US20030118912A1 - Electrolytic solution for non-aqueous type battery and non-aqueous type secondary battery - Google Patents

Electrolytic solution for non-aqueous type battery and non-aqueous type secondary battery Download PDF

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US20030118912A1
US20030118912A1 US10/333,617 US33361703A US2003118912A1 US 20030118912 A1 US20030118912 A1 US 20030118912A1 US 33361703 A US33361703 A US 33361703A US 2003118912 A1 US2003118912 A1 US 2003118912A1
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electrolytic solution
aqueous
contained
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Shoichiro Watanabe
Shusaku Goto
Masaru Takagi
Sumihito Ishida
Toshikazu Hamamoto
Akira Ueki
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Panasonic Corp
Ube Corp
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Publication of US20030118912A1 publication Critical patent/US20030118912A1/en
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Priority to US12/630,685 priority Critical patent/US7824809B2/en
Priority to US12/846,732 priority patent/US7867657B2/en
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    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01MPROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
    • H01M10/00Secondary cells; Manufacture thereof
    • H01M10/05Accumulators with non-aqueous electrolyte
    • H01M10/056Accumulators with non-aqueous electrolyte characterised by the materials used as electrolytes, e.g. mixed inorganic/organic electrolytes
    • H01M10/0564Accumulators with non-aqueous electrolyte characterised by the materials used as electrolytes, e.g. mixed inorganic/organic electrolytes the electrolyte being constituted of organic materials only
    • H01M10/0566Liquid materials
    • H01M10/0567Liquid materials characterised by the additives
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01MPROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
    • H01M10/00Secondary cells; Manufacture thereof
    • H01M10/05Accumulators with non-aqueous electrolyte
    • H01M10/052Li-accumulators
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01MPROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
    • H01M10/00Secondary cells; Manufacture thereof
    • H01M10/05Accumulators with non-aqueous electrolyte
    • H01M10/052Li-accumulators
    • H01M10/0525Rocking-chair batteries, i.e. batteries with lithium insertion or intercalation in both electrodes; Lithium-ion batteries
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01MPROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
    • H01M10/00Secondary cells; Manufacture thereof
    • H01M10/42Methods or arrangements for servicing or maintenance of secondary cells or secondary half-cells
    • H01M10/4235Safety or regulating additives or arrangements in electrodes, separators or electrolyte
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01MPROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
    • H01M2300/00Electrolytes
    • H01M2300/0017Non-aqueous electrolytes
    • H01M2300/0025Organic electrolyte
    • H01M2300/0028Organic electrolyte characterised by the solvent
    • H01M2300/0037Mixture of solvents
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01MPROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
    • H01M4/00Electrodes
    • H01M4/02Electrodes composed of, or comprising, active material
    • H01M4/13Electrodes for accumulators with non-aqueous electrolyte, e.g. for lithium-accumulators; Processes of manufacture thereof
    • H01M4/131Electrodes based on mixed oxides or hydroxides, or on mixtures of oxides or hydroxides, e.g. LiCoOx
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01MPROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
    • H01M4/00Electrodes
    • H01M4/02Electrodes composed of, or comprising, active material
    • H01M4/13Electrodes for accumulators with non-aqueous electrolyte, e.g. for lithium-accumulators; Processes of manufacture thereof
    • H01M4/133Electrodes based on carbonaceous material, e.g. graphite-intercalation compounds or CFx
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01MPROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
    • H01M6/00Primary cells; Manufacture thereof
    • H01M6/14Cells with non-aqueous electrolyte
    • H01M6/16Cells with non-aqueous electrolyte with organic electrolyte
    • H01M6/162Cells with non-aqueous electrolyte with organic electrolyte characterised by the electrolyte
    • H01M6/168Cells with non-aqueous electrolyte with organic electrolyte characterised by the electrolyte by additives
    • YGENERAL 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
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E60/00Enabling technologies; Technologies with a potential or indirect contribution to GHG emissions mitigation
    • Y02E60/10Energy storage using batteries
    • YGENERAL 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
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02TCLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO TRANSPORTATION
    • Y02T10/00Road transport of goods or passengers
    • Y02T10/60Other road transportation technologies with climate change mitigation effect
    • Y02T10/70Energy storage systems for electromobility, e.g. batteries

