistant particle layer is greater than 1.00 means that the volume average particle diameter Dv of the particulate polymer is greater than the thickness of the non-conductive heat-resistant particle layer. A functional layer that satisfies these conditions has a structure in which a portion of the particulate polymer protrudes from the non-conductive heat-resistant particle layer, thereby enabling it to exhibit even better adhesive properties due to the particulate polymer. Furthermore, if the value obtained by dividing the volume-average particle diameter Dv of the particulate polymer by the thickness of the non-conductive heat-resistant particle layer is less than or equal to the above upper limit, it is possible to suppress the shedding of the particulate polymer from the functional layer when applying the functional layer composition to the substrate and in the state after the functional layer has been formed, thereby maintaining good adhesion.

[0085] <Embedding rate of particulate polymers in a non-conductive, heat-resistant particle layer> In the functional layer of the present invention, the embedding rate of the particulate polymer in the non-conductive heat-resistant particle layer is preferably 30% or less, more preferably 20% or less, even more preferably 10% or less, and particularly preferably 5% or less. The embedding rate of the particulate polymer in the non-conductive heat-resistant particle layer is a value that indicates the ratio of the number of particulate polymers embedded in the non-conductive heat-resistant particle layer out of 100 arbitrarily selected particulate polymers contained in the functional layer. Therefore, a higher embedding rate means that a higher proportion of particulate polymers are embedded in the non-conductive heat-resistant particle layer (i.e., do not have any parts protruding from the non-conductive heat-resistant particle layer). If the embedding rate is below the above upper limit, the dry adhesion and wet adhesion of the functional layer can be further improved, and the output characteristics and cycle characteristics of the resulting secondary battery can be improved. Furthermore, there is no particular limit to the lower limit of the embedding rate, and it may be 0%. A 0% embedding rate means that all 100 arbitrarily selected particulate polymers contained in the functional layer are not embedded in the non-conductive heat-resistant particle layer; in other words, they have portions that protrude from the non-conductive heat-resistant particle layer.

[0086] (Electrochemical element) An electrochemical element comprising the functional layer of the present invention comprises at least the functional layer of the present invention. Because the electrochemical element of the present invention comprises the functional layer of the present invention, it can exhibit excellent output characteristics and cycle characteristics. Furthermore, the electrochemical element of the present invention may include components other than the functional layer of the present invention, as long as they do not significantly impair the effects of the present invention.

[0087] Furthermore, the electrochemical element of the present invention is not particularly limited, but is, for example, a lithium-ion secondary battery or an electric double-layer capacitor, and is preferably a lithium-ion secondary battery.

[0088] Herein, we will describe a lithium-ion secondary battery as an example of the electrochemical element of the present invention. The lithium-ion secondary battery according to the present invention is equipped with the functional layer of the present invention described above. More specifically, the lithium-ion secondary battery preferably comprises a positive electrode, a negative electrode, a separator (a separator with a functional layer, in other words, a laminate in which the functional layer of the present invention is laminated on a separator substrate) on which the functional layer of the present invention is formed, and an electrolyte. The functional layer may be formed on only one side of the separator substrate, or on both sides of the separator substrate.

[0089] Furthermore, in a lithium-ion secondary battery according to an example of the electrochemical element of the present invention, the positive electrode and the separator substrate, and / or the negative electrode and the separator substrate, are firmly bonded in the electrolyte by a functional layer. As a result, the expansion of the distance between the electrode plates due to repeated charging and discharging is suppressed, resulting in good output characteristics and cycle characteristics. In addition, in this lithium-ion secondary battery, the heat resistance of the separator substrate is enhanced by a functional layer containing a non-conductive heat-resistant particle layer. Moreover, compared to using a separator with a conventional heat-resistant layer and adhesive layer, this lithium-ion secondary battery can be manufactured with high productivity by shortening the time required for separator manufacturing.

[0090] Furthermore, known positive electrodes, negative electrodes, and electrolytes used in lithium-ion secondary batteries can be used as the positive electrode, negative electrode, and electrolyte mentioned above.

[0091] <Positive and negative electrodes> Specifically, electrodes (positive and negative electrodes) can be made by forming an electrode composite layer on a current collector. The current collector can be made of metal materials such as iron, copper, aluminum, nickel, stainless steel, titanium, tantalum, gold, or platinum. Among these, it is preferable to use a copper current collector for the negative electrode. It is also preferable to use an aluminum current collector for the positive electrode. Furthermore, the electrode composite layer can be a layer containing an electrode active material and a binder.

[0092] <Functional layer separator> A separator with a functional layer can be manufactured, for example, by forming a functional layer on a separator substrate using the method for forming a functional layer described in the section "Functional Layers and Laminates for Electrochemical Elements" above.

[0093] Here, the separator substrate is not particularly limited, and for example, those described in Japanese Patent Application Publication No. 2012-204303 can be used. Among these, a microporous membrane made of a polyolefin resin (polyethylene, polypropylene, polybutene, polyvinyl chloride) is preferred because it allows for a thinner overall film thickness of the separator with a functional layer, thereby increasing the ratio of electrode active material in the lithium-ion secondary battery and thus increasing the capacity per unit volume.

[0094] <Electrolyte> Typically, an organic electrolyte is used as the electrolyte, which is obtained by dissolving a supporting electrolyte in an organic solvent. For example, in lithium-ion secondary batteries, lithium salts are used as the supporting electrolyte. Examples of lithium salts include LiPF6, LiAsF6, LiBF4, LiSbF6, LiAlCl4, LiClO4, CF3SO3Li, C4F9SO3Li, CF3COOLi, (CF3CO)2NLi, (CF3SO2)2NLi, and (C2F5SO2)NLi. Among these, LiPF6, LiClO4, and CF3SO3Li are preferred because they are easily soluble in solvents and exhibit a high degree of dissociation. Note that one type of electrolyte may be used alone, or two or more types may be used in combination. Generally, the lithium ion conductivity tends to increase as the supporting electrolyte with a higher degree of dissociation is used, so the lithium ion conductivity can be adjusted by the type of supporting electrolyte.

