Composite particles for electrochemical devices, manufacturing method thereof, electrodes for electrochemical devices, and electrochemical devices

Composite particles with unevenly distributed conductive materials and pyrolyzable foaming agents form a strong conductive path while blocking it during foaming, addressing the issues of initial resistance and heat generation in electrochemical elements.

JP7726201B2Active Publication Date: 2025-08-20ZEON CORP
View PDF 6 Cites 0 Cited by

Patent Information

Application Number
JP2022503281
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-02-28
Filing Date
2021-02-16
Publication Date
2025-08-20
Estimated Expiration
2041-02-16

AI Technical Summary

Technical Problem

Conventional electrochemical elements face challenges in suppressing the increase in initial resistance and heat generation during internal short circuits.

Method used

The use of composite particles formed by aggregating an electrode active material, a conductive material, a pyrolyzable foaming agent, and a binder, with the foaming agent unevenly distributed, creates a strong conductive path and effectively blocks the conductive path upon foaming to suppress heat generation during internal short circuits.

Benefits of technology

The composite particles effectively reduce initial resistance and excel in suppressing heat generation during internal short circuits in electrochemical devices.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007726201000006
    Figure 0007726201000006
  • Figure 0007726201000007
    Figure 0007726201000007
  • Figure 0007726201000008
    Figure 0007726201000008
Patent Text Reader

Abstract

Provided is a composite particle which is for an electrochemical element and suppresses an increase in the initial resistance of an electrochemical element and heat generation during internal short-circuiting. This composite particle comprises an electrode active material, a conductive material, a binding material, and 0.1-5 parts by mass of a pyrolytic foaming agent with respect to 100 parts by mass of the composite particle. Moreover, in a cross section part of the composite particle which is orthogonal to the major axis of the composite particle and includes the middle point of this major axis, when mapping analysis is performed using an electron beam microanalyzer, the ratio of the integrated values of the detection intensities of carbon atoms contained within and outside the range of the circle, of which the center is the middle point of the major axis and of which the diameter is 1 / 2 of the length of the major axis, is 4-15.
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] The present invention relates to composite particles for electrochemical devices, a method for producing the same, an electrode for electrochemical devices, and an electrochemical device. [Background technology]

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

[0003] Conventionally, improvements have been made to electrochemical element components in order to suppress heat generation during an internal short circuit in an electrochemical element. For example, Patent Document 1 proposes an electrode for an electrochemical element that includes a conductive adhesive layer containing a foaming agent with a foaming temperature of 140°C or higher between a current collector and an electrode mixture layer, and an electrochemical element that includes the electrode. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] International Publication No. 2018 / 155281 Summary of the Invention [Problem to be solved by the invention]

[0005] However, the above-mentioned conventional electrochemical elements have room for improvement in terms of suppressing the increase in initial resistance while suppressing heat generation when an internal short circuit occurs in the electrochemical element.

[0006] Therefore, an object of the present invention is to provide a new technology relating to an electrochemical element that can suppress an increase in initial resistance and is excellent in suppressing heat generation during an internal short circuit. [Means for solving the problem]

[0007] The present inventors have conducted extensive research to solve the above problems, and have found that by using composite particles formed by aggregating an electrode active material, a conductive material, a pyrolyzable foaming agent, and a binder, in which the conductive material, the pyrolyzable foaming agent, and the binder are unevenly distributed within the composite particles, it is possible to manufacture an electrochemical element in which an increase in initial resistance is suppressed and which is excellent in suppressing heat generation during an internal short circuit, and have completed the present invention.

[0008] That is, the present invention has an object to advantageously solve the above-mentioned problems, and the composite particle for electrochemical devices of the present invention (hereinafter also simply referred to as "composite particle") is a composite particle for electrochemical devices containing an electrode active material, a conductive material, a thermally decomposable foaming agent, and a binder, and the thermally decomposable foaming agent is contained in an amount of 0.1 parts by mass or more and 5 parts by mass or less relative to 100 parts by mass of the composite particle for electrochemical devices, and when a cross section of the composite particle for electrochemical devices that is perpendicular to the major axis of the composite particle for electrochemical devices and includes the midpoint of the major axis is subjected to mapping analysis using an electron probe microanalyzer (EPMA), the integrated value (S A ) and the integrated value of the detection intensity of the carbon atoms included within the circle (S B ) and the ratio (S A / S B(hereinafter, this ratio is also referred to as the "migration ratio value within the composite particle"). ) is 4 or more and 15 or less. Thus, when composite particles containing an electrode active material, a conductive material, a pyrolytic foaming agent, and a binder contain a predetermined amount of pyrolytic foaming agent and have a migration ratio value within the above range, the conductive material is unevenly distributed on the surface side of the composite particle, increasing the number of contact points between the conductive materials and forming a strong conductive path within the composite particle. Furthermore, when heat that can foam the pyrolytic foaming agent is applied to the composite particle due to the pyrolytic foaming agent being unevenly distributed on the surface side of the composite particle, the foaming of the pyrolytic foaming agent effectively blocks the conductive path within the composite particle. Therefore, by using the composite particles of the present invention, an electrochemical device can be manufactured that suppresses an increase in initial resistance and is excellent in suppressing heat generation during internal short circuits.

[0009] In the present invention, the term "major axis" refers to the diameter of a composite particle when a two-dimensional projected image of the composite particle is sandwiched between two parallel lines and the distance between the parallel lines is at its maximum.

[0010] In addition, in the composite particles for electrochemical elements of the present invention, the volume average particle diameter of the composite particles for electrochemical elements is preferably 30 μm or more and 150 μm or less. When the volume average particle diameter of the composite particles is equal to or more than the above-mentioned lower limit, the shape of the composite particles is stably maintained. Furthermore, when the volume average particle diameter of the composite particles is equal to or less than the above-mentioned upper limit, an increase in the internal resistance of the electrode mixture layer made of the composite particles can be suppressed. In the present invention, the "volume average particle size" refers to the particle size at which the cumulative volume calculated from the smallest diameter side is 50% in the particle size distribution (volume basis) measured by laser diffraction.

[0011] In the composite particles for electrochemical devices of the present invention, the thermal decomposition onset temperature of the thermally decomposable foaming agent is preferably 200°C or higher and 500°C or lower. If the thermal decomposition onset temperature of the thermally decomposable foaming agent is equal to or higher than the above-mentioned lower limit, the thermally decomposable foaming agent can be prevented from inadvertently foaming during the manufacturing process of the composite particles of the present invention. Furthermore, if the thermal decomposition onset temperature of the thermally decomposable foaming agent is equal to or lower than the above-mentioned upper limit, when the temperature of an electrochemical device obtained using the composite particles of the present invention becomes excessively high, the thermally decomposable foaming agent will foam appropriately, effectively blocking the conductive path within the composite particles, thereby effectively suppressing heat generation during an internal short circuit in the electrochemical device. In this specification, the "thermal decomposition starting temperature of the thermally decomposable foaming agent" can be measured by a thermogravimetric analyzer.

[0012] In the composite particles for electrochemical devices of the present invention, the thermally decomposable foaming agent preferably has a core-shell structure having a shell made of a surfactant. A thermally decomposable foaming agent with a core-shell structure having a shell made of a surfactant can further reduce the internal resistance of the electrochemical device and more effectively suppress heat generation in the event of an internal short circuit in the electrochemical device.

[0013] In the composite particle for an electrochemical device of the present invention, the conductive material preferably contains carbon nanotubes. If the conductive material contains carbon nanotubes, the initial resistance of the electrochemical device can be effectively reduced.

[0014] Furthermore, the present invention has an object to advantageously solve the above-mentioned problems, and the method for producing composite particles for electrochemical devices of the present invention is any one of the methods for producing composite particles for electrochemical devices described above, which comprises at least: The aforementioned electrode active material, The aforementioned Conductive materials, The aforementioned Thermally decomposable foaming agents and The aforementioned Conclusion Materialin a solvent to prepare a slurry composition for composite particles, and granulating the slurry composition for composite particles, wherein the viscosity of the slurry composition for composite particles is 500 mPa s or more and 1500 mPa s or less. According to this production method, composite particles can be efficiently produced in which the conductive material, the thermally decomposable foaming agent, and the binder are unevenly distributed on the surface side of the composite particles. In the present invention, the viscosity of the slurry composition for composite particles can be measured by the method described in the examples of this specification.

[0015] In the method for producing composite particles for electrochemical devices of the present invention, the granulation is preferably carried out by a spray drying method. Granulation by a spray drying method allows the composite particles of the present invention to be produced more efficiently.

[0016] The present invention also aims to advantageously solve the above-mentioned problems, and provides an electrode for electrochemical devices comprising an electrode mixture layer on a current collector, the electrode mixture layer being an aggregate of any of the composite particles for electrochemical devices described above. By using an electrode for electrochemical devices comprising an electrode mixture layer made of the composite particles described above, an increase in initial resistance can be suppressed, and an electrochemical device that is excellent in suppressing heat generation during an internal short circuit can be manufactured.