Definitions

  • the present invention relates to a non-aqueous electrolytic solution which can ensure safety of batteries at the time of overcharging with improving recovery characteristics of the batteries after storage at high temperatures, and to a non-aqueous type secondary battery using said electrolytic solution.
  • lithium-containing metal oxides which show a voltage on the order of 4 V are used for positive electrode active materials, and materials capable of intercalation or deintercalation of lithium, such as carbonaceous materials, are used for negative electrodes.
  • lithium ion secondary batteries when they are charged in excess of a given charging voltage due to, for example, troubles of charging control circuits, they are in overcharged state, and lithium ions in the positive electrode are excessively extracted and migrate to negative electrode to cause absorption of lithium in an amount larger than the prescribed design capacity in the negative electrode or to cause precipitation of lithium as metallic lithium on the surface of negative electrode. If the batteries in such a state are further forcedly charged, internal resistance of the batteries increases and generation of heat due to the Joule's heat becomes great to cause abnormal heat generation, and, in the worst case, to result in thermal runaway.
  • JP-9-50822, JP-A-10-50342, JP-9-106835, JP-10-321258, Japanese Patent No. 2939469, and JP-A-2000-58117 propose a means of adding to batteries an aromatic compound having a methoxy group and a halogen group, biphenyl or thiophene, or an aromatic ether compound, which polymerizes at the time of overcharging to result in rising of temperature and, thus, to ensure the safety.
  • additives must be added in an amount of not less than 1% by weight for ensuring the safety at the time of overcharging, but if the additives are added in a large amount, in an shelf life test, for example, an environment test (80° C.) which supposes the case of leaving them in a car in summer, these additives partially react to cover the active material, resulting in considerable deterioration of the battery characteristics.
  • the present invention solves the above problems and to provide a battery excellent in high-temperature storage characteristics while ensuring the safety at overcharging.
  • organic compounds differing in oxidative polymerization reaction potential are added in a very small amount, preferably not less than 0.01% by weight and less than 1.0% by weight based on the total amount of the electrolytic solution, thereby to control the recovery characteristics after storage and the safety during overcharging.
  • organic compounds selected from o-terphenyl, triphenylene, cyclohexylbenzene and biphenyl.
  • not less than 1.0% by weight and not more than 5.0% by weight of cyclohexylbenzene, not less than 0.01% by weight and less than 1.0% by weight of o-terphenyl and not less than 0.01% by weight and less than 1.0% by weight of biphenyl are contained in the non-aqueous solvent.
  • o-terphenyl, triphenylene, cyclohexylbenzene and biphenyl are contained in the non-aqueous solvent and the total amount of them is 0.4-5% by weight based on the non-aqueous solvent.
  • the positive electrodes comprise a material containing a lithium-containing metal oxide and the negative electrodes comprise a material containing graphite, and the non-aqueous electrolytic solution exerts the higher effect when it is an electrolytic solution in which a lithium salt as a solute is dissolved in a non-aqueous solvent mainly composed of a cyclic carbonate and a chain carbonate.
  • the cyclic carbonate is preferably at least one compound selected from ethylene carbonate (EC), propylene carbonate (PC), butylene carbonate (BC) and vinylene carbonate (VC).
  • EC ethylene carbonate
  • PC propylene carbonate
  • BC butylene carbonate
  • VC vinylene carbonate
  • the chain carbonate is preferably at least one compound selected from dimethyl carbonate (DMC), diethyl carbonate (DEC), ethylmethyl carbonate (EMC), methylpropyl carbonate (MPC) and ethylpropyl carbonate (EPC).
  • DMC dimethyl carbonate
  • DEC diethyl carbonate
  • EMC ethylmethyl carbonate
  • MPC methylpropyl carbonate
  • EPC ethylpropyl carbonate
  • FIG. 1 is a longitudinal sectional view of a cylindrical battery in the examples of the present invention and in the comparative examples.
  • recovery characteristics after storage and safety during overcharging can be controlled by adding two or more organic compounds differing in oxidative polymerization reaction potential to the electrolytic solution.
  • Examples of organic compounds differing in oxidative polymerization potential contained in the electrolytic solution for non-aqueous type batteries in which an electrolyte is dissolved in a non-aqueous solvent are o-terphenyl, triphenylene, cyclohexylbenzene and biphenyl.
  • the weight of the organic compound of relatively higher oxidative polymerization potential is preferably not less than 1.0% by weight and not more than 5.0% by weight based on the total amount of the non-aqueous electrolytic solution.
  • the weight of the organic compound of relatively lower oxidative polymerization potential is preferably not less than 0.01% by weight and less than 1.0% by weight based on the total amount of the non-aqueous electrolytic solution.
  • the weight ratio of the organic compound of relatively higher oxidative polymerization reaction potential and the organic compound of relatively lower oxidative polymerization reaction potential is preferably not lower than 20:1 and not higher than 2:1, more preferably not lower than 10:1 and not higher than 4:1.
  • the amount of the organic compound of relatively lower oxidative polymerization starting potential (for example, biphenyl) is preferably smaller, but in order to ensure the safety at overcharging, the organic compound must react as much as possible at overcharging, namely, the amount is preferably rather larger.
  • two or more organic compounds differing in oxidative polymerization reaction potential are used, and the amount of the organic compound of relatively lower oxidative polymerization starting potential (for example, biphenyl) is conspicuously reduced in this system, thereby maintaining excellent storage characteristics, and on the other hand the organic compounds react only slightly at the overcharging, whereby polarization at the overcharging increases, and the organic compound of relatively higher oxidative polymerization starting potential (for example, cyclohexylbenzene) react at an early stage, and thus the safety can be ensured.
  • additive oxidative polymerization reaction potential
  • the additives in the present invention do not aim at an action as redox shuttles, the oxidation reaction is desirably irreversible and they differ in purpose from JP-A-7-302614 and JP-A-9-50822 which aim at reversibility of redox reaction.
  • the lithium-containing composite oxides used as positive electrode active materials in the present invention can be prepared by mixing carbonate, nitrate, oxide or hydroxide of lithium with carbonate, nitrate, oxide or hydroxide of a transition metal such as cobalt, manganese or nickel at a desired composition, grinding the mixture and firing the powder or by a solution reaction.
  • the firing method is especially preferred, and the firing temperature can be 250-1500° C. at which a part of the mixed compound is decomposed and molten.
  • the firing time is preferably 1-80 hours.
  • the firing gas atmosphere can be any of air atmosphere, oxidizing atmosphere or reducing atmosphere, and has no special limitation.
  • a plurality of different positive electrode active materials may be used in combination.
  • current collectors of positive electrodes there may be used any electron conductors as long as they do not undergo chemical changes in the constructed batteries.
  • materials of the current collectors there may be used stainless steel, aluminum, titanium and carbon, and aluminum or aluminum alloys are especially preferred.
  • shape of the current collectors they may be in the form of foil, film, sheet, net, punched material, lath, porous material, foamed material, fiber group, shaped nonwoven fabric, and the like.
  • the surface of the current collectors may be made rough by a surface treatment. Thickness thereof is not particularly limited, and those of 1-500 ⁇ m are used.
  • the negative electrode materials used in the present invention may be lithium alloys, alloys, intermetallic compounds, carbons, organic compounds, inorganic compounds, metal complexes and organic high molecular compounds, which are capable of absorbing and releasing lithium ions. These may be used each alone or in combination.
  • carbonaceous materials mention may be made of, for example, cokes, pyrolytic carbons, natural graphite, artificial graphite, mesocarbon microbeads, graphitized mesophase spherules, vapor deposited carbons, glassy carbons, carbon fibers (polyacrylonitrile fibers, pitch fibers, cellulose fibers and vapor deposited carbon fibers), amorphous carbons, and carbons prepared by firing organic materials. These may be used each alone or in combination. Among them, preferred are graphite materials such as those obtained by graphitizing mesophase spherules, natural graphite and artificial graphite. These negative electrode materials may be used as composites, and, for example, combinations of carbon with alloys, carbon with inorganic compounds, and the like can be considered.
  • lithium metal which is molten by heating is coated on a current collector to which a negative electrode material is pressed, thereby impregnating the negative electrode material with Li, or lithium metal is previously applied to electrode group by press bonding and Li is electrochemically doped in the negative electrode material in the electrolytic solution.
  • any electron conductors as long as they do not undergo chemical changes in the constructed batteries.
  • materials of the collectors there may be used stainless steel, nickel, copper, titanium, etc. Copper or copper alloys are especially preferred.
  • the shape of the current collectors may be in the form of foil, film, sheet, net, punched material, lath, porous material, foamed material, fiber group, shaped nonwoven fabric, and the like.
  • the surface of the current collectors may be made rough by a surface treatment. Thickness is not particularly limited, and those of 1-500 ⁇ m are used.
  • the non-aqueous electrolytic solution in the present invention comprises a solvent and a lithium salt dissolved in the solvent.
  • cyclic carbonates such as ethylene carbonate (EC), propylene carbonate (PC), butylene carbonate (BC) and vinylene carbonate (VC)
  • non-cyclic carbonates such as dimethyl carbonate (DMC), diethyl carbonate (DEC), ethylmethyl carbonate (EMC), ethylpropyl carbonate (EPC), methylpropyl carbonate (MPC), methylisopropyl carbonate (MIPC) and dipropyl carbonate (DPC)
  • aliphatic carboxylic acid esters such as methyl formate, methyl acetate, methyl propionate and ethyl propionate, ⁇ -lactones such as ⁇ -butyrolactone
  • non-cyclic ethers such as 1,2-dimethoxyethane (DME), 1,2-diethoxy
  • a mixed system of a cyclic carbonate and a non-cyclic carbonate or a mixed system of a cyclic carbonate, non-cyclic carbonate and an aliphatic carboxylic acid ester as a main component.
  • the lithium salts which are dissolved in these solvents include, for example, LiClO 4 , LiBF 4 , LiPF 6 , LiAlCl 4 , LiSbF 6 , LiSCN, LiCl, LiCF 3 SO 3 , LiCF 3 CO 2 , LiAsF 6 , LiN(CF 3 SO 2 ) 2 , Li 2 B 10 C 10 (JP-A-57-74974), LiN(C 2 F 5 SO 2 ) 2 , LiPF 3 (CF 3 ) 3 , LiPF 3 (C 2 F 5 ) 3 , etc.
  • These may be contained each alone or in combination of two or more in the electrolytic solution, etc. Among them, it is especially preferred that the solution contains LiPF 6 .
  • Especially preferable non-aqueous electrolytic solution in the present invention is one which contains at least ethylene carbonate and ethylmethyl carbonate and LiPF 6 as a lithium salt.
  • the amount of the electrolytic solution contained in the battery is not particularly limited, and it can be used in a necessary amount depending on the amount of positive electrode active material and that of negative electrode material and the size of the battery.