[0095] The organic solvent used in the electrolyte is not particularly limited as long as it can dissolve the supporting electrolyte, but for example in lithium-ion secondary batteries, carbonates such as dimethyl carbonate (DMC), ethylene carbonate (EC), diethyl carbonate (DEC), propylene carbonate (PC), butylene carbonate (BC), methyl ethyl carbonate (ethyl methyl carbonate (EMC)), and vinylene carbonate; esters such as γ-butyrolactone and methyl formate; ethers such as 1,2-dimethoxyethane and tetrahydrofuran; and sulfur-containing compounds such as sulfolane and dimethyl sulfoxide are preferably used.

[0096] Alternatively, a mixture of these organic solvents may be used. Among these, carbonates are preferred because they have a high dielectric constant and a wide stable potential range. Generally, the lower the viscosity of the organic solvent used, the higher the lithium ion conductivity tends to be, so the lithium ion conductivity can be adjusted by the type of organic solvent used. The concentration of the electrolyte in the electrolyte solution can be adjusted as appropriate. Furthermore, known additives may be added to the electrolyte solution.

[0097] <Manufacturing method for lithium-ion secondary batteries> A lithium-ion secondary battery, as an example of the electrochemical element of the present invention, can be manufactured, for example, by stacking the positive electrode and negative electrode described above via a separator with a functional layer, winding or folding them as needed, placing them in a battery container, and then injecting an electrolyte into the battery container and sealing it. Here, the battery container may optionally contain expanded metal, fuses, overcurrent prevention elements such as PTC elements, lead plates, etc., to prevent pressure rise inside the battery and overcharging / discharging. The shape of the battery may be, for example, coin-type, button-type, sheet-type, cylindrical, rectangular, flat-type, etc. [Examples]

[0098] The present invention will be described in detail below based on examples, but the present invention is not limited to these examples. In the following description, "%" and "parts" representing quantities refer to mass unless otherwise specified. In addition, in polymers produced by copolymerizing multiple types of monomers, the proportion of structural units formed by polymerization of a certain monomer in the polymer is usually equal to the ratio of that monomer to the total monomers used in the polymerization of the polymer (starting ratio), unless otherwise specified. Various measurements and evaluations in the examples and comparative examples were carried out as follows.

[0099] <Glass transition temperature> The particulate polymers and binders prepared in the examples and comparative examples were used as measurement samples. 10 mg of each measurement sample was weighed into an aluminum pan, and a differential thermal analysis (DSC) curve was obtained. Using an empty aluminum pan as a reference, the measurement was performed under the conditions specified in JIS Z 8703, within the measurement temperature range of -100°C to 500°C, at a heating rate of 10°C / min, using a differential scanning calorimetry (DSC) analyzer (EXSTAR DSC6220) manufactured by SII Nanotechnology Inc. During this heating process, the glass transition temperature (°C) was determined by finding the intersection of the baseline just before the endothermic peak of the DSC curve (where the differential signal (DDSC) is 0.05 mW / min / mg or higher) and the tangent to the DSC curve at the first inflection point after the endothermic peak.

[0100] <Volume-average particle diameter and number-average particle diameter> The particulate polymers and binders prepared in the examples and comparative examples were used as measurement samples. The volume-average particle diameter of the measurement samples was measured by laser diffraction. Specifically, aqueous dispersions containing the prepared particulate polymers or binders (adjusted to a solid content concentration of 0.1% by mass) were used as measurement samples. The volume-average particle diameter was defined as the particle diameter Dv50 at which the cumulative volume calculated from the smallest diameter side reached 50% in the particle diameter distribution (volume-based) measured using a laser diffraction particle size distribution analyzer (Beckman Coulter, "LS-230"). For the particulate polymers, the particle size distribution based on the number of particles was also measured, and the particle diameter Dn50 at which the cumulative number calculated from the smallest diameter side reached 50% was defined as the number-average particle diameter (Dn). Based on the volume-average particle diameter Dv and number-average particle diameter Dn obtained for the particulate polymers, the particle size distribution value expressed as Dv / Dn was calculated.

[0101] <Burial rate> The functional layer-equipped separators (laminated structures for electrochemical elements) prepared in the examples and comparative examples were processed with a cross-section polisher (manufactured by JEOL Ltd.) to prepare samples for cross-sectional observation. The obtained cross-sectional observation samples were observed with a scanning electron microscope (JEOL Ltd., JSM-7800F) and the cross-sections were imaged. 100 particulate polymers were randomly selected from the obtained cross-sectional images, and each particulate polymer was classified as either embedded in the non-conductive heat-resistant particle layer or not. The number of embedded particulate polymers was divided by the number of extracted polymers (100) to calculate the embedding rate. In classifying the particulate polymers, particulate polymers that were completely embedded in the non-conductive heat-resistant particle layer and had no protruding portions from the surface of the non-conductive heat-resistant particle layer were classified as "embedded," and all other particulate polymers were classified as "not embedded."

[0102] <Thickness of the non-conductive heat-resistant particle layer> The cross-section of the separator with a functional layer was observed using a field emission scanning electron microscope (FE-SEM), and the thickness of the non-conductive heat-resistant particle layer was calculated from the obtained images. The thickness of the non-conductive heat-resistant particle layer was defined as the vertical distance from the surface of the separator on the side where the functional layer was formed to the surface of the non-conductive heat-resistant particles forming the surface of the functional layer.

[0103] <Mixing ratio of non-conductive heat-resistant particles and particulate polymer> The mixing ratio (volume ratio) of non-conductive heat-resistant particles to particulate polymer was determined from the amounts of non-conductive heat-resistant particles and particulate polymer added when preparing the slurry composition.