[0017] In the electrode for electrochemical devices of the present invention, the amount of the composite particles for electrochemical devices per unit area of the current collector is 25 mg / cm 2 More than 80mg / cm 2 or less, and when the electrode mixture layer is cut at the center in the thickness direction and the resulting upper and lower electrode mixture layers are subjected to mapping analysis using an electron probe microanalyzer (EPMA), the ratio (S1:S2) of the integrated value (S1) of the detection intensity of carbon atoms contained in the upper electrode mixture layer to the integrated value (S2) of the detection intensity of carbon atoms contained in the lower electrode mixture layer is preferably 60:40 to 40:60. Use of such an electrode for electrochemical devices can effectively suppress heat generation during an internal short circuit in an electrochemical device.

[0018] The present invention aims to advantageously solve the above-mentioned problems, and provides an electrochemical device comprising the above-mentioned electrode for an electrochemical device. An electrochemical device comprising the above-mentioned electrode for an electrochemical device is suppressed from increasing in initial resistance and is excellent at suppressing heat generation during an internal short circuit. [Effects of the Invention]

[0019] According to the present invention, it is possible to provide composite particles for electrochemical devices, a method for producing the same, and an electrode for electrochemical devices, which can contribute to suppressing an increase in the initial resistance of an electrochemical device and suppressing heat generation during an internal short circuit in the electrochemical device. Furthermore, according to the present invention, it is possible to provide an electrochemical element that has a reduced initial resistance and is excellent in suppressing heat generation during an internal short circuit. [Brief explanation of the drawings]

[0020] [Figure 1A] FIG. 1 is a diagram for explaining an example of a composite particle for an electrochemical device of the present invention, and is a schematic diagram showing a composite particle for an electrochemical device. [Figure 1B] FIG. 1B is a cross-sectional view taken along line AA in FIG. 1A. [Figure 2] 1 is a cross-sectional view schematically showing an electrode for an electrochemical device for explaining one example of the electrode for an electrochemical device of the present invention. [Figure 3] FIG. 3 is another cross-sectional view schematically showing an electrode for an electrochemical element, for explaining one example of the electrode for an electrochemical element according to the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0021] The composite particles for electrochemical devices of the present invention are used in electrochemical devices such as lithium ion secondary batteries, etc. Here, the composite particles for electrochemical devices of the present invention can be efficiently produced by the method for producing composite particles for electrochemical devices of the present invention. The electrode for an electrochemical device of the present invention comprises an electrode mixture layer made of the composite particles for an electrochemical device of the present invention. The electrochemical device of the present invention comprises the electrode for an electrochemical device of the present invention. The composite particles for electrochemical devices and the manufacturing method thereof, as well as the electrodes for electrochemical devices and electrochemical devices of the present invention will be described below in order with reference to the drawings. In the following drawings, the same reference numerals denote the same components.

[0022] (Composite particles for electrochemical devices) FIG. 1A is a diagram illustrating an example of a composite particle for an electrochemical device of the present invention, and is a schematic diagram showing the composite particle for an electrochemical device, and FIG. 1B is a cross-sectional view taken along line AA in FIG. 1A.

[0023] The composite particle 1 of the present invention is a particle formed by agglomerating at least an electrode active material, a conductive material, a thermally decomposable foaming agent, a binder (none of which are shown), and other components that may be optionally included. The amount of the thermally decomposable foaming agent contained in the composite particle 1 must be 0.1 parts by mass or more and 5 parts by mass or less per 100 parts by mass of the composite particle. Furthermore, when a cross-sectional portion 4 of the composite particle 1 that is perpendicular to the long axis 2 of the composite particle 1 and includes the midpoint 3 of the long axis 2 is subjected to mapping analysis using an electron probe microanalyzer (EPMA), the integrated value (S) of the detection intensity of carbon atoms that are outside the range of a circle 5 whose center is the midpoint 3 of the long axis 2 and whose diameter is 1 / 2 the length (1 / 2L) of the long axis 2 is calculated. A ) and the integrated value of the detection intensity of the carbon atoms included in the area of circle 5 (S B ) and the ratio (S A / S B), that is, the value of the migration ratio within the composite particle 1 must be 4 or more and 15 or less, and preferably 5 or more and 10 or less. With such composite particle 1, the conductive material is unevenly distributed on the surface side of the composite particle 1, thereby increasing the number of contact points between the conductive materials, and forming a strong conductive path within the composite particle 1. Furthermore, since the thermally decomposable foaming agent is unevenly distributed on the surface side of the composite particle 1, when heat sufficient to foam the thermally decomposable foaming agent is applied to the composite particle 1, the thermally decomposable foaming agent foams, effectively blocking the conductive path within the composite particle 1. Note that the detection intensity of the carbon atoms mentioned above includes those derived from the carbon atoms contained in the conductive material, the thermally decomposable foaming agent, and the binder in the composite particle 1.

[0024] Here, the volume average particle diameter of the composite particle 1 is preferably 30 μm or more, more preferably 40 μm or more, and is preferably 150 μm or less, more preferably 100 μm or less. If the volume average particle diameter of the composite particle 1 is within the above range, a strong conductive path within the composite particle 1 is stably maintained.

[0025] <Electrode active material> The electrode active material contained in the composite particle 1 is a material that transfers electrons in an electrode for an electrochemical device. For example, when the electrochemical device is a lithium ion secondary battery, a material that can absorb and release lithium is usually used as the electrode active material.

[0026] Here, the electrode active material may be either a positive electrode active material or a negative electrode active material, but is preferably a positive electrode active material.

[0027] <<Cathode active material>> The positive electrode active material is not particularly limited, and known positive electrode active materials containing manganese or nickel can be used. From the viewpoint of increasing the capacity of the electrochemical device, a positive electrode active material (electrode active material) containing nickel is preferred. Examples of such nickel-containing positive electrode active materials include lithium-containing nickel oxide (LiNiO2), Co-Ni-Mn lithium composite oxide, Ni-Mn-Al lithium composite oxide, Ni-Co-Al lithium composite oxide, and Li2MnO3-LiNiO2 solid solutions, with Co-Ni-Mn lithium composite oxide and Ni-Co-Al lithium composite oxide being preferred. Examples of manganese-containing positive electrode active materials include lithium manganate (LMO: LiMn2O4, Li4Mn5O) and lithium manganate (LMO: LiMn2O4, Li4Mn5O). 12 ) etc. The positive electrode active material may be used alone or in combination of two or more kinds in any ratio.

[0028] <<Negative electrode active material>> The negative electrode active material is not particularly limited, and examples thereof include carbon-based negative electrode active materials, metal-based negative electrode active materials, and negative electrode active materials that are a combination of these.

[0029] [Carbon-based negative electrode active material] Here, the carbon-based negative electrode active material refers to an active material having carbon as the main skeleton that can insert (also referred to as "dope") lithium, and examples of the carbon-based negative electrode active material include carbonaceous materials and graphite materials.

[0030] -Carbonaceous material- Examples of carbonaceous materials include graphitizable carbon and non-graphitizable carbon having a structure similar to an amorphous structure, such as glassy carbon. Examples of graphitizable carbon include carbon materials made from tar pitch obtained from petroleum or coal. Specific examples include coke, mesocarbon microbeads (MCMB), mesophase pitch-based carbon fiber, and pyrolytic vapor-grown carbon fiber. Examples of non-graphitizable carbon include phenolic resin baked body, polyacrylonitrile carbon fiber, pseudo-isotropic carbon, furfuryl alcohol resin baked body (PFA), and hard carbon.

[0031] -Graphite material- Furthermore, examples of graphite materials include natural graphite and artificial graphite. Examples of artificial graphite include artificial graphite obtained by heat-treating carbon containing graphitizable carbon mainly at 2800°C or higher, graphitized MCMB obtained by heat-treating MCMB at 2000°C or higher, and graphitized mesophase pitch-based carbon fibers obtained by heat-treating mesophase pitch-based carbon fibers at 2000°C or higher. In the present invention, natural graphite at least a portion of the surface of which is coated with amorphous carbon (amorphous-coated natural graphite) may be used as the carbon-based negative electrode active material.

[0032] [Metallic negative electrode active material] Metal-based negative electrode active materials are active materials containing metals, typically active materials containing an element capable of intercalating or alloying with lithium, and having a theoretical current capacity per unit mass of 500 mAh / g or more when intercalated or alloyed with lithium. Examples of metal-based negative electrode active materials include lithium metal, elemental metals capable of forming lithium alloys (e.g., Ag, Al, Ba, Bi, Cu, Ga, Ge, In, Ni, P, Pb, Sb, Si, Sn, Sr, Zn, Ti, etc.), alloys thereof, and oxides, sulfides, nitrides, silicides, carbides, and phosphides thereof. Among these, silicon-containing active materials (silicon-based negative electrode active materials) are preferred as metal-based negative electrode active materials. This is because the use of silicon-based negative electrode active materials can increase the capacity of lithium-ion secondary batteries.

[0033] - Silicon-based negative electrode active material - Examples of silicon-based negative electrode active materials include silicon (Si), silicon-containing alloys, SiO, and SiO x and a composite of a Si-containing material and conductive carbon, which is obtained by coating or compounding a Si-containing material with conductive carbon. The negative electrode active material may be used alone or in combination of two or more kinds in any ratio.

