WO2013187458A1 - リチウムイオン電池用セパレータ - Google Patents
リチウムイオン電池用セパレータ Download PDFInfo
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- WO2013187458A1 WO2013187458A1 PCT/JP2013/066288 JP2013066288W WO2013187458A1 WO 2013187458 A1 WO2013187458 A1 WO 2013187458A1 JP 2013066288 W JP2013066288 W JP 2013066288W WO 2013187458 A1 WO2013187458 A1 WO 2013187458A1
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- separator
- porous body
- inorganic particles
- nonwoven fabric
- lithium ion
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M50/00—Constructional details or processes of manufacture of the non-active parts of electrochemical cells other than fuel cells, e.g. hybrid cells
- H01M50/40—Separators; Membranes; Diaphragms; Spacing elements inside cells
- H01M50/489—Separators, membranes, diaphragms or spacing elements inside the cells, characterised by their physical properties, e.g. swelling degree, hydrophilicity or shut down properties
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M10/00—Secondary cells; Manufacture thereof
- H01M10/05—Accumulators with non-aqueous electrolyte
- H01M10/058—Construction or manufacture
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M50/00—Constructional details or processes of manufacture of the non-active parts of electrochemical cells other than fuel cells, e.g. hybrid cells
- H01M50/40—Separators; Membranes; Diaphragms; Spacing elements inside cells
- H01M50/409—Separators, membranes or diaphragms characterised by the material
- H01M50/431—Inorganic material
- H01M50/434—Ceramics
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M50/00—Constructional details or processes of manufacture of the non-active parts of electrochemical cells other than fuel cells, e.g. hybrid cells
- H01M50/40—Separators; Membranes; Diaphragms; Spacing elements inside cells
- H01M50/409—Separators, membranes or diaphragms characterised by the material
- H01M50/443—Particulate material
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
- Y02E60/00—Enabling technologies; Technologies with a potential or indirect contribution to GHG emissions mitigation
- Y02E60/10—Energy storage using batteries
Definitions
- the present invention relates to a separator for a lithium ion battery (hereinafter sometimes abbreviated as “separator”).
- a lithium ion battery which is one of electrochemical elements, is a secondary battery characterized by high energy density. It is widely used as a power source for portable electric devices such as mobile phones, portable music players, and notebook personal computers.
- the use of lithium ion batteries is spreading in large equipment such as electric bicycles, hybrid cars, and electric cars. Therefore, lithium ion batteries are required to have high performance and charge / discharge characteristics at a large current.
- a lithium ion battery is a non-aqueous battery, it is known that there is a higher risk of smoke, ignition, rupture and the like than an aqueous battery, and an improvement in safety is also required.
- the risk of fuming increases due to temperature rise due to external heat, overcharge, internal short circuit, external short circuit, etc. These can be prevented to some extent by an external protection circuit.
- the polyolefin resin porous film used as a separator for lithium ion batteries melts at around 120 ° C, and the pores are blocked to block current and ion flow, thereby suppressing battery temperature rise. The This is called a shutdown function.
- the shutdown function when the temperature rises due to external heat or when a chemical reaction occurs inside the battery due to the temperature rise, the battery temperature further rises even if the shutdown function is activated.
- the porous film contracts, an internal short circuit occurs, and ignition may occur.
- a separator having a microporous pseudoboehmite layer obtained as a porous film by mixing pseudoboehmite that is inorganic particles and a binder, drying and peeling after coating on a separately prepared film has been proposed.
- this separator has an improved heat shrinkage temperature, powder falling and cracking are likely to occur, so that it is difficult to take out as a rolled-up separator alone, and handling properties at the time of battery production are poor. there were.
- the inorganic coating has oxide particles of aluminum (Al), silicon (Si) and / or zirconium (Zr) which are inorganic particles.
- a separator has been proposed (see, for example, Patent Documents 2 and 3). Since this separator uses a non-woven fabric as a base material, handling properties are improved. However, because the silica particles produced by the sol-gel method keeps track of other inorganic particles, powder and cracks are likely to occur due to impact and deformation, which leads to the generation of pinholes, resulting in minute internal short circuits. This was a cause of leakage current, and it was difficult to be a useful separator.
- Patent Document 4 proposes tabular boehmite particles as inorganic particles.
- tabular boehmite particles block the pores of the separator, thereby preventing the passage of lithium ions and increasing the internal resistance. was there.
- Patent Document 5 proposes boehmite particles having a secondary particle structure in which primary particles are continuous as inorganic particles.
- a member such as a separator that does not directly contribute to power generation as thin as possible.
- pinholes may occur depending on the dispersion state of the inorganic particles and the coating method. Insulation between the electrode and the negative electrode material could not be sufficiently maintained, and the leakage current sometimes increased.
- the coating amount may be abbreviated as a "coating amount" of a porous body.
- the amount is small, there is a problem that a battery having a small leakage current cannot be obtained.
- the amount of coating is large, there is a problem that a separator having a small thickness and a low internal resistance cannot be obtained.
- a separator formed by laminating two coating layers having different pore diameters has been proposed (see, for example, Patent Document 6), which has both high leakage current and high internal resistance. It wasn't.
- An object of the present invention is a lithium ion battery separator that contains at least inorganic particles and has high internal resistance, low internal resistance, resistance to pinholes and powder falling, and low leakage current.
- the object is to provide a battery separator.
- a lithium ion battery separator comprising a porous body mainly composed of inorganic particles, wherein the inorganic particles have an irregular shape.
- a lithium ion battery separator comprising a porous body mainly composed of at least inorganic particles, the inorganic particles have a 20 mass% aqueous dispersion having a pH of 7.0 or more and 8.3 or less, A separator for a lithium ion battery, wherein the aqueous dispersion is an alumina hydrate having a viscosity of 50 mPa ⁇ s to 2000 mPa ⁇ s.
- the first porous body mainly composed of inorganic particles having a dispersed particle diameter of 1.0 ⁇ m or more and 3.0 ⁇ m or less on the nonwoven fabric substrate and having an aggregated structure, and the shape is irregular
- a second porous body mainly composed of inorganic particles having a dent shape, a dispersed particle diameter of less than 1.0 ⁇ m, and having no agglomerated structure.
- a separator for a lithium ion battery wherein one side of the substrate is substantially covered with a second porous body, and fibers of the nonwoven fabric substrate are exposed on the opposite side.
- a lithium ion battery separator having high heat resistance which contains at least inorganic particles, has a low internal resistance, a resistance to pinholes and powder falling off, and a low leakage current.
- a separator can be provided.
- the lithium ion battery separator comprising a porous body mainly composed of at least inorganic particles
- the lithium ion battery separator is characterized in that the shape of the inorganic particles is indefinite. The effect of being less can be achieved.