[0104] <Dry Adhesion> The positive electrode and functional layer-equipped separator prepared in the examples and comparative examples were cut to a width of 10 mm and a length of 50 mm, respectively. The positive electrode and functional layer-equipped separator were stacked so that the positive electrode composite layer side of the positive electrode was aligned with the separator, and pressed using a roll press at a temperature of 70°C, a load of 10 kN / m, and a press speed of 30 m / min to obtain an integrated product in which the positive electrode and functional layer-equipped separator were integrated. The resulting integrated material was placed with the positive electrode current collector side facing downwards, and cellophane tape was applied to the surface of the positive electrode. The cellophane tape used was that specified in JIS Z1522. The cellophane tape was fixed to a horizontal test stand. Then, the stress was measured when one end of the functional layer separator was pulled vertically upwards at a tensile speed of 50 mm / min and peeled off. Furthermore, the same procedure as when using the positive electrode was performed on the negative electrodes prepared in the examples and comparative examples, and the stress was measured. The stress measurements described above were performed 5 times each for the integrated positive electrode and functional layer separator, and for the integrated negative electrode and functional layer separator, for a total of 10 measurements. The average stress was calculated and defined as the peel strength P1 (N / m). Then, using the calculated peel strength P1, the dry adhesion between the electrode and the functional layer-equipped separator was evaluated according to the following criteria. A higher peel strength P1 indicates higher dry adhesion. High dry adhesion means that the components for the electrochemical element have high adhesion during the manufacturing process of the electrochemical element. A: Peel strength P1 is 6N / m or higher B: Peel strength P1 is 4N / m or more and less than 6N / m C: Peel strength P1 is 2N / m or more and less than 4N / m D: Peel strength P1 is less than 2N / m

[0105] <Wet Adhesion> The functional layer compositions obtained in the examples and comparative examples were applied to the separator, and the functional layer compositions on the separator substrate were dried at 50°C for 10 minutes to form a functional layer. The separator with this functional layer was used as the evaluation separator and cut into strips measuring 10 mm × 100 mm. Then, the separator was placed along the surface of the negative electrode (negative electrode composite layer side), and the substrate was heated and pressed at 85°C and 0.5 MPa for 6 minutes to prepare a laminate comprising the negative electrode and the separator, and this laminate was used as the test specimen. The test specimen was placed in a laminate packaging with approximately 400 μl of electrolyte. After 1 hour, the test specimen, along with the laminate packaging, was pressed at 60°C and a pressure of 0.5 MPa for 15 minutes. After pressing, it was kept at 60°C for 1 day. The electrolyte used was a mixed solvent of EC, DEC, and vinylene carbonate (VC) (EC / DEC / VC (volume mixing ratio at 25°C) = 68.5 / 30 / 1.5), with LiPF6 dissolved at a concentration of 1 mol / L as the supporting electrolyte. Next, the test specimen was removed, and the electrolyte adhering to its surface was wiped off. Then, with the negative electrode current collector side of the specimen facing downwards, cellophane tape was applied to the negative electrode current collector side. The cellophane tape used was the type specified in JIS Z1522. The cellophane tape was fixed to a horizontal test stand. The stress was measured when one end of the separator was pulled vertically upwards at a pulling speed of 50 mm / min to peel it off. This measurement was performed three times, and the average value of the stress was determined as the peel strength P2, which was evaluated according to the following criteria. A higher peel strength P2 indicates higher adhesion of the functional layer in a wet state. High adhesion of the functional layer in a wet state indicates excellent adhesion of the functional layer in the electrolyte, and that the adherends bonded to each other via this functional layer are strongly bonded. A: Peel strength P2 is 4N / m or higher B: Peel strength P2 is 3N / m or more and less than 4N / m C: Peel strength P2 is 2N / m or more and less than 3N / m D: Peel strength P2 is less than 2N / m

[0106] <Good product rate> Similar to the method described above for <Dry Adhesion>, measurements were taken 50 times each for the integrated positive electrode and functional layer separator, and for the integrated negative electrode and functional layer separator, for a total of 100 measurements. The number of samples with a peel strength P1 of less than 1 N / m was counted and evaluated according to the following criteria. A:0 pieces B: 1 or more but less than 3 C: 3 or more but less than 6 D: 6 or more

[0107] <Cycle Characteristics> The lithium-ion secondary batteries, which were prepared as electrochemical elements in the examples and comparative examples, were left standing at 25°C for 5 hours. Next, they were charged to a cell voltage of 3.65V using a constant current method at 25°C and 0.2C, and then aged at 60°C for 12 hours. Then, they were discharged to a cell voltage of 3.00V using a constant current method at 25°C and 0.2C. After that, CC-CV charging (upper limit cell voltage 4.40V) was performed using a constant current method at 0.2C, and CC discharge was performed to 3.00V using a constant current method at 0.2C. This charging and discharging at 0.2C was repeated three times. Subsequently, 100 charge-discharge cycles were performed in an environment of 25°C with a cell voltage of 4.40-3.00V and a charge-discharge rate of 1.5C. The discharge capacity of the first cycle was defined as X1, and the discharge capacity of the 100th cycle was defined as X2. Then, using the discharge capacities X1 and X2, the capacity retention rate ΔC = (X2 / X1) × 100 (%) was calculated and evaluated according to the following criteria. A larger value for the capacity retention rate ΔC indicates that the secondary battery has superior cycle characteristics. A: Capacity retention rate ΔC is 93% or more B: Capacity retention rate ΔC is 90% or more but less than 93% C: Capacity retention rate ΔC is between 87% and 90%. D: Capacity retention rate ΔC is less than 87%

