Coating composition and coated substrate

A coating composition with defined viscosity ratios and thixotropy indices addresses the lack of high-speed coating and surface smoothness in existing technologies, improving lithium-ion battery production efficiency.

JP7852504B2Active Publication Date: 2026-04-28RESONAC CORP
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
RESONAC CORP
Filing Date
2021-10-08
Publication Date
2026-04-28

AI Technical Summary

Technical Problem

Existing coating compositions for lithium-ion battery components lack clear understanding of properties contributing to high-speed coating and surface smoothness, as evidenced by the lack of disclosure in Patent Documents 1 and 2.

Method used

A coating composition comprising a filler, binder, and thickener, with specific viscosity ratios and thixotropy indices, ensuring smooth and uniform coating films even at high speeds.

Benefits of technology

The composition enables high-speed and high-precision coating with a smooth surface, enhancing production efficiency of lithium-ion secondary batteries.

✦ Generated by Eureka AI based on patent content.

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Abstract

[Problem] To provide a composition that makes it possible to form an easy-drying coating on a work surface and is used in a coating liquid for a positive electrode, negative electrode, separator, etc. of a lithium-ion battery, or a paint, an ink, and an adhesive which mainly contain polymers. [Solution] A coating composition contains a filler, a binder, a thickener, and a solvent, and is characterized in that: the binder is at least one selected from a diene rubber and (meth)acrylate polymer; the viscosity of the coating composition is 1.0×106 Pa∙s or less as measured at a shear rate of 0.01 / s; and the thixotropy index (TI) is 1.1×106 or higher: [thixotropy index (TI)]=[viscosity of the coating composition as measured at a shear rate of 0.01 / s] / [viscosity of the coating composition as measured at a shear rate of 10,000 / s].
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Description

[Technical Field]

[0001] The present invention relates to a composition comprising a filler, a binder, and a thickener, and more particularly to a composition that can form an easily drying coating on an application surface in paints, inks, adhesives, positive electrodes, negative electrodes, separators, etc., of lithium-ion batteries, which mainly contain polymers. [Background technology]

[0002] Coating and printing technologies using compositions are widely used in industrial fields from environmental, safety, and efficiency perspectives. Such printing technologies require the ability to dispense and apply the minimum necessary composition at high speed and with high precision, while also possessing high coating properties, resulting in a smooth coated surface.

[0003] However, the physical properties of compositions with excellent coating properties were not understood. For example, Patent Document 1 discloses that a battery separator coating solution with excellent dispersibility and ease of coating can be obtained by setting a suspension of fibrous cellulose diluted with ion-exchanged water to a specific thixotropy index (TI).

[0004] Patent Document 2 discloses a coating liquid for metal ion secondary battery separators that can form a uniform coating film with excellent coating properties by setting the viscosity ratio at a predetermined shear rate to a specific level or higher. [Prior art documents] [Patent Documents]

[0005] [Patent Document 1] International Publication No. 2018 / 070473 [Patent Document 2] Patent No. 5829557 [Overview of the Initiative] [Problems that the invention aims to solve]

[0006] However, Patent Document 1 does not disclose TI in a state containing compositions other than fibrous cellulose and ion-exchanged water. Furthermore, it does not describe or suggest high-speed coating properties. Patent Document 2 describes a coating liquid in which the water-soluble component content is 5% by mass or less and the solid content is extremely high, and it does not necessarily suggest anything in terms of high-speed coating properties or surface smoothness.

[0007] While many of the compositions exhibit good coating properties, the characteristics that contribute to high-speed coating and surface smoothness were not clear. [Means for solving the problem]

[0008] Under these circumstances, the inventors conducted diligent research and found that by using a composition in which the viscosity ratio at high and low shear rates is within a specific range, it is possible to form a coating film with excellent coating properties and surface smoothness, and that it can be fully used for the above-mentioned applications, thus completing the present invention.