- the inorganic particles have a concave shape, even when the inorganic particles are filled with the inorganic particles, voids are easily formed by the recesses, thereby achieving the effects of low leakage current and low internal resistance. Can do.
- the inorganic particles are hydrated alumina, it is possible to achieve the effect that the heat resistance of the separator is increased and the life of the battery using the separator is also increased.
- a lithium ion battery separator comprising a porous body mainly composed of at least inorganic particles
- the inorganic particles have a pH of 7.0 to 8.3 in a 20% by mass aqueous dispersion, and the aqueous dispersion
- the lithium ion battery separator is characterized in that the product is an alumina hydrate having a viscosity of 50 mPa ⁇ s or more and 2000 mPa ⁇ s or less, thereby achieving an effect that there are few pinholes.
- a lithium ion battery separator that contains at least a porous body mainly composed of inorganic particles, by further including a non-woven fabric base material, the handling property is excellent, the performance is uniform, and the tensile strength is high. The effect that a separator is obtained can be achieved.
- the effect that the leakage current is small can be achieved by exposing the fibers of the nonwoven fabric substrate on at least one side of the separator containing the nonwoven fabric substrate.
- the nonwoven fabric base material has a dispersed particle diameter of 1.0 ⁇ m or more and 3.0 ⁇ m or less, a first porous body mainly composed of inorganic particles having an aggregated structure, and an irregular shape.
- a second porous body mainly composed of inorganic particles having a dent shape, a dispersed particle size of less than 1.0 ⁇ m, and having no aggregate structure is laminated in this order,
- the lithium ion battery separator is characterized in that one surface is substantially covered with the second porous body, and the fibers of the nonwoven fabric substrate are exposed on the opposite surface. The effect of being thin and having low internal resistance can be achieved.
- the separator of the present invention is a lithium ion battery separator containing a porous body mainly composed of at least inorganic particles.
- the porous body is a collection of at least a large number of inorganic particles. Examples thereof include a porous body in which only a large number of inorganic particles are aggregated, a porous body in which a large number of inorganic particles are aggregated together with at least one selected from an inorganic binder, an organic binder, and the like.
- a porous body mainly composed of at least inorganic particles means “a porous body in which 70% by volume or more of the portion other than the voids is composed of inorganic particles”.
- the separator (1) of the present invention is characterized in that the shape of the inorganic particles is indefinite.
- FIG. 1 is an SEM photograph of inorganic particles having an irregular shape.
- 2 and 3 are SEM photographs of regular inorganic particles.
- FIG. 2 shows diamond-shaped inorganic particles
- FIG. 3 shows cube-shaped inorganic particles.
- FIG. 1 shows tabular grains, the shape of each grain is not uniform and is indefinite. Due to the irregular shape of the inorganic particles, the inorganic particles are in a random state in the porous body, but are closely packed and have a complex arrangement, thus preventing powder falling and suppressing pinholes. The And a low leakage current can be realized.
- the method for producing the inorganic particles having an irregular shape there is no particular limitation on the method for producing the inorganic particles having an irregular shape.
- a method of forming an amorphous shape by manipulating the growth conditions at the stage of growing crystals of inorganic particles and a method of crushing and forming inorganic particles can be mentioned.
- the inorganic particles having an irregular shape have a shape with a dent.
- FIG. 4 is an SEM photograph of inorganic particles having a concave shape. 2, 3, 5, and 6 are SEM photographs of inorganic particles having a shape without a dent.
- FIG. 5 shows irregular tabular inorganic particles.
- FIG. 6 shows regular cylindrical inorganic particles.
- FIG. 2 shows regular diamond-shaped columnar inorganic particles.
- FIG. 3 shows regular cube-shaped inorganic particles.
- FIG. 4 is an irregular tabular inorganic particle similar to FIG. 5, but has a recess at a part of its outer edge (white arrow portion).
- the method for forming the dents of the inorganic particles there is no particular limitation on the method for forming the dents of the inorganic particles.
- a method of forming a dent by manipulating growth conditions at the stage of growing crystals of inorganic particles, a method of crushing and forming inorganic particles, and the like can be mentioned.
- inorganic particles include alumina such as ⁇ -alumina, ⁇ -alumina and ⁇ -alumina; alumina hydrate such as boehmite; oxide of alkaline earth metal such as magnesium oxide and calcium oxide; silica; Examples thereof include alkaline earth metal carbonates such as calcium and magnesium carbonate; complex oxides such as aluminum silicate.
- alumina or alumina hydrate is preferably used from the viewpoint of stability.
- an inorganic particle is an alumina hydrate.
- Examples of the alumina hydrate include various crystal types such as gibbsite type, boehmite type, pseudoboehmite type, bayerite type, and diaspore type.
- synthetic boehmite is preferable from the viewpoint of obtaining a battery having high heat resistance and good cycle life.
- the inorganic particles have a 20 mass% aqueous dispersion having a pH of 7.0 or more and 8.3 or less, and the viscosity of the aqueous dispersion is 50 mPa ⁇ s or more and 2000 mPa ⁇ s or less. It is characterized by being an alumina hydrate.
- the viscosity of the aqueous dispersion is more preferably 100 mPa ⁇ s or more and 500 mPa ⁇ s or less.
- the pH of the 20% by mass aqueous dispersion of inorganic particles was adjusted to a glass electrode pH at 25 ° C. in an aqueous dispersion of alumina hydrate particles prepared to 20% by mass using ion exchange water having a conductivity of 0.5 ⁇ S / cm or less. PH measured by a meter.
- the viscosity of the 20 mass% aqueous dispersion of inorganic particles is 20 mass using ion-exchanged water having a conductivity of 0.5 ⁇ S / cm or less using a Brookfield viscometer (B-type viscometer).
- % represents a measured value at 25 ° C. in an aqueous dispersion of alumina hydrate particles prepared in%.
- examples of the hydrated alumina include various crystal types such as gibbsite type, boehmite type, pseudoboehmite type, bayerite type, and diaspore type.
- synthetic boehmite is preferable from the viewpoint of obtaining a battery having high heat resistance and good cycle life.
- grains in an alumina hydrate, Granules, such as substantially spherical shape, rugby ball shape, and cube shape, scale shape, needle shape, plate shape, etc. may be sufficient.
- the primary particles can be aggregated into secondary particles or non-aggregated particles can be used.
- the shape of the particles is preferably indeterminate, and more preferably has a concave shape.
- a binder may be contained in the porous body for the purpose of adhering inorganic particles.
- the binder is not particularly limited as long as it is electrochemically stable and stable with respect to the nonaqueous electrolytic solution, and an inorganic binder or an organic binder may be used.
- the inorganic binder for example, generally called a silane coupling agent, a 3-glycidyloxytrimethoxysilane, methacryloyloxypropyltrimethylsilane, which chemically bonds an inorganic oxide and an organic compound through a dehydration or dealcoholization reaction or the like.