[0108] <Output Characteristics> Lithium-ion secondary batteries, used as electrochemical elements in the examples and comparative examples, were prepared by charging them to 4.40V using constant current-constant voltage (CC-CV) in an atmosphere of 25°C. The prepared cells were then discharged to 3.0V using constant current methods at 0.2C and 3.0C, and their capacitance was determined. The discharge capacity retention rate, expressed as the ratio of capacitances (=(capacity at 3.0C / capacitance at 0.2C) × 100(%)), was calculated. This measurement was performed for five lithium-ion secondary battery cells. The average discharge capacity retention rate for each cell was then calculated and evaluated according to the following criteria. A higher average discharge capacity retention rate indicates better output characteristics for the secondary battery. A: The average discharge capacity retention rate is 90% or higher. B: The average discharge capacity retention rate is between 85% and 90%. C: The average discharge capacity retention rate is 75% or more but less than 85%. D: Average discharge capacity retention rate is less than 75%

[0109] (Example 1) <Preparation of seed particles (A1)> In a reactor equipped with a stirrer, 900 parts of deionized water, 72.5 parts of styrene as an aromatic vinyl monomer, 27.0 parts of butyl acrylate as a (meth)acrylic acid ester monomer, 0.5 parts of ethylene glycol dimethacrylate as a crosslinkable monomer, 0.5 parts of 2,2'-azobis "N-(2-carboxyethyl)-2-methylpropionamidine" (manufactured by Fujifilm Wako Pure Chemical Industries, Ltd., VA-057) as a polymerization initiator, and ammonia / ammonia chloride as a pH buffer were added to bring the system pH to 8.2. After thorough stirring, the mixture was heated to 70°C and the reaction was allowed to proceed for 7 hours. The resulting aqueous dispersion containing seed particles (A1) was cooled to below 30°C. The volume-average particle size (Dv) of the obtained seed particles (A1) was 0.8 μm, and the particle size distribution (Dv / Dn) was 1.02. <Preparation of particulate polymer (A1)> In a container equipped with a stirrer, 1000 parts of deionized water, 2.5 parts of sodium dodecyl sulfate as an emulsifier, and 200 parts of dibutyl phthalate as a hydrophobic compound were added and thoroughly stirred to obtain a dispersion. The obtained dispersion was then subjected to high-shear stirring at a rotation speed of 15,000 rpm for 1 minute using an in-line emulsification and dispersion machine (Taiheiyo Kiko Co., Ltd., "Cavitron") to prepare a dispersion in which the dibutyl phthalate was in the form of fine droplets. Furthermore, 100 parts of the dispersion of seed particles (A1) in terms of solid content and acetone were added to a ratio of 10% by mass to the deionized water, and the mixture was stirred at 35°C for 10 hours to allow the seed particles (A1) to absorb the dibutyl phthalate. Subsequently, the acetone was removed by distillation under reduced pressure, and deionized water was added to prepare an aqueous dispersion with a non-volatile component content of 10% by mass. In a reactor equipped with a stirrer, 27 parts of the aqueous dispersion, 110 parts of deionized water, 0.2 parts of sodium dodecylbenzenesulfonate as an emulsifier, 72.5 parts of styrene as an aromatic vinyl monomer, 27.0 parts of butyl acrylate as a (meth)acrylic acid ester monomer, 0.5 parts of ethylene glycol dimethacrylate as a crosslinkable monomer, and 2 parts of t-butyl peroxy-2-ethylhexanoate (manufactured by NOF Corporation, "Perbutyl O") as a polymerization initiator were added and the mixture was stirred at 30°C for 2 hours. Furthermore, 220 parts of deionized water were added, and the mixture was heated to 90°C and the reaction was allowed to proceed for 4 hours. The aqueous dispersion containing the resulting particulate polymer (A1) was cooled to below 30°C. The volume-average particle size (Dv) of the obtained particulate polymer (A1) was 5 μm, the particle size distribution (Dv / Dn) was 1.02, and the glass transition temperature was 60°C.

[0110] <Preparation of an aqueous dispersion containing a binder> In a reactor equipped with a stirrer, 70 parts of deionized water, 0.15 parts of sodium lauryl sulfate (Kao Chemical Co., Ltd., "Emal® 2F") as an emulsifier, and 0.5 parts of ammonium persulfate as a polymerization initiator were supplied. The gas phase was replaced with nitrogen gas, and the temperature was raised to 60°C. Meanwhile, in a separate container, a monomer composition was prepared by mixing 50 parts of deionized water, 0.5 parts of sodium dodecylbenzenesulfonate as a dispersion stabilizer, 94 parts of n-butyl acrylate as a (meth)acrylic acid ester monomer, 2 parts of methacrylic acid as an acid group-containing monomer, 2 parts of acrylonitrile as a nitrile group-containing monomer, and 1 part of allyl methacrylate and 1 part of allyl glycidyl ether as crosslinkable monomers. The obtained monomer composition was continuously added to a reactor equipped with the aforementioned stirrer over a period of 4 hours to carry out polymerization. During the addition, the reaction was carried out at 60°C. After the addition was completed, the mixture was stirred at 70°C for another 3 hours to terminate the reaction, and an aqueous dispersion containing particulate binder as an acrylic polymer was obtained. The obtained particulate binder had a volume-average particle size of 0.25 μm and a glass transition temperature of -30°C.

[0111] <Preparation of compositions for the functional layer of electrochemical elements> 100 parts of alumina (Sumitomo Chemical Co., Ltd., "AKP3000", volume average particle size: 0.7 μm), which is an inorganic particle that is a non-conductive heat-resistant particle, were mixed with 0.5 parts of polyacrylic acid as a dispersant. Ion-exchanged water was added to achieve a solid content concentration of 55% by mass, and the mixture was mixed using a ball mill to obtain a slurry before mixing. To 100 parts of the solid content of the particulate polymer (A1) obtained above, 0.2 parts of sodium dodecylbenzenesulfonate (Kao Chemical Co., Ltd., "Neoperex G-15") as an emulsifier, 6 parts of the aqueous dispersion containing the binder obtained above (in terms of solid content), and 1.5 parts of carboxymethylcellulose as a thickener were mixed to a solid content concentration of 40% by mass, and the resulting mixture was added to the pre-mixed slurry obtained as described above. Furthermore, ion-exchanged water was added to obtain a slurry composition for use as a functional layer for electrochemical elements to achieve a solid content concentration of 40% by mass. The volume mixing ratio of inorganic particles (alumina) to particulate polymer (A1) in the obtained slurry composition was 7:1.5 (non-conductive heat-resistant particles / particulate polymer ≈ 4.7 times).

