Slurry composition for all-solid-state secondary battery, solid electrolyte-containing layer and all-solid-state secondary battery

The use of a core-shell structured particulate polymer in the slurry composition for all-solid-state secondary batteries enhances the output and cycle characteristics by forming a high-density solid electrolyte-containing layer with improved peel strength.

JP7768129B2Active Publication Date: 2025-11-12ZEON CORP
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Patent Information

Application Number
JP2022526597
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-05-29
Filing Date
2021-05-25
Publication Date
2025-11-12
Estimated Expiration
2041-05-25

AI Technical Summary

Technical Problem

Conventional slurry compositions for all-solid-state secondary batteries do not adequately enhance the output characteristics and cycle characteristics of the batteries, particularly in the formation of solid electrolyte-containing layers.

Method used

A slurry composition containing a particulate polymer with a core-shell structure, where the core has a glass transition temperature between -60°C and -10°C, and the shell has a glass transition temperature between 15°C and 100°C, with a nitrogen-functional group-containing monomer unit content between 10% and 90% by mass, is used to form a solid electrolyte-containing layer.

Benefits of technology

The composition enables the formation of a high-density solid electrolyte-containing layer with improved peel strength, ensuring excellent output characteristics and cycle characteristics of the all-solid-state secondary battery.

✦ Generated by Eureka AI based on patent content.

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Abstract

The purpose of the present invention is to provide a slurry composition for all-solid-state secondary batteries, said slurry composition being capable of forming a solid electrolyte-containing layer that enables an all-solid-state secondary battery to exhibits excellent output characteristics and excellent cycle characteristics. A slurry composition according to the present invention contains a solid electrolyte, a particulate polymer and an organic solvent. The particulate polymer has a core / shell structure which comprises a core part and a shell part that covers at least a part of the outer surface of the core part; a polymer that constitutes the core part has a glass transition temperature of from -60°C to -10°C; and a polymer that constitutes the shell part has a glass transition temperature of from 15°C to 100°C. In addition, the polymer that constitutes the shell part contains from 10% by mass to 90% by mass of a nitrogen functional group-containing monomer unit.
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Description

[Technical Field]

[0001] The present invention relates to a slurry composition for an all-solid-state secondary battery, a solid electrolyte-containing layer, and an all-solid-state secondary battery. [Background technology]

[0002] In recent years, demand for secondary batteries such as lithium-ion secondary batteries has been increasing for a variety of applications, including not only portable terminals such as personal digital assistants and portable electronic devices, but also small-sized home power storage devices, motorcycles, electric vehicles, hybrid electric vehicles, etc. As the range of applications expands, further improvements in the safety of secondary batteries are being demanded.

[0003] Therefore, as a secondary battery with high safety, all-solid-state secondary batteries using solid electrolytes instead of organic solvent electrolytes, which are highly flammable and have a high risk of catching fire when they leak, are attracting attention.

[0004] Here, the all-solid-state secondary battery has a positive electrode, a negative electrode, and a solid electrolyte layer located between the positive electrode and the negative electrode. The electrodes (positive electrode, negative electrode) of the all-solid-state secondary battery are formed, for example, by applying a slurry composition containing an electrode active material (positive electrode active material, negative electrode active material), a binder, and a solid electrolyte onto a current collector, and then drying the applied slurry composition to provide an electrode composite layer (positive electrode composite layer, negative electrode composite layer) on the current collector. The solid electrolyte layer of the all-solid-state secondary battery is formed, for example, by applying a slurry composition containing a binder and a solid electrolyte onto an electrode or a release substrate, and then drying the applied slurry composition.

[0005] For example, Patent Documents 1 and 2 propose the use of a slurry composition for an all-solid-state secondary battery containing a particulate polymer having a core-shell structure as a binder. [Prior art documents] [Patent documents]

[0006] [Patent Document 1] Japanese Patent Application Laid-Open No. 2015-159067 [Patent Document 2] International Publication No. 2012 / 173089 Summary of the Invention [Problem to be solved by the invention]

[0007] However, the conventional slurry compositions for all-solid-state secondary batteries described above have room for improvement in terms of enabling the all-solid-state secondary battery to exhibit excellent output characteristics and cycle characteristics by using a layer containing a solid electrolyte, such as a solid electrolyte layer or an electrode mixture layer (hereinafter referred to as a "solid electrolyte-containing layer") formed using the slurry composition.

[0008] Therefore, an object of the present invention is to provide a slurry composition for an all-solid-state secondary battery that can form a solid electrolyte-containing layer that can enable the all-solid-state secondary battery to exhibit excellent output characteristics and cycle characteristics. Another object of the present invention is to provide a solid electrolyte-containing layer that can enable an all-solid-state secondary battery to exhibit excellent output characteristics and cycle characteristics. Another object of the present invention is to provide an all-solid-state secondary battery that is excellent in output characteristics and cycle characteristics. [Means for solving the problem]

[0009] The present inventors have conducted extensive research to solve the above problems, and have newly discovered that an all-solid-state secondary battery can exhibit excellent output characteristics and cycle characteristics by forming a solid electrolyte-containing layer using a slurry composition containing a solid electrolyte, a particulate polymer having a core-shell structure, and an organic solvent, the core and shell of the particulate polymer being composed of predetermined polymers, and have completed the present invention.

[0010] That is, the present invention has an object to advantageously solve the above-mentioned problems, and provides a slurry composition for an all-solid-state secondary battery, comprising a solid electrolyte, a particulate polymer, and an organic solvent, wherein the particulate polymer has a core-shell structure including a core portion and a shell portion covering at least a part of the outer surface of the core portion, the polymer constituting the core portion having a glass transition temperature of -60°C or more and -10°C or less, the polymer constituting the shell portion having a glass transition temperature of 15°C or more and 100°C or less, the polymer constituting the shell portion containing a nitrogen functional group-containing monomer unit, and the amount of the nitrogen functional group-containing monomer unit contained in the polymer constituting the shell portion is 10% by mass or more and 90% by mass or less, assuming that the total repeating units of the polymer constituting the shell portion is 100% by mass. When a solid electrolyte-containing layer is formed using a slurry composition containing, as a binder, a particulate polymer having a core-shell structure in which the glass transition temperatures of the polymer constituting the core portion and the polymer constituting the shell portion (hereinafter, these may be referred to as the "core portion polymer" and the "shell portion polymer," respectively) are within the above-mentioned ranges, and the content ratio of the nitrogen-functional group-containing monomer unit in the shell portion polymer is within the above-mentioned range, the all-solid-state secondary battery can exhibit excellent output characteristics and cycle characteristics. In the present invention, the "glass transition temperature" of the polymer can be measured by the method described in the examples. In the present invention, "containing a monomer unit" means that "a polymer obtained using the monomer contains a repeating unit derived from the monomer." In the present invention, the amount of a specific repeating unit in a polymer is 1 H-NMR and 13 It can be measured using nuclear magnetic resonance (NMR) techniques such as C-NMR.

[0011] Here, in the slurry composition for an all-solid-state secondary battery of the present invention, the proportion of the shell portion in the total of the core portion and the shell portion is preferably 10% by mass or more and 25% by mass or less. If the proportion of the shell portion in the total of the core portion and the shell portion is within the above-mentioned range, the solid electrolyte-containing layer can be sufficiently densified even with a low pressing pressure (i.e., the pressing property of the solid electrolyte-containing layer is improved). In addition, the peel strength of the obtained solid electrolyte-containing layer can be increased, and the output characteristics and cycle characteristics of the all-solid-state secondary battery can be further improved.

[0012] In addition, in the slurry composition for an all-solid-state secondary battery of the present invention, it is preferable that the particulate polymer contains a crosslinkable monomer unit, and the amount of the crosslinkable monomer unit contained in the particulate polymer is 0.1% by mass or more and less than 2.0% by mass, with the total repeating units of the particulate polymer being 100% by mass. If the content ratio of the crosslinkable monomer unit in the particulate polymer is within the above-mentioned range, the output characteristics and cycle characteristics of the all-solid-state secondary battery can be further improved.

[0013] The slurry composition for an all-solid-state secondary battery of the present invention preferably further contains an electrode active material. By using a slurry composition for an all-solid-state secondary battery containing an electrode active material, an electrode mixture layer can be formed satisfactorily.

[0014] Here, the slurry composition for an all-solid-state secondary battery of the present invention preferably further contains a conductive material. If a conductive material is further contained in the slurry composition for an all-solid-state secondary battery containing an electrode active material, the electrical resistance of the electrode mixture layer formed using the slurry composition can be effectively reduced, and the output characteristics and cycle characteristics can be further improved.

[0015] The present invention also aims to advantageously solve the above-mentioned problems, and the solid electrolyte-containing layer of the present invention is characterized by being formed using any of the above-mentioned slurry compositions for all-solid-state secondary batteries. The solid electrolyte-containing layer formed using the above-mentioned slurry composition for all-solid-state secondary batteries can enable the all-solid-state secondary battery to exhibit excellent output characteristics and cycle characteristics.

[0016] Furthermore, the present invention aims to advantageously solve the above-mentioned problems, and provides an all-solid-state secondary battery comprising the above-mentioned solid electrolyte-containing layer. The all-solid-state secondary battery comprising the above-mentioned solid electrolyte-containing layer has excellent cell characteristics such as output characteristics and cycle characteristics. [Effects of the Invention]

[0017] According to the present invention, it is possible to provide a slurry composition for an all-solid-state secondary battery that can form a solid electrolyte-containing layer that can enable an all-solid-state secondary battery to exhibit excellent output characteristics and cycle characteristics. Furthermore, according to the present invention, it is possible to provide a solid electrolyte-containing layer that can enable an all-solid-state secondary battery to exhibit excellent output characteristics and cycle characteristics. Furthermore, according to the present invention, it is possible to provide an all-solid-state secondary battery that is excellent in output characteristics and cycle characteristics. [Brief explanation of the drawings]

[0018] [Figure 1] 1 is a cross-sectional view schematically showing the structure of an example of a particulate polymer contained in a slurry composition for an all-solid-state secondary battery of the present invention. FIG. DETAILED DESCRIPTION OF THE INVENTION

[0019] Hereinafter, embodiments of the present invention will be described in detail. The slurry composition for an all-solid-state secondary battery of the present invention is used to form a solid electrolyte-containing layer such as an electrode mixture layer or a solid electrolyte layer used in an all-solid-state secondary battery such as an all-solid-state lithium-ion secondary battery. In the all-solid-state secondary battery of the present invention, at least one layer selected from the group consisting of a positive electrode mixture layer of a positive electrode, a negative electrode mixture layer of a negative electrode, and a solid electrolyte layer is composed of the solid electrolyte-containing layer of the present invention formed using the slurry composition for an all-solid-state secondary battery of the present invention.