[0009] In other words, the configuration of the present invention is as follows. [1] A coating composition comprising a filler, a binder, a thickener, and a solvent, The binder comprises at least one selected from diene rubber and (meth)acrylate polymers. The viscosity of the coating composition measured at a shear rate of 0.01 / s is 1.0 × 10⁻⁶ 6 It is less than or equal to Pa·s. The following thixotropy index (TI) is 1.1 × 10⁻⁶ 6 A coating composition characterized by the above; [Thixotropy Index (TI)] = [Viscosity of coating composition measured at a shear rate of 0.01 / s] / [Viscosity of coating composition measured at a shear rate of 10000 / s] [2] The coating composition of [1], wherein the ratio of the filler to the thickener is 10 to 100 by mass (filler / thickener). [3] The coating composition of [1] or [2], wherein the thickening agent is poly-N-vinyl carboxylic acid amide. [4] The coating composition according to [1] to [3], wherein the thickener is poly-N-vinylacetamide. [5] The coating composition according to [1] or [2], wherein the thickener is polyvinylpyrrolidone. [6] The coating composition according to [1] to [5], which contains water as a solvent. [7] The coating composition according to [1] to [6], wherein the value of the thixotropy index (TI) is 1.1×10 8 or less. [8] The coating composition according to [1] to [7], wherein the aspect ratio of the filler is 1 or more and less than 2. [9] A substrate with a coating film, which includes a coating film formed from the coating composition according to [1] to [8] and a substrate.

[10] A separator formed from the substrate with a coating film according to [9].

[11] A secondary battery using the separator according to

[10] .

[12] A lithium-ion secondary battery using the separator according to

[10] .

[13] An electrode material provided with a coating film formed from the coating composition according to [1] to [8] on the surface of a substrate. [Advantages of the Invention]

[0010] When applying the coating composition of the present invention at high speed and with high precision, a coating film with a smooth surface of the coating surface can be obtained. If such a technique is adopted for forming electrodes, separators, etc. of secondary batteries, especially lithium-ion secondary batteries, the production efficiency of secondary batteries can be improved. [Embodiments for Carrying Out the Invention]

[0011] Hereinafter, embodiments for carrying out the present invention will be described. [Coating Composition] The coating composition of the present embodiment contains a filler, a thickener, a binder, and a solvent.

[0012] Such a coating composition has a viscosity of the coating composition measured at a shear rate of 0.01 / s of 1.0×10 6 Pa·s or less. The following thixotropy index (TI) is 1.1×10 6 or more, preferably 3.0×10 6 or more, more preferably 1.0×10 7 or more. Also, the thixotropy index (TI) is preferably 1.1×10 8 or less, preferably 5.0×10 7 or less. Such a predetermined thixotropy index (TI) can be adjusted by the composition.

[0013] [Thixotropy index (TI)] = [Viscosity of the coating composition measured at a shear rate of 0.01 / s] / [Viscosity of the coating composition measured at a shear rate of 10000 / s]. In the thixotropy index (TI) of the present invention, it is the ratio of the viscosity at a high shear rate to the viscosity at a low shear rate. When this ratio is within a predetermined range, even when high-speed and high-precision coating is performed, streaks or flows do not occur on the surface, and an extremely smooth coating film can be obtained. [Filler] As the filler, those made of inorganic substances are used. Specifically, as the filler, alumina, boehmite, talc, kaolin, calcium carbonate, calcium phosphate, amorphous silica, crystalline glass filler, titanium dioxide, silica-alumina composite oxide particles, barium sulfate, calcium fluoride, lithium fluoride, zeolite, molybdenum sulfide, mica, etc. are preferable. Among these, alumina and boehmite are more preferable.

[0014] The shape of the filler is not particularly limited, and in addition to spherical, polyhedral, plate-like, scaly, columnar, and tubular shapes, it may also be fibrous. The aspect ratio of the filler is preferably 1 or more and 15 or less, and more preferably in the range of 1 or more and less than 2. If the aspect ratio of the filler is 1 or more and 15 or less, it is preferable for easy mixing with other components in the coating composition.

[0015] The 50% particle size D50 in the volume-based cumulative particle size distribution of the filler is preferably in the range of 0.1 to 50 μm, and more preferably in the range of 0.5 to 10 μm. [Thickener] The thickener consists of an organic polymer. The binder described later is not included in the thickener. Preferred thickeners include polysaccharides such as poly-N-vinyl carboxylic acid amide, poly-N-vinylpyrrolidone, sodium salt of carboxymethylcellulose, polyacrylamide, polyvinyl alcohol, carrageenan, xanthan gum, guar gum, and pectin; cellulosic polymers such as carboxymethylcellulose, hydroxymethylcellulose, hydroxyethylcellulose, methylethylhydroxycellulose, methylcellulose, and hydroxypropylcellulose; and ammonium salts and alkali metal salts of these cellulosic polymers.