  • the amount of the lithium salt dissolved in the non-aqueous solvent is not particularly limited, but is preferably 0.2-2 mol/l, especially preferably 0.5-1.5 mol/l.
  • the electrolytic solution is ordinarily used by impregnating or filling a separator such as of porous polymer or nonwoven fabric with the electrolytic solution.
  • a gelled electrolyte comprising an organic solid electrolyte containing the non-aqueous electrolytic solution.
  • organic solid electrolyte polymeric matrix materials such as polyethylene oxide, polypropylene oxide, polyvinylidene fluoride and derivatives, mixtures and composites of these materials are effective.
  • copolymers of vinylidene fluoride and hexafluoropropylene and mixtures of polyvinylidene fluoride and polyethylene oxide are especially preferred.
  • an insulating microporous thin film having a high ion permeability and a desired mechanical strength is used.
  • the separator preferably has a function of closing the pores at a temperature of 80° C. or higher to enhance the resistance.
  • Sheets or nonwoven fabrics made from olefin polymers comprising one or combination of polypropylene and polyethylene or glass fibers are used from the points of organic solvent resistance and hydrophobic properties.
  • Pore diameter of the separator is preferably in such a range that active materials, binders and conducting agents which are released from the electrode sheets do not permeate through the pores, and, for example, the pore diameter is preferably 0.01-1 ⁇ m.
  • the thickness of the separator is generally 5-300 ⁇ m.
  • the porosity is determined depending on the permeability to electron or ion, kind of materials or film thickness, and is desirably 30-80%.
  • the shape of batteries can be any of sheet type, cylinder type, flat type, rectangular type, etc.
  • the shape of batteries is sheet type, cylinder type or rectangular type, the mix of positive electrode active material or negative electrode material is used mainly by coating on a current collector, then drying and compressing the collector.
  • the shape of the rolled electrodes in the present invention is not necessarily in the form of true cylinder, and may be in the form of ellipsoidal cylinder having a ellipsoidal section or in the form of square pillar such as rectangle.
  • Preferred combinations in the present invention are combinations of the preferred chemical materials and the preferred battery constituting parts mentioned above. Especially preferred are those which contain Li x CoO 2 , Li x NiO 2 , Li x Mn 2 O 4 (0 ⁇ x ⁇ 1) as positive electrode active materials, and acetylene black as a conducting agent.
  • the current collector of positive electrode is made of stainless steel or aluminum, and is in the form of net, sheet, foil or lath.
  • the negative electrode material preferably contains at least one compound such as alloy and carbonaceous material.
  • the current collector of negative electrode is made of stainless steel or copper and is in the form of net, sheet, foil or lath.
  • Carbon materials such as acetylene black and graphite as the electron conducting agent may be contained in the mix used together with positive electrode active materials or negative electrode materials.
  • binders there may be used fluorine-containing thermoplastic compounds such as polyvinylidene fluoride and polytetrafluoroethylene, polymers containing acrylic acid, and elastomers such as styrene-butadiene rubber and ethylene-propylene terpolymer each alone or in admixture.
  • the electrolytic solution preferably contains cyclic or non-cyclic carbonates such as ethylene carbonate, diethyl carbonate, dimethyl carbonate and ethylmethyl carbonate or additionally aliphatic carboxylic acid esters such as methyl acetate and methyl propionate, and LiPF 6 as a lithium salt.
  • the separator preferably comprises polypropylene or polyethylene each alone or in combination.
  • the battery may have any shapes such as cylindrical shape, flat shape, and rectangular shape.
  • the battery preferably has a means for ensuring safety against errors in working (e.g., an internal pressure releasing type safety valve, a separator which enhances resistance at high temperatures).
  • FIG. 1 is a longitudinal sectional view of the cylindrical battery used in this example.
  • the reference numeral 1 indicates a battery case made by working a stainless steel plate having resistance to organic electrolytic solution
  • 2 indicates a sealing plate provided with a safety valve
  • 3 indicates an insulation packing
  • 4 indicates an electrode plate group
  • positive electrode and negative electrode with separator interposed between the positive electrode and the negative electrode are rolled a plurality of times into a spiral form and inserted in the case 1 .
  • a positive electrode lead 5 is drawn from the positive electrode and connected to the sealing plate 2
  • a negative electrode lead 6 is drawn from the negative electrode and connected to the bottom of the battery case 1 .
  • the reference numeral 7 indicates an insulation ring, which is provided at the upper and lower portions of the electrode plate group 4 .
  • the positive electrode, the negative electrode, and others will be explained in detail below.
  • the positive electrode was made in the following manner. Li 2 CO 3 and Co 3 O 4 were mixed and fired at 900° C. for 10 hours to prepare an LiCoO 2 powder. This powder was mixed with 3% of acetylene black and 7% of a fluorocarbon polymer binder based on the weight of the LiCoO 2 powder, followed by suspending the mixture in an aqueous carboxymethyl cellulose solution to prepare a positive electrode mix paste. The resulting positive electrode mix paste was coated on the surface of an aluminum foil of 20 ⁇ m in thickness which was a positive electrode current collector, and the coat was dried, followed by rolling to make a positive electrode plate of 0.18 mm in thickness, 37 mm in width and 390 mm in length.
  • mesophase graphite a mesophase spherule which was graphitized at a high temperature of 2800° C.
  • mesophase graphite was used.
  • This mesophase graphite was mixed with 3% of a styrene-butadiene rubber based on the weight of the mesophase graphite, and then the mixture was suspended in an aqueous carboxymethyl cellulose solution to prepare a paste.
  • This negative electrode mix paste was coated on both sides of a Cu foil of 0.02 mm in thickness and dried, followed by rolling to make a negative electrode plate of 0.20 mm in thickness, 39 mm in width and 420 mm in length.
  • a lead made of aluminum was attached to the positive electrode plate and a lead made of nickel was attached to the negative electrode plate, and the positive electrode plate and the negative electrode plate with a polyethylene separator of 0.018 mm in thickness, 45 mm in width and 840 mm in length interposed between the positive electrode plate and the negative electrode plate were rolled into a spiral form and inserted in a battery case of 17.0 mm in diameter and 50.0 mm in height.
  • the electrolytic solution used was prepared by dissolving 1 mol/liter of LiPF 6 in a mixed solvent comprising EC and EMC at a volume ratio of 30:70, and as additives, 2% by weight of o-terphenyl and 0.2% by weight of triphenylene based on the total amount of the electrolytic solution were added to the electrolytic solution.
  • the electrolytic solution was poured into the battery case, and then the case was sealed to make a battery 1 (battery capacity: 800 mAh) of the present invention.
  • a cylindrical battery of spiral type was made in the same manner as in Example 1, except that cyclohexylbenzene in an amount of 2% by weight and biphenyl in an amount of 0.2% by weight based on the total amount of the electrolytic solution were used as the additives to the electrolytic solution.
  • the thus obtained battery was referred to as battery 2 of the present invention.
  • a cylindrical battery of spiral type was made in the same manner as in Example 1, except that cyclohexylbenzene in an amount of 2% by weight and o-terphenyl in an amount of 0.2% by weight based on the total amount of the electrolytic solution were used as the additives to the electrolytic solution.
  • the thus obtained battery was referred to as battery 3 of the present invention.
  • a cylindrical battery of spiral type was made in the same manner as in Example 1, except that cyclohexylbenzene in an amount of 2% by weight, biphenyl in an amount of 0.2% by weight and o-terphenyl in an amount of 0.2% by weight based on the total amount of the electrolytic solution were used as the additives to the electrolytic solution.
  • the thus obtained battery was referred to as battery 4 of the present invention.
  • a cylindrical battery of spiral type was made in the same manner as in Example 1, except that cyclohexylbenzene in an amount of 2% by weight, biphenyl in an amount of 0.2% by weight, o-terphenyl in an amount of 0.2% by weight and triphenylene in an amount of 0.1% by weight based on the total amount of the electrolytic solution were used as the additives to the electrolytic solution.
  • the thus obtained battery was referred to as battery 5 of the present invention.
  • a cylindrical battery was made in the same manner as in Example 1, except that the additives to the electrolytic solution were not used.
  • the thus obtained battery was referred to as a comparative battery (battery 6 ).
  • a cylindrical battery of spiral type was made in the same manner as in Example 1, except that biphenyl was used in an amount of 2.0% by weight based on the total amount of the electrolytic solution as the additive to the electrolytic solution.
  • the thus obtained battery was referred to as a comparative battery (battery 7 ).
  • a cylindrical battery of spiral type was made in the same manner as in Example 1, except that cyclohexylbenzene was used in an amount of 2.0% by weight based on the total amount of the electrolytic solution as the additive to the electrolytic solution.
  • the thus obtained battery was referred to as a comparative battery (battery 8 ).
  • a cylindrical battery of spiral type was made in the same manner as in Example 1, except that o-terphenyl was used in an amount of 2.0% by weight based on the total amount of the electrolytic solution as the additive to the electrolytic solution.
  • the thus obtained battery was referred to as a comparative battery (battery 9 ).
  • a cylindrical battery of spiral type was made in the same manner as in Example 1, except that biphenyl was used in an amount of 0.2% by weight based on the total amount of the electrolytic solution as the additive to the electrolytic solution.
  • the thus obtained battery was referred to as a comparative battery (battery 10 ).
  • Additives generation storage (%) 1 o-Terphenyl (2%) + 0/20 75 triphenylene (0.2%) 2 Cyclohexylbenzene (2%) + 0/20 85 biphenyl (0.2%) 3 Cyclohexylbenzene (2%) + 2/20 82 o-terphenyl (0.2%) 4 Cyclohexylbenzene (2%) + 0/20 84 biphenyl (0.2%) + o-terphenyl (0.2%) 5 Cyclohexylbenzene (2%) + 0/20 83 biphenyl (0.2%) + o-terphenyl (0.2%) + triphenylene (0.1%)
  • This battery was disassembled after storing and analyzed to find a film which was considered to be a polymerization product was formed on the surface of the positive electrode, and it was presumed that the recovery rate decreased due to the hindrance to charging and discharging reaction of lithium ion.
  • the amount of cyclohexylbenzene is preferably not less than 1.0% by weight and not more than 5.0% by weight.
  • the amount of biphenyl or triphenylene is preferably not less than 0.01% by weight and less than 1.0% by weight.
  • the present invention can provide batteries having high safety against overcharging and excellent in recovery characteristics in storing at high temperatures by combining additives to electrolytic solutions.
  • Portable telephones, portable information terminal devices, cam coders, personal computers, PDA, portable audio devices, electric cars, electric sources for road leveling, and the like which are high in safety can be provided by using the non-aqueous type electrolyte secondary batteries as mentioned above.