- a silane coupling agent a 3-glycidyloxytrimethoxysilane, methacryloyloxypropyltrimethylsilane, which chemically bonds an inorganic oxide and an organic compound through a dehydration or dealcoholization reaction or the like.
- a mixture of a silicon compound having an organic functional group such as methoxysilane or 3-aminopropyltriethoxysilane and an inorganic oxide sol such as silica or zirconium oxide is preferable because of its excellent adhesive strength and heat resistance. It is not limited.
- organic binder examples include water-insoluble water such as ethylene-vinyl acetate copolymer (EVA), acrylate copolymer, fluorine rubber, styrene butadiene rubber (SBR), acrylate copolymer, polyurethane, and the like.
- EVA ethylene-vinyl acetate copolymer
- SBR styrene butadiene rubber
- a binder is mentioned.
- a resin in which a crosslinked structure is introduced in order to prevent dissolution in a non-aqueous electrolyte can also be used for some of these resins.
- synthetic polymers such as polyvinyl alcohol and polyvinyl pyrrolidone; salts of carboxymethyl cellulose, cellulose derivatives such as hydroxymethyl cellulose; Can be used.
- binders may be used individually by 1 type, and may use 2 or more types together.
- synthetic polymers such as SBR, acrylate copolymers, polyvinyl alcohol, and polyvinylpyrrolidone; salts of carboxymethyl cellulose and cellulose derivatives such as hydroxymethyl cellulose are particularly preferable.
- the addition amount of the binder needs to be less than 30% by volume of the volume of the porous body excluding the voids and from less than 20% by volume from the viewpoint of maintaining the permeability of ions required for the separator. preferable. Moreover, it is preferable that it is 3 volume% or more from a viewpoint of reducing the powder fall from a porous body.
- the separator of the present invention can be used alone as a porous body. However, from the viewpoint of providing the separator with the necessary strength, it may contain a substrate such as a porous film, a woven fabric, a nonwoven fabric, or a knitted fabric. preferable. Specifically, a separator having a porous body on a porous film, a separator having a porous body on a substrate made of a fibrous material such as a woven fabric, a nonwoven fabric, or a knitted fabric or in a pore inside the substrate, etc. Can be mentioned.
- a method of forming a porous body for example, a method of forming a porous body by coating and drying a coating solution containing inorganic particles on a film having peelability, etc., and for a lithium ion battery
- Examples thereof include a method of forming a porous body by applying and drying a working solution.
- the constituent materials of the base material such as woven fabric, non-woven fabric, knitted fabric, and porous film are not particularly limited as long as they are electrochemically stable and stable to the non-aqueous electrolyte.
- polyethylene terephthalate, polybutylene terephthalate and derivatives thereof, polyester such as aromatic polyester and wholly aromatic polyester; polyolefin; acrylic polymer; polyacetal; polycarbonate; polyketone such as aliphatic polyketone and aromatic polyketone; Polyamide, Polyamideimide, Polyphenylene sulfide, Polybenzimidazole, Polyetheretherketone, Polyethersulfone, Poly (para-phenylenebenzobisthiazole), Poly (para -Phenylene-2,6-benzobisoxazole); fluororesin such as polyvinylidene fluoride and polytetrafluoroethylene; Call; polyurethane; polyvinyl chloride, and the like. Two or more of these constituent materials may be used in combination. Of
- the method of coating the inorganic particle coating solution such as air doctor coater, blade coater, knife coater, rod coater, squeeze coater, impregnation coater, gravure coater, kiss roll coater, die coater, reverse roll.
- examples thereof include a method using a coater, transfer roll coater, spray coater, rotor dampening and the like.
- the method of drying after coating is not particularly limited, but a method of drying by heating, such as a method of blowing hot air or a method of irradiating infrared rays, is preferably used with good productivity.
- a thickener in order to produce a more uniform porous body, a thickener, an antifoaming agent, a wetting agent, a preservative, and the like can be appropriately used as necessary.
- the basis weight of the separator is preferably from 10.0 ⁇ 40.0g / m 2, more preferably 15.0 ⁇ 37.5g / m 2.
- the thickness of the separator is preferably 10.0 to 40.0 ⁇ m, more preferably 15.0 to 35.0 ⁇ m.
- the density of the separator is preferably 0.4 to 1.2 g / cm 3 and more preferably 0.6 to 1.0 g / cm 3 .
- the amount of the porous body, on a dry solids preferably 1.0 ⁇ 20.0g / m 2, further 4.0 ⁇ 17.5g / m 2 is more preferable.
- the amount of the porous material is less than 1.0 g / m 2 , the pore diameter becomes large and a short circuit may occur, so that good battery characteristics may not be exhibited.
- the amount of the porous body exceeds 20.0 g / m 2 , it may be difficult to reduce the thickness of the separator.
- the surface of the separator may be smoothed by calendering or thermal calendering for the purpose of controlling the flatness and thickness of the porous body surface.
- the separator of the present invention contains a substrate such as a porous film, woven fabric, non-woven fabric, or knitted fabric, it has excellent handling properties, can easily obtain a separator with uniform performance, can have high tensile strength, etc. For this reason, a separator (5) containing a nonwoven fabric base material is more preferable.
- nonwoven fabric substrate for example, a nonwoven fabric substrate manufactured by a method such as a spunbond method, a melt blow method, other dry methods; a wet method; an electrospinning method, or the like can be used.
- the nonwoven fabric substrate may be smoothed by calendaring or thermal calendaring for the purpose of controlling the surface and thickness of the nonwoven fabric substrate.
- the nonwoven fabric substrate used for the lithium ion battery separator of the present invention preferably has a basis weight of 5.0 to 20.0 g / m 2 .
- the basis weight of the nonwoven fabric substrate is more preferably 7.0 to 20.0 g / m 2 .
- the basis weight means the basis weight based on the method defined in JIS P 8124 (paper and paperboard—basis weight measurement method).
- the porous body may exist independently on the surface of the nonwoven fabric substrate, or penetrates into the nonwoven fabric substrate and mixes with the nonwoven fabric substrate. However, they may exist together. Further, a part of the porous body may penetrate into the inside of the nonwoven fabric base, and the remaining part of the porous body may exist independently on the surface of the nonwoven fabric base.
- the separator (6) is preferably formed by exposing the fibers of the non-woven fabric substrate to the surface on at least one surface thereof.
- the fibers of the nonwoven fabric substrate are exposed means that 80% or less of the area of the observation field is covered with a porous body when observed with a scanning electron microscope.
- both surfaces of the nonwoven fabric substrate are covered with a porous body, it may be difficult to reduce the leakage current. The reason for this phenomenon is unknown, but the leakage current is reduced because the pore diameter near the surface covered with the porous body is relatively small and the pore diameter near the opposite surface is relatively large. It is presumed to have some action to suppress.