[0016] Of these, poly-N-vinyl carboxylic acid amide or poly-N-vinylpyrrolidone is preferred, more preferably poly-N-vinyl carboxylic acid amide, and even more preferably poly-N-vinyl acetamide. Specific examples of monomers constituting poly-N-vinyl carboxylic acid amide include N-vinylformamide, N-vinylacetamide, N-vinylpropionamide, N-vinylbenzamide, N-vinyl-N-methylformamide, N-vinyl-N-ethylformamide, N-vinyl-N-methylacetamide, and N-vinyl-N-ethylacetamide. Of these, N-vinylacetamide is particularly preferred.

[0017] These may be either homopolymers or copolymers. When copolymerizing, it is possible to copolymerize salts of itaconic acid, maleic acid, crotonic acid, (meth)acrylate acid, etc., but this is not particularly limited.

[0018] The N-vinylacetamide component in the poly-N-vinylcarboxylic acid amide is preferably 60 mol% or more. The viscosity of the thickening agent is preferably 30 mPa·s to 30,000 mPa·s in its natural state (without adjusting the solution concentration). A viscosity within this range is preferable as it facilitates coating. [binder] The binder comprises at least one selected from diene rubber and (meth)acrylate polymers, and more preferably consists only of at least one selected from diene rubber and (meth)acrylate polymers. Examples of diene rubber include styrene-butadiene rubber, butyl rubber, butadiene rubber, isoprene rubber, acrylonitrile-butadiene rubber, ethylene-propylene-diene rubber, or modified versions thereof. The (meth)acrylate polymer refers to a polymer containing at least one of acrylate and methacrylate. The (meth)acrylate polymer may be copolymerized and contains 50 mol% or more of acrylate and methacrylate.

[0019] Other monomers included in the (meth)acrylate polymer are not particularly limited as long as they can copolymerize with (meth)acrylate. These may also be added to the coating in the form of an emulsion latex dispersed in water.

[0020] Furthermore, polyvinyl alcohol, poly(meth)acrylic acid, higher alcohol ethylene oxide adducts, and polypropylene glycol ethylene oxide adducts can also be used as binders. In the case of poly(meth)acrylic acid, the salt is not particularly limited, but a metal-free ammonium salt is preferred, for example, ammonium polyacrylate can be used.

[0021] Of these, cross-linked acrylate emulsions are preferred. The acrylate emulsion may be either a homopolymer or a copolymer. It may also be used as an emulsion or after solidification. [solvent] The solvent is not particularly limited as long as it disperses or dissolves the above components without causing a reaction, but a volatile solvent is used considering the drying properties. Specifically, water or a polar solvent that is compatible with water is used, but it is preferable that the solvent contains 50% by mass or more of water, and it is more preferable that it is water alone. Ion-exchanged water is particularly preferred. Other solvents include alcohols such as methanol, ethanol, and isopropanol. [Dispersant] The coating composition of the present invention may optionally contain a dispersant. The dispersant is not particularly limited as long as it can disperse the filler, but dodecylbenzenesulfonic acid, sorbitol, and fatty acid esters of sorbitan are preferred. The salt is not particularly limited, but ammonium salts that do not contain metals are preferred. [Composition and preparation method of coating composition] The ratio of filler to thickener in the coating composition is preferably 10 to 100 by mass (filler / thickener), more preferably 20 to 80, and even more preferably 30 to 60. This ratio is preferable because it allows for easy application, good drying properties, and a coating layer with sufficient strength.

[0022] The mass of filler in the coating composition is preferably in the range of 10 to 80% by mass, more preferably in the range of 20 to 50% by mass. Based on the solid content in the coating composition, the mass of filler is preferably in the range of 50 to 99% by mass, more preferably in the range of 70 to 98% by mass.

[0023] The solid content of the binder is preferably in the range of 0.1 to 20% by mass, more preferably 1 to 5% by mass, relative to the mass of the filler. The mass of the binder (solids) in the coating composition is preferably in the range of 0.1 to 20% by mass, more preferably in the range of 1.0 to 5.0% by mass. Based on the solids in the coating composition, the mass of the binder (solids) is preferably in the range of 0.2 to 10% by mass, more preferably in the range of 0.5 to 5.0% by mass.