[0034] <<Volume average particle size of electrode active material>> Here, the volume average particle diameter of the electrode active material is preferably 1 μm or more, more preferably 5 μm or more, and preferably 30 μm or less, and more preferably 20 μm or less. If the volume average particle diameter of the electrode active material is equal to or greater than the above-mentioned lower limit, heat generation during an internal short circuit of an electrochemical device obtained using the composite particle 1 can be effectively suppressed. Furthermore, if the volume average particle diameter of the electrode active material is equal to or less than the above-mentioned upper limit, an increase in the initial resistance of the obtained electrochemical device can be effectively suppressed.

[0035] <<Amount of electrode active material>> Furthermore, the amount of electrode active material blended into composite particle 1 is preferably 90 parts by mass or more, more preferably 94 parts by mass or more, and preferably 98 parts by mass or less, and more preferably 96 parts by mass or less, per 100 parts by mass of composite particle. If the blending amount of electrode active material is equal to or greater than the above-mentioned lower limit, sufficient capacity is ensured in an electrochemical device obtained using composite particle 1. If the blending amount of electrode active material is equal to or less than the above-mentioned upper limit, an increase in the initial resistance of the electrochemical device is further suppressed.

[0036] <Conductive material> The conductive material contained in the composite particle 1 ensures electrical contact between electrode active materials in the electrode mixture layer of the electrode for electrochemical devices. Examples of the conductive material include conductive carbon materials. Examples of conductive carbon materials 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 carbon nonwoven fabric sheets obtained by calcining nonwoven fabrics made of polymer fibers. From the viewpoint of effectively reducing the initial resistance of an electrochemical device obtained using the composite particle 1, it is preferable to use carbon black or carbon nanotubes as the conductive material, and it is more preferable to use a conductive material containing carbon nanotubes. The conductive material may be used alone or in combination of two or more kinds in any ratio.

[0037] <<Amount of conductive material>> The amount of conductive material blended into composite particle 1 is preferably 1 part by mass or more, more preferably 2 parts by mass or more, and preferably 5 parts by mass or less, and more preferably 4 parts by mass or less, per 100 parts by mass of composite particle 1. If the blending amount of conductive material is equal to or greater than the above-mentioned lower limit, an increase in initial resistance can be more effectively suppressed in an electrochemical device obtained using composite particle 1. Furthermore, if the blending amount of conductive material is equal to or less than the above-mentioned upper limit, heat generation in the event of an internal short circuit in the electrochemical device can be more effectively suppressed.

[0038] <Thermal decomposition foaming agent> The thermally decomposable foaming agent contained in the composite particle 1 generates gas by thermal decomposition and contains at least a foaming material that foams with the generated gas. Examples of foaming materials contained in the thermally decomposable foaming agent include melamine compounds, azodicarbonamide, dinitrosopentamethylenetetramine, and anhydrous magnesium carbonate. Among these, melamine compounds are preferred as the foaming material from the viewpoint of effectively blocking the conductive path within the composite particle 1 by foaming the foaming material. Here, examples of melamine compounds include melamine and melamine derivatives, and salts thereof. Examples of melamine and melamine derivatives include compounds represented by the following formula (I):

[0039] [ka]

[0040] In formula (I), each A is independently a hydroxyl group or -NR 1 R 2 (R 1 and R 2 each independently represents a hydrogen atom, a hydrocarbon group, or a hydroxyl group-containing hydrocarbon group. 1 If there are multiple R 1 may be the same or different, and R 2 If there are multiple R 2 may be the same or different.

[0041] where R 1 and R 2 When the hydrocarbon group and hydroxyl group-containing hydrocarbon group have two or more carbon atoms, one or more oxygen atoms (-O-) may be interposed between the carbon atoms (however, when two or more oxygen atoms are interposed, they are not adjacent to each other). 1 and R 2 The number of carbon atoms in the hydrocarbon group and the hydroxyl group-containing hydrocarbon group is not particularly limited, but is preferably 1 or more and 5 or less.

[0042] Furthermore, salts of melamine and melamine derivatives are not particularly limited, but include sulfates, cyanurates, polyphosphates, and the like.

[0043] As the melamine compound, from the viewpoint of suppressing an increase in the internal resistance of the composite particle 1 due to the thermally decomposable foaming agent in an electrochemical element obtained using the composite particle 1, the foaming material contained in the thermally decomposable foaming agent is preferably melamine cyanurate or melamine, and more preferably melamine cyanurate. The melamine compound may be used alone or in combination of two or more kinds in any ratio.

[0044] <<Thermal decomposition start temperature>> Here, the thermal decomposition onset temperature of the thermally decomposable foaming agent is preferably 200°C or higher, more preferably 250°C or higher, and preferably 500°C or lower, and more preferably 400°C or lower. If the thermal decomposition onset temperature of the thermally decomposable foaming agent is equal to or higher than the above-mentioned lower limit, it is possible to prevent the thermally decomposable foaming agent from inadvertently foaming during the manufacturing process of the composite particle 1. Furthermore, if the thermal decomposition onset temperature of the thermally decomposable foaming agent is equal to or lower than the above-mentioned upper limit, when the temperature of an electrochemical device obtained using the composite particle 1 becomes excessively high, the thermally decomposable foaming agent will foam appropriately, effectively blocking the conductive path within the composite particle 1, thereby more effectively suppressing heat generation during an internal short circuit in the electrochemical device.

[0045] <<Surface treatment of thermally decomposable foaming agents>> The thermally decomposable foaming agent is not particularly limited as long as it contains at least the foaming material described above. Therefore, the thermally decomposable foaming agent may consist essentially of the foaming material alone. However, from the viewpoint of further reducing the internal resistance of the electrochemical device and more effectively suppressing heat generation during an internal short circuit, it is preferable that the thermally decomposable foaming agent have a core-shell structure including a core made of the foaming material and a shell made of a surfactant that covers at least a portion of the outer surface of the core. It is not clear why the thermally decomposable foaming agent having the above-mentioned core-shell structure further reduces the internal resistance of the electrochemical element while more effectively suppressing heat generation during an internal short circuit. However, it is presumed that this is because the thermally decomposable foaming agent having a core-shell structure in which the foaming material is covered with a surfactant does not excessively adsorb to the electrode active material, thereby ensuring sufficient electrical contact between the electrode active materials.

[0046] [Surfactants] As the surfactant capable of forming a shell that covers the foaming material that is the core of the thermally decomposable foaming agent, any of anionic surfactants, nonionic surfactants and cationic surfactants can be used.

[0047] Examples of anionic surfactants include aliphatic carboxylic acids (salts) such as lauric acid, myristic acid, palmitic acid, stearic acid, arachidic acid, and their metal salts (sodium salt, lithium salt, potassium salt, calcium salt, magnesium salt, aluminum salt, zinc salt); alkyl sulfates such as sodium 2-ethylhexyl sulfate and sodium lauryl sulfate; dialkyl sulfosuccinates such as sodium di-2-ethylhexyl-sulfosuccinate; and alkylbenzene sulfonates. Examples of nonionic surfactants include ether-type surfactants such as polyoxyethylene lauryl ether, polyoxyethylene stearyl ether, and polyoxyethylene-2-ethylhexyl ether; and ester-type surfactants such as polyoxyethylene monolaurate, polyoxyethylene monostearate, sorbitan monostearate, sorbitan monolaurate, sorbitan trioleate, and glycerin stearic acid ester. Examples of cationic surfactants include amine salt types such as tetradecylamine acetate and octadecylamine acetate; and trimethyl types such as dodecyltrimethyl-ammonium chloride and octadecyltrimethyl-ammonium chloride. The surfactant may be used alone or in combination of two or more in any ratio. From the viewpoint of further reducing the internal resistance of the electrochemical device, the surfactant is preferably an anionic surfactant, and among them, an aliphatic carboxylic acid (salt) is more preferred, with stearic acid, sodium stearate, and lithium stearate being even more preferred, and sodium stearate being particularly preferred.

[0048] The amount of surfactant contained in the thermally decomposable foaming agent having the core-shell structure is preferably 0.01% by mass or more, more preferably 0.1% by mass or more, and even more preferably 1% by mass or more, and preferably 10% by mass or less, more preferably 5% by mass or less, and even more preferably 4% by mass or less, based on 100% by mass of the total amount of the foaming material and surfactant (usually the total amount of the thermally decomposable foaming agent). If the proportion of the surfactant in the total amount of the foaming material and surfactant is 0.01% by mass or more, the internal resistance of the electrochemical device can be further reduced while more effectively suppressing heat generation in the event of an internal short circuit. On the other hand, if the proportion of the surfactant in the total amount of the foaming material and surfactant is 10% by mass or less, the peel strength of the electrode can be increased while more effectively suppressing heat generation in the event of an internal short circuit.