- FIG. 7 to 11 are conceptual diagrams showing a cross-sectional structure of a separator (5) containing a nonwoven fabric substrate.
- the porous body 3 penetrates into the nonwoven fabric base material 1, and the nonwoven fabric base material 1 and the porous body 3 are mixed together. And the fiber of the nonwoven fabric base material 1 is exposed on both surfaces of the nonwoven fabric base material 1.
- the porous body 3 exists independently on one side of the nonwoven fabric substrate 1.
- a part of the porous body 3 penetrates into the inside of the nonwoven fabric substrate 1, and the remaining part of the porous body 3 exists independently on one side of the nonwoven fabric substrate 1.
- the fiber of the nonwoven fabric substrate 1 is exposed on the surface opposite to the surface on which the porous body 3 exists independently.
- FIG. 8D a part of the porous body 3 penetrates the entire inside of the nonwoven fabric substrate 1, and the remaining part of the porous body 3 exists independently on one side of the nonwoven fabric substrate 1. .
- the fibers of the nonwoven fabric substrate 1 are not exposed.
- a part of the porous body 3 permeates the entire inside of the nonwoven fabric substrate 1, and the remaining part of the porous body 3 exists independently on both surfaces of the nonwoven fabric substrate 1. .
- the porous body 3 exists independently on both surfaces of the nonwoven fabric substrate 1.
- a part of the porous body 3 penetrates into the inside of the nonwoven fabric substrate 1, and the remaining part of the porous body 3 exists independently on both surfaces of the nonwoven fabric substrate 1. In the central portion of the cross section of the nonwoven fabric substrate 1, there is a region where the porous body 3 has not penetrated.
- porous body 2 is a porous body mainly composed of inorganic particles different from the inorganic particles in the separators (1) to (4).
- the porous body 2 penetrates into the inside of the nonwoven fabric substrate 1 and is mixed with the nonwoven fabric substrate 1 and exists. Part of the porous body 3 penetrates into the nonwoven fabric substrate 1, and the remaining part of the porous body 3 exists independently on one side of the nonwoven fabric substrate 1. In (I), both the porous body 2 and the porous body 3 are present independently on one side of the nonwoven fabric substrate 1 in this order. In (J), a part of the porous body 2 penetrates into the inside of the nonwoven fabric substrate 1, and the remaining part of the porous body 2 exists independently on one side of the nonwoven fabric substrate 1. The porous body 3 exists independently on the porous body 2 on one side of the nonwoven fabric substrate 1. In (H) to (J), the fibers of the nonwoven fabric substrate 1 are exposed on the surface opposite to the surface on which the porous body 3 exists independently on the outermost surface.
- the porous body 3 penetrates into the inside of the nonwoven fabric substrate 1 and is mixed with the nonwoven fabric substrate 1 and exists. Part of the porous body 2 penetrates into the nonwoven fabric substrate 1, and the remaining part of the porous body 2 exists independently on one side of the nonwoven fabric substrate 1. In (L), both the porous body 3 and the porous body 2 exist independently on one side of the nonwoven fabric substrate 1 in this order. In (M), a part of the porous body 3 penetrates into the inside of the nonwoven fabric substrate 1, and the remaining part of the porous body 3 exists independently on one side of the nonwoven fabric substrate 1. The porous body 2 exists independently on the porous body 3 on one side of the nonwoven fabric substrate 1. In (K) to (M), the fibers of the nonwoven fabric substrate 1 are exposed on the surface opposite to the surface on which the porous body 2 exists independently on the outermost surface.
- the separator (7) of the present invention which is a more preferred embodiment of the separator containing another porous body 2 in addition to the porous body 3 and the nonwoven fabric substrate 1, will be described in detail.
- the nonwoven fabric substrate has a first porous body mainly composed of inorganic particles having a dispersed particle diameter of 1.0 ⁇ m or more and 3.0 ⁇ m or less and having an agglomerated structure.
- the second porous body mainly composed of inorganic particles having a regular shape, a concave shape, a dispersed particle diameter of less than 1.0 ⁇ m, and having no aggregate structure is laminated in this order, One surface of the nonwoven fabric substrate is substantially covered with the second porous body, and the fibers of the nonwoven fabric substrate are exposed on the opposite surface.
- the separator (7) can achieve the effects that the leakage current is small, the thickness is thin, and the internal resistance is low.
- the “first porous body” corresponds to “another porous body 2”
- the “second porous body” corresponds to the “porous body 3”.
- One side of the nonwoven fabric substrate is substantially covered with the second porous body means that 95% or more of the area of the observation field is the second porous body when observed with a scanning electron microscope. Say that it is covered with.
- the fiber of the nonwoven fabric substrate is exposed means that 80% or less of the area of the observation field is either the first porous body or the second porous body when observed with a scanning electron microscope. Say that it is covered with.
- the “dispersed particle size” of the inorganic particles indicates a 50% value of the coating liquid used for forming the porous body measured by a laser diffraction type particle size distribution meter.
- the dispersed particle size of the inorganic particles in the second porous body is preferably less than 0.80 ⁇ m. Further, if the pore diameter is too small, a low internal resistance may not be obtained, and therefore it is preferably 0.10 ⁇ m or more.
- the presence / absence of the aggregate structure of the inorganic particles is defined as “having an aggregate structure” when the median of the distance between the diagonals of the inorganic particles observed with a scanning electron microscope is less than 1 ⁇ 2 of the dispersed particle diameter. The case of 2 or more is judged as “no aggregate structure”.
- FIG. 3 shows regular cube-shaped inorganic particles having a dispersed particle diameter of 2.3 ⁇ m and “with an agglomerated structure”.
- FIG. 4 shows irregular-shaped tabular inorganic particles having a dispersed particle diameter of 0.4 ⁇ m and “no aggregate structure”.
- the first porous body mainly composed of inorganic particles having a dispersed particle diameter of 1.0 ⁇ m or more and 3.0 ⁇ m or less and having an aggregated structure;
- a second porous body mainly composed of inorganic particles having an irregular shape, a concave shape, a dispersed particle diameter of less than 1.0 ⁇ m, and having no agglomerated structure is laminated in this order. It is essential to be made.
- the nonwoven fabric base material has an irregular shape, a dent shape, a dispersed particle diameter of less than 1.0 ⁇ m, and a second porous material mainly composed of inorganic particles having no aggregated structure.
- a fine fiber is contained as a nonwoven fabric base material.
- a nonwoven fabric base material that does not easily generate pinholes. Therefore, it becomes difficult to select an optimal nonwoven fabric base material from the viewpoint of cost, strength, etc. other than the difficulty of generating pinholes.