Abstract

In a rechargeable non-aqueous electrolyte secondary battery using positive electrodes, negative electrodes and a non-aqueous electrolytic solution, additives to the electrolytic solution are used in combination, preferably in combination of at least two compounds selected from o-terphenyl, triphenylene, cyclohexylbenzene and biphenyl, and thus there are provided batteries excellent in safety and storage characteristics.

Description

    TECHNICAL FIELD
  • The present invention relates to a non-aqueous electrolytic solution which can ensure safety of batteries at the time of overcharging with improving recovery characteristics of the batteries after storage at high temperatures, and to a non-aqueous type secondary battery using said electrolytic solution. [0001]
  • BACKGROUND ART
  • Recently, AV devices and electronic devices such as personal computers of portable or cordless type have been rapidly developed, and secondary batteries which are small in size, light in weight and high in energy density are earnestly demanded as electric sources for driving these devices. Among them, non-aqueous electrolytic solution secondary batteries using a negative electrode containing lithium as an active material are hopefully expected as batteries having high voltage and high energy density. [0002]
  • In the above batteries, lithium-containing metal oxides which show a voltage on the order of 4 V are used for positive electrode active materials, and materials capable of intercalation or deintercalation of lithium, such as carbonaceous materials, are used for negative electrodes. [0003]
  • One of the most important tasks in these non-aqueous electrolytic solution batteries is to ensure the safety. [0004]
  • Particularly, in lithium ion secondary batteries, when they are charged in excess of a given charging voltage due to, for example, troubles of charging control circuits, they are in overcharged state, and lithium ions in the positive electrode are excessively extracted and migrate to negative electrode to cause absorption of lithium in an amount larger than the prescribed design capacity in the negative electrode or to cause precipitation of lithium as metallic lithium on the surface of negative electrode. If the batteries in such a state are further forcedly charged, internal resistance of the batteries increases and generation of heat due to the Joule's heat becomes great to cause abnormal heat generation, and, in the worst case, to result in thermal runaway. By providing a current interrupting switch of temperature sensing type (for example, a positive temperature coefficient thermistor (PTC) or a temperature fuse) outside the batteries, the current is interrupted without fail, and safety can be ensured at the time of generation of abnormal heat. Furthermore, in order to solve the problem of overcharge, a means of interrupting the charging current upon sensing the change of internal pressure of batteries is generally employed as disclosed in U.S. Pat. No. 4,943,497. [0005]
  • However, in the case of using such a mechanical current interrupting mechanism, reduction of cost is difficult and, furthermore, with the batteries becoming smaller and thinner, it becomes structurally difficult to insert the mechanism in the batteries. [0006]
  • For solving the above problems, there is proposed a method of adding to the electrolytic solution an additive which causes a reversible redox reaction, thereby to self-consume the electric energy introduced into the batteries as a redox shuttle (for example, JP-A-1-206571, JP-A-6-338347, JP-A-7-302614, etc.). [0007]
  • However, in the method of using the redox shuttle, when the overcharging current becomes great, there are limits in charge transfer reaction rate and lithium ion transfer rate, and, thus, it cannot be said that the method provides a sufficient safety. [0008]
  • For solving the above problems, JP-9-50822, JP-A-10-50342, JP-9-106835, JP-10-321258, Japanese Patent No. 2939469, and JP-A-2000-58117 propose a means of adding to batteries an aromatic compound having a methoxy group and a halogen group, biphenyl or thiophene, or an aromatic ether compound, which polymerizes at the time of overcharging to result in rising of temperature and, thus, to ensure the safety. [0009]
  • DISCLOSURE OF INVENTION
  • In the case of the batteries in which a current interrupting switch of temperature sensing type (for example, a positive temperature coefficient thermistor (PTC) or a temperature fuse) is provided outside the batteries against abnormal heat generation, when an excessively large overcharging current (5-6 C) of more than 5-6 times the rated capacity passes, the device per se generates heat due to the current and resistance increases, thereby interrupting the current, and thus the safety can be ensured, but in the case of a current generally used for charging and discharging the batteries (less than 1-2 C at the maximum), the rising of temperature is insufficient and the resistance does not increase. When overcharging is carried out at such a current value, the safety cannot be sufficiently ensured. If the setting is made so that the resistance increases in the generally used current region, naturally the inherent performance of the batteries are damaged. [0010]
  • In the case of adding to the batteries the above-mentioned additives such as aromatic compound having a methoxy group and a halogen group, biphenyl or thiophene, and an aromatic ether compound, it has been confirmed that in the generally used current ranges, the additives polymerize on the electrodes in overcharged state, and the safety is improved. [0011]
  • However, it has been found that these additives must be added in an amount of not less than 1% by weight for ensuring the safety at the time of overcharging, but if the additives are added in a large amount, in an shelf life test, for example, an environment test (80° C.) which supposes the case of leaving them in a car in summer, these additives partially react to cover the active material, resulting in considerable deterioration of the battery characteristics. [0012]
  • The above phenomenon is considered to occur because oxidative polymerization potential of the additives lowers due to exposure of the battery to a high temperature environment, and, furthermore, the potential distribution in the charged electrode is not uniform and higher potential portions are partially present, and, as a result, the additives react even in the ordinary environment of potential at which battery is used. [0013]
  • The above problem of deterioration due to storage can be solved, for example, by using an additive high in oxidative polymerization starting potential (for example, cyclohexylbenzene), but in this case, since the reaction potential of the additive is rather high at the time of the overcharging, the safety of overcharging cannot sufficiently be ensured. [0014]
  • The present invention solves the above problems and to provide a battery excellent in high-temperature storage characteristics while ensuring the safety at overcharging. [0015]
  • In order to solve the above problems, according to the present invention, in a non-aqueous electrolytic solution in which an electrolyte is dissolved in a non-aqueous solvent, two or more organic compounds differing in oxidative polymerization reaction potential are added. Preferably, organic compounds of relatively low oxidation reaction potential are added in a very small amount, preferably not less than 0.01% by weight and less than 1.0% by weight based on the total amount of the electrolytic solution, thereby to control the recovery characteristics after storage and the safety during overcharging. Specifically, it is preferred to add at least two organic compounds selected from o-terphenyl, triphenylene, cyclohexylbenzene and biphenyl. [0016]
  • It is preferred that not less than 1.0% by weight and not more than 3.0% by weight of o-terphenyl and not less than 0.01% by weight and less than 1.0% by weight of triphenylene are contained in the non-aqueous solvent. [0017]
  • Furthermore, it is preferred that not less than 1.0% by weight and not more than 5.0% by weight of cyclohexylbenzene and not less than 0.01% by weight and less than 1.0% by weight of biphenyl are contained in the non-aqueous solvent. [0018]
  • Moreover, it is preferred that not less than 1.0% by weight and not more than 5.0% by weight of cyclohexylbenzene and not less than 0.01% by weight and less than 1.0% by weight of o-terphenyl are contained in the non-aqueous solvent. [0019]
  • Further, it is preferred that not less than 1.0% by weight and not more than 5.0% by weight of cyclohexylbenzene, not less than 0.01% by weight and less than 1.0% by weight of o-terphenyl and not less than 0.01% by weight and less than 1.0% by weight of biphenyl are contained in the non-aqueous solvent. [0020]
  • Furthermore, it is preferred that all of o-terphenyl, triphenylene, cyclohexylbenzene and biphenyl are contained in the non-aqueous solvent and the total amount of them is 0.4-5% by weight based on the non-aqueous solvent. [0021]
  • These organic compounds are particularly effective when the positive electrodes comprise a material containing a lithium-containing metal oxide and the negative electrodes comprise a material containing graphite, and the non-aqueous electrolytic solution exerts the higher effect when it is an electrolytic solution in which a lithium salt as a solute is dissolved in a non-aqueous solvent mainly composed of a cyclic carbonate and a chain carbonate. [0022]
  • The cyclic carbonate is preferably at least one compound selected from ethylene carbonate (EC), propylene carbonate (PC), butylene carbonate (BC) and vinylene carbonate (VC). [0023]
  • The chain carbonate is preferably at least one compound selected from dimethyl carbonate (DMC), diethyl carbonate (DEC), ethylmethyl carbonate (EMC), methylpropyl carbonate (MPC) and ethylpropyl carbonate (EPC).[0024]
  • BRIEF DESCRIPTION OF DRAWING
  • FIG. 1 is a longitudinal sectional view of a cylindrical battery in the examples of the present invention and in the comparative examples.[0025]
  • BEST MODE FOR CARRYING OUT THE INVENTION
  • In the present invention, recovery characteristics after storage and safety during overcharging can be controlled by adding two or more organic compounds differing in oxidative polymerization reaction potential to the electrolytic solution. [0026]
  • Examples of organic compounds differing in oxidative polymerization potential contained in the electrolytic solution for non-aqueous type batteries in which an electrolyte is dissolved in a non-aqueous solvent are o-terphenyl, triphenylene, cyclohexylbenzene and biphenyl. As to the content of the organic compounds, the weight of the organic compound of relatively higher oxidative polymerization potential is preferably not less than 1.0% by weight and not more than 5.0% by weight based on the total amount of the non-aqueous electrolytic solution. The weight of the organic compound of relatively lower oxidative polymerization potential is preferably not less than 0.01% by weight and less than 1.0% by weight based on the total amount of the non-aqueous electrolytic solution. Furthermore, the weight ratio of the organic compound of relatively higher oxidative polymerization reaction potential and the organic compound of relatively lower oxidative polymerization reaction potential is preferably not lower than 20:1 and not higher than 2:1, more preferably not lower than 10:1 and not higher than 4:1. [0027]
  • In order to improve the recovery characteristics after storage, the amount of the organic compound of relatively lower oxidative polymerization starting potential (for example, biphenyl) is preferably smaller, but in order to ensure the safety at overcharging, the organic compound must react as much as possible at overcharging, namely, the amount is preferably rather larger. [0028]
  • According to the present invention, two or more organic compounds differing in oxidative polymerization reaction potential (hereinafter sometimes referred to as “additives”) are used, and the amount of the organic compound of relatively lower oxidative polymerization starting potential (for example, biphenyl) is conspicuously reduced in this system, thereby maintaining excellent storage characteristics, and on the other hand the organic compounds react only slightly at the overcharging, whereby polarization at the overcharging increases, and the organic compound of relatively higher oxidative polymerization starting potential (for example, cyclohexylbenzene) react at an early stage, and thus the safety can be ensured. As a result, there can be attained both the recovery properties after storage and the insurance of safety at overcharging, which cannot be attained with addition of each organic compound singly. [0029]
  • Since the additives in the present invention do not aim at an action as redox shuttles, the oxidation reaction is desirably irreversible and they differ in purpose from JP-A-7-302614 and JP-A-9-50822 which aim at reversibility of redox reaction. [0030]
  • As the lithium-containing composite oxides used as positive electrode active materials in the present invention, mention may be made of, for example, Li[0031] xCoOz, LixNiOz (U.S. Pat. No. 4,302,518), LixMnOz, LixCoyNi1-yOz (JP-A-63-299056), LixCofV1-fOz, LixNi1-yMyOz (M=Ti, V, Mn, Fe), LixCoaNibMcOz (M=Ti, Mn, Al, Mg, Fe, Zr), LixMn2O4, LixMn2(1-y)M2yO4 (M=Na, Mg, Sc, Y, Fe, Co, Ni, Ti, Zr, Cu, Zn, Al, Pb, Sb) (x=0-1.2, y=0-1.0, f=0.9-0.98, z=1.9-2.3, a+b+c=1.0, 0≦a≦1, 0≦b≦1, 0≦c<1). The value x is a value before starting of charging and discharging, which increases or decreases by charging and discharging.
  • The lithium-containing composite oxides used as positive electrode active materials in the present invention can be prepared by mixing carbonate, nitrate, oxide or hydroxide of lithium with carbonate, nitrate, oxide or hydroxide of a transition metal such as cobalt, manganese or nickel at a desired composition, grinding the mixture and firing the powder or by a solution reaction. The firing method is especially preferred, and the firing temperature can be 250-1500° C. at which a part of the mixed compound is decomposed and molten. The firing time is preferably 1-80 hours. The firing gas atmosphere can be any of air atmosphere, oxidizing atmosphere or reducing atmosphere, and has no special limitation. [0032]
  • In the present invention, a plurality of different positive electrode active materials may be used in combination. [0033]
  • As current collectors of positive electrodes, there may be used any electron conductors as long as they do not undergo chemical changes in the constructed batteries. For examples, as materials of the current collectors, there may be used stainless steel, aluminum, titanium and carbon, and aluminum or aluminum alloys are especially preferred. As for the shape of the current collectors, they may be in the form of foil, film, sheet, net, punched material, lath, porous material, foamed material, fiber group, shaped nonwoven fabric, and the like. The surface of the current collectors may be made rough by a surface treatment. Thickness thereof is not particularly limited, and those of 1-500 μm are used. [0034]
  • The negative electrode materials used in the present invention may be lithium alloys, alloys, intermetallic compounds, carbons, organic compounds, inorganic compounds, metal complexes and organic high molecular compounds, which are capable of absorbing and releasing lithium ions. These may be used each alone or in combination. [0035]
  • As the carbonaceous materials, mention may be made of, for example, cokes, pyrolytic carbons, natural graphite, artificial graphite, mesocarbon microbeads, graphitized mesophase spherules, vapor deposited carbons, glassy carbons, carbon fibers (polyacrylonitrile fibers, pitch fibers, cellulose fibers and vapor deposited carbon fibers), amorphous carbons, and carbons prepared by firing organic materials. These may be used each alone or in combination. Among them, preferred are graphite materials such as those obtained by graphitizing mesophase spherules, natural graphite and artificial graphite. These negative electrode materials may be used as composites, and, for example, combinations of carbon with alloys, carbon with inorganic compounds, and the like can be considered. [0036]
  • In the present invention, since Li is contained in the positive electrode active material, negative electrode materials which do not contain Li (such as carbon) can be used. Moreover, when Li is added to such negative electrode materials which do not contain Li in a small amount (about 0.01-10 parts by weight based on 100 parts by weight of the negative electrode materials), even if the materials become inactive owing to the reaction of a part of Li with electrolyte, Li can be supplemented with Li contained in the negative electrode materials, which is preferred. Li can be contained in the negative electrode materials, for example, in the following manner. That is, lithium metal which is molten by heating is coated on a current collector to which a negative electrode material is pressed, thereby impregnating the negative electrode material with Li, or lithium metal is previously applied to electrode group by press bonding and Li is electrochemically doped in the negative electrode material in the electrolytic solution. [0037]
  • As current collectors of negative electrodes, there may be used any electron conductors as long as they do not undergo chemical changes in the constructed batteries. For example, as materials of the collectors, there may be used stainless steel, nickel, copper, titanium, etc. Copper or copper alloys are especially preferred. [0038]
  • As for the shape of the current collectors, they may be in the form of foil, film, sheet, net, punched material, lath, porous material, foamed material, fiber group, shaped nonwoven fabric, and the like. Moreover, the surface of the current collectors may be made rough by a surface treatment. Thickness is not particularly limited, and those of 1-500 μm are used. [0039]