[0049] <<Volume average particle size of thermally decomposable foaming agent>> The volume average particle diameter of the thermally decomposable foaming agent is preferably 1% or more, more preferably 10% or more, and preferably 20% or less, and more preferably 15% or less, of the volume average particle diameter of the electrode active material. If the volume average particle diameter of the thermally decomposable foaming agent is equal to or greater than the lower limit of the volume average particle diameter of the electrode active material, the conductive material and the thermally decomposable foaming agent are likely to migrate to the surface of the sprayed droplets through the gaps between the electrode active materials when the composite particles 1 are produced by granulation using a spray drying method. This facilitates the formation of composite particles 1 in which the conductive material, the thermally decomposable foaming agent, and the binder are unevenly distributed. Furthermore, if the volume average particle diameter of the thermally decomposable foaming agent is equal to or less than the upper limit, an increase in the internal resistance of the composite particles 1 due to the thermally decomposable foaming agent can be effectively suppressed.

[0050] <<Amount of thermally decomposable foaming agent>> Here, as described above, the amount of the thermally decomposable foaming agent to be blended into the composite particle 1 must be at least 0.1 parts by mass, preferably at least 0.2 parts by mass, per 100 parts by mass of the composite particle, and must be no more than 5 parts by mass, preferably no more than 2 parts by mass. If the blending amount of the thermally decomposable foaming agent is at least the above-mentioned lower limit, heat generation upon internal short circuit of an electrochemical element obtained using the composite particle 1 is sufficiently suppressed. Furthermore, if the blending amount of the thermally decomposable foaming agent is no more than the above-mentioned upper limit, an increase in the internal resistance of the composite particle 1 due to the thermally decomposable foaming agent can be suppressed.

[0051] <<Method for preparing a thermally decomposable foaming agent having a core-shell structure>> The thermally decomposable foaming agent having the core-shell structure described above can be prepared, for example, by granulating a composition containing at least a foaming material and a surfactant, and optionally containing a dispersion medium (hereinafter referred to as a "composition for a thermally decomposable foaming agent"). Here, the preferred quantitative ratio of the foaming material to the surfactant in the composition for a thermally decomposable foaming agent can be the same as the preferred quantitative ratio of the foaming material (core) to the surfactant (shell) in a thermally decomposable foaming agent having a desired core-shell structure.

[0052] [Dispersion medium] The dispersion medium can be appropriately selected depending on the granulation method, etc., and the type can also be appropriately selected depending on the granulation method. Specifically, examples of the dispersion medium include water and organic solvents, with water being preferred. In addition, examples of organic solvents that can be used include acetonitrile, N-methylpyrrolidone, acetylpyridine, cyclopentanone, N,N-dimethylacetamide, dimethylformamide, dimethyl sulfoxide, methylformamide, methyl ethyl ketone, furfural, and ethylenediamine. The dispersion medium may be used alone or in combination of two or more kinds in any ratio.

[0053] [Granulation] The granulation method for obtaining a thermally decomposable foaming agent having a core-shell structure from the above-mentioned thermally decomposable foaming agent composition is not particularly limited as long as it can obtain a thermally decomposable foaming agent having predetermined particle properties, and examples thereof include spray granulation, fluidized bed granulation, coagulant precipitation, pH precipitation, dry mixing, and a method of wet mixing followed by drying and granulation. Among these, spray granulation is preferred.

[0054] In the spray granulation method, a composition for a thermally decomposable foaming agent containing a foaming material, a surfactant, and a dispersion medium is spray-dried to obtain a thermally decomposable foaming agent having predetermined particle properties.

[0055] The method for preparing the composition for a thermally decomposable foaming agent is not particularly limited, and the composition can be prepared by mixing the above-mentioned components using a known mixer. Examples of known mixers include a ball mill, sand mill, bead mill, pigment disperser, crusher, ultrasonic disperser, homogenizer, and planetary mixer. The mixing is usually carried out at a temperature ranging from room temperature to 80°C for 10 minutes to several hours.

[0056] The thermally decomposable foaming agent composition obtained by the above-described mixing is sprayed using a spray dryer, and the sprayed droplets of the thermally decomposable foaming agent composition are dried inside a drying tower. As a result, the surfactant physically and / or chemically adheres to the outer surface of the foaming material contained in the droplets, thereby obtaining a thermally decomposable foaming agent (a thermally decomposable foaming agent having a core-shell structure) in which at least a portion of the outer surface of the foaming material is covered with the surfactant. The temperature of the sprayed thermally decomposable foaming agent composition is usually room temperature, but it may be heated to a temperature higher than room temperature. The hot air temperature during spray drying is preferably below the thermal decomposition temperature of the thermally decomposable foaming agent, for example, 80°C to 250°C, preferably 100°C to 200°C.

[0057] <Binding material> The binder is not particularly limited as long as it can bind the electrode active material, conductive material, and thermally decomposable foaming agent together. Examples of the binder include acrylic polymers, fluorine-based polymers, diene polymers, and hydrogenated versions thereof. From the viewpoint of effectively suppressing an increase in the initial resistance of an electrochemical device obtained using the composite particles 1, acrylic polymers are preferred. The binder may be used alone or in combination of two or more kinds in any ratio.

[0058] Here, the method for producing the binder is not particularly limited, and known polymerization methods such as emulsion polymerization, suspension polymerization, dispersion polymerization, and solution polymerization can be used.

[0059] <<Amount of binder>> From the viewpoint of more effectively suppressing an increase in the initial resistance of an electrochemical element obtained using composite particle 1, the binder to be blended into composite particle 1 is preferably 0.5 parts by mass or more, more preferably 1 part by mass or more, and is preferably 5 parts by mass or less, and more preferably 2 parts by mass or less, per 100 parts of composite particle.

[0060] <Other ingredients> Furthermore, in addition to the above-mentioned electrode active material, conductive material, thermally decomposable foaming agent, and binder, other components may be further contained in the composite particle 1. Examples of the other components include a dispersant, a polymerization initiator, and a molecular weight modifier that can be used when preparing the above-mentioned binder.

[0061] <<Amount of other ingredients>> Furthermore, the amount of other components that can be blended into composite particle 1 is preferably 0.1 parts by mass or more, more preferably 0.5 parts by mass or more, and preferably 2 parts by mass or less, more preferably 1 part by mass or less, per 100 parts of composite particle, from the viewpoint of suppressing an increase in the internal resistance of composite particle 1 due to the other components.

[0062] (Method of manufacturing composite particles for electrochemical devices) The method for producing composite particles for electrochemical devices of the present invention is not particularly limited, but the composite particles can be produced efficiently by the method for producing composite particles of the present invention including the steps described below.

[0063] The method for producing composite particles for electrochemical elements of the present invention (hereinafter referred to as the "method for producing composite particles") includes at least a step (hereinafter referred to as the "preparation step") of preparing a slurry composition for composite particles (hereinafter simply referred to as the "slurry composition") by dispersing an electrode active material, a conductive material, a thermally decomposable foaming agent, and a binder in a solvent, and a step (hereinafter referred to as the "granulation step") of granulating the slurry composition.

[0064] <Preparation process> In the preparation step, at least an electrode active material, a conductive material, a thermally decomposable foaming agent, and a binder are added to a solvent and dispersed therein to obtain a slurry composition. Note that the electrode active material, the conductive material, the thermally decomposable foaming agent, and the binder are as described above, and therefore, description thereof will not be repeated here.

[0065] 〔solvent〕 The solvent used in the preparation step may be water or an organic solvent. Examples of the organic solvent that can be used include acetonitrile, N-methylpyrrolidone, acetylpyridine, cyclopentanone, N,N-dimethylacetamide, dimethylformamide, dimethyl sulfoxide, methylformamide, methyl ethyl ketone, furfural, and ethylenediamine. Among these, it is preferable to use N-methylpyrrolidone (NMP) as the organic solvent from the viewpoints of ease of handling and safety.

[0066] Here, the method for mixing the above-mentioned components is not particularly limited, and for example, mixing can be performed using a mixing device. As the mixing device, the same mixing device as used in preparing the above-mentioned thermally decomposable foaming agent composition can be used. In addition, the temperature and time during mixing are not particularly limited, and for example, the same temperature and time as used in preparing the thermally decomposable foaming agent composition can be used.

[0067] Furthermore, the viscosity of the slurry composition for composite particles, as measured with a Brookfield viscometer at room temperature (25°C) and a rotor rotation speed of 60 rpm, must be 500 mPa·s or more, preferably 800 mPa·s or more, and must be 1500 mPa·s or less, preferably 1200 mPa·s or less. If the viscosity of the slurry composition is equal to or greater than the above-mentioned lower limit, the components can be well dispersed in the slurry composition. If the viscosity of the slurry composition is equal to or less than the above-mentioned upper limit, the conductive material and the thermally decomposable foaming agent can move more easily within the sprayed droplets when the composite particles are granulated by a spray drying method to obtain the composite particles, thereby enabling more efficient production of the composite particles of the present invention.

[0068] <Granulation process> In the granulation step, the slurry composition for composite particles obtained in the preparation step is granulated. Here, the granulation method is not particularly limited as long as it can obtain composite particles from the slurry composition, and examples thereof include the same granulation methods as those used to obtain a thermally decomposable foaming agent having a core-shell structure from the above-mentioned composition for a thermally decomposable foaming agent. From the viewpoint of easily producing composite particles, the spray granulation method is preferred.