[0024] The mass of the thickener in the coating composition is preferably in the range of 0.01 to 20% by mass, more preferably in the range of 1.0 to 5.0% by mass. Based on the solid content in the coating composition, the mass of the thickener is preferably in the range of 0.2 to 10% by mass, more preferably in the range of 0.5 to 5% by mass.

[0025] For solvents such as water, the filler is usually preferably 0.1 to 1000 parts by mass, more preferably 1 to 200 parts by mass, per 100 parts by mass of solvent. Within this range, good fluidity of the coating composition is obtained, and the viscosity measured at a shear rate of 0.01 / s is 1.0 × 10⁻⁶. 6 A coating composition with a Pa·s or lower can be obtained.

[0026] If a dispersant is included, its amount is preferably in the range of 0.01 to 10% by mass, more preferably 0.1 to 5% by mass, in the coating composition. Including it within this range can improve the dispersibility of the filler.

[0027] The method of mixing each component of the coating composition is not particularly limited, but in order to achieve a more uniform mixture, it is preferable to dissolve or disperse the binder, thickener, etc. in the solvent before adding and mixing the filler. More preferably, it is preferable to add the filler sequentially while continuously stirring the solution in which the binder, thickener, etc. have been dissolved or dispersed, and then stir and mix to homogenize it. This makes it possible to achieve an ideal mixture. [Application] The coating composition of this embodiment can be used in various coating liquids such as paints, inks, adhesives, and positive electrodes, negative electrodes, and separators for lithium-ion batteries, depending on the type of filler that is incorporated.

[0028] The coating composition can be used as is as a coating liquid, but if necessary, its concentration and viscosity can be adjusted with a solvent or other appropriate means before use as a coating liquid. For example, a coating film is produced by applying the coating composition to the surface of a substrate and drying it. Alternatively, a coating film made of the coating composition can be provided on the surface of a substrate (referred to as a substrate with a coated film) to be used as an electrode material.

[0029] The coating composition of the present invention comprises a filler, a binder, a thickener, and a solvent, and the viscosity of the coating composition measured at a shear rate of 0.01 / s is 1.0 × 10⁻⁶. 6 It is less than or equal to Pa·s. The following thixotropy index (TI) is 1.1 × 10⁻⁶ 6 Therefore, even when applying the coating composition at high speed and with high precision, a coating film with a smooth surface can be obtained.

[0030] The method of applying the coating composition to the substrate is not particularly limited, but in addition to spray coating, roll coating, bar coating, gravure coating, die coating, knife coating, inkjet coating, brush coating, and dipping, it is also possible to apply the coating continuously using a roll-to-roll pattern coating device.

[0031] Furthermore, the coating composition may also contain known materials added to the paint in addition to those mentioned above, such as surface modifiers, defoamers, leveling agents, pigments, dyes, and the like.

[0032] Films, nonwoven fabrics, porous materials, plate-like materials, etc., can be used as the base material without any particular restrictions. Examples of materials constituting the substrate include ethylene alone or copolymers with other α-olefins, homopolypropylene, copolymers of propylene and other olefins, polyethylene terephthalate, polyethylene naphthalate, polyamide ether ketone, polyimide, polyamide, polyphenylene sulfone, polyphenylene ether, polyethylene, polyether sulfone, polyether ether ketone, polybenzimidazole, polyetherimide, polyamideimide, poly(p-phenylene-2,6-benzobisoxazole), organic resin materials such as fluororesins and epoxy resins, metallic materials such as aluminum, copper, silver, and iron, and inorganic materials such as glass (silicon oxide), alumina, magnesia, aluminum nitride, aluminum carbide, silicon nitride, and barium titanate. The substrate may be used alone or in combination of two or more types. Of these, polyolefin is preferred as the substrate, more preferably at least one selected from polyethylene and polypropylene, and most preferably a three-layer laminate in the order of polypropylene / polyethylene / polypropylene. A porous substrate made of such materials can be used as a separator for secondary batteries, etc.

[0033] When the porous substrate is a polyolefin film, it is not particularly limited whether it is manufactured by a wet process or a dry process. Furthermore, in the case of a porous substrate consisting of a three-layer laminate, it is preferable that all three layers are manufactured by a dry process. Such a structure does not curl and has good heat resistance and mechanical strength.