[0020] (Slurry composition for all-solid-state secondary battery) The slurry composition of the present invention comprises a solid electrolyte, a particulate polymer, and an organic solvent, and may further contain at least one selected from the group consisting of an electrode active material, a conductive material, and other components. In the slurry composition of the present invention, the particulate polymer has a core-shell structure with a core portion made of a polymer having a glass transition temperature of from -60°C to -10°C and a shell portion made of a polymer having a glass transition temperature of from 15°C to 100°C, and the amount of nitrogen-functional group-containing monomer units in the polymer of the shell portion must be from 10% to 90% by mass, with the total repeating units of the polymer of the shell portion being 100% by mass.

[0021] The slurry composition of the present invention contains a solid electrolyte and a particulate polymer as a binder, and therefore can be used to form a solid electrolyte-containing layer such as an electrode mixture layer or a solid electrolyte layer.

[0022] The solid electrolyte-containing layer formed using the slurry composition of the present invention can enable the all-solid-state secondary battery to exhibit excellent output characteristics and cycle characteristics. The reason for this is not clear, but is presumed to be as follows. First, the particulate polymer contained in the slurry composition of the present invention has a core-shell structure, and the core of the core-shell structure is formed of a polymer with a low glass transition temperature, and the shell is formed of a polymer with a high glass transition temperature. Therefore, when the solid electrolyte-containing layer obtained by drying the slurry composition is pressed, the core easily softens, allowing the solid electrolyte-containing layer to be sufficiently densified even at low temperatures (i.e., the pressability of the solid electrolyte-containing layer is ensured), while the shell is difficult to soften, preventing the surfaces of the solid electrolyte and any electrode active material from being excessively coated with the polymer component. In addition, the nitrogen-containing functional group of the polymer in the shell portion has good adhesiveness to the solid electrolyte, and therefore, a shell portion containing a predetermined amount of nitrogen-containing monomer units can form a solid electrolyte-containing layer with excellent peel strength. That is, according to the slurry composition of the present invention, the surface of the solid electrolyte (and electrode active material) is not excessively coated with the polymer component due to the contribution of the above-mentioned specific particulate polymer, and a high-density solid electrolyte-containing layer having excellent peel strength can be formed. It is considered that a solid electrolyte-containing layer having such properties can improve the output characteristics and cycle characteristics of an all-solid-state secondary battery.

[0023] When the slurry composition of the present invention is used to form an electrode mixture layer (i.e., when it is a slurry composition for an all-solid-state secondary battery electrode), it usually contains a solid electrolyte, a predetermined particulate polymer, an organic solvent, and an electrode active material, and optionally further contains at least one selected from the group consisting of a conductive material and other components. Furthermore, when the slurry composition of the present invention is used to form a solid electrolyte layer (i.e., when it is a slurry composition for a solid electrolyte layer of an all-solid-state secondary battery), it usually does not contain an electrode active material or a conductive material, but contains a solid electrolyte, a predetermined particulate polymer, and an organic solvent, and optionally further contains other components.

[0024] <Solid electrolyte> The solid electrolyte is not particularly limited as long as it is made of particles made of a solid having ion conductivity, but inorganic solid electrolytes can be preferably used. The inorganic solid electrolyte is not particularly limited, and a crystalline inorganic ion conductor, an amorphous inorganic ion conductor, or a mixture thereof can be used. For example, when the all-solid-state secondary battery is an all-solid-state lithium ion secondary battery, the inorganic solid electrolyte can usually be a crystalline inorganic lithium ion conductor, an amorphous inorganic lithium ion conductor, or a mixture thereof. In particular, from the viewpoint of forming a solid electrolyte-containing layer having excellent ion conductivity to further improve the output characteristics and cycle characteristics of the all-solid-state secondary battery, it is preferable that the inorganic solid electrolyte contains at least one of a sulfide-based inorganic solid electrolyte and an oxide-based inorganic solid electrolyte. In the following, a case where the slurry composition for an all-solid-state secondary battery is a slurry composition for an all-solid-state lithium-ion secondary battery will be described as an example, but the present invention is not limited to the following example.

[0025] As crystalline inorganic lithium ion conductors, Li3N, LISICON (Li 14 Zn(GeO4)4), perovskite type (e.g., Li 0.5 La 0.5 TiO3), garnet type (e.g. Li7La3Zr2O 12 ), LIPON(Li 3+y PO 4-x N x ), Thio-LISICON(Li 3.25 Ge 0.25 P 0.75 S4), argyrodite type (Li 7-x PS 6-x X x X may be Cl, Br, or I. The above-mentioned crystalline inorganic lithium ion conductors can be used alone or in combination of two or more.

[0026] Furthermore, examples of amorphous inorganic lithium ion conductors include substances that contain sulfur atoms and have ion conductivity, and more specifically, examples include glass Li-Si-SO, Li-PS, and those made using a raw material composition containing LiS and a sulfide of an element of Groups 13 to 15 of the periodic table. Examples of the elements of Groups 13 to 15 include Al, Si, Ge, P, As, and Sb. Specific examples of sulfides of elements of Groups 13 to 15 include Al2S3, SiS2, GeS2, P2S3, P2S5, As2S3, and Sb2S3. Examples of methods for synthesizing amorphous inorganic lithium ion conductors using raw material compositions include amorphization methods such as mechanical milling and melt quenching. Examples of amorphous inorganic lithium ion conductors obtained using raw material compositions containing Li2S and sulfides of elements of Groups 13 to 15 of the periodic table include Li2S-P2S5, Li2S-SiS2, Li2S-GeS2, and Li2S-Al2S3, and more preferably Li2S-P2S5. The amorphous inorganic lithium ion conductors described above can be used alone or in combination of two or more.

[0027] Among the above, as the inorganic solid electrolyte for the all-solid-state lithium ion secondary battery, from the viewpoint of forming a solid electrolyte-containing layer having more excellent ion conductivity and further improving the output characteristics and cycle characteristics of the all-solid-state secondary battery, an amorphous sulfide containing Li and P, Li7La3Zr2O 12 Amorphous sulfides containing Li and P, and Li7La3Zr2O 12 Since lithium ion conductivity is high, when used as an inorganic solid electrolyte, the internal resistance of a battery can be reduced and the output characteristics and cycle characteristics can be improved.

[0028] From the viewpoint of improving the output characteristics and cycle characteristics of all-solid-state secondary batteries, the amorphous sulfide containing Li and P is preferably a sulfide glass composed of Li2S and P2S5, and particularly preferably a sulfide glass produced from a mixed raw material of Li2S and P2S5 in a Li2S:P2S5 molar ratio of 65:35 to 85:15. The amorphous sulfide containing Li and P is preferably a sulfide glass ceramic obtained by mechanochemically reacting a mixed raw material of Li2S and P2S5 in a Li2S:P2S5 molar ratio of 65:35 to 85:15. From the viewpoint of maintaining high lithium ion conductivity, the mixed raw material preferably has a Li2S:P2S5 molar ratio of 68:32 to 80:20.

[0029] In addition to the Li2S and P2S5, the inorganic solid electrolyte may contain at least one sulfide selected from the group consisting of Al2S3, B2S3, and SiS2 as a starting material, to the extent that the ionic conductivity is not reduced. Addition of such a sulfide can stabilize the glass component in the inorganic solid electrolyte. Similarly, the inorganic solid electrolyte may contain, in addition to Li2S and P2S5, at least one lithium ortho-oxo-oxide selected from the group consisting of Li3PO4, Li4SiO4, Li4GeO4, Li3BO3, and Li3AlO3. The inclusion of such a lithium ortho-oxo-oxide can stabilize the glass component in the inorganic solid electrolyte.

[0030] The above-mentioned solid electrolytes can be used alone or in combination of two or more. The particle size of the above-mentioned solid electrolyte is not particularly limited and can be the same as that of conventionally used solid electrolytes.

[0031] <Particulate polymer> The particulate polymer is a component that can function as a binder in the solid electrolyte-containing layer formed using the slurry composition of the present invention.

[0032] <<Core-shell structure>> The particulate polymer has a core-shell structure including a core and a shell covering the outer surface of the core. The shell may cover part of the outer surface of the core, or may cover the entire outer surface of the core.

[0033] The cross-sectional structure of an example of a particulate polymer is shown in Fig. 1. In Fig. 1, the particulate polymer 100 has a core-shell structure comprising a core portion 110 and a shell portion 120. Here, the core portion 110 is a portion of the particulate polymer 100 that is located more inward than the shell portion 120. The shell portion 120 is a portion that covers the outer surface 110S of the core portion 110, and is usually the outermost portion of the particulate polymer 100. In the example of Fig. 1, the shell portion 120 covers the entire outer surface 110S of the core portion 110.

[0034] The particulate polymer may have any component other than the core and shell as described above, as long as the intended effect is not significantly impaired. Specifically, for example, the particulate polymer may have a portion formed of a polymer different from the core inside the core. As a specific example, seed particles used when producing the particulate polymer by seed polymerization may remain inside the core.

[0035] Furthermore, in a particulate polymer having a core-shell structure, the proportion of the shell portion in the total of the core portion and the shell portion, where the total of the core portion and the shell portion is 100% by mass, is preferably 10% by mass or more, more preferably 12% by mass or more, even more preferably 14% by mass or more, and preferably 25% by mass or less, more preferably 23% by mass or less, even more preferably 21% by mass or less, and particularly preferably 20% by mass or less. When the proportion of the shell portion in the total of the core portion and the shell portion is 10% by mass or more, excessive coverage of the solid electrolyte and optionally contained electrode active material by the polymer component is sufficiently suppressed, thereby further improving the output characteristics of the all-solid-state secondary battery. On the other hand, when the proportion of the shell portion in the total of the core portion and the shell portion is 25% by mass or less, the flexibility of the particulate polymer is sufficiently ensured, thereby improving the pressability and peel strength of the solid electrolyte-containing layer. As a result, the cycle characteristics of the all-solid-state secondary battery can be further improved.