[0069] [Spray granulation method] In the spray granulation method, a slurry composition is sprayed and the sprayed droplets are dried to granulate, thereby obtaining the composite particles of the present invention. Here, an atomizer can be used as an apparatus for spraying the slurry composition. Two types of atomizers are available: a rotating disk type and a pressure type. In the rotating disk type, the rotation speed of the disk depends on the size of the disk, but is preferably 5,000 to 30,000 rpm, more preferably 15,000 to 30,000 rpm. The lower the rotation speed of the disk, the larger the sprayed droplets will be, and the larger the average particle size of the resulting composite particles will be.

[0070] The temperature of the slurry composition to be sprayed is preferably room temperature (25°C), but may be raised to a temperature higher than room temperature by heating. The hot air temperature during drying is preferably 25 to 200°C, more preferably 50 to 180°C, and even more preferably 80 to 150°C. In spray drying, the method of blowing hot air is not particularly limited, and examples include a method in which the hot air and the spray direction flow sideways in parallel, a method in which the spray is sprayed at the top of a drying tower and then descends together with the hot air, a method in which the spray droplets and the hot air come into countercurrent contact, and a method in which the spray droplets first flow parallel to the hot air and then fall by gravity and come into countercurrent contact.

[0071] (Electrodes for electrochemical elements) Next, the electrode for an electrochemical device of the present invention will be described with reference to Fig. 2 and Fig. 3. Fig. 2 and Fig. 3 are cross-sectional views each schematically showing an electrode for an electrochemical device for explaining one example of the electrode for an electrochemical device of the present invention.

[0072] First, as shown in FIG. 2, an electrode 20 for an electrochemical element of the present invention comprises an electrode mixture layer 22 on a current collector 21, and the electrode mixture layer 22 is formed from an aggregate of composite particles 1 of the present invention.

[0073] <Current collector> Here, the current collector 21 is not particularly limited and may be selected depending on the type of electrochemical element (not shown) to which the electrochemical element electrode 20 is applied. The material constituting the current collector 21 may be, for example, metal, carbon, or conductive polymer, with metal being preferred. Typical metals used include copper, aluminum, platinum, nickel, tantalum, titanium, stainless steel, and other alloys. Among these, copper, aluminum, or an aluminum alloy is preferred in terms of conductivity and voltage resistance. The form of the current collector 21 is not particularly limited, but it is preferred to use a metal foil.

[0074] <Electrode composite layer> The electrode mixture layer 22 is a layer made of an aggregate of a plurality of composite particles 1. This allows the electrochemical element electrode 20 to be used as an electrode in an electrochemical element that suppresses an increase in initial resistance and is excellent in suppressing heat generation during an internal short circuit. The composite particles 1 contained in the electrode mixture layer 22 may be of one type alone or of two or more types in combination at any ratio.

[0075] Here, the method for producing the electrode for electrochemical elements 20 is not particularly limited, and for example, the electrode for electrochemical elements 20 can be obtained by pressure molding a plurality of composite particles 1 onto a current collector 21. In this case, an example of the pressure molding method is a roll pressure molding method using a roll pressure molding device equipped with a pair of rolls, in which the composite particles 1 are supplied to the roll pressure molding device by a feeder such as a screw feeder while the current collector 21 is fed by the rolls, thereby molding the electrode mixture layer 22 on the current collector 21. Furthermore, another example of a method is a method in which a plurality of composite particles 1 are sprayed on the current collector 21, the composite particles 1 are smoothed with a blade or the like to adjust the thickness, and then molding.

[0076] [Amount of composite particles per unit surface of current collector] The amount of composite particles 1 per unit surface area of the current collector 21 is 25 mg / cm 2 It is preferable that the concentration is 30 mg / cm or more. 2 More preferably, it is 80 mg / cm or more. 2 Preferably, it is 60 mg / cm or less. 2 It is more preferable that the amount of composite particles 1 per unit surface area of the current collector 21 is equal to or greater than the above lower limit. When the amount of composite particles 1 per unit surface area of the current collector 21 is equal to or greater than the above upper limit, an electrochemical device with a high energy density can be manufactured by using the electrochemical device electrode 20. Furthermore, when the amount of composite particles 1 per unit surface area of the current collector 21 is equal to or less than the above upper limit, the electrochemical device can be made smaller while sufficiently suppressing an increase in the initial resistance of the electrochemical device.

[0077] [Distribution of thermally decomposable foaming agent in electrode mixture layer] 3, in the electrochemical element electrode 20, the electrode mixture layer 22 is cut at the center in the thickness direction, and the resulting upper electrode mixture layer 221 and lower electrode mixture layer 222 are subjected to mapping analysis using an electron probe microanalyzer (EPMA). The ratio (S1:S2) of the integrated value (S1) of the detection intensity of carbon atoms contained in the upper electrode mixture layer 221 to the integrated value (S2) of the detection intensity of carbon atoms contained in the lower electrode mixture layer 222 is preferably within a range of 60:40 to 40:60, and more preferably within a range of 52:48 to 48:52. This allows the electrochemical element electrode 22 to be more effectively suppressed from generating heat during an internal short circuit.

[0078] [Porosity] Furthermore, in the electrochemical element electrode 20, the electrode mixture layer 22 is preferably pressed so that the porosity is 10% or more and 50% or less. If the porosity of the electrode mixture layer 22 is within the above range, an increase in initial resistance is sufficiently suppressed in an electrochemical element including the electrochemical element electrode 20. In this specification, the "porosity of the electrode mixture layer" refers to the total volume of voids, which is the volume obtained by subtracting the true volume from the apparent volume of the electrode mixture layer, and the porosity can be calculated as the ratio of the total volume of voids to the apparent volume. The true volume of the electrode mixture layer can be calculated by summing up the values obtained by multiplying the true densities of the constituent materials by their constituent ratios.

[0079] (electrochemical element) The electrochemical device of the present invention is characterized by comprising the above-mentioned electrode for an electrochemical device. The electrochemical device of the present invention is not particularly limited and may be, for example, a lithium ion secondary battery, an electric double layer capacitor, or a lithium ion capacitor, and is preferably a lithium ion secondary battery. Since the electrochemical device of the present invention comprises the electrode for an electrochemical device of the present invention, an increase in initial resistance is suppressed and heat generation during an internal short circuit is excellently suppressed.

[0080] Hereinafter, a case where the electrochemical element is a lithium ion secondary battery will be described as an example, but the present invention is not limited to the following example. A lithium ion secondary battery as the electrochemical element of the present invention usually comprises electrodes (positive electrode and negative electrode), an electrolyte, and a separator, and uses the electrode for electrochemical elements of the present invention for at least one of the positive electrode and the negative electrode.

[0081] <Electrode> Here, the electrode other than the above-described electrode for electrochemical elements of the present invention that can be used in the lithium ion secondary battery as the electrochemical element of the present invention is not particularly limited, and any known electrode can be used. Specifically, the electrode other than the above-described electrode for electrochemical elements can be an electrode obtained by forming an electrode mixture layer on a current collector using a known manufacturing method.

[0082] <Electrolyte> As the electrolyte, an organic electrolyte solution in which a supporting electrolyte is dissolved in an organic solvent is typically used. Examples of the supporting electrolyte include lithium salts. Examples of lithium salts include LiPF6, LiAsF6, LiBF4, LiSbF6, LiAlCl4, LiClO4, CF3SO3Li, CF4F9SO3Li, CF3COOLi, (CF3CO)2NLi, (CF3SO2)2NLi, and (C2F5SO2)NLi. Among these, LiPF6, LiClO4, and CF3SO3Li are preferred, with LiPF6 being particularly preferred, due to their high solubility in solvents and high dissociation. One type of electrolyte may be used alone, or two or more types may be used in combination at any ratio. Generally, the use of a supporting electrolyte with a higher dissociation degree tends to result in higher lithium ion conductivity, and the lithium ion conductivity can be adjusted by the type of supporting electrolyte.

[0083] The organic solvent used in the electrolyte is not particularly limited as long as it can dissolve the supporting electrolyte. Suitable examples include carbonates such as dimethyl carbonate (DMC), ethylene carbonate (EC), diethyl carbonate (DEC), propylene carbonate (PC), butylene carbonate (BC), and methyl ethyl carbonate (EMC); esters such as γ-butyrolactone and methyl formate; ethers such as 1,2-dimethoxyethane and tetrahydrofuran; and sulfur-containing compounds such as sulfolane and dimethyl sulfoxide. Mixtures of these solvents may also be used. Among these, carbonates are preferred because of their high dielectric constant and wide stable potential range. A mixture of ethylene carbonate and ethyl methyl carbonate is even more preferred. The concentration of the electrolyte in the electrolytic solution can be adjusted appropriately, and is preferably 0.5 to 15 mass%, more preferably 2 to 13 mass%, and even more preferably 5 to 10 mass%. The electrolytic solution may also contain known additives, such as vinylene carbonate, fluoroethylene carbonate, and ethyl methyl sulfone.