[0112] <Fabrication of separators with functional layers> A polyethylene microporous membrane (thickness: 12 μm) was prepared as a separator substrate. The slurry composition obtained as described above was applied to one side of this separator substrate using a bar coater method. Next, the separator substrate coated with the slurry composition was dried at 50°C for 1 minute to form a functional layer. The same operation was performed on the other side of the separator substrate to fabricate a separator with a functional layer (a laminate for electrochemical elements) having a functional layer on both sides of the separator substrate. The thickness of the non-conductive heat-resistant particle layer contained in the functional layer of the obtained laminate was measured according to the above procedure and the results are shown in Table 1.

[0113] <Fabrication of the positive electrode> 100 parts of LiCoO2 (volume-average particle size: 12 μm) as the positive electrode active material, 2 parts of acetylene black (manufactured by Denki Kagaku Kogyo Co., Ltd., "HS-100") as the conductive material, 2 parts of polyvinylidene fluoride (manufactured by Kureha Corporation, "#7208") as the binder for the positive electrode composite layer (based on solid content), and N-methylpyrrolidone as the solvent were mixed to a total solid content concentration of 70% by mass. These were mixed using a planetary mixer to prepare a slurry composition for the positive electrode. The above-mentioned slurry composition for the positive electrode was applied using a comma coater to a 10 μm thick aluminum foil, which served as the current collector, so that the film thickness after drying was approximately 150 μm, and then dried. This drying was performed by transporting the aluminum foil at a speed of 0.5 m / min in a 60°C oven for 2 minutes. After that, it was heat-treated at 120°C for 2 minutes to obtain a positive electrode base roll before pressing. This positive electrode base roll before pressing was rolled in a roll press to obtain a pressed positive electrode having a positive electrode composite layer (thickness: 60 μm).

[0114] <Fabrication of the negative electrode> In a 5 MPa pressure vessel equipped with a stirrer, 33 parts of 1,3-butadiene, 3.5 parts of itaconic acid, 63.5 parts of styrene, 0.4 parts of sodium dodecylbenzenesulfonate as an emulsifier, 150 parts of deionized water, and 0.5 parts of potassium persulfate as a polymerization initiator were added and thoroughly stirred. The mixture was then heated to 50°C to start polymerization. When the polymerization conversion rate reached 96%, the reaction was stopped by cooling to obtain a mixture containing a binder for the negative electrode composite layer (SBR). A 5% aqueous sodium hydroxide solution was added to this mixture containing the binder for the negative electrode composite layer to adjust the pH to 8, and unreacted monomers were removed by heated vacuum distillation. After that, the mixture was cooled to below 30°C to obtain an aqueous dispersion containing the desired binder for the negative electrode composite layer. 97.5 parts of artificial graphite (volume average particle size: 15.6 μm) as the negative electrode active material, 1.0 part (similar to solid content) of a 2% aqueous solution of carboxymethylcellulose sodium salt (manufactured by Nippon Paper Industries, "MAC350HC") as a viscosity modifier, and deionized water were mixed to adjust the solid content to 68%, and the mixture was further mixed at 25°C for 60 minutes. The solid content was further adjusted to 62% with deionized water, and the mixture was further mixed at 25°C for 15 minutes to obtain a mixed solution. To this mixed solution, 1.5 parts (similar to solid content) of an aqueous dispersion containing the above-mentioned binder for the negative electrode composite layer and deionized water were added to adjust the final solid content to 52%, and the mixture was further mixed for 10 minutes to obtain a mixed solution. This mixed solution was defoamed under reduced pressure to obtain a smooth negative electrode slurry composition. The above-mentioned negative electrode slurry composition was applied using a comma coater to a 6 μm thick copper foil, which served as the current collector, so that the dried film thickness would be approximately 150 μm. This drying was performed by transporting the copper foil at a speed of 0.5 m / min in a 60°C oven for 2 minutes. After that, it was heat-treated at 120°C for 2 minutes to obtain a negative electrode base roll before pressing. This negative electrode base roll before pressing was rolled using a roll press to obtain a pressed negative electrode with a negative electrode composite layer (thickness: 80 μm). Using the functional layer-equipped separator, positive electrode, and negative electrode obtained as described above, dry adhesion, wet adhesion, and yield rate were evaluated according to the above procedure. The results are shown in Table 1.

[0115] <Manufacturing of lithium-ion secondary batteries> The pressed positive electrode prepared as described above was cut into a 49cm x 5cm rectangle and placed with the positive electrode composite layer side facing upwards. On top of the positive electrode composite layer, the functional layer separator, cut to 120cm x 5.5cm, was positioned so that the positive electrode was located on one side of the functional layer separator's longitudinal direction. Furthermore, the pressed negative electrode prepared as described above was cut into a 50cm x 5.2cm rectangle and placed on the functional layer separator so that the negative electrode composite layer side faced the functional layer separator, and the negative electrode was located on the other side of the functional layer separator's longitudinal direction. The resulting laminate was then wound using a winding body to obtain a winding body. This wound material was pressed at 70°C and 1 MPa to flatten it, then wrapped in an aluminum packaging material to serve as the battery casing. An electrolyte solution [solvent: ethylene carbonate / diethyl carbonate / vinylene carbonate (volume ratio) = 68.5 / 30 / 1.5, electrolyte: 1M LiPF6)] was injected, ensuring no air remained. The opening of the aluminum packaging material was then heat-sealed at 150°C to create a wound lithium-ion secondary battery with a capacity of 800 mAh, which functions as an electrochemical element. The cycle characteristics and power output characteristics were evaluated using the obtained lithium-ion secondary battery. The results are shown in Table 1.