[0036] <<Glass transition temperature>> The particulate polymer must have a glass transition temperature of -60°C or higher and -10°C or lower, preferably -55°C or higher, more preferably -50°C or higher, even more preferably -43°C or higher, preferably -15°C or lower, more preferably -20°C or lower, and even more preferably -32°C or lower. If the glass transition temperature of the core polymer is lower than -60°C, the strength of the particulate polymer binder is impaired, resulting in a decrease in the cycle characteristics of the all-solid-state secondary battery. On the other hand, if the glass transition temperature of the core polymer is higher than -10°C, the particulate polymer binder becomes excessively hard, resulting in a decrease in the pressability and peel strength of the solid electrolyte-containing layer. As a result, the output characteristics and cycle characteristics of the all-solid-state secondary battery are reduced.

[0037] Furthermore, the particulate polymer must have a glass transition temperature of 15°C or higher and 100°C or lower, preferably 30°C or higher, more preferably 39°C or higher, and even more preferably 45°C or higher, and preferably 95°C or lower, more preferably 90°C or lower, and even more preferably 75°C or lower. If the glass transition temperature of the shell polymer is lower than 15°C, the surfaces of the solid electrolyte and any optional electrode active material will be excessively coated with the polymer component, resulting in a decrease in the output characteristics of the all-solid-state secondary battery. On the other hand, if the shell polymer glass transition temperature is higher than 100°C, the peel strength of the solid electrolyte-containing layer will be impaired, and the output characteristics and cycle characteristics of the all-solid-state secondary battery will be reduced.

[0038] The glass transition temperature of the polymer can be controlled, for example, by changing the type and / or amount of the monomer used in preparing the polymer.

[0039] <<Composition>> [Core] Here, the polymer constituting the core portion is not particularly limited as long as the glass transition temperature is within the above-mentioned range, but it is preferable that the polymer contains at least one selected from the group consisting of a conjugated diene monomer unit, an alkylene structural unit, and a (meth)acrylic acid ester monomer unit. In the present invention, "(meth)acrylic" means acrylic and / or methacrylic.

[0040] -Conjugated diene monomer unit- Conjugated diene monomers that can form the conjugated diene monomer units of the core polymer are not particularly limited, and examples thereof include 1,3-butadiene, 2-methyl-1,3-butadiene (isoprene), and 2,3-dimethyl-1,3-butadiene. Among these, 1,3-butadiene is preferred. Note that the conjugated diene monomers may be used alone or in combination of two or more at any ratio.

[0041] -Alkylene structural unit- The alkylene structural unit optionally contained in the core polymer is represented by the general formula: -C n H 2n - [where n is an integer of 2 or more]. The alkylene structural unit may be linear or branched, but is preferably linear, i.e., a linear alkylene structural unit. The method for introducing the alkylene structural unit into the polymer is not particularly limited, but may be, for example, the following method (1) or (2): (1) A method of preparing a polymer from a monomer composition containing a conjugated diene monomer and converting the conjugated diene monomer unit into an alkylene structural unit by hydrogenating the polymer. (2) A method for preparing a polymer from a monomer composition containing a 1-olefin monomer Examples include:

[0042] The conjugated diene monomer may be any of the conjugated diene monomers listed above as conjugated diene monomers capable of forming conjugated diene monomer units. Among these, 1,3-butadiene is preferred. That is, the alkylene structural unit obtained by the method (1) above is preferably a structural unit (conjugated diene hydride unit) obtained by hydrogenating a conjugated diene monomer unit, and more preferably a structural unit (1,3-butadiene hydride unit) obtained by hydrogenating a 1,3-butadiene unit. The selective hydrogenation of the conjugated diene monomer unit can be carried out using a known method such as an oil phase hydrogenation method or an aqueous phase hydrogenation method. Examples of the 1-olefin monomer include ethylene, propylene, 1-butene, and 1-hexene, with ethylene being preferred. These conjugated diene monomers and 1-olefin monomers may be used singly or in combination of two or more kinds in any ratio.

[0043] -(Meth)acrylic acid ester monomer unit- Examples of (meth)acrylic acid ester monomers that can form the (meth)acrylic acid ester monomer units of the core polymer include methyl acrylate, ethyl acrylate, n-propyl acrylate, isopropyl acrylate, n-butyl acrylate, t-butyl acrylate, isobutyl acrylate, n-pentyl acrylate, isopentyl acrylate, hexyl acrylate, heptyl acrylate, octyl acrylate, 2-ethylhexyl acrylate, nonyl acrylate, decyl acrylate, lauryl acrylate, n-tetradecyl acrylate, and stearyl acrylate. Examples of the (meth)acrylic acid alkyl ester include methyl methacrylate, ethyl methacrylate, n-propyl methacrylate, isopropyl methacrylate, n-butyl methacrylate, t-butyl methacrylate, isobutyl methacrylate, n-pentyl methacrylate, isopentyl methacrylate, hexyl methacrylate, heptyl methacrylate, octyl methacrylate, 2-ethylhexyl methacrylate, nonyl methacrylate, decyl methacrylate, lauryl methacrylate, n-tetradecyl methacrylate, and stearyl methacrylate. Among these, n-butyl acrylate, ethyl acrylate, and 2-ethylhexyl acrylate are preferred. The (meth)acrylic acid ester monomer may be used alone or in combination of two or more in any ratio.

[0044] Here, the total amount of the conjugated diene monomer units, alkylene structural units, and (meth)acrylic acid ester monomer units contained in the core polymer is preferably 70% by mass or more, more preferably 80% by mass or more, even more preferably 90% by mass or more, particularly preferably 95% by mass or more, and preferably 99.5% by mass or less, based on 100% by mass of all repeating units of the core polymer. If the content of the above repeating units in the core polymer is 70% by mass or more, the pressability of the solid electrolyte-containing layer is ensured, and the cycle characteristics of the all-solid-state secondary battery are further improved. On the other hand, if the content of the above repeating units in the core polymer is 99.5% by mass or less, the strength of the particulate polymer serving as the binder is ensured, and the cycle characteristics of the all-solid-state secondary battery are further improved.

[0045] Furthermore, for example, when the core polymer contains (meth)acrylic acid ester monomer units, the amount of (meth)acrylic acid ester monomer units contained in the core polymer is preferably 70% by mass or more, more preferably 80% by mass or more, even more preferably 90% by mass or more, particularly preferably 95% by mass or more, and preferably 99.5% by mass or less, based on 100% by mass of all repeating units of the core polymer. If the content of (meth)acrylic acid ester monomer units in the core polymer is 70% by mass or more, the pressability of the solid electrolyte-containing layer is ensured, and the cycle characteristics of the all-solid-state secondary battery are further improved. On the other hand, if the content of (meth)acrylic acid ester monomer units in the core polymer is 99.5% by mass or less, the strength of the particulate polymer serving as a binder is ensured, and the cycle characteristics of the all-solid-state secondary battery are further improved.

[0046] -Other repeating units- The core polymer may contain repeating units (other repeating units) other than the above-mentioned conjugated diene monomer units, alkylene structural units, and (meth)acrylic acid ester monomer units. Examples of other repeating units that may be contained in the core polymer include crosslinkable monomer units, aromatic monovinyl monomer units, and nitrogen-functional group-containing monomer units. The core polymer may contain one type of other repeating unit, or may contain two or more types of other repeating units. The core polymer preferably contains a crosslinkable monomer unit as the other repeating unit.

[0047] The crosslinkable monomer capable of forming the crosslinkable monomer unit of the core polymer is not particularly limited, and may be a monomer capable of forming a crosslinked structure by polymerization. Examples of crosslinkable monomers include monomers that are typically thermally crosslinkable. More specifically, crosslinkable monomers having a thermally crosslinkable crosslinkable group and one olefinic double bond per molecule; and crosslinkable monomers having two or more olefinic double bonds per molecule.

[0048] Examples of the thermally crosslinkable crosslinkable group include an epoxy group, an oxetanyl group, and a combination thereof. Among these, the epoxy group is more preferred because it is easy to adjust the crosslinking and crosslink density.

[0049] Examples of crosslinkable monomers having an epoxy group as a thermally crosslinkable crosslinkable group and an olefinic double bond include unsaturated glycidyl ethers such as vinyl glycidyl ether, allyl glycidyl ether, butenyl glycidyl ether, and o-allylphenyl glycidyl ether; diene or polyene monoepoxides such as butadiene monoepoxide, chloroprene monoepoxide, 4,5-epoxy-2-pentene, 3,4-epoxy-1-vinylcyclohexene, and 1,2-epoxy-5,9-cyclododecadiene; 3,4 alkenyl epoxides such as 1,2-epoxy-1-butene, 1,2-epoxy-5-hexene, and 1,2-epoxy-9-decene; and glycidyl esters of unsaturated carboxylic acids such as glycidyl acrylate, glycidyl methacrylate, glycidyl crotonate, glycidyl 4-heptenoate, glycidyl sorbate, glycidyl linoleate, glycidyl 4-methyl-3-pentenoate, glycidyl ester of 3-cyclohexenecarboxylic acid, and glycidyl ester of 4-methyl-3-cyclohexenecarboxylic acid.

[0050] Furthermore, examples of crosslinkable monomers having an oxetanyl group as a thermally crosslinkable crosslinkable group and having an olefinic double bond include 3-((meth)acryloyloxymethyl)oxetane, 3-((meth)acryloyloxymethyl)-2-trifluoromethyloxetane, 3-((meth)acryloyloxymethyl)-2-phenyloxetane, 2-((meth)acryloyloxymethyl)oxetane, and 2-((meth)acryloyloxymethyl)-4-trifluoromethyloxetane. In the present invention, "(meth)acryloyl" means acryloyl and / or methacryloyl.

[0051] Further examples of crosslinkable monomers having two or more olefinic double bonds per molecule include allyl (meth)acrylate, ethylene glycol di(meth)acrylate, diethylene glycol di(meth)acrylate, triethylene glycol di(meth)acrylate, tetraethylene glycol di(meth)acrylate, trimethylolpropane tri(meth)acrylate, dipropylene glycol diallyl ether, polyglycol diallyl ether, triethylene glycol divinyl ether, hydroquinone diallyl ether, tetraallyloxyethane, trimethylolpropane diallyl ether, allyl or vinyl ethers of polyfunctional alcohols other than those mentioned above, and divinylbenzene. In the present invention, the term "(meth)acrylate" means acrylate and / or methacrylate.