[0084] <Separator> The separator is not particularly limited, and for example, the one described in JP 2012-204303 A can be used. Among these, a microporous film made of a polyolefin resin (polyethylene, polypropylene, polybutene, polyvinyl chloride) is preferred because it can reduce the overall separator thickness, thereby increasing the ratio of electrode active material in the lithium ion secondary battery and increasing capacity per volume. Furthermore, a separator with a functional layer, in which a functional layer (porous membrane layer or adhesive layer) is provided on one or both sides of a separator substrate, may be used as the separator.

[0085] <Method of manufacturing lithium-ion secondary batteries> The lithium ion secondary battery according to the present invention can be produced, for example, by stacking a positive electrode and a negative electrode with a separator interposed therebetween, rolling or folding the resulting structure as necessary according to the battery shape, placing the resultant structure in a battery container, injecting an electrolyte into the battery container, and sealing the container. To prevent internal pressure buildup and overcharging / discharging, etc., a fuse, an overcurrent protection element such as a PTC element, an expanded metal, a lead plate, etc. may be provided as necessary. The shape of the secondary battery may be, for example, any of a coin type, a button type, a sheet type, a cylindrical type, a rectangular type, a flat type, etc. [Example]

[0086] 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. Furthermore, in a polymer produced by copolymerizing multiple types of monomers, the proportion of a monomer unit formed by polymerizing a certain monomer in the polymer usually coincides with the ratio (feed ratio) of the certain monomer to all the monomers used in the polymerization of the polymer, unless otherwise specified. In the examples and comparative examples, the volume average particle size of the composite particles, the viscosity of the slurry composition, and the migration ratio value (S A / S BThe distribution ratio of carbon atoms in the electrode mixture layer, the heat generation suppression during an internal short circuit in the lithium ion secondary battery, and the initial resistance were measured or evaluated using the following methods. Polymers A to C were prepared by the following methods.

[0087] <Volume average particle size of composite particles> The volume-based D50 diameter of the composite particles was measured using a dry integrated particle size distribution analyzer (Nikkisha, "Microtrac MT3200II") with the dispersion air pressure set to 0.02 MPa during measurement, and the volume average value of the composite particles was obtained.

[0088] <Viscosity of Slurry Composition> The viscosity of the slurry composition was measured using a Brookfield viscometer under the conditions of a temperature of 25±3° C., a rotor M4, and a rotor rotation speed of 60 rpm.

[0089] <Migration ratio value in composite particles (S A / S B )> Ten composite particles were randomly selected using an electron microscope. The selected composite particles were cross-sectionally processed using a focused ion beam (FIB) on a plane passing through the midpoint of the composite particle's long axis and perpendicular to the long axis. EPMA elemental analysis was performed on the cross-section of one of the composite particles obtained. In this EPMA elemental analysis, an electron probe microanalyzer (FE-EPMA, manufactured by JEOL Ltd., "JXA-8530F", acceleration voltage: 10.0 kV, probe current: 30 nA) was used to map carbon atoms (analytical X-ray, spectroscopic crystal: C Kα). The integrated value S of the detected intensity of carbon atoms outside the range of a circle with the midpoint of the composite particle's long axis as its center and a diameter of 1 / 2 the length of the long axis was calculated. a and the integrated value S of the detected intensity of carbon atoms within the circle. b The ratio of the integrated values of the detected intensity of carbon atoms within and outside the circle (S a / S b The ratio values were calculated in the same way for the other selected composite particles, and the average value was used as the migration ratio value (SA / S B ) was decided.

[0090] <Distribution ratio of carbon atoms> The electrode mixture layer was cut at the center of the thickness direction of the electrode mixture layer using a focused ion beam (FIB) to obtain the upper and lower electrode mixture layers. The migration ratio (S A / S B Using the same equipment and under the same conditions as those used in the measurement of (1), the integrated value (S1) of the detection intensity of carbon atoms in the upper part of the electrode mixture layer and the integrated value (S2) of the detection intensity of carbon atoms in the lower part of the electrode mixture layer were determined. Then, the ratio (S1:S2) of the carbon atoms distributed in the upper part of the electrode mixture layer to the carbon atoms distributed in the lower part of the electrode mixture layer was determined.

[0091] <Heat suppression during internal short circuit (forced internal short circuit test)> The fabricated lithium-ion secondary batteries were charged to 4.30 V (cutoff condition: 0.02 C) using a constant-voltage-constant-current (CC-CV) method at a charge rate of 0.2 C in an atmosphere of 25°C. A 3 mm diameter, 10 cm long iron nail was then inserted near the center of the lithium-ion secondary battery at a speed of 5 m / min, forcing it to short-circuit. This forced short-circuit was performed on five lithium-ion secondary batteries (test specimens) fabricated using the same procedure, and the number of test specimens that did not burst or catch fire was used to evaluate the battery performance according to the following criteria. The more test specimens that did not burst or catch fire, the better the lithium-ion secondary battery's ability to suppress heat generation during an internal short circuit. SA: The number of test specimens that did not explode or ignite was 5. A: The number of test specimens that did not explode or ignite was four. B: The number of test specimens that did not explode or ignite was three. C: The number of test specimens that did not explode or ignite was 2. D: The number of test specimens that do not explode or ignite is one or less.

[0092] <Initial resistance> After injecting the electrolyte, the lithium-ion secondary battery was charged at 0.2C to 3.65V, left at 60°C for 12 hours, and then discharged at 0.2C to 3.00V for aging. The battery was then charged at 0.2C to 4.30V in a 25°C environment and discharged at 0.2C to 3.00V. The voltage V0 during charging at 0.2C to 3.7V in a 25°C environment was measured. The battery was then discharged at a discharge rate of 1C in a 25°C environment, and the voltage V1 was measured 10 seconds after the start of discharge. Resistance characteristics were evaluated based on the voltage change ΔV = V0 - V1. The smaller the ΔV value, the better the resistance characteristics of the lithium-ion secondary battery, suppressing the increase in initial resistance. SA:ΔV(mV)≦13 A:13<ΔV(mV)≦15 B: 15<ΔV(mV)≦17 C:17<ΔV(mV)≦19 D:19<ΔV(mV)≦21 E:21<ΔV(mV)

[0093] <Preparation of Polymer A> In an autoclave equipped with a stirrer, 164 parts of ion-exchanged water, 5.0 parts of methacrylic acid as a binding functional group-containing monomer, 63.0 parts of 2-ethylhexyl acrylate as a (meth)acrylic acid ester monomer, 27.0 parts of styrene as an aromatic vinyl monomer, 5.0 parts of acrylonitrile as a nitrile group-containing monomer, 0.3 parts of potassium persulfate as a polymerization initiator, 1.2 parts of sodium polyoxyethylene alkyl ether sulfate as an emulsifier, and 0.3 parts of tert-dodecyl mercaptan as a molecular weight modifier were added, and after thorough stirring, the mixture was heated at 80 ° C for 3 hours to polymerize, obtaining an aqueous dispersion of the polymer. The polymerization conversion rate calculated from the solids concentration was 96%. Subsequently, N-methyl-2-pyrrolidone (NMP) as an organic solvent was added to the obtained aqueous dispersion of the polymer so that the solids concentration of the polymer became 7%. Then, water and excess NMP were removed by vacuum distillation at 90°C to obtain an NMP solution of polymer A (solid content: 8%) as an acrylic polymer.

[0094] <Preparation of Polymer B> Polyvinylidene fluoride (Arkema, "HSV900") was dissolved in NMP and the solid content was adjusted to 8%, to obtain an NMP solution of polymer B as a fluorine-based polymer (solid content 8%).

[0095] <Preparation of Polymer C> To a polymerization vessel A, 74 parts of ion-exchanged water, 0.2 parts of sodium dodecyldiphenyl ether sulfonate as an emulsifier, 1.0 part of ammonium persulfate as a polymerization initiator, and 9.7 parts of ion-exchanged water were added, heated to 70°C, and stirred at 70°C for 30 minutes. Next, 75.0 parts of 2-ethylhexyl acrylate as a (meth)acrylic acid ester monomer, 22.0 parts of acrylonitrile and 2.0 parts of itaconic acid as other monomers, 1.0 part of 2-hydroxyethyl acrylate, 0.8 parts of sodium dodecyl diphenyl ether sulfonate as an emulsifier, and 74 parts of ion-exchanged water were added to a separate polymerization vessel B and stirred at 25°C to obtain an emulsion. The resulting emulsion was gradually added from polymerization vessel B to polymerization vessel A over approximately 200 minutes, then stirred for approximately 180 minutes. When the monomer conversion reached 97% or higher, the mixture was cooled to terminate the reaction. The pH was then adjusted with a 4% aqueous sodium hydroxide solution, and unreacted monomer was removed by heated, reduced-pressure distillation to obtain an aqueous dispersion of polymer C as an acrylic polymer (solids concentration: 40%).