  • The non-aqueous electrolytic solution in the present invention comprises a solvent and a lithium salt dissolved in the solvent. As the non-aqueous solvents, mention may be made of cyclic carbonates such as ethylene carbonate (EC), propylene carbonate (PC), butylene carbonate (BC) and vinylene carbonate (VC), non-cyclic carbonates such as dimethyl carbonate (DMC), diethyl carbonate (DEC), ethylmethyl carbonate (EMC), ethylpropyl carbonate (EPC), methylpropyl carbonate (MPC), methylisopropyl carbonate (MIPC) and dipropyl carbonate (DPC), aliphatic carboxylic acid esters such as methyl formate, methyl acetate, methyl propionate and ethyl propionate, γ-lactones such as γ-butyrolactone, non-cyclic ethers such as 1,2-dimethoxyethane (DME), 1,2-diethoxyethane (DEE) and ethoxymethoxyethane (EME), cyclic ethers such as tetrahydrofuran and 2-methyltetrahydrofuran, dimethyl sulfoxide, 1,3-dioxolan, alkyl phosphate esters such as trimethyl phosphate, triethyl phosphate and trioctyl phosphate, and fluorides of them. These may be used each alone or in admixture of two or more. Among them, it is preferred to use a mixed system of a cyclic carbonate and a non-cyclic carbonate or a mixed system of a cyclic carbonate, non-cyclic carbonate and an aliphatic carboxylic acid ester as a main component. [0040]
  • The lithium salts which are dissolved in these solvents include, for example, LiClO[0041] 4, LiBF4, LiPF6, LiAlCl4, LiSbF6, LiSCN, LiCl, LiCF3SO3, LiCF3CO2, LiAsF6, LiN(CF3SO2)2, Li2B10C10 (JP-A-57-74974), LiN(C2F5SO2)2, LiPF3(CF3)3, LiPF3(C2F5)3, etc. These may be contained each alone or in combination of two or more in the electrolytic solution, etc. Among them, it is especially preferred that the solution contains LiPF6.
  • Especially preferable non-aqueous electrolytic solution in the present invention is one which contains at least ethylene carbonate and ethylmethyl carbonate and LiPF[0042] 6 as a lithium salt. The amount of the electrolytic solution contained in the battery is not particularly limited, and it can be used in a necessary amount depending on the amount of positive electrode active material and that of negative electrode material and the size of the battery. The amount of the lithium salt dissolved in the non-aqueous solvent is not particularly limited, but is preferably 0.2-2 mol/l, especially preferably 0.5-1.5 mol/l.
  • The electrolytic solution is ordinarily used by impregnating or filling a separator such as of porous polymer or nonwoven fabric with the electrolytic solution. [0043]
  • Moreover, there may be used a gelled electrolyte comprising an organic solid electrolyte containing the non-aqueous electrolytic solution. As the organic solid electrolyte, polymeric matrix materials such as polyethylene oxide, polypropylene oxide, polyvinylidene fluoride and derivatives, mixtures and composites of these materials are effective. Especially preferred are copolymers of vinylidene fluoride and hexafluoropropylene and mixtures of polyvinylidene fluoride and polyethylene oxide. [0044]
  • As the separator, an insulating microporous thin film having a high ion permeability and a desired mechanical strength is used. The separator preferably has a function of closing the pores at a temperature of 80° C. or higher to enhance the resistance. Sheets or nonwoven fabrics made from olefin polymers comprising one or combination of polypropylene and polyethylene or glass fibers are used from the points of organic solvent resistance and hydrophobic properties. Pore diameter of the separator is preferably in such a range that active materials, binders and conducting agents which are released from the electrode sheets do not permeate through the pores, and, for example, the pore diameter is preferably 0.01-1 μm. The thickness of the separator is generally 5-300 μm. The porosity is determined depending on the permeability to electron or ion, kind of materials or film thickness, and is desirably 30-80%. [0045]
  • The shape of batteries can be any of sheet type, cylinder type, flat type, rectangular type, etc. When the shape of batteries is sheet type, cylinder type or rectangular type, the mix of positive electrode active material or negative electrode material is used mainly by coating on a current collector, then drying and compressing the collector. [0046]
  • The shape of the rolled electrodes in the present invention is not necessarily in the form of true cylinder, and may be in the form of ellipsoidal cylinder having a ellipsoidal section or in the form of square pillar such as rectangle. [0047]
  • Preferred combinations in the present invention are combinations of the preferred chemical materials and the preferred battery constituting parts mentioned above. Especially preferred are those which contain Li[0048] xCoO2, LixNiO2, LixMn2O4 (0≦x≦1) as positive electrode active materials, and acetylene black as a conducting agent. The current collector of positive electrode is made of stainless steel or aluminum, and is in the form of net, sheet, foil or lath. The negative electrode material preferably contains at least one compound such as alloy and carbonaceous material. The current collector of negative electrode is made of stainless steel or copper and is in the form of net, sheet, foil or lath. Carbon materials such as acetylene black and graphite as the electron conducting agent may be contained in the mix used together with positive electrode active materials or negative electrode materials. As the binders, there may be used fluorine-containing thermoplastic compounds such as polyvinylidene fluoride and polytetrafluoroethylene, polymers containing acrylic acid, and elastomers such as styrene-butadiene rubber and ethylene-propylene terpolymer each alone or in admixture. The electrolytic solution preferably contains cyclic or non-cyclic carbonates such as ethylene carbonate, diethyl carbonate, dimethyl carbonate and ethylmethyl carbonate or additionally aliphatic carboxylic acid esters such as methyl acetate and methyl propionate, and LiPF6 as a lithium salt. The separator preferably comprises polypropylene or polyethylene each alone or in combination. The battery may have any shapes such as cylindrical shape, flat shape, and rectangular shape. The battery preferably has a means for ensuring safety against errors in working (e.g., an internal pressure releasing type safety valve, a separator which enhances resistance at high temperatures).
  • EXAMPLES
  • Examples of the present invention will be explained below referring to the drawing. [0049]
  • Example 1
  • FIG. 1 is a longitudinal sectional view of the cylindrical battery used in this example. In FIG. 1, the reference numeral [0050] 1 indicates a battery case made by working a stainless steel plate having resistance to organic electrolytic solution, 2 indicates a sealing plate provided with a safety valve, 3 indicates an insulation packing, 4 indicates an electrode plate group, and positive electrode and negative electrode with separator interposed between the positive electrode and the negative electrode are rolled a plurality of times into a spiral form and inserted in the case 1. A positive electrode lead 5 is drawn from the positive electrode and connected to the sealing plate 2, and a negative electrode lead 6 is drawn from the negative electrode and connected to the bottom of the battery case 1. The reference numeral 7 indicates an insulation ring, which is provided at the upper and lower portions of the electrode plate group 4. The positive electrode, the negative electrode, and others will be explained in detail below.
  • The positive electrode was made in the following manner. Li[0051] 2CO3 and Co3O4 were mixed and fired at 900° C. for 10 hours to prepare an LiCoO2 powder. This powder was mixed with 3% of acetylene black and 7% of a fluorocarbon polymer binder based on the weight of the LiCoO2 powder, followed by suspending the mixture in an aqueous carboxymethyl cellulose solution to prepare a positive electrode mix paste. The resulting positive electrode mix paste was coated on the surface of an aluminum foil of 20 μm in thickness which was a positive electrode current collector, and the coat was dried, followed by rolling to make a positive electrode plate of 0.18 mm in thickness, 37 mm in width and 390 mm in length.
  • For the negative electrode, a mesophase spherule which was graphitized at a high temperature of 2800° C. (hereinafter referred to as “mesophase graphite”) was used. This mesophase graphite was mixed with 3% of a styrene-butadiene rubber based on the weight of the mesophase graphite, and then the mixture was suspended in an aqueous carboxymethyl cellulose solution to prepare a paste. This negative electrode mix paste was coated on both sides of a Cu foil of 0.02 mm in thickness and dried, followed by rolling to make a negative electrode plate of 0.20 mm in thickness, 39 mm in width and 420 mm in length. [0052]
  • A lead made of aluminum was attached to the positive electrode plate and a lead made of nickel was attached to the negative electrode plate, and the positive electrode plate and the negative electrode plate with a polyethylene separator of 0.018 mm in thickness, 45 mm in width and 840 mm in length interposed between the positive electrode plate and the negative electrode plate were rolled into a spiral form and inserted in a battery case of 17.0 mm in diameter and 50.0 mm in height. The electrolytic solution used was prepared by dissolving 1 mol/liter of LiPF[0053] 6 in a mixed solvent comprising EC and EMC at a volume ratio of 30:70, and as additives, 2% by weight of o-terphenyl and 0.2% by weight of triphenylene based on the total amount of the electrolytic solution were added to the electrolytic solution. The electrolytic solution was poured into the battery case, and then the case was sealed to make a battery 1 (battery capacity: 800 mAh) of the present invention.
  • Example 2
  • A cylindrical battery of spiral type was made in the same manner as in Example 1, except that cyclohexylbenzene in an amount of 2% by weight and biphenyl in an amount of 0.2% by weight based on the total amount of the electrolytic solution were used as the additives to the electrolytic solution. The thus obtained battery was referred to as [0054] battery 2 of the present invention.
  • Example 3
  • A cylindrical battery of spiral type was made in the same manner as in Example 1, except that cyclohexylbenzene in an amount of 2% by weight and o-terphenyl in an amount of 0.2% by weight based on the total amount of the electrolytic solution were used as the additives to the electrolytic solution. The thus obtained battery was referred to as [0055] battery 3 of the present invention.
  • Example 4
  • A cylindrical battery of spiral type was made in the same manner as in Example 1, except that cyclohexylbenzene in an amount of 2% by weight, biphenyl in an amount of 0.2% by weight and o-terphenyl in an amount of 0.2% by weight based on the total amount of the electrolytic solution were used as the additives to the electrolytic solution. The thus obtained battery was referred to as [0056] battery 4 of the present invention.
  • Example.5
  • A cylindrical battery of spiral type was made in the same manner as in Example 1, except that cyclohexylbenzene in an amount of 2% by weight, biphenyl in an amount of 0.2% by weight, o-terphenyl in an amount of 0.2% by weight and triphenylene in an amount of 0.1% by weight based on the total amount of the electrolytic solution were used as the additives to the electrolytic solution. The thus obtained battery was referred to as [0057] battery 5 of the present invention.
  • Comparative Example 1
  • A cylindrical battery was made in the same manner as in Example 1, except that the additives to the electrolytic solution were not used. The thus obtained battery was referred to as a comparative battery (battery [0058] 6).
  • Comparative Example 2
  • A cylindrical battery of spiral type was made in the same manner as in Example 1, except that biphenyl was used in an amount of 2.0% by weight based on the total amount of the electrolytic solution as the additive to the electrolytic solution. The thus obtained battery was referred to as a comparative battery (battery [0059] 7).
  • Comparative Example 3
  • A cylindrical battery of spiral type was made in the same manner as in Example 1, except that cyclohexylbenzene was used in an amount of 2.0% by weight based on the total amount of the electrolytic solution as the additive to the electrolytic solution. The thus obtained battery was referred to as a comparative battery (battery [0060] 8).
  • Comparative Example 4
  • A cylindrical battery of spiral type was made in the same manner as in Example 1, except that o-terphenyl was used in an amount of 2.0% by weight based on the total amount of the electrolytic solution as the additive to the electrolytic solution. The thus obtained battery was referred to as a comparative battery (battery [0061] 9).
  • Comparative Example 5
  • A cylindrical battery of spiral type was made in the same manner as in Example 1, except that biphenyl was used in an amount of 0.2% by weight based on the total amount of the electrolytic solution as the additive to the electrolytic solution. The thus obtained battery was referred to as a comparative battery (battery [0062] 10).
  • Then, as overcharging tests, 20 cells each of the batteries [0063] 1-5 of the present invention and the comparative batteries 6-9 were subjected to overcharging at 0.8 A (1C) from charged state at an environmental temperature of 20° C., and it was examined whether abnormal heat generation occurred or not in the batteries. The number of cells among 20 cells in which abnormal heat generation occurred is shown in Tables 1 and 2.
  • Furthermore, as high-temperature storage tests, the batteries in charged state were left to stand at 80° C. for 4 days, and the discharge capacity at 1C was compared with the discharge capacity before 10 storing, and capacity recovery rate after storing was calculated. (Capacity recovery rate after storing=(1C discharge capacity after storing)/(1C discharge capacity before storing)×100(%)). [0064]
    TABLE 1
    (Example)
    Occurrence of Recovery
    abnormal heat rate after
    No. Additives generation storage (%)
    1 o-Terphenyl (2%) + 0/20 75
    triphenylene (0.2%)
    2 Cyclohexylbenzene (2%) + 0/20 85
    biphenyl (0.2%)
    3 Cyclohexylbenzene (2%) + 2/20 82
    o-terphenyl (0.2%)
    4 Cyclohexylbenzene (2%) + 0/20 84
    biphenyl (0.2%) +
    o-terphenyl (0.2%)
    5 Cyclohexylbenzene (2%) + 0/20 83
    biphenyl (0.2%) +
    o-terphenyl (0.2%) +
    triphenylene (0.1%)
  • [0065]
    TABLE 2
    (Comparative Example)
    Occurrence
    of abnormal Recovery
    heat rate after
    No. Additives generation storage (%)
     6 No 20/20 87
     7 Biphenyl (2%)  0/20 17
     8 Cyclohexylbenzene (2%) 13/20 85
     9 o-Terphenyl (2%)  7/20 69
    10 Biphenyl (0.2) 14/20 82
  • As shown in Table 2, in the [0066] battery 6 having no additives, the phenomenon of abnormal heat generation occurred in all of 20 cells when they were subjected to overcharging. Hitherto, the safety of batteries has been ensured by providing a plurality of safety mechanisms comprising a protective circuit for charging voltage and a current interrupting mechanism, but the abnormal heat generation may occur in case no safety protection was provided as in the Comparative Example 1.
  • It can be seen that in the [0067] battery 7 of Comparative Example 2 in which biphenyl was added as the additive, abnormal heat generation did not occur even when it was subjected to overcharging, and safety could be ensured, but the recovery rate after storing at high temperatures was very low, namely, 17%.
  • This battery was disassembled after storing and analyzed to find a film which was considered to be a polymerization product was formed on the surface of the positive electrode, and it was presumed that the recovery rate decreased due to the hindrance to charging and discharging reaction of lithium ion. [0068]
  • Furthermore, in the battery [0069] 8 of Comparative Example 3 in which only cyclohexylbenzene high in reaction starting potential was contained, the recovery rate after storing at high temperatures was high, namely, 85%, and this battery showed characteristics substantially equal to those of the battery 6 containing no additives, but was insufficient in safety at the time of overcharging and more than half of the cells resulted in abnormal heat generation.
  • In the case of addition of o-terphenyl which was relatively high in reaction starting potential, ignition rate at overcharging somewhat decreased, but the decrease was still insufficient and, further, the recovery rate after storing was also insufficient. [0070]
  • When the amount of biphenyl of low reaction starting potential was reduced, the recovery rate after storing increased, but safety at overcharging could not be ensured as in the battery [0071] 10 of Comparative Example 5.
  • As explained above, it is not easy to ensure both the safety at overcharging and the high-temperature storage characteristics by using a single additive. [0072]
  • In comparison with the batteries of the comparative examples, in the batteries such as batteries [0073] 1-5 of the present invention in which two or more additives were contained, by adding a small amount of an additive of relatively lower reaction starting potential (biphenyl, o-terphenyl, triphenylene) in each system, the recovery rate after storing was improved and a recovery rate of more than 70% was maintained, and, moreover, since the additive of lower reaction starting potential which slightly reacted during the overcharging increased the polarization at overcharging, the additive of higher reaction starting potential started the reaction at the early stage to enhance the safety at overcharging. Thus, batteries superior in recovery characteristics in storing and high in safety at overcharging could be realized.
  • From the point of maintaining the safety at overcharging, the amount of cyclohexylbenzene is preferably not less than 1.0% by weight and not more than 5.0% by weight. [0074]
  • Furthermore, from the point of maintaining the recovery characteristics in storing, the amount of biphenyl or triphenylene is preferably not less than 0.01% by weight and less than 1.0% by weight. [0075]
  • INDUSTRIAL APPLICABILITY
  • As explained above, the present invention can provide batteries having high safety against overcharging and excellent in recovery characteristics in storing at high temperatures by combining additives to electrolytic solutions. [0076]
  • Portable telephones, portable information terminal devices, cam coders, personal computers, PDA, portable audio devices, electric cars, electric sources for road leveling, and the like which are high in safety can be provided by using the non-aqueous type electrolyte secondary batteries as mentioned above. [0077]