[0116] (Example 2) In the <Preparation of Composition for Electrochemical Element Functional Layer> step, the same operations, measurements, and evaluations as in Example 1 were performed, except that particulate polymer (A2), prepared according to the following procedure, was used instead of particulate polymer (A1). The results are shown in Table 1. <Preparation of seed particles (A2)> In a reactor equipped with a stirrer, 900 parts of ethanol, 72.5 parts of styrene as an aromatic vinyl monomer, 27.0 parts of butyl acrylate as a (meth)acrylic acid ester monomer, 0.5 parts of ethylene glycol dimethacrylate as a crosslinkable monomer, 1.0 part of t-butyl peroxy-2-ethyl butanoate (manufactured by Kayaku Akzo, trade name: Trigonox 27) as a polymerization initiator, and 1.0 part of polyvinylpyrrolidone as a dispersion stabilizer were added. After thorough stirring, the mixture was heated to 70°C and the reaction was allowed to proceed for 7 hours. Furthermore, 1000 parts of deionized water were added, and the ethanol was removed by distillation under reduced pressure. The aqueous dispersion containing seed particles (A2) was cooled to below 30°C. The volume-average particle size (Dv) of the obtained seed particles (A2) was 0.8 μm, and the particle size distribution (Dv / Dn) was 1.04. <Preparation of particulate polymer (A2)> Particulate polymer (A2) was prepared in the same manner as in Example 1, except that seed particles (A2) were used instead of seed particles (A1). The volume-average particle size (Dv) of the obtained particulate polymer (A2) was 5 μm, and the particle size distribution (Dv / Dn) was 1.05.

[0117] (Example 3) In the <Preparation of Composition for Electrochemical Element Functional Layer> step, particulate polymer (A3) prepared by suspension polymerization with classification treatment was used instead of particulate polymer (A1) as described below. Otherwise, the same operations, measurements, and evaluations as in Example 1 were performed. The results are shown in Table 1. <Preparation of particulate polymer (A3)> In a reactor equipped with a stirrer, an aqueous solution prepared by dissolving 8.0 parts of magnesium chloride in 200 parts of deionized water was added, and an aqueous solution prepared by dissolving 5.6 parts of sodium hydroxide in 50 parts of deionized water was gradually added under stirring to prepare a colloidal dispersion containing magnesium hydroxide as a metal hydroxide. To the colloidal dispersion, 72.5 parts of styrene as an aromatic vinyl monomer, 27.0 parts of butyl acrylate as a (meth)acrylic acid ester monomer, and 0.5 parts of ethylene glycol dimethacrylate as a crosslinkable monomer were added, and after further stirring, 2.0 parts of t-butyl peroxy-2-ethylhexanoate (manufactured by NOF Corporation, "Perbutyl O") as a polymerization initiator was added to obtain a mixture. The obtained mixture was high-shear stirring for 1 minute at a rotational speed of 15,000 rpm using an in-line emulsifying disperser (manufactured by Taiheiyo Kiko Co., Ltd., "Cavitron") to form droplets of the monomer composition in the colloidal dispersion containing magnesium hydroxide. The dispersion was heated to 90°C and polymerized for 5 hours to obtain an aqueous dispersion containing particulate polymer (A3). The aqueous dispersion containing the obtained particulate polymer (A3) was stirred and sulfuric acid was added dropwise at room temperature (25°C) until the pH was 6.5 or lower, followed by acid washing. Next, the solids were separated by filtration, and 500 parts of deionized water were added to the obtained solids to form a slurry again. The water washing treatment (washing, filtration, and dewatering) was repeated several times. Then, particulate polymer (A3) was prepared by removing fine and coarse particles using a classifier. The volume-average particle size (Dv) of the obtained particulate polymer (A3) was 5 μm, and the particle size distribution (Dv / Dn) was 1.09.

[0118] (Example 4) In the <Preparation of Composition for Electrochemical Element Functional Layer> step, the volume mixing ratio of inorganic particles (alumina) as non-conductive heat-resistant particles and particulate polymer (A1) was changed to 7:2 (non-conductive heat-resistant particles / particulate polymer = 3.5 times), and the thickness of the non-conductive heat-resistant particle layer contained in the resulting functional layer was changed to 3 μm as shown in Table 1. Otherwise, various operations, measurements, and evaluations were carried out in the same manner as in Example 1. The results are shown in Table 1.

[0119] (Example 5) In the <Preparation of Composition for Electrochemical Element Functional Layer> step, particulate polymer (A4) prepared as described below was used instead of particulate polymer (A1), and the volume mixing ratio of inorganic particles (alumina) as nonconductive heat-resistant particles to particulate polymer (A1) was changed to 7:2 (nonconductive heat-resistant particles / particulate polymer = 3.5 times), thereby changing the thickness of the nonconductive heat-resistant particle layer contained in the resulting functional layer to 3 μm as shown in Table 1. Otherwise, various operations, measurements, and evaluations were carried out in the same manner as in Example 1. The results are shown in Table 1. <Preparation of particulate polymer (A4)> The amounts of various monomers and polymerization initiators added during the preparation of the particulate polymer were different from those in the <Preparation of Particulate Polymer (A1)> step in Example 1. Specifically, 37.1 parts of styrene as an aromatic vinyl monomer, 13.8 parts of butyl acrylate as a (meth)acrylic acid ester monomer, 0.26 parts of ethylene glycol dimethacrylate as a crosslinkable monomer, and 1 part of t-butyl peroxy-2-ethylhexanoate (manufactured by NOF Corporation, "Perbutyl O") as a polymerization initiator were added. Except for these points, the same procedure as in Example 1 was carried out to prepare particulate polymer (A4) with a volume-average particle size (Dv) of 4 μm and a particle size distribution (Dv / Dn) of 1.02.