- the nonwoven fabric substrate has a first porous body mainly composed of inorganic particles having a dispersed particle diameter of less than 1.0 ⁇ m and an agglomerated structure, and an irregular shape and a shape with a dent.
- a separator having a low internal resistance is manufactured. Is difficult.
- the first porous body mainly composed of inorganic particles having no aggregated structure on the nonwoven fabric base material the shape is irregular, the shape is concave, and the dispersed particle size is less than 1.0 ⁇ m
- the second porous body mainly composed of inorganic particles having no agglomerated structure is laminated in this order, pinholes are likely to occur in the first porous body, and it is difficult to generate pinholes. It becomes difficult to select an optimal nonwoven fabric base material from the viewpoint of cost, strength, etc.
- the inorganic particles of the second porous body may enter the voids between the particles of the first porous body.
- the nonwoven fabric substrate has a first porous body mainly composed of inorganic particles having a dispersed particle diameter of more than 3.0 ⁇ m and an agglomerated structure, and an indefinite shape and a recessed shape.
- the second porous body mainly composed of inorganic particles having a dispersed particle diameter of less than 1.0 ⁇ m and not having an agglomerated structure is laminated in this order, the second porous body enters the voids between the particles.
- the amount of inorganic particles in the porous body becomes too large and clogs, making it difficult to produce a separator with low internal resistance.
- a coating amount exceeding 10.0 g / m 2 may be required to realize a small leakage current. This makes it difficult to produce a thin separator.
- the separator in which the dispersed particle diameter is 1.0 ⁇ m or more and 3.0 ⁇ m or less and the second porous body mainly composed of the inorganic particles having an aggregate structure is laminated in this order Since it is easy to produce a pinhole in a porous body and in order to block this pinhole and to make a leakage current small, it is necessary to provide the 2nd porous body of the coating amount exceeding 10.0 g / m ⁇ 2 >. This makes it difficult to produce a thin separator.
- the separator (7) is a nonwoven fabric base material having a dispersed particle diameter of 1.0 ⁇ m or more and 3.0 ⁇ m or less, and a first porous body coating liquid mainly composed of inorganic particles having an agglomerated structure;
- the material coating solution can also be dried.
- the second porous body coating liquid is applied without drying the first porous body coating liquid. It is also possible to dry the coating liquid for the porous body and the coating liquid for the second porous body together. When the first porous body coating liquid and the second porous body coating liquid are mixed before drying, the first porous body may be clogged and the internal resistance may be increased. It is preferable to apply the coating liquid for the second porous body after at least partially removing the volatile components of the coating liquid for the first porous body by drying.
- the above-described coating method of the inorganic particle coating liquid is used as a method of applying the first porous body and the second porous body coating liquid to the nonwoven fabric substrate.
- the above-described coating method of the inorganic particle coating liquid is used.
- a more preferable method is a method using a gravure coater, a die coater, a blade coater, a rod coater, a roll coater or the like.
- a method using a gravure coater or a die coater is preferable for coating the first porous body coating solution. This is because these two coating methods are unlikely to generate a dynamic pressure that causes the coating liquid to enter the nonwoven fabric substrate, and pinholes are unlikely to occur in the first porous body.
- the coating amount of the first porous body is preferably 3.0 g / m 2 or more and 10.0 g / m 2 or less in terms of dry solid content, and 4.0 g / m 2 or more. More preferably, it is 8.0 g / m 2 or less.
- the coating amount of the first porous body is too small, pinholes may be generated and the leakage current may be increased.
- the thickness of a separator may become thick and internal resistance may also become high.
- the coating amount of the second porous body is preferably 2.0 g / m 2 or more and 8.0 g / m 2 or less, and 3.0 g / m 2 or more in terms of dry solid content. More preferably, it is 6.0 g / m 2 or less.
- the coating amount of the second porous body is too small, the leakage current may increase.
- the thickness of a separator may become thick and internal resistance may also become high.
- the thickness of the separator (7) is preferably less than 30 ⁇ m, more preferably less than 25 ⁇ m.
- the thickness of the separator (7) is preferably less than 30 ⁇ m, more preferably less than 25 ⁇ m.
- the nonwoven fabric substrate used for the separator (7) preferably contains 50% by mass or more of fibers having a diameter of 3.5 ⁇ m or less. Thereby, it can prevent more reliably that a pinhole arises in a porous body.
- the thickness of the nonwoven fabric base material used for a separator (7) becomes like this. Preferably it is 10 micrometers or more, More preferably, it is 15 micrometers or more. Thereby, it can prevent more reliably that a pinhole arises in a porous body.
- the thickness of the nonwoven fabric substrate used for the separator (7) is too thick, the thickness of the nonwoven fabric substrate is preferably 30 ⁇ m or less and more preferably 25 ⁇ m or less because the thickness of the separator is too thick.
- the coating amount is a dry coating amount.
- Nonwoven fabric substrate 1 45 parts of oriented crystallized polyethylene terephthalate (PET) short fibers with a fineness of 0.06 dtex (average fiber diameter of 2.4 ⁇ m) and a fiber length of 3 mm, and oriented crystals with a fineness of 0.1 dtex (average fiber diameter of 3.0 ⁇ m) and a fiber length of 3 mm Together 15 parts of PET-based short fibers and 40 parts of PET-based short fibers (softening point 120 ° C., melting point 230 ° C.) for single component binder with a fineness of 0.2 dtex (average fiber diameter 4.3 ⁇ m) and a fiber length of 3 mm
- PET polyethylene terephthalate
- this papermaking slurry is made up by a wet method, and a PET-based short fiber for a binder is adhered by a cylinder dryer at 120 ° C. to develop a nonwoven fabric strength, with a basis weight of 12.2 g / m 2 .
- a non-woven fabric was used. Furthermore, this nonwoven fabric was heat-treated at a roll temperature of 185 ° C., a linear pressure of 740 N / cm, and a conveying speed of 20 m / min using a 1-nip thermal calendar composed of a metal roll and a metal roll, and a nonwoven fabric base having a thickness of 21 ⁇ m. Material 1 was produced.
- Example 1 90 parts of amorphous particles having irregular shapes (FIG. 1, alumina hydrate) in terms of solids, and sodium carboxymethylcellulose (1% aqueous solution B viscosity 200 mPa ⁇ s, degree of etherification 0.65) in terms of solids 0.2 part was mixed and stirred with a homogenizer, then carboxymethylcellulose sodium salt (1% aqueous solution B viscosity 7000 mPa ⁇ s, etherification degree 0.7) was mixed and stirred with 0.2 part in terms of solid content.
- styrene butadiene rubber latex in terms of solid content was mixed and stirred, and ion-exchanged water was further added to prepare a coating liquid for a porous material having a solid content concentration of 20%.