Claims (32)

1. A non-aqueous electrolytic solution for non-aqueous type batteries in which an electrolyte is dissolved in a non-aqueous solvent, characterized by containing two or more organic compounds differing in oxidative polymerization potential, with a proviso that weight of the organic compound of relatively lower oxidative polymerization potential is less than that of the organic compound of relatively higher oxidative polymerization potential.
2. An electrolytic solution for non-aqueous type batteries according to claim 1, wherein two or more organic compounds selected from o-terphenyl, triphenylene, cyclohexylbenzene and biphenyl are contained as the organic compounds differing in oxidative polymerization potential.
3. An electrolytic solution for non-aqueous type batteries according to claim 1, wherein not less than 1.0% by weight and not more than 3.0% by weight of o-terphenyl and not less than 0.01% by weight and less than 1.0% by weight of triphenylene based on the total amount of the non-aqueous electrolytic solution are contained.
4. An electrolytic solution for non-aqueous type batteries according to claim 1, wherein not less than 1.0% by weight and not more than 5.0% by weight of cyclohexylbenzene and not less than 0.01% by weight and less than 1.0% by weight of biphenyl based on the total amount of the non-aqueous electrolytic solution are contained.
5. An electrolytic solution for non-aqueous type batteries according to claim 1, wherein not less than 1.0% by weight and not more than 5.0% by weight of cyclohexylbenzene and not less than 0.01% by weight and less than 1.0% by weight of o-terphenyl based on the total amount of the non-aqueous electrolytic solution are contained.
6. An electrolytic solution for non-aqueous type batteries according to claim 1, wherein not less than 1.0% by weight and not more than 5.0% by weight of cyclohexylbenzene, not less than 0.01% by weight and less than 1.0% by weight of o-terphenyl and not less than 0.01% by weight and less than 1.0% by weight of biphenyl based on the total amount of the non-aqueous electrolytic solution are contained.
7. An electrolytic solution for non-aqueous type batteries according to claim 1, wherein all of o-terphenyl, triphenylene, cyclohexylbenzene and biphenyl are contained and the total amount of them is 0.4-5% by weight based on the total amount of the non-aqueous electrolytic solution.
8. An electrolytic solution for non-aqueous type batteries having a positive electrode comprising a material containing a lithium-containing metal oxide as a positive electrode active material and a negative electrode comprising a material containing graphite as a negative electrode active material, characterized in that the non-aqueous electrolytic solution contains a non-aqueous solvent mainly composed of a cyclic carbonate and a chain carbonate in which a lithium salt is dissolved as a solute, and further contains two or more organic compounds differing in oxidative polymerization potential, with a proviso that weight of the organic compound of relatively lower oxidative polymerization potential is less than that of the organic compound of relatively higher oxidative polymerization potential.
9. An electrolytic solution for non-aqueous type batteries according to claim 8, wherein two or more organic compounds selected from o-terphenyl, triphenylene, cyclohexylbenzene and biphenyl are contained as the organic compounds differing in oxidative polymerization potential.
10. An electrolytic solution for non-aqueous type batteries according to claim 8, wherein not less than 1.0% by weight and not more than 3.0% by weight of o-terphenyl and not less than 0.01% by weight and less than 1.0% by weight of triphenylene based on the total amount of the non-aqueous electrolytic solution are contained.
11. An electrolytic solution for non-aqueous type batteries according to claim 8, wherein not less than 1.0% by weight and not more than 5.0% by weight of cyclohexylbenzene and not less than 0.01% by weight and less than 1.0% by weight of biphenyl based on the total amount of the non-aqueous electrolytic solution are contained.
12. An electrolytic solution for non-aqueous type batteries according to claim 8, wherein not less than 1.0% by weight and not more than 5.0% by weight of cyclohexylbenzene and not less than 0.01% by weight and less than 1.0% by weight of o-terphenyl based on the total amount of the non-aqueous electrolytic solution are contained.
13. An electrolytic solution for non-aqueous type batteries according to claim 8, wherein not less than 1.0% by weight and not more than 5.0% by weight of cyclohexylbenzene, not less than 0.01% by weight and less than 1.0% by weight of o-terphenyl and not less than 0.01% by weight and less than 1.0% by weight of biphenyl based on the total amount of the non-aqueous electrolytic solution are contained.
14. An electrolytic solution for non-aqueous type batteries according to claim 8, wherein all of o-terphenyl, triphenylene, cyclohexylbenzene and biphenyl are contained and the total amount of them is 0.4-5% by weight based on the total amount of the non-aqueous electrolytic solution.
15. An electrolytic solution for non-aqueous type batteries according to claim 8, wherein the cyclic carbonate is at least one compound selected from ethylene carbonate (EC), propylene carbonate (PC), butylene carbonate (BC) and vinylene carbonate (VC).
16. An electrolytic solution for non-aqueous type batteries according to claim 8, wherein the chain carbonate is at least one compound selected from dimethyl carbonate (DMC), diethyl carbonate (DEC), ethylmethyl carbonate (EMC), methylpropyl carbonate (MPC) and ethylpropyl carbonate (EPC).
17. A non-aqueous type secondary battery containing a non-aqueous electrolytic solution in which an electrolyte is dissolved in a non-aqueous solvent, characterized in that two or more organic compounds differing in oxidative polymerization potential are further contained in the non-aqueous electrolytic solution, with a proviso that weight of the organic compound of relatively lower oxidative polymerization potential is less than that of the organic compound of relatively higher oxidative polymerization potential.
18. A non-aqueous type secondary battery according to claim 17, wherein two or more organic compounds selected from o-terphenyl, triphenylene, cyclohexylbenzene and biphenyl are contained as the organic compounds differing in oxidative polymerization potential.
19. A non-aqueous type secondary battery according to claim 17, wherein not less than 1.0% by weight and not more than 3.0% by weight of o-terphenyl and not less than 0.01% by weight and less than 1.0% by weight of triphenylene based on the total amount of the non-aqueous electrolytic solution are contained.
20. A non-aqueous type secondary battery according to claim 17, wherein not less than 1.0% by weight and not more than 5.0% by weight of cyclohexylbenzene and not less than 0.01% by weight and less than 1.0% by weight of biphenyl based on the total amount of the non-aqueous electrolytic solution are contained.
21. A non-aqueous type secondary battery according to claim 17, wherein not less than 1.0% by weight and not more than 5.0% by weight of cyclohexylbenzene and not less than 0.01% by weight and less than 1.0% by weight of o-terphenyl based on the total amount of the non-aqueous electrolytic solution are contained.
22. A non-aqueous type secondary battery according to claim 17, wherein all of not less than 1.0% by weight and not more than 5.0% by weight of cyclohexylbenzene, not less than 0.01% by weight and less than 1.0% by weight of o-terphenyl and not less than 0.01% by weight and less than 1.0% by weight of biphenyl based on the total amount of the non-aqueous electrolytic solution are contained.
23. A non-aqueous type secondary battery according to claim 17, wherein all of o-terphenyl, triphenylene, cyclohexylbenzene and biphenyl are contained and the total amount of them is 0.4-5% by weight based on the total amount of the non-aqueous electrolytic solution.
24. A non-aqueous type secondary battery having a positive electrode comprising a material containing a lithium-containing metal oxide as a positive electrode active material, a negative electrode comprising a material containing graphite as a negative electrode active material and a non-aqueous electrolytic solution, characterized in that the non-aqueous electrolytic solution contains a non-aqueous solvent mainly composed of a cyclic carbonate and a chain carbonate in which a lithium salt is dissolved as a solute, and further contains two or more organic compounds differing in oxidative polymerization potential, with a proviso that weight of the organic compound of relatively lower oxidative polymerization potential is less than that of the organic compound of relatively higher oxidative polymerization potential.
25. A non-aqueous type secondary battery according to claim 24, wherein two or more organic compounds selected from o-terphenyl, triphenylene, cyclohexylbenzene and biphenyl are contained as the organic compounds differing in oxidative polymerization potential.
26. A non-aqueous type secondary battery according to claim 24, wherein not less than 1.0% by weight and not more than 3.0% by weight of o-terphenyl and not less than 0.01% by weight and less than 1.0% by weight of triphenylene based on the total amount of the non-aqueous electrolytic solution are contained.
27. A non-aqueous type secondary battery according to claim 24, wherein not less than 1.0% by weight and not more than 5.0% by weight of cyclohexylbenzene and not less than 0.01% by weight and less than 1.0% by weight of biphenyl based on the total amount of the non-aqueous electrolytic solution are contained.
28. A non-aqueous type secondary battery according to claim 24, wherein not less than 1.0% by weight and not more than 5.0% by weight of cyclohexylbenzene and not less than 0.01% by weight and less than 1.0% by weight of o-terphenyl based on the total amount of the non-aqueous electrolytic solution are contained.
29. A non-aqueous type secondary battery according to claim 24, wherein all of not less than 1.0% by weight and not more than 5.0% by weight of cyclohexylbenzene, not less than 0.01% by weight and less than 1.0% by weight of o-terphenyl and not less than 0.01% by weight and less than 1.0% by weight of biphenyl based on the total amount of the non-aqueous electrolytic solution are contained.
30. A non-aqueous type secondary battery according to claim 24, wherein all of o-terphenyl, triphenylene, cyclohexylbenzene and biphenyl are contained and the total amount of them is 0.4-5% by weight based on the total amount of the non-aqueous electrolytic solution.
31. A non-aqueous type secondary battery according to claim 24, wherein the cyclic carbonate is at least one compound selected from ethylene carbonate (EC), propylene carbonate (PC), butylene carbonate (BC) and vinylene carbonate (VC).
32. A non-aqueous type secondary battery according to claim 24, wherein the chain carbonate is at least one compound selected from dimethyl carbonate (DMC), diethyl carbonate (DEC), ethylmethyl carbonate (EMC), methylpropyl carbonate (MPC) and ethylpropyl carbonate (EPC).
US10/333,617 2000-10-12 2001-08-29 Electrolytic solution for non-aqueous type battery and non-aqueous type secondary battery Abandoned US20030118912A1 (en)