[0052] The crosslinkable monomer may be used alone or in any combination of two or more in any ratio. Among these, from the viewpoint of further improving the output characteristics and cycle characteristics of the all-solid-state secondary battery, allyl methacrylate, ethylene glycol dimethacrylate, allyl glycidyl ether, and divinylbenzene are more preferred, and allyl methacrylate is even more preferred.

[0053] The amount of crosslinkable monomer units contained in the core polymer is preferably 0.1% by mass or more, more preferably 0.5% by mass or more, and even more preferably 0.7% by mass or more, and preferably 5.0% by mass or less, more preferably 3.0% by mass or less, and even more preferably 1.5% by mass or less, based on 100% by mass of all repeating units of the core polymer. If the content of the crosslinkable monomer units in the core polymer is within the above-mentioned range, the pressing properties and peel strength of the solid electrolyte-containing layer can be sufficiently ensured, and the output characteristics and cycle characteristics of the all-solid-state secondary battery can be further improved.

[0054] Examples of aromatic monovinyl monomers that can form the aromatic monovinyl monomer units of the core polymer include styrene, styrene sulfonic acid and its salts (e.g., sodium styrene sulfonate), α-methylstyrene, vinyltoluene, 4-(tert-butoxy)styrene, etc. The aromatic monovinyl monomers may be used alone or in combination of two or more at any ratio.

[0055] When the core polymer contains aromatic monovinyl monomer units, the amount of aromatic monovinyl monomer units contained in the core polymer is preferably 5% by mass or more, more preferably 10% by mass or more, and is preferably 30% by mass or less, more preferably 25% by mass or less, based on 100% by mass of all repeating units of the core polymer.

[0056] The nitrogen-functional group-containing monomer capable of forming the nitrogen-functional group-containing monomer unit of the core polymer can be the same as the nitrogen-functional group-containing monomer described later in the section "Shell Portion." The nitrogen-functional group-containing monomer may be used alone or in combination of two or more types in any ratio.

[0057] When the core polymer contains nitrogen-functional group-containing monomer units, the amount of nitrogen-functional group-containing monomer units contained in the core polymer is preferably 1% by mass or more, more preferably 2% by mass or more, and preferably 10% by mass or less, more preferably 7% by mass or less, based on 100% by mass of all repeating units of the core polymer.

[0058] [Shell part] The polymer constituting the shell portion must have a glass transition temperature within the above-mentioned range and must contain nitrogen-functional group-containing monomer units in a predetermined proportion.

[0059] -Nitrogen functional group-containing monomer units- The nitrogen-functional group-containing monomer capable of forming the nitrogen-functional group-containing monomer unit is not particularly limited as long as it is a monomer having a nitrogen-functional group, such as a cyano group, an amide group, or an amino group, i.e., a functional group containing a nitrogen atom. The nitrogen-functional group-containing monomer may have one type of nitrogen-functional group, or two or more types of nitrogen-functional groups, or may have one or two or more nitrogen-functional groups. Furthermore, in the present invention, as long as a certain monomer has a nitrogen-functional group, the monomer is considered to be a nitrogen-functional group-containing monomer even if it has a characteristic structure (e.g., functional group) other than the nitrogen-functional group. For example, even if a monomer having a nitrogen-functional group has an acidic group, an epoxy group, and / or an oxetanyl group, the monomer is considered to be a "nitrogen-functional group-containing monomer" rather than an "acidic group-containing monomer" or a "crosslinkable monomer."

[0060] Examples of the nitrogen functional group-containing monomer include a cyano group-containing monomer, an amide group-containing monomer, and an amino group-containing monomer.

[0061] Examples of the cyano group-containing monomer 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, and examples thereof include acrylonitrile; α-halogenoacrylonitriles such as α-chloroacrylonitrile and α-bromoacrylonitrile; and α-alkylacrylonitriles such as methacrylonitrile and α-ethylacrylonitrile.

[0062] The amide group-containing monomer may be an ethylenically unsaturated monomer having an amide group, such as N-vinylacetamide, (meth)acrylamide, N-methylol(meth)acrylamide, dimethyl(meth)acrylamide, diethyl(meth)acrylamide, hydroxyethyl(meth)acrylamide, N-methoxymethyl(meth)acrylamide, or dimethylaminopropyl(meth)acrylamide.

[0063] The amino group-containing monomer may be an ethylenically unsaturated monomer having an amino group, such as dimethylaminoethyl (meth)acrylate, diethylaminoethyl (meth)acrylate, aminoethyl vinyl ether, or dimethylaminoethyl vinyl ether.

[0064] The nitrogen-functional group-containing monomer may be used alone or in combination of two or more in any ratio, and among these, acrylonitrile, acrylamide, methacrylamide, and dimethylaminoethyl methacrylate are preferred from the viewpoint of further improving the output characteristics and cycle characteristics of the all-solid-state secondary battery.

[0065] The amount of nitrogen-containing monomer units contained in the shell polymer must be 10% by mass or more and 90% by mass or less, preferably 20% by mass or more, more preferably 30% by mass or more, even more preferably 39% by mass or more, and preferably 85% by mass or less, more preferably 80% by mass or less, and even more preferably 75% by mass or less, based on 100% by mass of all repeating units of the shell polymer. If the content of nitrogen-containing monomer units in the shell polymer is less than 10% by mass, the peel strength of the solid electrolyte-containing layer is impaired due to the small number of nitrogen-containing functional groups. On the other hand, if the content of nitrogen-containing monomer units in the shell polymer is more than 90% by mass, the peel strength of the solid electrolyte-containing layer is impaired, presumably due to reduced adhesion of the shell polymer to electrode active materials, etc. That is, when the shell polymer contains nitrogen-containing monomer units in the above-mentioned proportion, the solid electrolyte-containing layer exhibits good peel strength, which can contribute to improving the output characteristics and cycle characteristics of all-solid-state secondary batteries.

[0066] -Other repeating units- The polymer of the shell portion contains repeating units (other repeating units) other than the nitrogen-functional group-containing monomer units described above. Examples of other repeating units contained in the polymer of the shell portion include (meth)acrylic acid ester monomer units, crosslinkable monomer units, aromatic monovinyl monomer units, and acidic group-containing monomer units. The polymer of the shell portion may contain one type of other repeating unit, or may contain two or more types of other repeating units. The polymer of the shell portion preferably contains a (meth)acrylic acid ester monomer unit as another repeating unit.

[0067] As the (meth)acrylic acid ester monomer capable of forming the (meth)acrylic acid ester monomer unit of the polymer of the shell portion, the same (meth)acrylic acid ester monomers as those described above in the section on the "core portion" can be used. Among these, n-butyl acrylate is preferred. Note that the (meth)acrylic acid ester monomers may be used alone or in combination of two or more types in any ratio.

[0068] The amount of (meth)acrylic acid ester monomer units contained in the polymer of the shell portion is preferably 1% by mass or more, more preferably 5% by mass or more, even more preferably 10% by mass or more, particularly preferably 15% by mass or more, and is 90% by mass or less, preferably 70% by mass or less, more preferably 50% by mass or less, and even more preferably 45% by mass or less, where the total repeating units of the polymer of the shell portion is taken as 100% by mass. If the content of the (meth)acrylic acid ester in the polymer of the shell portion is within the above-mentioned range, the pressing property and peel strength of the solid electrolyte-containing layer can be sufficiently ensured, and the output characteristics and cycle characteristics of the all-solid-state secondary battery can be further improved.

[0069] The crosslinkable monomer capable of forming the crosslinkable monomer unit of the polymer of the shell portion can be the same as the crosslinkable monomer described above in the section on "core portion." Note that the crosslinkable monomer may be used alone or in combination of two or more types in any ratio.

[0070] When the polymer of the shell portion contains crosslinkable monomer units, the amount of the crosslinkable monomer units contained in the polymer of the shell portion is preferably 0.1% by mass or more, more preferably 0.5% by mass or more, and is preferably 3% by mass or less, more preferably 2% by mass or less, with the total repeating units of the polymer of the shell portion being 100% by mass.

[0071] As the aromatic monovinyl monomer capable of forming the aromatic monovinyl monomer unit of the polymer of the shell portion, the same aromatic monovinyl monomers as those described above in the section on "core portion" can be used. Note that the aromatic monovinyl monomers may be used alone or in combination of two or more types in any ratio.

[0072] When the shell polymer contains aromatic monovinyl monomer units, the amount of aromatic monovinyl monomer units contained in the shell polymer is preferably 5% by mass or more, more preferably 10% by mass or more, and is preferably 50% by mass or less, more preferably 40% by mass or less, with the total repeating units of the shell polymer being 100% by mass.

[0073] Examples of acidic group-containing monomers that can form the acidic group-containing monomer units of the shell polymer include carboxylic acid group-containing monomers, sulfonic acid group-containing monomers, phosphoric acid group-containing monomers, and hydroxyl group-containing monomers. The acidic group-containing monomers may be used alone or in combination of two or more in any ratio.

[0074] Examples of the carboxylic acid group-containing monomer include monocarboxylic acids and their derivatives, dicarboxylic acids and their acid anhydrides and their derivatives. Examples of the monocarboxylic acid include acrylic acid, methacrylic acid, and crotonic acid. Examples of the monocarboxylic acid derivatives include 2-ethylacrylic acid, isocrotonic acid, α-acetoxyacrylic acid, β-trans-aryloxyacrylic acid, and α-chloro-β-E-methoxyacrylic acid. Examples of dicarboxylic acids include maleic acid, fumaric acid, and itaconic acid. Examples of dicarboxylic acid derivatives include methylmaleic acid, dimethylmaleic acid, phenylmaleic acid, chloromaleic acid, dichloromaleic acid, fluoromaleic acid, and maleic acid monoesters such as nonyl maleate, decyl maleate, dodecyl maleate, octadecyl maleate, and fluoroalkyl maleate. Examples of the acid anhydrides of dicarboxylic acids include maleic anhydride, acrylic anhydride, methyl maleic anhydride, and dimethyl maleic anhydride. Furthermore, as the carboxylic acid group-containing monomer, an acid anhydride that generates a carboxylic acid group upon hydrolysis can also be used. Among these, acrylic acid and methacrylic acid are preferred as the carboxylic acid group-containing monomer. Note that the carboxylic acid group-containing monomer may be used alone or in combination of two or more types in any ratio.

[0075] Examples of sulfonic acid group-containing monomers include vinyl sulfonic acid, methyl vinyl sulfonic acid, (meth)allyl sulfonic acid, styrene sulfonic acid, (meth)acrylic acid-2-ethyl sulfonate, 3-allyloxy-2-hydroxypropane sulfonic acid, etc. The sulfonic acid group-containing monomers may be used alone or in combination of two or more at any ratio. Here, in the present invention, "(meth)allyl" means allyl and / or methallyl.