- the coating liquid is uniformly applied to one side of the nonwoven fabric substrate 1 and dried so as to have a dry solid content of 10.2 g / m 2 by a gravure coater on the nonwoven fabric substrate 1 after the thermal calendar treatment.
- a separator having a thickness of 25.2 ⁇ m was obtained.
- Example 1 The coating liquid was prepared, coated and dried in the same manner as in Example 1 except that regular rhomboid-shaped inorganic particles (FIG. 2, alumina hydrate) were used as the inorganic particles.
- Example 2 The coating liquid was prepared, applied and dried in the same manner as in Example 1 except that regular cube-shaped inorganic particles (FIG. 3, alumina hydrate) were used as the inorganic particles. A separator having a dry solid content of 10.1 g / m 2 and a thickness of 25.2 ⁇ m was obtained.
- ⁇ No adhesion of the porous body to the black cloth and no peeling of the porous body.
- X The porous body is attached to the surface of the black cloth, and peeling is seen in the porous body.
- ⁇ No transmitted light is observed, and no pinholes are observed.
- X Generation
- Example 1 in the separator containing at least a porous body mainly composed of inorganic particles, since the shape of the inorganic particles is indefinite, good results are obtained for both the pinhole evaluation and the powder fall evaluation. It was. In Comparative Examples 1 and 2, since the inorganic particles were not indefinite, poor results were obtained in the pinhole evaluation or the powder omission evaluation.
- Example 2 A coating solution was prepared, coated and dried in the same manner as in Example 1 except that inorganic particles having an irregular shape, a flat plate shape, and dents (FIG. 4, alumina hydrate) were used as the inorganic particles. Thus, a separator having a dry solid content of 10.2 g / m 2 and a thickness of 25.2 ⁇ m was obtained.
- Example 3 A coating solution was prepared in the same manner as in Example 1 except that inorganic particles having an irregular shape, a flat shape, and no dents (FIG. 5, alumina hydrate) were used as the inorganic particles.
- the separator was dried to obtain a separator having a dry solid content of 10.5 g / m 2 and a thickness of 26.0 ⁇ m.
- Example 3 The coating liquid was prepared, coated and dried in the same manner as in Example 1 except that regular cylindrical inorganic particles (FIG. 6, alumina hydrate) were used as the inorganic particles, and the porous body was dried. A separator having a solid content of 10.2 g / m 2 and a thickness of 25.4 ⁇ m was obtained.
- regular cylindrical inorganic particles FIG. 6, alumina hydrate
- LiPF 6 lithium hexafluorophosphate
- the separator of Example 2 contains a porous body mainly composed of at least inorganic particles, and the inorganic particles have an indeterminate shape and a concave shape, so that both the leakage current and the evaluation of internal resistance are good. Results were obtained.
- the separator of Example 3 is an amorphous particle having an indeterminate shape, there is a tendency to increase the internal resistance as compared with the separator of Example 2 because of the non-dented inorganic particles. Good results were obtained.
- Comparative Examples 1 to 3 since the inorganic particles have a regular shape with no dents, there was a tendency for deterioration in leakage current evaluation. In the evaluation of internal resistance, the separators of Comparative Examples 1 and 3 had higher internal resistance values than the separator of Example 2.
- Nonwoven Fabric Base 2 45 parts of oriented crystallized PET short fibers with a fineness of 0.06 dtex (average fiber diameter of 2.4 ⁇ m) and fiber length of 3 mm, and short of oriented crystallized PET with a fineness of 0.1 dtex (average fiber diameter of 3.0 ⁇ m) and fiber length of 3 mm 15 parts of fiber and 40 parts of PET short fiber (softening point 120 ° C., melting point 230 ° C.) for single-component binder having a fineness of 0.2 dtex (average fiber diameter 4.3 ⁇ m) and a fiber length of 3 mm are mixed together, It was disaggregated in water with a pulper, and a uniform papermaking slurry having a concentration of 1% was prepared under stirring by an agitator.
- this papermaking slurry is made up by a wet method, and a PET-based short fiber for a binder is adhered by a cylinder dryer at 120 ° C. to develop a nonwoven fabric strength.
- the basis weight is 15.2 g / m 2 .
- a non-woven fabric was used. Further, this nonwoven fabric was subjected to heat treatment at a roll temperature of 185 ° C., a linear pressure of 740 N / cm, and a conveyance speed of 20 m / min using a 1-nip thermal calendar composed of a metal roll and a metal roll, and a nonwoven fabric base having a thickness of 27 ⁇ m. Material 2 was produced.
- Example 4 As inorganic particles, alumina hydrate having a pH of 7.8 and a viscosity of 348 mPa ⁇ s (boehmite, manufactured by Nabaltec Co., Ltd., trade name: APYRAL (registered trademark) -AOH100XP) in terms of solid content, 90 parts, sodium carboxymethylcellulose Salt (1% aqueous solution B viscosity 200 mPa ⁇ s, etherification degree 0.65) 0.2 parts in terms of solid content was mixed and stirred with a homogenizer, then carboxymethylcellulose sodium salt (1% aqueous solution B viscosity 7000 mPa ⁇ s) In addition, 0.2 part of etherification degree 0.7) is mixed and stirred, and then 9 parts of styrene butadiene rubber latex is mixed and stirred, and ion-exchanged water is added.
- APYRAL registered trademark
- a coating solution having a solid content concentration of 20% was prepared. This coating solution is uniformly applied and dried on one side of the nonwoven fabric substrate 2 after the thermal calendering treatment with a gravure coater so that the dry solid content of the porous body is 10.2 g / m 2. Thus, a separator having a thickness of 30.2 ⁇ m was obtained.
- Example 4 As inorganic particles, except that alumina hydrate (boehmite, manufactured by Naval Tech, trade name: ACTILOX (registered trademark) -200SM) having a pH of 8.4 and a viscosity of 2750 mPa ⁇ s was used, A coating solution was prepared, coated and dried to obtain a separator having a dry solid content of 10.7 g / m 2 and a thickness of 31.2 ⁇ m.
- ACTILOX registered trademark
- Example 5 As inorganic particles, except that alumina hydrate having a pH of 7.9 and a viscosity of 6 mPa ⁇ s (boehmite, manufactured by Naval Tech Co., Ltd., trade name: APYRAL (registered trademark) -AOH60) was used, the same as in Example 4, A coating solution was prepared, applied and dried to obtain a separator having a dry solid content of 10.5 g / m 2 and a thickness of 31.0 ⁇ m.
- APYRAL registered trademark
- Example 6 A coating solution was prepared in the same manner as in Example 4 except that alumina hydrate (boehmite, manufactured by Daimei Chemical Industry Co., Ltd., trade name: C20) having a pH of 8.4 and a viscosity of 47 mPa ⁇ s was used as the inorganic particles. Coating and drying were performed to obtain a separator having a dry solid content of 10.1 g / m 2 and a thickness of 30.7 ⁇ m.