[0034] The dry process refers to a dry process that does not use solvents during film manufacturing. Examples include melt molding of molten resin using a T-die or injection molding. The outer and inner layers may be manufactured using either the dry or wet process. The wet process involves forming a film using a resin with additives added and mixed, and then creating voids by solvent extraction of the additives.

[0035] The overall thickness of the substrate is appropriately selected based on the purpose, considering factors such as mechanical strength, performance, and miniaturization, and is preferably 7.0 μm or more, with an upper limit of 50 μm or less. A thickness within this range allows for high strength.

[0036] Furthermore, in the case of porous substrates, the air permeability measured in accordance with JIS P 8117:2009 is preferably 80 seconds / 100 ml or higher, with an upper limit of preferably 700 seconds / 100 ml or lower. Having air permeability within this range makes short circuits less likely and ion mobility high.

[0037] The porosity of the porous substrate is preferably 30% or more, and preferably 70% or less. With a porosity within this range, the mechanical strength is high, short circuits do not occur, and ion mobility can be high.

[0038] The maximum pore size of the porous substrate is preferably 0.05 μm or larger, and preferably 2 μm or smaller. Within this range, when used as a separator, ion mobility is high and resistance is low and large.

[0039] The thickness of the coating film is not particularly limited; any coating film with a thickness of 0.5 to 20 μm is acceptable, but it is not particularly restricted. There are no particular restrictions on the drying method of the coating film, and examples include spin drying, vacuum drying, hot air drying, and infrared drying. There are also no particular restrictions on the drying time.

[0040] When constructing a separator, it can be constructed by methods such as applying the coating composition to the surface of the substrate. When constructing electrodes, the battery electrodes can be constructed by mixing the coating composition with a positive electrode active material or a negative electrode active material and applying it to the surface of the substrate or the surface of the current collector; or by coating an electrode foil with a mixture of the coating composition with the positive electrode active material or the negative electrode active material or both; or by thinning the coating composition and inserting it into the surface of the current collector of the positive electrode or the negative electrode or both.

[0041] The components that make up a lithium-ion secondary battery can be broadly divided into positive electrode, negative electrode, separator, and electrolyte. The positive electrode and negative electrode each contain an active material that performs oxidation / reduction reactions by sending and receiving electrons. The positive electrode and negative electrode can be used in the form of a stacked electrode group with a battery separator in between, or a wound electrode group by further winding the stacked electrode group.

[0042] As for the positive electrode, there are no particular restrictions as long as it is a positive electrode that has been used in conventional lithium-ion secondary batteries. + It contains an active material capable of intercepting and releasing ions. As for the negative electrode, there are no particular restrictions as long as it is a negative electrode that has been used in conventional lithium-ion secondary batteries. + It contains an active material capable of intercepting and releasing ions.

[0043] The positive and negative electrodes can be used in the form of a stacked electrode group with a separator in between, or a wound electrode group by further winding these stacked electrodes. As the electrolyte, a solution of lithium salt dissolved in an organic solvent is used. The lithium salt is one that dissociates in the solvent. + There are no particular restrictions on the organic solvent, as long as it forms ions and does not cause side reactions such as decomposition within the voltage range used for the battery. The organic solvent is not particularly limited, as long as it dissolves the lithium salt and does not cause side reactions such as decomposition within the voltage range used for the battery.

[0044] Each component prepared using the coating composition of this embodiment is used as appropriate in each component of the battery. Lithium-ion batteries are used as power sources for various devices, including mobile phones, notebook computers and other portable devices, electric vehicles, hybrid vehicles, electric motorcycles, electric-assist bicycles, power tools, shavers, and many other applications that have been known for some time. [Examples]

[0045] The present invention will be described below with reference to examples, but the present invention is not limited in any way to these examples. [Examples 1-12, Comparative Examples 1-3] The specified amounts of ion-exchanged water, surfactant, dispersant, binder, thickener, and inorganic filler listed in Table 1 were weighed into a 200 ml resin container and placed in a rotary-type kneader (Sinky ARE-250). The container was sealed tightly and mixed for 60 seconds and 60 seconds of defoaming to obtain a uniform coating composition.