[0120] (Example 6) In the <Preparation of Composition for Electrochemical Element Functional Layer> step, particulate polymer (A5) prepared as described below was used instead of particulate polymer (A1), and the volume mixing ratio of inorganic particles (alumina) as nonconductive heat-resistant particles to particulate polymer (A5) was changed to 7:3 (nonconductive heat-resistant particles / particulate polymer ≈ 2.3 times), thereby changing the thickness of the nonconductive heat-resistant particle layer contained in the resulting functional layer to 2 μm as shown in Table 1. Otherwise, various operations, measurements, and evaluations were carried out in the same manner as in Example 1. The results are shown in Table 1. <Preparation of particulate polymer (A5)> The amounts of various monomers and polymerization initiators added during the preparation of the particulate polymer were different from those in the <Preparation of Particulate Polymer (A1)> step in Example 1. Specifically, 15.7 parts of styrene as an aromatic vinyl monomer, 5.8 parts of butyl acrylate as a (meth)acrylic acid ester monomer, 0.11 parts of ethylene glycol dimethacrylate as a crosslinkable monomer, and 0.4 parts of t-butyl peroxy-2-ethylhexanoate (manufactured by NOF Corporation, "Perbutyl O") as a polymerization initiator were added. Except for these points, the same procedure as in Example 1 was carried out to prepare particulate polymer (A5) with a volume-average particle size (Dv) of 3 μm and a particle size distribution (Dv / Dn) of 1.02.

[0121] (Example 7) In the <Preparation of Composition for Electrochemical Element Functional Layer> step, the inorganic particles used as non-conductive heat-resistant particles were changed to boehmite (Showa Denko Corporation, "H43M", volume-average particle diameter: 0.8 μm). Otherwise, the same operations, measurements, and evaluations as in Example 1 were performed. The results are shown in Table 1.

[0122] (Example 8) In the <Preparation of Composition for Electrochemical Element Functional Layer> step, the inorganic particles used as non-conductive heat-resistant particles were changed to barium sulfate (Takehara Chemical Co., Ltd., "TS-2", volume-average particle size: 0.3 μm). Otherwise, the same operations, measurements, and evaluations as in Example 1 were performed. The results are shown in Table 1.

[0123] (Example 9) In the <Preparation of Composition for Electrochemical Element Functional Layer> step, the inorganic particles used as non-conductive heat-resistant particles were changed to magnesium hydroxide (Kamishima Chemical Industry Co., Ltd., "Magseas X-6F", volume-average particle size: 0.7 μm). Otherwise, the same operations, measurements, and evaluations as in Example 1 were performed. The results are shown in Table 1.

[0124] (Example 10) In the <Preparation of Composition for Electrochemical Element Functional Layer> step, the same operations, measurements, and evaluations as in Example 1 were performed, except that the inorganic particles used as non-conductive heat-resistant particles were replaced with organic particles prepared according to the following procedure. The results are shown in Table 1. <Preparation of organic particles as non-conductive heat-resistant particles> In reactor A, equipped with a stirrer, 0.20 parts sodium dodecyl sulfate, 0.30 parts ammonium persulfate, and 180 parts deionized water were added and mixed to form a mixture, which was then heated to 65°C. Meanwhile, in a separate container, 80.0 parts n-butyl acrylate, 10.0 parts methacrylic acid, 10.0 parts acrylonitrile, 0.8 parts sodium dodecyl sulfate, and 40 parts deionized water were mixed to prepare a monomer composition for seed particles. This monomer composition for seed particles was continuously added to reactor A over 4 hours to carry out the polymerization reaction. The temperature inside the reactor was maintained at 65°C during the continuous addition of the monomer composition for seed particles. After the continuous addition was completed, the polymerization reaction was continued at 80°C for another 3 hours. This yielded an aqueous dispersion of seed particles. The volume-average particle size of the seed particles was measured using the same method as for measuring the volume-average particle size of the particulate polymer and binder, and was found to be 120 nm. Next, in a reactor equipped with a stirrer, 20 parts of the above-mentioned aqueous dispersion of seed particles (16 parts of n-butyl acrylate units, 2 parts of methacrylic acid units, and 2 parts of acrylonitrile units) were added, along with 80 parts of ethylene glycol dimethacrylate (Kyoeisha Chemical Co., Ltd., product name "Light Ester EG") as a polyfunctional ethylenically unsaturated monomer, 0.8 parts of sodium dodecylbenzenesulfonate, 3.2 parts of t-butyl peroxy-2-ethylhexanoate (NOF Co., Ltd., product name "Perbutyl O") as a polymerization initiator, and 160 parts of deionized water. The mixture was stirred at 35°C for 12 hours to allow the seed particles to completely absorb the polyfunctional ethylenically unsaturated monomer and polymerization initiator. Subsequently, the temperature in the reactor was maintained at 90°C, and a polymerization reaction (seed polymerization) was carried out for 5 hours to obtain an aqueous dispersion of organic particles. The volume-average particle size of the obtained organic particles was 200 nm, and the glass transition temperature was over 200°C. Furthermore, the volume-average particle size and glass transition temperature of the organic particles were measured using the same method as when measuring the volume-average particle size of the particulate polymer and binder.