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Cited By (32)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20030091892A1 (en) * 2000-12-28 2003-05-15 Shoichiro Watanabe Nonaqueous electrolytic secondary battery
US20040259002A1 (en) * 2003-04-03 2004-12-23 Jin-Hee Kim Non-aqueous electrolyte and lithium secondary battery comprising same
WO2005008829A1 (en) 2003-07-17 2005-01-27 Ube Industries, Ltd. Nonaqueous electrolytic solution for lithium secondary battery and lithium secondary battery using same
US20050019670A1 (en) * 2003-07-17 2005-01-27 Khalil Amine Long life lithium batteries with stabilized electrodes
US20050142448A1 (en) * 2003-10-31 2005-06-30 Jin-Hee Kim Electrolyte for rechargeable lithium battery and rechargeable lithium battery comprising same
US20050170258A1 (en) * 2003-12-24 2005-08-04 Sanyo Electric Co., Ltd. Nonaqueous electrolyte battery
DE102004014629A1 (en) * 2004-03-19 2005-10-06 Varta Microbattery Gmbh Galvanic element
US20060147809A1 (en) * 2004-05-28 2006-07-06 The University Of Chicago Long life lithium batteries with stabilized electrodes
US20060199080A1 (en) * 2005-03-02 2006-09-07 The University Of Chicago Novel redox shuttles for overcharge protection of lithium batteries
US20070141475A1 (en) * 2004-02-10 2007-06-21 Ahn Soon Ho Non-aqueous electrolyte and lithium secondary battery using the same
US20070178370A1 (en) * 2006-02-02 2007-08-02 The University Of Chicago Lithium-ion batteries with intrinsic pulse overcharge protection
US20080193852A1 (en) * 2006-02-03 2008-08-14 Sanyo Electric Co., Ltd. Nonaqueous Electrolyte Secondary Battery
US20080286646A1 (en) * 2005-11-24 2008-11-20 Byd Company Limited Electrolytes for Lithium Ion Batteries and Their Fabrication Methods
US20080318124A1 (en) * 2007-06-20 2008-12-25 Sony Corporation Battery
US20090068565A1 (en) * 2007-09-12 2009-03-12 Samsung Sdi Co., Ltd. Rechargeable lithium battery
US20090279231A1 (en) * 2006-10-10 2009-11-12 Panasonic Corporation Capacitor
US20090297947A1 (en) * 2008-05-30 2009-12-03 Haixia Deng Nano-sized structured layered positive electrode materials to enable high energy density and high rate capability lithium batteries
US20100190054A1 (en) * 2009-01-29 2010-07-29 Sony Corporation Battery
US20100226068A1 (en) * 2006-03-23 2010-09-09 Toshiyuki Kitagawa Electric double layer capacitor and method for manufacturing same
US20100293564A1 (en) * 2003-09-04 2010-11-18 Kenneth Gould Method to block unauthorized network traffic in a cable data network
US20100310944A1 (en) * 2006-10-16 2010-12-09 Lg Chem, Ltd. Electrolyte of high temperature property and overcharge-prevention property and secondary battery employed with the same
US7968231B2 (en) 2005-12-23 2011-06-28 U Chicago Argonne, Llc Electrode materials and lithium battery systems
US8062792B2 (en) 2005-04-26 2011-11-22 Uchicago Argonne Llc Processes for making dense, spherical active materials for lithium-ion cells
US20130258553A1 (en) * 2012-03-28 2013-10-03 Panasonic Corporation Capacitor and capacitor module using the same
CN103730686A (en) * 2012-10-16 2014-04-16 丰田自动车株式会社 Non-aqueous electrolyte secondary battery
US20140120388A1 (en) * 2012-10-30 2014-05-01 Toyota Jidosha Kabushiki Kaisha Non-aqueous electrolyte secondary battery
CN104134779A (en) * 2014-03-27 2014-11-05 合肥国轩高科动力能源股份公司 High voltage lithium ion battery positive pole piece and preparation method thereof
CN105051961A (en) * 2013-03-26 2015-11-11 日产自动车株式会社 Non-aqueous electrolyte secondary battery
US10153516B2 (en) 2014-03-28 2018-12-11 Gotion Inc. Overcharge protection electrolyte additive for lithium ion batteries
US10236537B2 (en) 2014-04-21 2019-03-19 Toyota Jidosha Kabushiki Kaisha Non-aqueous electrolyte secondary battery
US10347950B2 (en) 2012-02-23 2019-07-09 Toyota Jidosha Kabushiki Kaisha Sealed nonaqueous electrolyte secondary battery
CN111727525A (en) * 2018-05-30 2020-09-29 松下知识产权经营株式会社 Lithium secondary battery

Families Citing this family (30)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
KR100751466B1 (en) * 2000-12-04 2007-08-23 신닛테츠가가쿠 가부시키가이샤 Nonaqueous electrolyte and secondary cell using the same
JP4995376B2 (en) * 2001-04-11 2012-08-08 三洋電機株式会社 Non-aqueous electrolyte secondary battery
CN1204649C (en) 2001-07-27 2005-06-01 三菱化学株式会社 Non aqueous electrolytic solution and non aqueous electrolytic solution secondary cell using the same
JP4974316B2 (en) * 2001-08-06 2012-07-11 日立マクセルエナジー株式会社 Non-aqueous secondary battery
JP4492023B2 (en) * 2002-05-17 2010-06-30 三菱化学株式会社 Non-aqueous electrolyte secondary battery
JP4056302B2 (en) * 2002-06-21 2008-03-05 三洋電機株式会社 Nonaqueous electrolyte secondary battery
KR100560211B1 (en) * 2002-10-29 2006-03-10 에스케이씨 주식회사 Electrolyte composition having high safety when overcharged
KR100527827B1 (en) 2003-03-13 2005-11-09 삼성에스디아이 주식회사 A non-aqueous electrolyte and a lithium secondary battery comprising the same
KR100709206B1 (en) * 2003-10-31 2007-04-19 삼성에스디아이 주식회사 Electrolyte for rechargeable lithium battery and rechargeable lithium battery comprising same
JP5213003B2 (en) * 2005-03-18 2013-06-19 日立マクセル株式会社 Nonaqueous electrolyte secondary battery
CN100449852C (en) 2005-10-18 2009-01-07 比亚迪股份有限公司 A mixed additive agent and electrolyte of lithium ion secondary battery synthesized with this mixed additive agent
TWI338396B (en) * 2006-01-17 2011-03-01 Lg Chemical Ltd Additives for non-aqueous electrolyte and lithium secondary battery using the same
US8758945B2 (en) * 2007-03-06 2014-06-24 Air Products And Chemicals, Inc. Overcharge protection by coupling redox shuttle chemistry with radical polymerization additives
KR101340030B1 (en) * 2007-03-22 2013-12-10 삼성에스디아이 주식회사 Electrolyte for lithium rechargeable battery and Lithium rechargeable battery using the same
KR101349941B1 (en) * 2007-11-23 2014-01-15 삼성에스디아이 주식회사 Electrolyte For Lithium Secondary Battery and Lithium Secondary Battery Including The Same
US9093702B2 (en) * 2009-09-03 2015-07-28 Samsung Sdi Co., Ltd. Electrolytic solution for lithium battery, lithium battery employing the same and method for operating the lithium battery
KR101628430B1 (en) * 2009-09-25 2016-06-08 제온 코포레이션 Anode for use in a lithium-ion secondary battery, and lithium-ion secondary battery
JP5403710B2 (en) * 2009-10-28 2014-01-29 Necエナジーデバイス株式会社 Non-aqueous electrolyte and device having the same
US8772412B2 (en) 2010-12-29 2014-07-08 Industrial Technology Research Institute Meta-stable state nitrogen-containing polymer
US9136559B2 (en) 2010-12-29 2015-09-15 Industrial Technology Research Institute Non-aqueous electrolyte and lithium secondary battery including the same
KR20120126305A (en) * 2011-05-11 2012-11-21 삼성코닝정밀소재 주식회사 Additive for overcharge prevention of a secondary battery and nonaqueous electrolyte for a secondary battery including the same
CN102280662B (en) * 2011-07-04 2016-03-30 东莞新能源科技有限公司 A kind of battery with nonaqueous electrolyte
JP6152640B2 (en) * 2012-12-18 2017-06-28 株式会社Gsユアサ Rubber valve body for sealed battery, safety valve device and alkaline storage battery
JP6102562B2 (en) * 2013-06-21 2017-03-29 株式会社豊田自動織機 Lithium ion secondary battery
KR102487263B1 (en) 2014-04-17 2023-01-10 고션 인코포레이티드 Alkylbenzoate derivatives as electrolyte additive for lithium based batteries
EP3170221B1 (en) 2014-07-18 2019-03-27 Gotion, Inc. Liquid formulations, processes for their manufacture, and use of such liquid formulations
CN109417199B (en) 2016-07-01 2022-02-11 中央硝子株式会社 Nonaqueous electrolyte solution and nonaqueous electrolyte secondary battery
JP6860783B2 (en) 2016-07-01 2021-04-21 セントラル硝子株式会社 Non-aqueous electrolyte and non-aqueous electrolyte secondary battery
CN108615955B (en) * 2018-05-07 2020-08-28 深圳市壹绿通环保资源有限公司 Formation method of lithium iron phosphate battery
JP7216057B2 (en) * 2020-09-18 2023-01-31 プライムプラネットエナジー&ソリューションズ株式会社 Non-aqueous electrolyte for lithium-ion secondary battery and lithium-ion secondary battery

Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4489145A (en) * 1983-10-18 1984-12-18 Abraham Kuzhikalail M Lithium battery
US4888255A (en) * 1987-06-24 1989-12-19 Hitachi Maxell, Ltd. Non-aqueous electrochemical cell
US4943497A (en) * 1988-10-21 1990-07-24 Sony Corporation Cell having current cutoff valve
US5451477A (en) * 1993-06-03 1995-09-19 Sony Corporation Non-aqueous liquid electrolyte secondary battery
US5879834A (en) * 1995-08-23 1999-03-09 Nec Moli Energy (Canada) Ltd. Polymerizable aromatic additives for overcharge protection in non-aqueous rechargeable lithium batteries
US6074776A (en) * 1997-05-16 2000-06-13 E-One Moli Energy (Canada) Limited Polymerizable additives for making non-aqueous rechargeable lithium batteries safe after overcharge
US20020192565A1 (en) * 2001-01-29 2002-12-19 Matsushita Electric Industrial Co., Ltd. Non-aqueous electrolyte secondary battery

Family Cites Families (21)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE3884572T2 (en) 1987-11-30 1994-02-03 Eic Lab Inc Overcharge protection for non-aqueous secondary batteries.
JP3259436B2 (en) 1993-05-31 2002-02-25 ソニー株式会社 Non-aqueous electrolyte secondary battery
JP3809657B2 (en) * 1994-03-07 2006-08-16 ソニー株式会社 Non-aqueous electrolyte secondary battery
JP3536534B2 (en) * 1995-05-23 2004-06-14 株式会社デンソー Non-aqueous electrolyte secondary battery
JP3669024B2 (en) 1995-05-26 2005-07-06 ソニー株式会社 Non-aqueous electrolyte secondary battery
CA2163187C (en) * 1995-11-17 2003-04-15 Huanyu Mao Aromatic monomer gassing agents for protecting non-aqueous lithium batteries against overcharge
JPH09330739A (en) * 1996-04-09 1997-12-22 Fuji Photo Film Co Ltd Nonaqueous electrolyte secondary battery
JP3669064B2 (en) 1996-08-01 2005-07-06 ソニー株式会社 Nonaqueous electrolyte secondary battery
JP3417228B2 (en) * 1996-08-30 2003-06-16 宇部興産株式会社 Non-aqueous electrolyte and lithium secondary battery
JP3275998B2 (en) * 1997-03-28 2002-04-22 日立マクセル株式会社 Organic electrolyte secondary battery
JP3575735B2 (en) 1997-05-16 2004-10-13 Necトーキン栃木株式会社 Non-aqueous rechargeable lithium battery
CA2216898C (en) * 1997-09-26 2005-03-22 Moli Energy (1990) Limited Improved additives for overcharge protection in non-aqueous rechargeable lithium batteries
JPH11184931A (en) 1997-12-24 1999-07-09 Toshiba Tec Corp Order data processing device
JP2939469B1 (en) * 1998-07-31 1999-08-25 三洋電機株式会社 Electrolyte for non-aqueous battery and secondary battery using this electrolyte
JP2983205B1 (en) 1998-07-31 1999-11-29 三洋電機株式会社 Non-aqueous secondary battery
JP4411691B2 (en) 1999-06-30 2010-02-10 パナソニック株式会社 Non-aqueous electrolyte secondary battery, non-aqueous electrolyte secondary battery charge control system, and equipment using the same
JP2001023690A (en) * 1999-07-08 2001-01-26 Tomiyama Pure Chemical Industries Ltd Nonaqueous electrolyte for secondary battery
JP3380501B2 (en) 1999-10-26 2003-02-24 ジ−エス・メルコテック株式会社 Non-aqueous electrolyte secondary battery
JP2001210364A (en) * 2000-01-26 2001-08-03 Mitsubishi Chemicals Corp Nonaqueous electrolytic solution and secondary battery using it
JP2002083629A (en) * 2000-07-04 2002-03-22 Mitsui Chemicals Inc Nonaqueous electrolytic solution and secondary battery using the same
AU2001292346A1 (en) * 2000-10-03 2002-04-15 Ube Industries Ltd. Lithium secondary cell and nonaqueous electrolyte