- alumina hydrate boehmite, manufactured by Daimei Chemical Industry Co., Ltd., trade name: C20
- Example 7 A coating solution was prepared in the same manner as in Example 4 except that alumina hydrate having a pH of 9.3 and a viscosity of 1720 mPa ⁇ s (boehmite, manufactured by Daimei Chemical Co., Ltd., trade name: C06) was used as the inorganic particles. Coating and drying were performed to obtain a separator having a dry solid content of 10.4 g / m 2 and a thickness of 31.0 ⁇ m.
- Example 4 was the same as Example 4 except that alumina hydrate (boehmite, manufactured by SASOL, trade name: DISPERAL (registered trademark) -8F4) having a pH of 4.0 and a viscosity of 9 mPa ⁇ s was used as the inorganic particles. Then, a coating solution was prepared, coated and dried to obtain a separator having a dry solid content of 10.7 g / m 2 and a thickness of 31.2 ⁇ m.
- alumina hydrate boehmite, manufactured by SASOL, trade name: DISPERAL (registered trademark) -8F4
- DISPERAL registered trademark
- the inorganic particles are alumina hydrate having a 20 mass% aqueous dispersion having a pH of 7.0 or more and 8.3 or less and a viscosity of 50 mPa ⁇ s or more and 2000 mPa ⁇ s or less. Good results with few pinholes were obtained.
- the pinhole is the separator of Example 4. It was more than. Further, in the separator of Comparative Example 7 whose pH greatly exceeded 8.3, the separator of Comparative Example 8 whose pH was much lower than 7.0 and the viscosity was less than 50 mPa ⁇ s, the pinholes were remarkably increased.
- This papermaking slurry is made by a wet method on a circular net type paper machine, and the intersection of PET short fibers for binders and the PET short fibers for binders and oriented crystallized PET systems by a cylinder dryer at 135 ° C.
- the intersection point of the short fibers was bonded to develop the strength of the nonwoven fabric, and a nonwoven fabric having a basis weight of 11 g / m 2 was obtained.
- this nonwoven fabric was used under the conditions of a heat roll temperature of 200 ° C., a linear pressure of 100 kN / m, and a processing speed of 30 m / min using a 1-nip heat calender consisting of an induction heating roll (metal heat roll) and an elastic roll.
- the nonwoven fabric substrate 3 having a thickness of 15 ⁇ m was prepared by heat calendering.
- first porous body coating liquid As inorganic particles, 100 parts of an alumina hydrate having a dispersed particle size of 2.3 ⁇ m and a specific surface area of 3 m 2 / g was added to a 0.3% aqueous solution of carboxymethylcellulose sodium salt having a viscosity of 200 mPa ⁇ s at 25 ° C. in a 1% aqueous solution (0 4 parts) and stirred well. Next, a 0.5% aqueous solution (0.3 parts) of carboxymethylcellulose sodium salt having a viscosity of 7000 mPa ⁇ s at 25 ° C.
- FIG. 3 is a scanning electron micrograph of the used alumina hydrate.
- the median of the diagonal distance of the inorganic particles observed in this scanning electron micrograph is clearly smaller than 1 ⁇ 2 of the dispersed particle diameter, and this alumina hydrate is judged to have “aggregated structure”.
- Second porous body coating liquid As an inorganic particle, 100 parts of an alumina hydrate having an irregular shape, a dent, a dispersed particle diameter of 0.4 ⁇ m, and a specific surface area of 11 m 2 / g is used. A 1% aqueous solution has a viscosity at 25 ° C. of 200 mPa ⁇ s. It mixed with 0.3% aqueous solution (0.4 part) of carboxymethylcellulose sodium salt, and stirred sufficiently. Next, a 0.5% aqueous solution (0.3 parts) of carboxymethylcellulose sodium salt having a viscosity of 7000 mPa ⁇ s at 25 ° C.
- FIG. 4 is a scanning electron micrograph of the used alumina hydrate.
- the median of the diagonal distance of the inorganic particles observed in this scanning electron micrograph is clearly larger than 1 ⁇ 2 of the dispersed particle diameter, and this alumina hydrate has “no aggregate structure”. To be judged.
- Table 4 when the inorganic particles have “no aggregate structure”, “non-aggregate” is described.
- Example 5 Using a kiss reverse gravure coater, the first coating solution was applied onto the nonwoven fabric substrate 3 so that the coating amount was 6.0 g / m 2 and dried with a hot air dryer. A first porous body was formed. Next, using a kiss reverse type gravure coater, the surface of the first porous body is coated with the second coating solution so that the coating amount is 4.0 g / m 2 and dried with a hot air dryer. A separator having a thickness (measured with a micrometer) of 22 ⁇ m was prepared.
- Example 6 to 9 Comparative Examples 9 to 18
- a separator was prepared in the same manner as in Example 5 except that the aggregated structure of inorganic particles, the dispersed particle diameter, and the coating amount of each porous material in the first coating liquid and the second coating liquid were changed as shown in Table 1. Was made. Table 4 also shows the thickness of each separator.
- Example 19 A separator having a thickness of 20 ⁇ m was produced in the same manner as in Example 5 except that the first coating liquid and the second coating liquid were applied using a squeeze coater instead of the gravure coater.
- Example 20 The second coating liquid is applied once more on the surface opposite to the surface coated with the second coating liquid of the separator of Example 5, so that the coating amount is 6.0 g / m 2 .
- a separator having a thickness of 32 ⁇ m was produced in the same manner as in Example 5 except that the porous body 3 was formed.
- a pouch-type lithium ion battery having a design capacity of 30 mAh was produced by using each separator produced as described above with the second porous body facing the negative electrode.
- 3.88V is the open circuit voltage of the battery when the remaining charge rate of the battery for this evaluation is 50%, and it has been confirmed that it is a constant value without depending on the separator.
- the nonwoven fabric substrate has a first porous body mainly composed of inorganic particles having a dispersed particle diameter of 1.0 ⁇ m or more and 3.0 ⁇ m or less and having an aggregated structure, A second porous body mainly composed of inorganic particles having an indeterminate shape, a dent shape, a dispersed particle diameter of less than 1.0 ⁇ m, and having no aggregate structure is laminated in this order.
- the separators of Examples 5 to 9 in which one side of the nonwoven fabric substrate is substantially covered with the second porous body and the fibers of the nonwoven fabric substrate are exposed on the opposite side have a small leakage current, Thin thickness and low internal resistance.
- the separator of Comparative Example 9 in which the dispersed particle diameter is 1.0 ⁇ m or more and 3.0 ⁇ m or less and only the porous body mainly composed of inorganic particles having an aggregated structure is laminated has a leakage current. It was big.