[0125] (Example 11) In the <Preparation of Composition for Electrochemical Element Functional Layer> step, particulate polymer (A6) prepared as described below was used instead of particulate polymer (A1), and the volume mixing ratio of inorganic particles (alumina) as nonconductive heat-resistant particles to particulate polymer (A1) was changed to 7:3 (nonconductive heat-resistant particles / particulate polymer ≈ 2.3 times), thereby changing the thickness of the nonconductive heat-resistant particle layer contained in the resulting functional layer to 2 μm as shown in Table 1. Otherwise, various operations, measurements, and evaluations were carried out in the same manner as in Example 1. The results are shown in Table 1. <Preparation of particulate polymer (A6)> The amounts of various monomers and polymerization initiators added during the preparation of the particulate polymer were different from those in the <Preparation of Particulate Polymer (A1)> step in Example 1. Specifically, 125.3 parts of styrene as an aromatic vinyl monomer, 46.7 parts of butyl acrylate as a (meth)acrylic acid ester monomer, 0.86 parts of ethylene glycol dimethacrylate as a crosslinkable monomer, and 3 parts of t-butyl peroxy-2-ethylhexanoate (manufactured by NOF Corporation, "Perbutyl O") as a polymerization initiator were added. Except for these points, the same procedure as in Example 1 was carried out to prepare particulate polymer (A6) with a volume-average particle size Dv of 6 μm and a particle size distribution (Dv / Dn) of 1.02.

[0126] (Comparative Example 1) In the <Preparation of Composition for Electrochemical Element Functional Layer> step, particulate polymer (B), prepared using a suspension polymerization method without classification, was used instead of particulate polymer (A) as described below. Otherwise, the same operations, measurements, and evaluations as in Example 1 were performed. The results are shown in Table 1. <Preparation of particulate polymer (B)> In the <Preparation of particulate polymer (A3)> step described in Example 3, particulate polymer (B) was prepared by omitting the classification using a classifier. The obtained particulate polymer (B) had a volume-average particle size (Dv) of 5 μm and a particle size distribution (Dv / Dn) of 1.34.

[0127] In Table 1, "St" indicates the styrene unit. "BA" indicates the butyl acrylate unit. "EGDMA" refers to the ethylene glycol dimethacrylate unit. "Dv" indicates the volume-average particle size of the particulate polymer. "Dn" indicates the number-average particle size of the particulate polymer.

[0128] [Table 1]

[0129] Table 1 shows that in Examples 1 to 11, which used a functional layer composition for an electrochemical element containing non-conductive heat-resistant particles and a particulate polymer, wherein the particle size distribution value (Dv / Dn) of the particulate polymer is 1.00 or more and less than 1.10, it was possible to form a functional layer that exhibits excellent dry and wet adhesion, as well as providing the electrochemical element with excellent output characteristics and cycle characteristics. Furthermore, in Comparative Example 1, which used a functional layer composition comprising a particulate polymer with a particle size distribution value (Dv / Dn) of 1.10 or higher and non-conductive heat-resistant particles, it was found that a functional layer capable of providing excellent dry and wet adhesion, as well as excellent output and cycle characteristics to an electrochemical element, could not be formed. [Industrial applicability]

[0130] According to the present invention, it is possible to provide a functional layer composition that has excellent adhesive properties and can form a functional layer that can impart excellent output characteristics and cycle characteristics to an electrochemical element. Furthermore, according to the present invention, it is possible to provide a functional layer for electrochemical elements that has excellent adhesive properties and can impart excellent output characteristics and cycle characteristics to the electrochemical element. Furthermore, according to the present invention, it is possible to provide a laminate for electrochemical elements that can impart excellent output characteristics and cycle characteristics to the electrochemical elements. Furthermore, according to the present invention, it is possible to provide an electrochemical element that can exhibit excellent output characteristics and cycle characteristics.

Claims

1. A composition for an electrochemical element functional layer comprising non-conductive heat-resistant particles and a particulate polymer, Let Dv be the volume-average particle diameter of the particulate polymer, and Dn be the number-average particle diameter. The particle size distribution value expressed as Dv / Dn is 1.00 or greater and less than 1.

10. The volume-average particle diameter Dv of the particulate polymer is 3.0 μm or more and 10.0 μm or less, and the functional layer is a heat-resistant adhesive layer. Composition for the functional layer of an electrochemical element.

2. The electrochemical element functional layer composition according to claim 1, wherein the volume-average particle diameter Dv of the particulate polymer is 5 μm or less.

3. The electrochemical element functional layer composition according to claim 1 or 2, wherein the glass transition temperature of the particulate polymer is 10°C or higher and 90°C or lower.

4. The electrochemical element functional layer composition according to any one of claims 1 to 3, wherein the particulate polymer contains (meth)acrylic acid ester monomer units.

5. The electrochemical element functional layer composition according to any one of claims 1 to 4, further comprising a binder.

6. The electrochemical element functional layer composition according to claim 5, wherein the binder is a particulate binder with a lower glass transition temperature than the particulate polymer.

7. The electrochemical element functional layer composition according to any one of claims 1 to 6, wherein the nonconductive heat-resistant particles include inorganic particles.

8. The electrochemical element functional layer composition according to claim 7, wherein the inorganic particles include at least one of alumina, boehmite, barium sulfate, and magnesium hydroxide.

9. A functional layer for an electrochemical element formed using the composition for an electrochemical element functional layer described in any one of claims 1 to 8, wherein the functional layer for an electrochemical element includes a non-conductive heat-resistant particle layer containing the non-conductive heat-resistant particles.

10. The functional layer for an electrochemical element according to claim 9, wherein the value obtained by dividing the volume-average particle diameter Dv of the particulate polymer by the thickness of the non-conductive heat-resistant particle layer is 0.75 or more and 4.00 or less.

11. The functional layer for an electrochemical element according to claim 10, wherein the value obtained by dividing the volume-average particle diameter Dv of the particulate polymer by the thickness of the non-conductive heat-resistant particle layer is greater than 1.

00.

12. The functional layer for an electrochemical element according to any one of claims 9 to 11, wherein the embedding rate of the particulate polymer in the nonconductive heat-resistant particle layer is 30% or less.

13. A laminate for an electrochemical element, wherein a functional layer for an electrochemical element according to any one of claims 9 to 12 is laminated on a substrate.

14. An electrochemical element comprising a functional layer for an electrochemical element according to any one of claims 9 to 12.

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