[0076] Examples of the phosphate group-containing monomer include 2-(meth)acryloyloxyethyl phosphate, methyl-2-(meth)acryloyloxyethyl phosphate, ethyl-(meth)acryloyloxyethyl phosphate, etc. The phosphate group-containing monomer may be used alone or in combination of two or more types in any ratio. In the present invention, the term "(meth)acryloyl" means acryloyl and / or methacryloyl.

[0077] Examples of hydroxyl group-containing monomers include ethylenically unsaturated alcohols such as (meth)allyl alcohol, 3-butene-1-ol, and 5-hexene-1-ol; alkanol esters of ethylenically unsaturated carboxylic acids such as 2-hydroxyethyl acrylate, 2-hydroxypropyl acrylate, 2-hydroxyethyl methacrylate, 2-hydroxypropyl methacrylate, di-2-hydroxyethyl maleate, di-4-hydroxybutyl maleate, and di-2-hydroxypropyl itaconate; and monomers having the general formula: CH═CR a -COO-(C q H 2q O) p -H (wherein p is an integer of 2 to 9, q is an integer of 2 to 4, R arepresents a hydrogen atom or a methyl group) and (meth)acrylic acid esters; mono(meth)acrylic acid esters of dihydroxy esters of dicarboxylic acids such as 2-hydroxyethyl-2'-(meth)acryloyloxyphthalate and 2-hydroxyethyl-2'-(meth)acryloyloxysuccinate; vinyl ethers such as 2-hydroxyethyl vinyl ether and 2-hydroxypropyl vinyl ether; alkyl ethers such as (meth)allyl-2-hydroxyethyl ether, (meth)allyl-2-hydroxypropyl ether, (meth)allyl-3-hydroxypropyl ether, (meth)allyl-2-hydroxybutyl ether, (meth)allyl-3-hydroxybutyl ether, (meth)allyl-4-hydroxybutyl ether, and (meth)allyl-6-hydroxyhexyl ether. mono(meth)allyl ethers of alkylene glycol; polyoxyalkylene glycol mono(meth)allyl ethers such as diethylene glycol mono(meth)allyl ether and dipropylene glycol mono(meth)allyl ether; mono(meth)allyl ethers of halogen- and hydroxy-substituted (poly)alkylene glycols such as glycerin mono(meth)allyl ether, (meth)allyl-2-chloro-3-hydroxypropyl ether and (meth)allyl-2-hydroxy-3-chloropropyl ether; mono(meth)allyl ethers of polyhydric phenols such as eugenol and isoeugenol and halogen-substituted products thereof; (meth)allyl thioethers of alkylene glycols such as (meth)allyl-2-hydroxyethyl thioether and (meth)allyl-2-hydroxypropyl thioether; etc. The hydroxyl group-containing monomer may be used alone or in combination of two or more types in any ratio.

[0078] Here, while the shell polymer may contain acidic group-containing monomer units as described above, if the shell polymer contains acidic group-containing monomer units, there is a risk that the solid electrolyte may be deteriorated by the acidic groups. Therefore, from the viewpoint of suppressing deterioration of the solid electrolyte and further improving the output characteristics and cycle characteristics of the all-solid-state secondary battery, the amount of acidic group-containing monomer units contained in the shell polymer is preferably 10% by mass or less, more preferably 5% by mass or less, even more preferably 3% by mass or less, particularly preferably 1% by mass or less, and most preferably 0% by mass (i.e., the shell polymer does not contain acidic group-containing monomer units), based on 100% by mass of all repeating units of the shell polymer.

[0079] [Ratio of cross-linkable monomer units] As described above, both the core polymer and the shell polymer constituting the particulate polymer may optionally contain a crosslinkable monomer unit. The amount of crosslinkable monomer units contained in the particulate polymer is preferably 0.1% by mass or more, more preferably 0.15% by mass or more, even more preferably 0.2% by mass or more, particularly preferably 0.7% by mass or more, and preferably less than 2.0% by mass, and more preferably 1.0% by mass or less, based on 100% by mass of all repeating units of the particulate polymer. When the content of the crosslinkable monomer units in the particulate polymer is 0.1% by mass or more, the shape (particulate) of the particulate polymer is well maintained in an organic solvent. Therefore, in the formed solid electrolyte-containing layer, the surfaces of the solid electrolyte and the optional electrode active material are not excessively coated with the polymer component, further improving the output characteristics of the all-solid-state secondary battery. On the other hand, when the content of the crosslinkable monomer units in the particulate polymer is less than 2.0% by mass, the flexibility and strength of the particulate polymer are sufficiently ensured. Therefore, the pressability and peel strength of the solid electrolyte-containing layer are improved, and the output characteristics and cycle characteristics of the all-solid-state secondary battery are further improved.

[0080] <<Volume average particle size>> The particulate polymer preferably has a volume average particle diameter of 0.05 μm or more, more preferably 0.08 μm or more, and even more preferably 0.1 μm or more, and preferably 0.8 μm or less, more preferably 0.45 μm or less, and even more preferably 0.3 μm or less. If the volume average particle diameter of the particulate polymer is 0.05 μm or more, the output characteristics of the all-solid-state secondary battery are further improved, and if it is 0.8 μm or less, the peel strength of the solid electrolyte-containing layer is increased and the cycle characteristics of the all-solid-state secondary battery are further improved. In the present invention, the "volume average particle diameter" of the particulate polymer can be measured by the method described in the Examples. The volume average particle diameter of the particulate polymer can be adjusted, for example, by changing the type and amount of the monomer used in preparing the particulate polymer and / or by changing the polymerization conditions of the particulate polymer (for example, the amount of emulsifier used).

[0081] <<Preparation method>> The particulate polymer having the core-shell structure can be prepared, for example, by using a monomer for the core polymer and a monomer for the shell polymer and polymerizing them stepwise while changing the ratio of these monomers over time. Specifically, the particulate polymer can be prepared by a continuous multi-stage emulsion polymerization method and a multi-stage suspension polymerization method in which the polymer of the earlier stage is successively coated with the polymer of the later stage.

[0082] Therefore, an example of obtaining a particulate polymer having the above core-shell structure by a multistage emulsion polymerization method will be described below.

[0083] For the polymerization, an emulsifier may be used according to a conventional method, such as an anionic surfactant such as sodium dodecylbenzenesulfonate or sodium dodecyl sulfate (sodium lauryl sulfate), a nonionic surfactant such as polyoxyethylene nonylphenyl ether or sorbitan monolaurate, or a cationic surfactant such as octadecylamine acetate. Furthermore, a polymerization initiator may be used, such as a peroxide such as t-butylperoxy-2-ethylhexanoate, ammonium persulfate, potassium persulfate, or cumene peroxide, or an azo compound such as 2,2'-azobis(2-methyl-N-(2-hydroxyethyl)-propionamide) or 2,2'-azobis(2-amidinopropane) hydrochloride.

[0084] The polymerization procedure is as follows: first, a monomer for forming the core part and an emulsifier are mixed and emulsion-polymerized all at once to obtain a particulate polymer for forming the core part. Then, a monomer for forming the shell part is polymerized in the presence of the particulate polymer for forming the core part, thereby obtaining a particulate polymer having the above-mentioned core-shell structure.

[0085] In addition, when preparing a particulate polymer in which the outer surface of the core is partially covered with a shell, it is preferable to supply the monomer forming the shell polymer to the polymerization system in multiple divided portions or continuously. By supplying the monomer forming the shell polymer to the polymerization system in divided portions or continuously, the polymer constituting the shell is formed in particulate form, and this particle is bonded to the core, thereby forming a shell that partially covers the core.

[0086] <<Content>> The amount of the particulate polymer having the core-shell structure contained in the slurry composition for all-solid-state secondary batteries is not particularly limited, and is preferably 0.1 parts by mass or more, more preferably 0.2 parts by mass or more, and even more preferably 0.5 parts by mass or more, and preferably 10 parts by mass or less, more preferably 7.5 parts by mass or less, and even more preferably 5 parts by mass or less, per 100 parts by mass of solid electrolyte. If the amount of the particulate polymer is 0.1 parts by mass or more per 100 parts by mass of solid electrolyte, a solid electrolyte-containing layer can be formed well, and if it is 10 parts by mass or less, the ionic conductivity of the solid electrolyte-containing layer can be sufficiently ensured. Furthermore, by keeping the amount of the particulate polymer within the above-mentioned range, the output characteristics and cycle characteristics of the all-solid-state secondary battery can be further improved.

[0087] <Organic solvents> The organic solvent is not particularly limited, and examples thereof include cyclic aliphatic hydrocarbons such as cyclopentane and cyclohexane; aromatic hydrocarbons such as toluene, xylene, tetralin, and mesitylene; butyl butyrate; isobutyl isobutyrate; hexyl butyrate; diisobutyl ketone; n-butyl ether; and anisole. These organic solvents can be used alone or in combination of two or more. Among these, from the viewpoint of further improving the output characteristics and cycle characteristics of the all-solid-state secondary battery by suppressing side reactions with the solid electrolyte, xylene, butyl butyrate, isobutyl isobutyrate, hexyl butyrate, n-butyl ether, tetralin, mesitylene, and diisobutyl ketone are preferred, and xylene, butyl butyrate, isobutyl isobutyrate, and diisobutyl ketone are more preferred.

[0088] <Electrode active material> Here, the electrode active material is a material that transfers electrons at the electrode of the all-solid-state secondary battery. For example, when the all-solid-state secondary battery is an all-solid-state lithium ion secondary battery, a material that can absorb and release lithium is usually used as the electrode active material. In the following, a case where the slurry composition for an all-solid-state secondary battery is a slurry composition for an all-solid-state lithium-ion secondary battery will be described as an example, but the present invention is not limited to the following example.

[0089] The positive electrode active material for the all-solid-state lithium ion secondary battery is not particularly limited, and examples thereof include a positive electrode active material made of an inorganic compound and a positive electrode active material made of an organic compound. The positive electrode active material may be a mixture of an inorganic compound and an organic compound.