[0096] Example 1 <Production of composite particles> The planetary mixer was fitted with a Co-Ni-Mn lithium composite oxide active material NMC111 (LiNi 0.33 Co 0.33 Mn 0.3394 parts of ethanol (reversible capacity: 160 mAh / g), 3 parts of carbon black A (Li-435, manufactured by Denka Co., Ltd.) as a conductive material, 1 part of melamine cyanurate as a thermally decomposable foaming agent, and 2 parts (solids equivalent) of polymer A (acrylic) as a binder were added and mixed. Furthermore, NMP as an organic solvent was gradually added, and the mixture was stirred at a temperature of 25±3°C and a rotation speed of 25 rpm to obtain a slurry composition with a viscosity of 1000 mPa s. This slurry composition was used to granulate by spray drying. A spray dryer (manufactured by Okawara Kakoki Co., Ltd.) and a rotating disk atomizer (diameter 65 nm) were used for spray granulation, with the disk rotation speed set to 25,000 rpm, the hot air temperature set to 150°C, and the particle collection outlet temperature set to 90°C. The resulting composite particles were classified using a sieve into sizes ranging from 45 μm to 125 μm. Various measurements and evaluations were performed using the resulting composite particles. The results are shown in Table 1.

[0097] <Production of positive electrodes> The obtained composite particles were fed to the rolls (roll temperature 100°C, press line pressure 4 kN / cm) of a roll press (Hirano Giken Kogyo Co., Ltd., "Press-cutting rough surface hot roll"), and a positive electrode composite layer was formed into a sheet on aluminum foil with a thickness of 15 μm at a forming speed of 20 m / min. The positive electrode composite layer side of the prepared positive electrode blank was then roll-pressed in an environment with a temperature of 25±3°C to obtain a positive electrode with a positive electrode composite layer porosity of 30%. Various measurements were performed using the obtained positive electrode. The results are shown in Table 1.

[0098] <Production of negative electrodes> A 5 MPa pressure vessel equipped with a stirrer was charged with 63 parts of styrene as an aromatic vinyl monomer, 34 parts of 1,3-butadiene as an aliphatic conjugated diene monomer, 2 parts of itaconic acid as a carboxylic acid group-containing monomer, 1 part of 2-hydroxyethyl acrylate as a hydroxyl group-containing monomer, 0.3 parts of t-dodecyl mercaptan as a molecular weight modifier, 5 parts of sodium dodecylbenzenesulfonate as an emulsifier, 150 parts of ion-exchanged water as a solvent, and 1 part of potassium persulfate as a polymerization initiator. After thorough stirring, the mixture was heated to 55°C to initiate polymerization. The reaction was terminated by cooling when the monomer consumption reached 95.0%. A 5% aqueous sodium hydroxide solution was added to the resulting aqueous dispersion containing the polymer to adjust the pH to 8. Unreacted monomer was then removed by heated vacuum distillation. The mixture was then cooled to a temperature of 30°C or below to obtain an aqueous dispersion containing a negative electrode binder (a negative electrode binder composition). 97 parts of natural graphite (average particle size (D50): 13 μm, theoretical capacity: 360 mAh / g) as the negative electrode active material and 1 part (solid content equivalent) of carboxymethyl cellulose (CMC) as a thickener were added to a planetary mixer. The mixture was then diluted with ion-exchanged water to a solid content concentration of 60%, and then kneaded for 60 minutes at a rotation speed of 45 rpm. 1.5 parts (solid content equivalent) of the negative electrode binder composition obtained above was then added, and kneaded for 40 minutes at a rotation speed of 40 rpm. Ion-exchanged water was then added to adjust the viscosity to 3000±500 mPa s, thereby preparing a negative electrode slurry composition.

[0099] The negative electrode slurry composition was applied to the surface of a 15 μm thick electrolytic copper foil current collector using a comma coater in an amount of 15.5±0.5 mg / cm 2The copper foil coated with the negative electrode slurry composition was then transported at a speed of 400 mm / min through an oven at 120°C for 2 minutes and then through an oven at 130°C for 2 minutes to dry the slurry composition on the copper foil, thereby obtaining a negative electrode blank with a negative electrode composite layer formed on the current collector. The negative electrode composite layer side of the prepared negative electrode blank was then roll-pressed in an environment at a temperature of 25±3°C, and the density of the negative electrode composite layer was adjusted to 1.60 g / cm. 3 A negative electrode having the formula:

[0100] <Preparing the separator> A single-layer polypropylene separator (manufactured by Celgard Co., Ltd., product name "Celgard 2500") was prepared as the separator.

[0101] <Fabrication of lithium-ion secondary batteries> A laminated cell (with an initial design discharge capacity of 3 Ah) was fabricated using the negative electrode, positive electrode, and separator described above. It was then placed in an aluminum package and vacuum dried at 60°C for 10 hours. A 1.0 M LiPF solution (solvent: ethylene carbonate (EC) / diethyl carbonate (DEC) = 5 / 5 (volume ratio), additive: vinylene carbonate 2 vol% (solvent ratio)) was then filled as the electrolyte. The aluminum package was then heat-sealed at 150°C to seal the opening, completing the lithium-ion secondary battery. Various evaluations were performed using the resulting lithium-ion battery. The results are shown in Table 1.

[0102] (Examples 2 and 3) In producing the composite particles, except that a slurry composition having a viscosity shown in Table 1 was used, composite particles, a positive electrode, a negative electrode, a separator, and a lithium ion secondary battery were produced in the same manner as in Example 1, and various evaluations were performed. The results are shown in Table 1.

[0103] Example 4 In preparing the slurry composition, except that the amounts of the electrode active material and the thermally decomposable foaming agent were changed to the amounts shown in Table 1, composite particles, a positive electrode, a negative electrode, a separator, and a lithium ion secondary battery were produced and various evaluations were performed in the same manner as in Example 1. The results are shown in Table 1.

[0104] Example 5 In preparing the slurry composition, except that carbon black B (manufactured by IMERYS, "Super C65") was used as the conductive material instead of carbon black A, composite particles, a positive electrode, a negative electrode, a separator, and a lithium ion secondary battery were produced in the same manner as in Example 1, and various evaluations were performed. The results are shown in Table 1.

[0105] Example 6 In preparing the slurry composition for composite particles, the amounts of the electrode active material and the conductive material were changed to the amounts shown in Table 1, and in the same manner as in Example 1, composite particles, a positive electrode, a negative electrode, a separator, and a lithium ion secondary battery were produced and various evaluations were performed. The results are shown in Table 1.

[0106] Example 7 Except for using polymer B (fluorine-based) instead of polymer A as a binder in preparing the slurry composition, composite particles, a positive electrode, a negative electrode, a separator, and a lithium ion secondary battery were produced in the same manner as in Example 1, and various evaluations were performed. The results are shown in Table 1.

[0107] Example 8 When preparing the slurry composition, NMC622 (a lithium composite oxide-based electrode active material of Co-Ni-Mn (LiNi 0.6 Co 0.2 Mn 0.2 Except for using 100% ethanol (02, reversible capacity: 170 mAh / g), composite particles, a positive electrode, a negative electrode, a separator, and a lithium ion secondary battery were produced in the same manner as in Example 1, and various evaluations were performed. The results are shown in Table 2.

[0108] Example 9 Except for using melamine instead of melamine cyanurate as the thermally decomposable foaming agent in preparing the slurry composition, composite particles, a positive electrode, a negative electrode, a separator, and a lithium ion secondary battery were produced and evaluated in the same manner as in Example 1. The results are shown in Table 2.

[0109] Example 10 When preparing the positive electrode, the amount of composite particles per unit surface of the current collector was 70 mg / cm 2 Except for adjusting the temperature so that the temperature was such ...

[0110] Example 11 In preparing the slurry composition, water was used instead of NMP as the solvent. Furthermore, lithium manganese oxide (LMO: LiMn2O4, reversible capacity: 105 mAh / g) was used instead of MNC111 as the electrode active material. Furthermore, carbon black B (manufactured by IMERYS, "SuperC65") was used instead of carbon black A as the conductive material, and one part of polymer C (acrylic) was used instead of polymer A as the binder, and one part of carboxymethyl cellulose (CMC) was used as the other component. Furthermore, in preparing the positive electrode, the amount of composite particles per unit surface area of the current collector was 50 mg / cm. 2 Other than that, composite particles, a positive electrode, a negative electrode, a separator, and a lithium ion secondary battery were produced in the same manner as in Example 1, and various evaluations were carried out. The results are shown in Table 2.

[0111] Example 12 Except for using azodicarbonamide instead of melamine cyanurate as the thermally decomposable foaming agent in preparing the slurry composition, a slurry composition, a positive electrode, a negative electrode, a separator, and a lithium ion secondary battery were produced in the same manner as in Example 1, and various evaluations were performed. The results are shown in Table 2.

[0112] Example 13 Except for using dinitrosopentamethylenetetramine instead of melamine cyanurate as the thermally decomposable foaming agent in preparing the slurry composition, composite particles, a positive electrode, a negative electrode, a separator, and a lithium ion secondary battery were produced and evaluated in the same manner as in Example 1. The results are shown in Table 2.