- the separator of Comparative Example 10 in which the dispersed particle size is 1.0 ⁇ m or more and 3.0 ⁇ m or less and the porous body mainly composed of inorganic particles having an aggregated structure is thickened and laminated leakage occurs. Although the current could be suppressed, the thickness was thick and the internal resistance was high.
- the shape is irregular, has a dent, has a dispersed particle diameter of less than 1.0 ⁇ m, and is formed by laminating only porous bodies mainly composed of inorganic particles having no aggregated structure.
- the separator had a large leakage current.
- the first porous body had a dispersed particle size of less than 1.0 ⁇ m, and the separator of Comparative Example 13 mainly composed of inorganic particles having an aggregated structure had high internal resistance.
- the separator of Comparative Example 15 in which the second porous body was mainly composed of inorganic particles having an agglomerated structure had a large leakage current.
- the separator of Comparative Example 16 in which the second porous body mainly composed of inorganic particles having an agglomerated structure was thick could suppress the leakage current, but was thick and high in internal resistance.
- the first porous body has an irregular shape, a dent shape, a dispersed particle diameter of less than 1.0 ⁇ m, mainly composed of inorganic particles having no aggregated structure, and the second porous body.
- the separator of Comparative Example 17 mainly composed of inorganic particles having a dispersed particle size of 1.0 ⁇ m or more and 3.0 ⁇ m or less and having an aggregated structure had a large leakage current.
- the first porous body has an irregular shape, a dent shape, a dispersed particle diameter of less than 1.0 ⁇ m, mainly composed of inorganic particles having no aggregated structure, and the second porous body.
- the separator of Comparative Example 18 in which the porous body has a dispersed particle diameter of 1.0 ⁇ m or more and 3.0 ⁇ m or less, mainly composed of inorganic particles having an agglomerated structure, and each porous body is thickened has a leakage current. Although it could be suppressed, the thickness was thick and the internal resistance was also high.
- the first porous body mainly composed of inorganic particles having a dispersed particle diameter of 1.0 ⁇ m or more and 3.0 ⁇ m or less and having an aggregated structure, the shape is irregular, and a shape having a dent
- the second porous body mainly composed of inorganic particles having a dispersed particle diameter of less than 1.0 ⁇ m and not having an agglomerated structure is laminated in this order.
- the separator of Comparative Example 19 is not covered with the porous body 2 and the fibers are exposed on both sides of the separator, both sides of the separator are covered with the porous body, and the fibers of the nonwoven fabric substrate are exposed. With the separators 20 and 21, the leakage current was large.
- the lithium ion battery separator of the present invention is used for lithium ion battery applications, but besides this, a manganese dry battery, an alkaline manganese battery, a silver oxide battery, a lithium primary battery, a lead storage battery, a nickel-cadmium storage battery, Nickel-hydrogen battery, nickel-zinc battery, silver oxide-zinc battery, lithium polymer battery, various gel electrolyte batteries, zinc-air battery, iron-air battery, aluminum-air battery, fuel cell, solar battery, sodium sulfur battery It can be used for polyacene batteries, electrolytic capacitors, electric double layer capacitors, lithium ion capacitors and the like.
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CN106716680A (zh) * | 2014-09-17 | 2017-05-24 | 三菱制纸株式会社 | 电化学元件用隔离物及使用其而成的电化学元件 |
CN107230765A (zh) * | 2016-03-24 | 2017-10-03 | 三菱制纸株式会社 | 锂离子电池隔板 |
WO2018179899A1 (ja) * | 2017-03-31 | 2018-10-04 | パナソニックIpマネジメント株式会社 | 二次電池 |
JP2019067502A (ja) * | 2017-09-28 | 2019-04-25 | トヨタ自動車株式会社 | リチウムイオン二次電池およびその製造方法 |
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JP6579383B2 (ja) * | 2016-08-10 | 2019-09-25 | 荒川化学工業株式会社 | リチウムイオン二次電池用セパレータ、リチウムイオン二次電池用セパレータの製造方法、及びリチウムイオン二次電池 |
CN107204422A (zh) * | 2017-06-13 | 2017-09-26 | 四川大学 | 一种碳/铁酸镍纳米复合纤维材料的制备方法 |
KR102263460B1 (ko) * | 2018-01-05 | 2021-06-11 | 주식회사 엘지에너지솔루션 | 유리전이온도가 다른 바인더를 포함하는 분리막 및 이의 제조방법 |
WO2019146626A1 (ja) * | 2018-01-25 | 2019-08-01 | 三菱製紙株式会社 | リチウムイオン電池用セパレータ用塗液及びリチウムイオン電池用セパレータ |
JP7193829B2 (ja) | 2018-02-07 | 2022-12-21 | 株式会社ロゴスコーポレーション | 掛け寝具及びこれを備えた寝具付きテーブル |
CN108841025B (zh) * | 2018-06-20 | 2021-06-18 | 中航锂电技术研究院有限公司 | 一种低水分陶瓷涂层、陶瓷浆料及其制备方法、陶瓷隔膜及锂离子电池电芯 |
CN109004231A (zh) * | 2018-08-28 | 2018-12-14 | 武汉理工大学 | 锂硫电池粘结剂及相应的锂硫电池正极材料、锂硫电池 |
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WO2005124899A1 (ja) * | 2004-06-22 | 2005-12-29 | Matsushita Electric Industrial Co., Ltd. | 二次電池およびその製造方法 |
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CN109216031B (zh) * | 2014-09-17 | 2020-08-11 | 三菱制纸株式会社 | 电化学元件用隔离物及使用其而成的电化学元件 |
CN107230765A (zh) * | 2016-03-24 | 2017-10-03 | 三菱制纸株式会社 | 锂离子电池隔板 |
WO2018179899A1 (ja) * | 2017-03-31 | 2018-10-04 | パナソニックIpマネジメント株式会社 | 二次電池 |
CN110447129A (zh) * | 2017-03-31 | 2019-11-12 | 松下知识产权经营株式会社 | 二次电池 |
JPWO2018179899A1 (ja) * | 2017-03-31 | 2020-02-06 | パナソニックIpマネジメント株式会社 | 二次電池 |
US11394030B2 (en) | 2017-03-31 | 2022-07-19 | Panasonic Intellectual Property Management Co., Ltd. | Secondary battery |
JP2019067502A (ja) * | 2017-09-28 | 2019-04-25 | トヨタ自動車株式会社 | リチウムイオン二次電池およびその製造方法 |
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CN104521029A (zh) | 2015-04-15 |
JP6292625B2 (ja) | 2018-03-14 |
JP2018073842A (ja) | 2018-05-10 |
JPWO2013187458A1 (ja) | 2016-02-08 |
CN107834009A (zh) | 2018-03-23 |
CN107834009B (zh) | 2021-10-12 |
CN104521029B (zh) | 2018-05-22 |
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