[0090] Examples of inorganic cathode active materials include transition metal oxides, composite oxides of lithium and transition metals (lithium-containing composite metal oxides), and transition metal sulfides. Examples of the transition metals include Fe, Co, Ni, and Mn. Specific examples of inorganic compounds used in cathode active materials include lithium-containing composite metal oxides such as LiCoO2 (lithium cobalt oxide), LiNiO2, LiMnO2, LiMn2O4, LiFePO4, and LiFeVO4; transition metal sulfides such as TiS2, TiS3, and amorphous MoS2; Cu2VO3, amorphous VO-PO5, MoO3, VO5, and VO. 13 These compounds may be partially element-substituted. The positive electrode active materials made of the inorganic compounds described above can be used alone or in combination of two or more.

[0091] Examples of the positive electrode active material made of an organic compound include polyaniline, polypyrrole, polyacene, disulfide-based compounds, polysulfide-based compounds, and N-fluoropyridinium salts. The positive electrode active materials made of the organic compounds described above can be used alone or in combination of two or more.

[0092] Examples of negative electrode active materials for all-solid-state lithium-ion secondary batteries include carbon allotropes such as graphite and coke. Negative electrode active materials made of carbon allotropes can also be used in the form of mixtures or coatings with metals, metal salts, oxides, etc. Other examples of negative electrode active materials that can be used include oxides or sulfates of silicon, tin, zinc, manganese, iron, nickel, etc.; metallic lithium; lithium alloys such as Li-Al, Li-Bi-Cd, and Li-Sn-Cd; lithium transition metal nitrides; and silicone. The above-mentioned negative electrode active materials can be used alone or in combination of two or more.

[0093] <Conductive material> The conductive material is used to ensure electrical contact between electrode active materials in an electrode mixture layer formed using the slurry composition for an all-solid-state secondary battery (slurry composition for an all-solid-state secondary battery electrode). Examples of the conductive material include carbon black (e.g., acetylene black, Ketjen Black (registered trademark), furnace black, etc.), single-walled or multi-walled carbon nanotubes (multi-walled carbon nanotubes include cup-stacked types), carbon nanohorns, vapor-grown carbon fibers, milled carbon fibers obtained by calcining and then crushing polymer fibers, single-walled or multi-walled graphene, and conductive carbon materials such as carbon nonwoven fabric sheets obtained by calcining nonwoven fabrics made of polymer fibers; and fibers or foils of various metals. These may be used alone or in combination of two or more.

[0094] The content of the conductive material in the slurry composition for an all-solid-state secondary battery is preferably 0.1 parts by mass or more, more preferably 0.5 parts by mass or more, and preferably 10 parts by mass or less, more preferably 7 parts by mass or less, per 100 parts by mass of the electrode active material. If the amount of the conductive material is within the above range, electrical contact between the electrode active materials can be sufficiently ensured, and the output characteristics and cycle characteristics of the all-solid-state secondary battery can be further improved.

[0095] <Other ingredients> Other components that may be optionally contained in the slurry composition for an all-solid-state secondary battery include dispersants, leveling agents, antifoaming agents, and reinforcing materials. Furthermore, for example, when the all-solid-state secondary battery is an all-solid-state lithium-ion secondary battery, other components also include lithium salts. These other components are not particularly limited as long as they do not affect the battery reaction.

[0096] The other components, such as the lithium salt, dispersant, leveling agent, antifoaming agent, and reinforcing material, are not particularly limited and may be, for example, those described in JP 2012-243476 A. The amounts of these components added are also not particularly limited and may be, for example, the amounts described in JP 2012-243476 A.

[0097] <Preparation of Slurry Composition> The above-mentioned slurry composition for an all-solid-state secondary battery is not particularly limited, and can be obtained, for example, by dispersing or dissolving the above-mentioned components in an organic solvent using any mixing method.

[0098] (Solid electrolyte containing layer) The solid electrolyte-containing layer of the present invention is a layer containing a solid electrolyte, and examples of the solid electrolyte-containing layer include an electrode mixture layer (positive electrode mixture layer, negative electrode mixture layer) that transfers electrons via an electrochemical reaction, and a solid electrolyte layer provided between a positive electrode mixture layer and a negative electrode mixture layer that face each other. The solid electrolyte-containing layer of the present invention is formed using the above-mentioned slurry composition for an all-solid-state secondary battery. For example, it can be formed by applying the above-mentioned slurry composition to the surface of a suitable substrate to form a coating film, and then drying the formed coating film. That is, the solid electrolyte-containing layer of the present invention is made of a dried product of the above-mentioned slurry composition, and typically contains a solid electrolyte and a particulate polymer having a core-shell structure (and / or a polymer component derived from the particulate polymer), and may optionally further contain at least one selected from the group consisting of an electrode active material, a conductive material, and other components. Note that the components contained in the solid electrolyte-containing layer are those contained in the above-mentioned slurry composition, and the content ratio of these components is typically equal to the content ratio in the above-mentioned slurry composition.

[0099] Furthermore, since the solid electrolyte-containing layer of the present invention is formed from the slurry composition for an all-solid-state secondary battery of the present invention, it is possible to make the all-solid-state secondary battery exhibit excellent output characteristics and cycle characteristics.

[0100] <Base material> Here, there is no limitation on the substrate to which the slurry composition is applied, and for example, a coating film of the slurry composition may be formed on the surface of a release substrate, the coating film may be dried to form a solid electrolyte-containing layer, and the release substrate may be peeled off from the solid electrolyte-containing layer. In this way, the solid electrolyte-containing layer peeled off from the release substrate may be used as a free-standing film to form battery components (e.g., electrodes, solid electrolyte layers, etc.) of an all-solid-state secondary battery. On the other hand, from the viewpoint of omitting the step of peeling off the solid electrolyte-containing layer and improving the production efficiency of the battery component, a current collector or an electrode may be used as the substrate. For example, when preparing the electrode mixture layer, it is preferable to apply the slurry composition onto a current collector as the substrate.

[0101] <<Release base material>> The release substrate is not particularly limited, and known release substrates such as imide films can be used.

[0102] <<Current collector>> As the current collector, a material that is electrically conductive and electrochemically durable is used. Specifically, as the current collector, for example, a current collector made of iron, copper, aluminum, nickel, stainless steel, titanium, tantalum, gold, platinum, etc. can be used. Among them, copper foil is particularly preferred as the current collector used for the negative electrode. Furthermore, aluminum foil is particularly preferred as the current collector used for the positive electrode. Note that the above materials may be used alone or in combination of two or more types in any ratio.

[0103] <<Electrode>> The electrodes (positive and negative electrodes) are not particularly limited, but examples thereof include electrodes in which an electrode mixture layer containing an electrode active material, a solid electrolyte, and a binder is formed on the above-mentioned current collector. The electrode active material, solid electrolyte, and binder contained in the electrode mixture layer in the electrode are not particularly limited, and known materials can be used. The electrode mixture layer in the electrode may correspond to the solid electrolyte-containing layer of the present invention.

[0104] <Method for forming a solid electrolyte-containing layer> Specific examples of the method for forming the solid electrolyte-containing layer include the following methods. 1) A method in which the slurry composition of the present invention is applied to the surface of a current collector or an electrode (in the case of an electrode, the surface on the electrode mixture layer side; the same applies hereinafter) and then dried; 2) a method of immersing a current collector or electrode in the slurry composition of the present invention and then drying it; and 3) A method in which the slurry composition of the present invention is applied to a release substrate, dried to produce a solid electrolyte-containing layer, and the resulting solid electrolyte-containing layer is transferred to the surface of an electrode. Among these, the above methods 1) and 3) which involve coating and drying are particularly preferred because they make it easy to control the thickness of the solid electrolyte-containing layer.

[0105] <<Coating>> The method for applying the slurry composition onto the substrate is not particularly limited, and examples thereof include a doctor blade method, a reverse roll method, a direct roll method, a gravure method, an extrusion method, and a brush coating method.

[0106] <<Drying>> The method for drying the slurry composition on the substrate is not particularly limited and any known method can be used, including, for example, drying with warm air, hot air, or low-humidity air, vacuum drying, and drying by irradiation with infrared rays or electron beams. When the solid electrolyte-containing layer is an electrode mixture layer, after drying, it may be subjected to a pressing treatment using a roll press or the like. By performing the pressing treatment, the density of the obtained electrode mixture layer can be further increased.

[0107] <<Transcript>> In the above method 3), the method for transferring the solid electrolyte-containing layer onto the surface of the electrode or the like is not particularly limited, and any known transfer method can be used.

[0108] (electrode) The electrode obtained by forming an electrode mixture layer on a current collector using the slurry composition of the present invention includes a solid electrolyte, a particulate polymer having a core-shell structure (and / or a polymer component derived from the particulate polymer), and an electrode active material, and optionally includes an electrode mixture layer further containing at least one selected from the group consisting of a conductive material and other components. The electrode enables an all-solid-state secondary battery to exhibit excellent output characteristics and cycle characteristics.

[0109] (Solid electrolyte layer) Furthermore, a solid electrolyte layer formed using the slurry composition for an all-solid-state secondary battery of the present invention contains a solid electrolyte and a particulate polymer having a core-shell structure (and / or a polymer component derived from the particulate polymer), and optionally further contains other components. The solid electrolyte layer enables the all-solid-state secondary battery to exhibit excellent output characteristics and cycle characteristics.

[0110] (All-solid-state secondary battery) The all-solid-state secondary battery of the present invention typically has a positive electrode, a solid electrolyte layer, and a negative electrode, and is characterized in that at least one of the positive electrode composite layer of the positive electrode, the negative electrode composite layer of the negative electrode, and the solid electrolyte layer is the solid electrolyte-containing layer of the present invention. That is, the all-solid-state secondary battery of the present invention comprises at least one of a positive electrode having a positive electrode composite layer formed using the slurry composition for an all-solid-state secondary battery positive electrode of the present invention as the slurry composition for an all-solid-state secondary battery of the present invention, a negative electrode having a negative electrode composite layer formed using the slurry composition for an all-solid-state secondary battery negative electrode of the present invention as the slurry composition for an all-solid-state secondary battery, and a solid electrolyte layer formed using the slurry composition for an all-solid-state secondary battery solid electrolyte layer of the present invention as the slurry composition for an all-solid-state secondary battery. Furthermore, the all-solid-state secondary battery of the present invention is provided with the solid electrolyte-containing layer of the present invention, and therefore has excellent cell characteristics such as output characteristics and cycle characteristics.

[0111] Here, the all-solid-state secondary battery electrode that can be used in the all-solid-state secondary battery of the present invention and that has an electrode mixture layer that does not correspond to the solid electrolyte-containing layer of the present invention is not particularly limited as long as it has an electrode mixture layer that does not correspond to the solid electrolyte-containing layer of the present invention, and any all-solid-state secondary battery electrode can be used.