[0113] Example 14 Composite particles, a positive electrode, a negative electrode, a separator, and a lithium ion secondary battery were produced and evaluated in the same manner as in Example 1, except that anhydrous magnesium carbonate (Magthermo MS-S, manufactured by Konoshima Chemical Co., Ltd.) was used as the thermally decomposable foaming agent instead of melamine cyanurate when preparing the slurry composition. The results are shown in Table 2.

[0114] Example 15 Composite particles, a positive electrode, a negative electrode, a separator, and a lithium ion secondary battery were produced and evaluated in the same manner as in Example 1, except that in preparing the slurry composition, a thermally decomposable foaming agent A prepared as described below was used instead of melamine cyanurate. The results are shown in Table 3. <Preparation of Thermally Decomposable Foaming Agent A> Equimolar amounts of 63.0 g of melamine pulverized to a volume average particle size of 100 μm and 64.5 g of cyanuric acid were added to a reactor. Ion-exchanged water was further added to adjust the solids concentration to 55%, yielding a mixture. The mixture was then heated to 75°C with stirring and stirred for 120 minutes to prepare a slurry containing melamine cyanurate (foaming material) as the core of thermally decomposable foaming agent A. To the resulting slurry, 3 parts of anionic surfactant sodium stearate were added per 97 parts of melamine cyanurate, and ion-exchanged water was added to adjust the solids concentration to 20%, followed by stirring for an additional 30 minutes to obtain a thermally decomposable foaming agent composition. The resulting thermally decomposable foaming agent composition was spray-dried at 140°C to obtain thermally decomposable foaming agent A having a core-shell structure.

[0115] Example 16 In preparing the slurry composition, except that a thermally decomposable foaming agent B prepared as described below was used instead of melamine cyanurate, composite particles, a positive electrode, a negative electrode, a separator, and a lithium ion secondary battery were produced in the same manner as in Example 1, and various evaluations were performed. The results are shown in Table 3. <Preparation of Thermally Decomposable Foaming Agent B> Equimolar amounts of 63.0 g of melamine pulverized to a volume average particle size of 100 μm and 64.5 g of cyanuric acid were added to a reactor. Ion-exchanged water was further added to adjust the solids concentration to 55%, yielding a mixture. The mixture was then heated to 75°C with stirring and stirred for 120 minutes to prepare a slurry containing melamine cyanurate (foaming material) as the core of thermally decomposable blowing agent B. To the resulting slurry, 3 parts of stearic acid, an anionic surfactant, were added to 97 parts of melamine cyanurate, and ion-exchanged water was added to adjust the solids concentration to 20%, followed by stirring for an additional 30 minutes to obtain a thermally decomposable blowing agent composition. The resulting thermally decomposable blowing agent composition was spray-dried at 140°C to obtain thermally decomposable blowing agent B having a core-shell structure.

[0116] Example 17 In preparing the slurry composition, carbon nanotubes ("FT7010" manufactured by Cnano Corp.) were used as the conductive agent instead of carbon black A. Except for this, composite particles, a positive electrode, a negative electrode, a separator, and a lithium ion secondary battery were produced in the same manner as in Example 1, and various evaluations were performed. The results are shown in Table 3.

[0117] (Comparative Examples 1 and 2) Composite particles, positive electrodes, negative electrodes, separators, and lithium ion secondary batteries were produced and evaluated in the same manner as in Example 1, except that slurry compositions having viscosities shown in Table 4 were used in the production of composite particles. The results are shown in Table 4.

[0118] (Comparative Example 3) In preparing the slurry composition, except that the blending amounts of the electrode active material and the thermally decomposable foaming agent were changed to the amounts shown in Table 4, composite particles, positive electrodes, negative electrodes, separators, and lithium ion secondary batteries were produced in the same manner as in Example 1, and various evaluations were performed. The results are shown in Table 4.

[0119] Comparative Example 4 Composite particles, positive electrodes, negative electrodes, separators, and lithium ion secondary batteries were produced and evaluated in the same manner as in Example 1, except that in preparing the slurry composition, the thermally decomposable foaming agent was changed to one having a volume average particle diameter shown in Table 4. The results are shown in Table 4.

[0120] (Comparative Example 5) A slurry composition containing the same components as the slurry composition used in Example 1 was prepared, except that the viscosity of the slurry composition was 3500 mPa s. A positive electrode, a negative electrode, a separator, and a lithium-ion secondary battery were produced in the same manner as in Example 1, except that the obtained slurry composition was applied to a current collector and dried to form an electrode mixture layer, and various evaluations were performed. The results are shown in Table 4.

[0121] [Table 1]

[0122] [Table 2]

[0123] [Table 3]

[0124] [Table 4]

[0125] From Tables 1 to 4, composite particles containing an electrode active material, a conductive material, a thermally decomposable foaming agent, and a binder, in which the thermally decomposable foaming agent is contained in an amount of 0.1 parts by mass or more and 5 parts by mass or less per 100 parts by mass of the composite particles, have a migration ratio value (S A / S B It can be seen that the lithium ion secondary batteries (Examples 1 to 17) obtained using composite particles with a ρ of 4 or more and 15 or less are excellent in suppressing heat generation during an internal short circuit, and suppressing an increase in initial resistance. [Industrial Applicability]

[0126] According to the present invention, it is possible to provide composite particles for electrochemical devices, a method for producing the same, and an electrode for electrochemical devices, which can contribute to suppressing an increase in the initial resistance of an electrochemical device and suppressing heat generation during an internal short circuit in the electrochemical device. Furthermore, according to the present invention, it is possible to provide an electrochemical element that has a reduced initial resistance and is excellent in suppressing heat generation during an internal short circuit. [Explanation of symbols]

[0127] 1 Composite particles 2 long axis 3 midpoint 4 Cross section 5 yen 20 Electrodes for electrochemical devices 21 Current collector 22 Electrode composite layer 221 Upper part of electrode mixture layer 222 Lower part of electrode mixture layer

Claims

1. A composite particle for an electrochemical device, comprising an electrode active material, a conductive material, a thermally decomposable foaming agent, and a binder, The composite particles for electrochemical devices contain 0.1 parts by mass or more and 5 parts by mass or less of the thermally decomposable foaming agent relative to 100 parts by mass of the composite particles for electrochemical devices, When a cross section of the composite particle for electrochemical devices that is perpendicular to the major axis of the composite particle for electrochemical devices and includes the midpoint of the major axis is subjected to mapping analysis using an electron probe microanalyzer (EPMA), the integrated value (S A ) and the integrated value (S B ) and the ratio (S A / S B ) is 4 or more and 15 or less, The thermal decomposition starting temperature of the thermally decomposable foaming agent is 200°C or higher and 500°C or lower, The composite particles for an electrochemical element include a foaming material that generates a gas by thermal decomposition and foams in response to the gas.

2. 2. The composite particles for an electrochemical device according to claim 1, wherein the volume average particle diameter of the composite particles for an electrochemical device is 30 μm or more and 150 μm or less.

3. 3. The composite particles for an electrochemical device according to claim 1, wherein the thermally decomposable foaming agent has a core-shell structure having a shell made of a surfactant.

4. 4. The composite particle for an electrochemical device according to claim 1, wherein the conductive material comprises a carbon nanotube.

5. A method for producing the composite particle for an electrochemical device according to any one of claims 1 to 4, comprising: a step of dispersing at least the electrode active material, the conductive material, the thermally decomposable foaming agent, and the binder in a solvent to prepare a slurry composition for composite particles; and granulating the slurry composition for composite particles, The method for producing composite particles for electrochemical devices, wherein the viscosity of the slurry composition for composite particles is 500 mPa·s or more and 1500 mPa·s or less.

6. The method for producing composite particles for an electrochemical device according to claim 5 , wherein the granulation is carried out by a spray drying method.

7. An electrode for an electrochemical element comprising an electrode mixture layer on a current collector, 5. An electrode for an electrochemical device, wherein the electrode mixture layer is an aggregate of the composite particles for an electrochemical device according to claim 1.

8. The amount of the composite particles for an electrochemical element per unit area of the current collector is 25 mg / cm 2 More than 80mg / cm 2 is as follows:

8. The electrode for electrochemical elements according to claim 7, wherein when the electrode mixture layer is cut at the center in the thickness direction and the obtained upper and lower electrode mixture layer are subjected to mapping analysis using an electron probe microanalyzer (EPMA), the ratio (S1:S2) of the integrated value (S1) of the detection intensity of carbon atoms contained in the upper electrode mixture layer to the integrated value (S2) of the detection intensity of carbon atoms contained in the lower electrode mixture layer is 60:40 to 40:

60.

9. An electrochemical device comprising the electrode for an electrochemical device according to claim 7 or 8.

Citation Information

Patent Citations

  • Negative electrode material for lithium ion secondary battery and method for producing the same, negative electrode for lithium ion secondary battery using the negative electrode material, and lithium ion secondary battery

    JP2014007148A

  • Manufacturing method of electrode for power storage device, electrode for power storage device, and power storage device

    JP2019109974A

  • Graphene-enabled vanadium oxide cathode and lithium cells containing same

    US20120321953A1

  • Electro-chemical element electrode

    WO2006118235A1

  • Method for manufacturing electrode for electrochemical element and electrochemical element

    WO2012099264A1