Patent Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4489145A (en) * 1983-10-18 1984-12-18 Abraham Kuzhikalail M Lithium battery
US4888255A (en) * 1987-06-24 1989-12-19 Hitachi Maxell, Ltd. Non-aqueous electrochemical cell
US4943497A (en) * 1988-10-21 1990-07-24 Sony Corporation Cell having current cutoff valve
US5451477A (en) * 1993-06-03 1995-09-19 Sony Corporation Non-aqueous liquid electrolyte secondary battery
US5879834A (en) * 1995-08-23 1999-03-09 Nec Moli Energy (Canada) Ltd. Polymerizable aromatic additives for overcharge protection in non-aqueous rechargeable lithium batteries
US6074776A (en) * 1997-05-16 2000-06-13 E-One Moli Energy (Canada) Limited Polymerizable additives for making non-aqueous rechargeable lithium batteries safe after overcharge
US20020192565A1 (en) * 2001-01-29 2002-12-19 Matsushita Electric Industrial Co., Ltd. Non-aqueous electrolyte secondary battery

Cited By (63)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7201994B2 (en) * 2000-12-28 2007-04-10 Matsushita Electric Industrial Co., Ltd. Non-aqueous electrolyte secondary battery
US20030091892A1 (en) * 2000-12-28 2003-05-15 Shoichiro Watanabe Nonaqueous electrolytic secondary battery
US20040259002A1 (en) * 2003-04-03 2004-12-23 Jin-Hee Kim Non-aqueous electrolyte and lithium secondary battery comprising same
US7968234B2 (en) 2003-04-03 2011-06-28 Samsung Sdi Co., Ltd. Non-aqueous electrolyte and lithium secondary battery comprising same
US20100227219A1 (en) * 2003-04-03 2010-09-09 Jin-Hee Kim Non-aqueous electrolyte and lithium secondary battery comprising same
US7745054B2 (en) 2003-04-03 2010-06-29 Samsung Sdi Co., Ltd. Non-aqueous electrolyte and lithium secondary battery comprising same
EP1650826A1 (en) * 2003-07-17 2006-04-26 Ube Industries, Ltd. Nonaqueous electrolytic solution for lithium secondary battery and lithium secondary battery using same
US8551661B2 (en) 2003-07-17 2013-10-08 Uchicago Argonne, Llc Long life lithium batteries with stabilized electrodes
WO2005008829A1 (en) 2003-07-17 2005-01-27 Ube Industries, Ltd. Nonaqueous electrolytic solution for lithium secondary battery and lithium secondary battery using same
US20060177742A1 (en) * 2003-07-17 2006-08-10 Koji Abe Nonaqueous electrolytic solution for lithium secondary battery and lithium secondary battery using the same
EP2369670A1 (en) * 2003-07-17 2011-09-28 Ube Industries, Ltd. Non-aqueous electrolytic solution for lithium secondary battery and lithium secondary battery using the same
US20050019670A1 (en) * 2003-07-17 2005-01-27 Khalil Amine Long life lithium batteries with stabilized electrodes
US8163427B2 (en) 2003-07-17 2012-04-24 Ube Industries, Ltd. Nonaqueous electrolytic solution for lithium secondary battery and lithium secondary battery using the same
US8722255B2 (en) 2003-07-17 2014-05-13 Ube Industries, Ltd. Non-aqueous electrolytic solution for lithium secondary battery and lithium secondary battery using the same
US7968235B2 (en) 2003-07-17 2011-06-28 Uchicago Argonne Llc Long life lithium batteries with stabilized electrodes
EP1650826A4 (en) * 2003-07-17 2008-12-03 Ube Industries Nonaqueous electrolytic solution for lithium secondary battery and lithium secondary battery using same
TWI413289B (en) * 2003-07-17 2013-10-21 Ube Industries Lithium battery for nonaqueous electrolytic solution and the use of its lithium battery
US20100293564A1 (en) * 2003-09-04 2010-11-18 Kenneth Gould Method to block unauthorized network traffic in a cable data network
US8530098B2 (en) 2003-10-31 2013-09-10 Samsung Sdi Co., Ltd. Electrolyte for rechargeable lithium battery and rechargeable lithium battery comprising same
US20050142448A1 (en) * 2003-10-31 2005-06-30 Jin-Hee Kim Electrolyte for rechargeable lithium battery and rechargeable lithium battery comprising same
US7745055B2 (en) 2003-10-31 2010-06-29 Samsung Sdi Co., Ltd. Electrolyte for rechargeable lithium battery and rechargeable lithium battery comprising same
US20100227227A1 (en) * 2003-10-31 2010-09-09 Kim Jin-Hee Electrolyte for rechargeable lithium battery and rechargeable lithium battery comprising same
US20050170258A1 (en) * 2003-12-24 2005-08-04 Sanyo Electric Co., Ltd. Nonaqueous electrolyte battery
US8142936B2 (en) * 2004-02-10 2012-03-27 Lg Chem, Ltd. Non-aqueous electrolyte and lithium secondary battery using the same
US20070141475A1 (en) * 2004-02-10 2007-06-21 Ahn Soon Ho Non-aqueous electrolyte and lithium secondary battery using the same
DE102004014629A1 (en) * 2004-03-19 2005-10-06 Varta Microbattery Gmbh Galvanic element
US9012096B2 (en) 2004-05-28 2015-04-21 Uchicago Argonne, Llc Long life lithium batteries with stabilized electrodes
US20060147809A1 (en) * 2004-05-28 2006-07-06 The University Of Chicago Long life lithium batteries with stabilized electrodes
US20060199080A1 (en) * 2005-03-02 2006-09-07 The University Of Chicago Novel redox shuttles for overcharge protection of lithium batteries
US7851092B2 (en) 2005-03-02 2010-12-14 U Chicago Argonne Llc Redox shuttles for overcharge protection of lithium batteries
US8062792B2 (en) 2005-04-26 2011-11-22 Uchicago Argonne Llc Processes for making dense, spherical active materials for lithium-ion cells
US20080286646A1 (en) * 2005-11-24 2008-11-20 Byd Company Limited Electrolytes for Lithium Ion Batteries and Their Fabrication Methods
US7968231B2 (en) 2005-12-23 2011-06-28 U Chicago Argonne, Llc Electrode materials and lithium battery systems
US8367253B2 (en) 2006-02-02 2013-02-05 U Chicago Argonne Llc Lithium-ion batteries with intrinsic pulse overcharge protection
US20070178370A1 (en) * 2006-02-02 2007-08-02 The University Of Chicago Lithium-ion batteries with intrinsic pulse overcharge protection
US20080193852A1 (en) * 2006-02-03 2008-08-14 Sanyo Electric Co., Ltd. Nonaqueous Electrolyte Secondary Battery
US20100226068A1 (en) * 2006-03-23 2010-09-09 Toshiyuki Kitagawa Electric double layer capacitor and method for manufacturing same
US8310809B2 (en) * 2006-03-23 2012-11-13 Panasonic Corporation Electric double layer capacitor and method for manufacturing same
US8045320B2 (en) * 2006-10-10 2011-10-25 Panasonic Corporation Capacitor having collectors with separate regions between innermost and outermost circumferences of a wound element
US20090279231A1 (en) * 2006-10-10 2009-11-12 Panasonic Corporation Capacitor
US8632919B2 (en) 2006-10-16 2014-01-21 Lg Chem, Ltd. Electrolyte of high temperature property and overcharge-prevention property and secondary battery employed with the same
US20100310944A1 (en) * 2006-10-16 2010-12-09 Lg Chem, Ltd. Electrolyte of high temperature property and overcharge-prevention property and secondary battery employed with the same
US20080318124A1 (en) * 2007-06-20 2008-12-25 Sony Corporation Battery
US8828604B2 (en) 2007-06-20 2014-09-09 Sony Corporation Battery
US8557447B2 (en) * 2007-09-12 2013-10-15 Samsung Sdi Co., Ltd. Rechargeable lithium battery including a novel electrolyte composition
US20090068565A1 (en) * 2007-09-12 2009-03-12 Samsung Sdi Co., Ltd. Rechargeable lithium battery
US20090297947A1 (en) * 2008-05-30 2009-12-03 Haixia Deng Nano-sized structured layered positive electrode materials to enable high energy density and high rate capability lithium batteries
US8277683B2 (en) 2008-05-30 2012-10-02 Uchicago Argonne, Llc Nano-sized structured layered positive electrode materials to enable high energy density and high rate capability lithium batteries
US9209480B2 (en) 2009-01-29 2015-12-08 Sony Corporation Secondary battery containing a nonaqueous electrolyte with a sulfonic anhydride and an aromatic compound
US20100190054A1 (en) * 2009-01-29 2010-07-29 Sony Corporation Battery
US10347950B2 (en) 2012-02-23 2019-07-09 Toyota Jidosha Kabushiki Kaisha Sealed nonaqueous electrolyte secondary battery
US20130258553A1 (en) * 2012-03-28 2013-10-03 Panasonic Corporation Capacitor and capacitor module using the same
US9030805B2 (en) * 2012-03-28 2015-05-12 Panasonic Intellectual Property Management Co., Ltd. Capacitor and capacitor module using the same
CN103730686A (en) * 2012-10-16 2014-04-16 丰田自动车株式会社 Non-aqueous electrolyte secondary battery
US20140120388A1 (en) * 2012-10-30 2014-05-01 Toyota Jidosha Kabushiki Kaisha Non-aqueous electrolyte secondary battery
US20160056470A1 (en) * 2013-03-26 2016-02-25 Nissan Motor Co., Ltd. Non-aqueous electrolyte secondary battery
CN105051961A (en) * 2013-03-26 2015-11-11 日产自动车株式会社 Non-aqueous electrolyte secondary battery
US9620782B2 (en) * 2013-03-26 2017-04-11 Nissan Motor Co., Ltd. Non-aqueous electrolyte secondary battery
KR101758002B1 (en) * 2013-03-26 2017-07-13 닛산 지도우샤 가부시키가이샤 Non-aqueous electrolyte secondary battery
CN104134779A (en) * 2014-03-27 2014-11-05 合肥国轩高科动力能源股份公司 High voltage lithium ion battery positive pole piece and preparation method thereof
US10153516B2 (en) 2014-03-28 2018-12-11 Gotion Inc. Overcharge protection electrolyte additive for lithium ion batteries
US10236537B2 (en) 2014-04-21 2019-03-19 Toyota Jidosha Kabushiki Kaisha Non-aqueous electrolyte secondary battery
CN111727525A (en) * 2018-05-30 2020-09-29 松下知识产权经营株式会社 Lithium secondary battery

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US7824809B2 (en) 2010-11-02
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