[0112] Furthermore, the solid electrolyte layer that can be used in the all-solid-state secondary battery of the present invention and does not fall under the category of the solid electrolyte-containing layer of the present invention is not particularly limited, and any solid electrolyte layer can be used, for example, the solid electrolyte layers described in JP-A-2012-243476, JP-A-2013-143299, JP-A-2016-143614, and the like.

[0113] The all-solid-state secondary battery of the present invention can be obtained by stacking a positive electrode and a negative electrode so that the positive electrode composite layer of the positive electrode and the negative electrode composite layer of the negative electrode face each other via a solid electrolyte layer, optionally applying pressure to obtain a laminate, and then placing the laminate in a battery container as is, or after being rolled or folded, depending on the battery shape, and sealing it. If necessary, an expanded metal, an overcurrent prevention element such as a fuse or a PTC element, a lead plate, etc. can be placed in the battery container to prevent pressure buildup inside the battery and overcharging and discharging. The battery shape may be any type, such as a coin type, button type, sheet type, cylindrical type, prismatic type, or flat type. [Example]

[0114] The present invention will be specifically described below based on examples, but the present invention is not limited to these examples. In the following description, "%" and "parts" representing amounts are based on mass unless otherwise specified. In the examples and comparative examples, the glass transition temperatures of various polymers, the volume average particle diameters of the particulate polymers, the pressability of the positive electrode composite layer, the peel strength of the negative electrode composite layer, and the output characteristics and cycle characteristics of the all-solid-state secondary batteries were evaluated by the following methods.

[0115] <Glass transition temperature (Tg)> For the particulate polymer having a core-shell structure, aqueous dispersions containing polymers (polymers of the core part and polymers of the shell part) to be measured were prepared under the same polymerization conditions as those for the core part and shell part, using the monomers and various additives used for forming the core part and shell part, respectively. Then, the aqueous dispersions were dried at room temperature to obtain measurement samples. For particulate polymers not having a core-shell structure, aqueous dispersions of the particulate polymers were used as measurement samples. A 10 mg sample was weighed into an aluminum pan and measured using a differential scanning calorimetry (DSC) analyzer (SII NanoTechnology, Inc., EXSTAR DSC6220) under the conditions specified in JIS Z 8703. The temperature range was between -100°C and 500°C, with a heating rate of 10°C / min. A differential scanning calorimetry (DSC) curve was obtained. An empty aluminum pan was used as a reference. The glass transition temperature (°C) was calculated by measuring the intersection of the baseline just before the endothermic peak of the DSC curve, where the differential signal (DDSC) was 0.05 mW / min / mg or greater, and the tangent to the DSC curve at the first inflection point after the endothermic peak. <Volume average particle size> The volume-average particle size of the particulate polymer was measured by laser diffraction. Specifically, an aqueous dispersion containing the prepared particulate polymer (adjusted to a solids concentration of 0.1% by mass) was used as a sample. The particle size distribution (volume basis) was measured using a laser diffraction particle size distribution analyzer (manufactured by Beckman Coulter, product name "LS-230"), and the particle size D50 at which the cumulative volume calculated from the smallest diameter side reached 50% was taken as the volume-average particle size. <Pressability> The prepared positive electrode was punched into a circle with a diameter of 10 mm to prepare a test piece. The test piece was pressed for 2 minutes at a predetermined pressure using a uniaxial press to obtain a positive electrode composite layer with a target density of 3.0 g / cm. 3 The lower the pressing pressure, the better the pressability of the positive electrode mixture layer as the solid electrolyte-containing layer. A: Press pressure less than 200 MPa B: Press pressure is 200 MPa or more but less than 300 MPa C: Press pressure is 300 MPa or more but less than 400 MPa D: Press pressure is 400 MPa or more <Peel strength> The prepared negative electrode was cut into a rectangle measuring 1.0 cm wide x 10 cm long to prepare a test specimen. Cellophane tape (as specified in JIS Z1522) was attached to the surface of the negative electrode composite layer of this test specimen, and the stress was measured when the cellophane tape was peeled off from one end of the specimen in a 180° direction at a rate of 50 mm / min. The measurement was performed three times, and the average value was calculated as the peel strength (N / m) and evaluated according to the following criteria. A higher peel strength indicates better adhesion of the negative electrode composite layer as a solid electrolyte-containing layer and stronger adhesion to the current collector. A: Peel strength is 3N / m or more B: Peel strength is 2N / m or more and less than 3N / m C: Peel strength is 1N / m or more and less than 2N / m D: Peel strength is less than 1N / m <Output characteristics> Three all-solid-state secondary batteries were charged to 4.2 V at a constant current of 0.1 C and then discharged to 3.0 V at 0.1 C to determine the 0.1 C discharge capacity. They were then charged to 4.2 V at 0.1 C and then discharged to 3.0 V at 2 C to determine the 2 C discharge capacity. The average of the 0.1 C discharge capacities of the three cells was designated as discharge capacity a, and the average of the 2 C discharge capacities of the three cells was designated as discharge capacity b. The ratio of discharge capacity b to discharge capacity a (capacity ratio) = discharge capacity b / discharge capacity a × 100 (%) was calculated and evaluated according to the following criteria: A higher capacity ratio indicates better output characteristics of the all-solid-state secondary battery. A: Capacity ratio is 80% or more B: Capacity ratio is 70% or more but less than 80% C: Capacity ratio is 60% or more but less than 70% D: Capacity ratio is less than 50% <Cycle characteristics> The all-solid-state secondary battery was charged from 3 V to 4.2 V at 0.2 C at 25°C, and then discharged from 4.2 V to 3 V at 0.2 C, and this charge-discharge cycle was repeated 50 times. The ratio of the 0.2 C discharge capacity at the 50th cycle to the 0.2 C discharge capacity at the first cycle was calculated as a percentage, which was taken as the capacity retention rate and evaluated according to the following criteria. A higher capacity retention rate indicates less loss in discharge capacity and better cycle characteristics for the all-solid-state secondary battery. A: Capacity retention rate is 90% or more B: Capacity retention rate is 80% or more but less than 90% C: Capacity retention rate is 70% or more but less than 80% D: Capacity retention rate is less than 70%

[0116] Example 1 <Preparation of particulate polymers with core-shell structure> A 1 L flask (reaction vessel) equipped with a stirrer and a septum was charged with 90 parts of ion-exchanged water and 0.5 parts of sodium lauryl sulfate as an emulsifier, the gas phase was replaced with nitrogen gas, and the temperature was raised to 60°C. After that, 0.25 parts of ammonium persulfate (APS) as a polymerization initiator was dissolved in 20.0 parts of ion-exchanged water and added. Meanwhile, in a separate vessel (emulsion vessel), 30 parts of ion-exchanged water, 0.5 parts of sodium lauryl sulfate as an emulsifier, 51.3 parts of n-butyl acrylate and 28 parts of ethyl acrylate as (meth)acrylic acid ester monomers, and 0.7 parts of allyl methacrylate as a crosslinkable monomer (these are referred to as core monomers) were mixed to obtain a monomer composition. This monomer composition was continuously added to the 1-L flask equipped with a septum over a period of 3 hours to carry out polymerization. The reaction was carried out at 60°C during the addition. After the addition was completed, the mixture was further stirred at 70°C. When the monomer consumption reached 98%, 5 parts of n-butyl acrylate as a (meth)acrylic acid ester monomer and 15 parts of acrylonitrile as a nitrogen-functional group-containing monomer (these are referred to as shell monomers) were added to the emulsion vessel to obtain a monomer composition. This monomer composition was added to the reaction vessel over a period of 1 hour. The reaction was carried out at 70°C during the addition. After the addition was completed, the mixture was further stirred at 80°C for 3 hours to obtain an aqueous dispersion of a particulate polymer having a core-shell structure. Using this aqueous dispersion, the volume average particle size of the particulate polymer was measured. The results are shown in Table 1. In addition, the glass transition temperatures of the core polymer and the shell polymer were measured. The results are shown in Table 1. <Preparation of Binder Composition> An appropriate amount of xylene as an organic solvent was added to the aqueous dispersion of the particulate polymer obtained as described above to obtain a mixture. Then, water and excess xylene were removed from the mixture by vacuum distillation at 80°C to obtain a binder composition (solid concentration: 8%). <Preparation of Slurry Composition for Positive Electrode Composite Layer> 70 parts of lithium cobalt oxide (number average particle diameter: 11.5 μm) as a positive electrode active material, 25.5 parts of sulfide glass (Li2S / P2S5 = 70 mol% / 30 mol%, number average particle diameter: 0.9 μm) consisting of Li2S and P2S5 as a solid electrolyte, 2.5 parts of acetylene black as a conductive material, and 2 parts of the binder composition obtained as described above (solid content equivalent) were mixed, and then xylene was added as an organic solvent to adjust the solid content to 80%, and then mixed with a planetary mixer for 60 minutes. Then, xylene was added to adjust the solid content to 55%, and then mixed for 10 minutes to prepare a slurry composition for the positive electrode composite layer. <Preparation of Slurry Composition for Negative Electrode Mixture Layer> 60 parts of graphite (number average particle diameter: 20 μm) as a negative electrode active material, 36.5 parts of sulfide glass (Li2S / P2S5 = 70 mol% / 30 mol%, number average particle diameter: 0.9 μm) consisting of Li2S and P2S5 as a solid electrolyte, 1.5 parts of acetylene black as a conductive material, and 2.5 parts (solid content equivalent) of the binder composition obtained as described above were mixed, and then xylene was added as an organic solvent to adjust the solid content to 60%, and then mixed with a planetary mixer for 60 minutes. Then, xylene was further added to adjust the solid content to 40%, and then mixed with a planetary mixer to prepare a slurry composition for the negative electrode composite layer. <Preparation of Slurry Composition for Solid Electrolyte Layer> In a glove box under an argon gas atmosphere (water concentration 0.6 mass ppm, oxygen concentration 1.8 mass ppm), 100 parts of sulfide glass (Li2S / P2S5 = 70 mol% / 30 mol%, number average particle diameter: 0.9 μm) consisting of Li2S and P2S5 as solid electrolyte particles were mixed with 2 parts (solid content equivalent) of the binder composition obtained as described above. Xylene was then added as an organic solvent to adjust the solid content to 60 mass%, and the mixture was mixed in a planetary mixer for 60 minutes. Further xylene was then added to adjust the solid content to 45%, and the mixture was mixed in a planetary mixer to prepare a slurry composition for the solid electrolyte layer. <Manufacturing all-solid-state secondary batteries> The positive electrode composite layer slurry composition was applied to the surface of a current collector (aluminum foil, thickness: 20 μm) and dried (at 120°C for 60 minutes) to form a 50 μm-thick positive electrode composite layer (solid electrolyte-containing layer), thereby obtaining a positive electrode. Using this positive electrode, the pressability of the positive electrode composite layer was evaluated. The results are shown in Table 1. The negative electrode composite layer slurry composition was applied to the surface of another current collector (copper foil, thickness: 15 μm) and dried (at 120°C for 60 minutes) to form a 60 μm-thick negative electrode composite layer (solid electrolyte-containing layer), thereby obtaining a negative electrode. The peel strength of the negative electrode composite layer was evaluated using this negative electrode. The results are shown in Table 1. Next, the solid electrolyte layer slurry composition was applied to an imide film (thickness: 25 μm) and dried (at 120° C. for 60 minutes) to form a solid electrolyte layer (solid electrolyte-containing layer) with a thickness of 150 μm. The solid electrolyte layer on the imide film and the positive electrode were bonded together so that the solid electrolyte layer and the positive electrode composite layer were in contact with each other, and a pressing process was performed to apply a pressure (pressing pressure) of 400 MPa, and the solid electrolyte layer was transferred from the imide film to the positive electrode composite layer, thereby obtaining a positive electrode with a solid electrolyte layer. The positive electrode with the solid electrolyte layer and the negative electrode were bonded together so that the solid electrolyte layer of the positive electrode with the solid electrolyte layer and the negative electrode composite layer of the negative electrode were in contact with each other, and a press treatment was performed by applying a pressure (press pressure) of 400 MPa to the solid electrolyte layer of the positive electrode with the solid electrolyte layer, thereby obtaining an all-solid-state secondary battery. The thickness of the solid electrolyte layer of the all-solid-state secondary battery after pressing was 120 μm. The output characteristics and cycle characteristics of this all-solid-state secondary battery were evaluated. The results are shown in Table 1.