[0046] A polypropylene sheet (1 mm thick) was fixed on the coating table of the coating machine, and 3.5 g of the obtained coating composition was applied to an area 15 cm wide and 30 cm long using a bar coater (Yoshimitsu Seiki Co., Ltd., width: 50 mm x thickness: 5 μm) on an automatic coating machine (Tester Sangyo Co., Ltd., Pi-1210) at a speed of 200 mm / second.

[0047] Subsequently, the polypropylene sheet with the coating formed on it was dried in a hot air dryer at a temperature of 40°C for 1 hour to obtain a coated sheet. The components used in the composition are as follows: · Filler Alumina: AL160-SG-3 (manufactured by Showa Denko Corporation) D 50 : 0.52 μm, aspect ratio 1.4 Scale-like boehmite: Cerasure (manufactured by Kawai Lime Industry Co., Ltd.) Aspect ratio: 20-40 Scale-like alumina: Cerasure α (manufactured by Kawai Lime Industry Co., Ltd.) Aspect ratio: 20-40 ·binder Acrylate emulsion: Polyzol (registered trademark) LB-350 (manufactured by Showa Denko Corporation) SBR (Styrene-Butadiene Rubber Aqueous Dispersion): BM400B (Manufactured by Nippon Zeon Co., Ltd.) Ammonium polyacrylate: Aron® A-30SL (manufactured by Toagosei Co., Ltd.) • Thickening agent Poly-N-vinylacetamide PNVA(registered trademark)-1:GE191-043 (manufactured by Showa Denko Corporation), viscosity 5000 mPa·s, solids content 4% by mass Poly-N-vinylacetamide PNVA(registered trademark)-2:GE191-104 (manufactured by Showa Denko Corporation), viscosity in form 18000 mPa·s, solids content 10% by mass Poly-N-vinylacetamide PNVA(registered trademark)-3:GE191-107 (manufactured by Showa Denko Corporation), viscosity 50 mPa·s, solids content 10% by mass Carboxymethylcellulose CMC-Na:MAC350HC (manufactured by Nippon Paper Industries Co., Ltd., 2% by mass, viscosity 7800 mPa·s) Polyvinylpyrrolidone: PVP K-90 (manufactured by Tokyo Chemical Industry Co., Ltd.) • Dispersant Sodium dodecylbenzenesulfonate aqueous dispersion: Neoperex G-65 (manufactured by Kao Corporation)

[0048] [Table 1] The obtained compositions and coated sheets were evaluated as follows. <rotational viscosity> Using a Brookfield DV2T viscometer with a SC4-28 spindle and a small sample adapter with a water jacket, 20 g of the coating composition was placed in the sample holder, and the rotational viscosity was measured at rotational speeds of 0.3 rpm and 100 rpm. <Solution viscosity> The coating compositions were evaluated using a B-type viscometer (Brookfield DV2T viscometer with SC4-28 spindle and water jacket with small sample adapter) at 23°C and 50 rpm.

[0049] Note that data was not measured in the blank spaces in Examples 8-12. <Shear viscosity, TI> The thixotropy index (TI) is calculated using the following formula.

[0050] TI = Viscosity of the coating composition at a shear rate of 0.01 / s (Pa·s) ÷ Viscosity of the coating composition at a shear rate of 10000 / s (Pa·s) Shear viscosity was measured using an Anton Parr rotational viscometer. Specifically, the viscosity of the coating composition at 23°C was measured by the shear rate. 0.01 sec -1 from 10000sec -1 The measurement was taken over 400 seconds, gradually increasing the speed, and continued for 10,000 seconds. -1 from 0.01 sec -1 The measurement was taken while gradually decreasing the shear rate over a period of 400 seconds. The measured values ​​obtained while decreasing the shear rate were defined as viscosity at each shear rate. <Viscosity of carboxymethylcellulose> Carboxymethylcellulose was prepared with water to a solid content of 2% by mass and evaluated using a Brookfield DVE viscometer with spindle H04 at 23°C and 50 rpm. <Coating film thickness> Using a Teclock PF-11J constant-pressure thickness gauge, three points were measured at the center of the coated and dried film, and at two points 10 cm above and below the center, for a total of three points, and the average was calculated. <Appearance of the coated surface> The surface appearance of the coated sheet was evaluated according to the following criteria. ○: No voids were found on the coated surface. △: Up to 10 voids were observed on the coated surface. ×: More than 10 voids were observed on the coated surface. <Surface roughness> Using a Sartronic Duo surface roughness meter (manufactured by Taylor Hobson), the arithmetic mean roughness (Ra) of a coated sheet (15cm x 30cm) was measured at three points: the center and two points 10cm above and below the center. The average was then calculated. <Exfoliation Evaluation> A cellophane tape peel test was performed on the coated surface of the coated sheet using 15mm wide cellophane tape manufactured by Nichiban, and the adhesion between the coated material and the polypropylene sheet was evaluated in the following three stages. ○: The coated area did not peel off. △: The coating has peeled off slightly, but it is still usable. ×: The painted area peels off, making it unacceptable in practical use. <Heat resistance evaluation> From the coated sheet, the coated material was peeled off from a section with a consistent thickness (6-7 μm), and a rectangular piece (5 cm x 4 cm) was taken. The lengths of the four sides were then measured. These test pieces were then placed in a metal tray at a distance from each other to avoid interference.