[0117] (Examples 2 to 3, 16) In preparing the binder composition and various slurry compositions, a particulate polymer having a core-shell structure, a binder composition, various slurry compositions, and an all-solid-state secondary battery were prepared in the same manner as in Example 1, except that butyl butyrate (Example 2), diisobutyl ketone (Example 3), and isobutyl isobutyrate (Example 16) were used instead of xylene, respectively. Then, various evaluations were carried out in the same manner as in Example 1. The results are shown in Tables 1 and 3.

[0118] (Examples 4 to 8, 10 to 15) In preparing a particulate polymer having a core-shell structure, the type and amount of the core monomer and / or shell monomer were changed to prepare particulate polymers having a core-shell structure with the compositions shown in Tables 1 and 2. Binder compositions, various slurry compositions, and all-solid-state secondary batteries were prepared in the same manner as in Example 1, except that the particulate polymers were used. Then, various evaluations were carried out in the same manner as in Example 1. The results are shown in Tables 1 to 3.

[0119] Example 9 In preparing the particulate polymer having a core-shell structure, the amount of sodium lauryl sulfate added to the reaction vessel was changed from 0.5 parts to 0.2 parts, and the particulate polymer having a core-shell structure, binder composition, various slurry compositions, and all-solid-state secondary batteries were prepared in the same manner as in Example 1. Then, various evaluations were carried out in the same manner as in Example 1. The results are shown in Table 2.

[0120] (Comparative Example 1) A binder composition, various slurry compositions, and an all-solid-state secondary battery were prepared in the same manner as in Example 1, except that a particulate polymer not having a core-shell structure prepared as described below was used instead of the particulate polymer having a core-shell structure. Then, various evaluations were carried out in the same manner as in Example 1. The results are shown in Table 4. <Preparation of particulate polymer> A 1 L flask (reaction vessel) equipped with a stirrer and a septum was charged with 90 parts of ion-exchanged water and 0.5 parts of sodium lauryl sulfate as an emulsifier, the gas phase was replaced with nitrogen gas, and the temperature was raised to 60°C. After that, 0.25 parts of ammonium persulfate (APS) as a polymerization initiator was dissolved in 20.0 parts of ion-exchanged water and added. Separately, in a separate container (emulsion container), 30 parts of ion-exchanged water, 0.5 parts of sodium lauryl sulfate as an emulsifier, 56.3 parts of n-butyl acrylate and 28 parts of ethyl acrylate as (meth)acrylic acid ester monomers, 15 parts of acrylonitrile as a nitrogen-functional group-containing monomer, and 0.7 parts of allyl methacrylate as a crosslinkable monomer were mixed to obtain a monomer composition. This monomer composition was continuously added to the 1 L flask equipped with a septum over a period of 3 hours to carry out polymerization. The reaction was carried out at 60°C during the addition. After completion of the addition, the mixture was stirred at 80°C for an additional 3 hours to obtain an aqueous dispersion of a particulate polymer without a core-shell structure. The volume average particle diameter of this aqueous dispersion was measured. The results are shown in Table 4. The glass transition temperature of the particulate polymer was also measured. The results are shown in Table 4.

[0121] (Comparative Examples 2 to 5) In preparing a particulate polymer having a core-shell structure, the type and amount of the core monomer and / or shell monomer were changed to prepare a particulate polymer having a core-shell structure with the composition shown in Table 4. Except for using the particulate polymer, binder compositions, various slurry compositions, and all-solid-state secondary batteries were prepared in the same manner as in Example 1. Then, various evaluations were carried out in the same manner as in Example 1. The results are shown in Table 4.

[0122] In addition, in Tables 1 to 4, "BA" indicates n-butyl acrylate units; "EA" indicates an ethyl acrylate unit; "2EHA" indicates 2-ethylhexyl acrylate units, "AN" indicates an acrylonitrile unit, "ST" indicates a styrene unit; "AMA" indicates an allyl methacrylate unit; "DVB" indicates a divinylbenzene unit, "MAAm" indicates a methacrylamide unit; "DMAEM" indicates dimethylaminoethyl methacrylate units, "MAA" indicates a methacrylic acid unit, "DIBK" refers to diisobutyl ketone, "Sulfide" refers to sulfide glass (Li2S / P2S5).

[0123] [Table 1]

[0124] [Table 2]

[0125] [Table 3]

[0126] [Table 4]

[0127] It can be seen from Tables 1 to 3 that the all-solid-state secondary batteries of Examples 1 to 16 exhibit excellent output characteristics and cycle characteristics, and that the solid electrolyte-containing layers of Examples 1 to 16 have excellent pressability and peel strength. On the other hand, Table 4 shows that in Comparative Example 1, in which a particulate polymer not having a core-shell structure was used, Comparative Example 2, in which the glass transition temperature of the core polymer exceeded the predetermined upper limit, Comparative Example 3, in which the glass transition temperature of the shell polymer was below the predetermined lower limit, Comparative Example 4, in which the content ratio of the nitrogen-functional group-containing monomer unit in the shell polymer was below the predetermined lower limit, and Comparative Example 5, in which the content ratio of the nitrogen-functional group-containing monomer unit in the shell polymer exceeded the predetermined upper limit, the pressability and peel strength of the solid electrolyte-containing layer were all reduced, and the output characteristics and cycle characteristics of the all-solid-state secondary battery were impaired. [Industrial Applicability]

[0128] According to the present invention, it is possible to provide a slurry composition for an all-solid-state secondary battery that can form a solid electrolyte-containing layer that can enable an all-solid-state secondary battery to exhibit excellent output characteristics and cycle characteristics. Furthermore, according to the present invention, it is possible to provide a solid electrolyte-containing layer that can enable an all-solid-state secondary battery to exhibit excellent output characteristics and cycle characteristics. Furthermore, according to the present invention, it is possible to provide an all-solid-state secondary battery that is excellent in output characteristics and cycle characteristics. [Explanation of symbols]

[0129] 100 Particulate polymer 110 Core 110S Core outer surface 120 Shell part

Claims

1. The electrolyte includes a solid electrolyte, a particulate polymer, and an organic solvent, the particulate polymer has a core-shell structure including a core portion and a shell portion covering at least a part of the outer surface of the core portion, the polymer constituting the core portion has a glass transition temperature of −60° C. or higher and −10° C. or lower; the polymer constituting the shell portion has a glass transition temperature of 15°C or higher and 100°C or lower; the polymer constituting the shell portion contains a nitrogen functional group-containing monomer unit, and the amount of the nitrogen functional group-containing monomer unit contained in the polymer constituting the shell portion is 10% by mass or more and 90% by mass or less, with the total amount of all repeating units of the polymer constituting the shell portion being 100% by mass; the particulate polymer contains a crosslinkable monomer unit, and the amount of the crosslinkable monomer unit contained in the particulate polymer is 0.7% by mass or more and less than 2.0% by mass, with all repeating units of the particulate polymer being 100% by mass.

2. 2. The slurry composition for an all-solid-state secondary battery according to claim 1, wherein a proportion of the shell portion in the total of the core portion and the shell portion is 10% by mass or more and 25% by mass or less.

3. The slurry composition for an all-solid-state secondary battery according to claim 1 or 2, further comprising an electrode active material.

4. The slurry composition for an all-solid-state secondary battery according to claim 3 , further comprising a conductive material.

5. A solid electrolyte-containing layer formed using the slurry composition for an all-solid-state secondary battery according to any one of claims 1 to 4.

6. An all-solid-state secondary battery comprising the solid electrolyte-containing layer according to claim 5 .

Citation Information

Patent Citations

  • Composite solid electrolytic composition, battery electrode sheet arranged by use thereof, all-solid type secondary battery, and method for manufacturing battery electrode sheet and all-solid type secondary battery

    JP2015159067A

  • Binder for secondary batteries and secondary battery including the same

    US20160156038A1

  • All-solid-state secondary battery

    WO2012173089A1

  • Paste composition for negative electrode for lithium-ion rechargeable battery, composite particles for negative electrode for lithium-ion rechargeable battery, slurry composition for negative electrode for lithium-ion rechargeable battery, negative electrode for lithium-ion rechargeable battery, and lithium-ion rechargeable battery

    WO2016067633A1

  • Binder composition for solid electrolyte batteries

    WO2018012380A1