[0051] The metal tray was placed in an air oven at an internal temperature of 150°C and left for 15 minutes. After removing it, the dimensions of all four sides were measured. The measured test piece was then placed again in an air oven adjusted to 200°C, left for 15 minutes, and then removed, and the dimensions of all four sides were measured again.

[0052] The following items were evaluated. ○: The shrinkage rate is 20% or less on all sides at 150℃ and 200℃. △: In the 150℃ and 200℃ tests, at least one edge exhibits a shrinkage rate of more than 20% but less than or equal to 30%, and the shrinkage rate of all edges is 30% or less. ×: In the 150℃ and 200℃ tests, some items exhibited a shrinkage rate exceeding 30% on either side.

[0053] <Aspect Ratio> In accordance with JIS R1670-2006, the major axis and short side of 100 particles were measured using a microscope, averaged, and then calculated by dividing the average major axis by the average short side. <D 50 > Using a laser diffraction / scattering particle size distribution analyzer (Partica mini LA-350, manufactured by Horiba, Ltd.), the median diameter (hereinafter referred to as D) based on volume distribution was measured. 50 (This is also sometimes the case), and the volume-average diameter based on volume distribution was measured.

[0054] [Table 2] Table 2 shows that in the examples where TI was within a specific range, a coating film was formed that was free of surface irregularities, had high surface smoothness, and exhibited excellent peelability and heat resistance.

Claims

1. A coating composition comprising a filler, a binder, a thickener, and a solvent, The binder comprises at least one selected from diene rubber and (meth)acrylate polymers, and an ammonium poly(meth)acrylate salt. The aspect ratio of the filler is 1 or more and less than 2. The viscosity of the coating composition measured at a shear rate of 0.01 / s is 1.0 × 10⁻⁶. 6 It is less than or equal to Pa·s, The following thixotropy index (TI) is 1.1 × 10⁻⁶ 6 A coating composition characterized by the above; [Thixotropy Index (TI)] = [Viscosity of the coating composition measured at a shear rate of 0.01 / s] / [Viscosity of the coating composition measured at a shear rate of 10000 / s].

2. The coating composition according to claim 1, wherein the ratio of the filler to the thickener is 10 to 100 by mass (filler / thickener).

3. The coating composition according to claim 1 or 2, wherein the thickening agent is poly-N-vinylcarboxylic acid amide.

4. The coating composition according to any one of claims 1 to 3, wherein the thickening agent is poly-N-vinylacetamide.

5. The coating composition according to claim 1 or 2, wherein the thickening agent is polyvinylpyrrolidone.

6. A coating composition according to any one of claims 1 to 5, comprising water as a solvent.

7. The aforementioned thixotropy index (TI) value is 1.1 × 10⁻⁶ 8 The coating composition according to any one of claims 1 to 6, which is as follows:

8. A coated substrate comprising a coating film formed from the coating composition according to any one of claims 1 to 7 and a substrate.

9. A separator formed from a coated substrate according to claim 8.

10. A secondary battery using the separator described in claim 9.

11. A lithium-ion secondary battery using the separator described in claim 9.

12. An electrode material comprising a coating film formed from the coating composition according to any one of claims 1 to 7, provided on the surface of a substrate.

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