WO2023164914A1 - Electrochemical device and electronic device - Google Patents

Electrochemical device and electronic device Download PDF

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Publication number
WO2023164914A1
WO2023164914A1 PCT/CN2022/079189 CN2022079189W WO2023164914A1 WO 2023164914 A1 WO2023164914 A1 WO 2023164914A1 CN 2022079189 W CN2022079189 W CN 2022079189W WO 2023164914 A1 WO2023164914 A1 WO 2023164914A1
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electrode assembly
negative
electrode
material layer
active material
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PCT/CN2022/079189
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French (fr)
Chinese (zh)
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郝慧
刘道林
何平
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宁德新能源科技有限公司
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Application filed by 宁德新能源科技有限公司 filed Critical 宁德新能源科技有限公司
Priority to PCT/CN2022/079189 priority Critical patent/WO2023164914A1/en
Priority to CN202280010319.5A priority patent/CN116830341A/en
Publication of WO2023164914A1 publication Critical patent/WO2023164914A1/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
    • H01M10/058Construction or manufacture
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01MPROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
    • H01M50/00Constructional details or processes of manufacture of the non-active parts of electrochemical cells other than fuel cells, e.g. hybrid cells
    • H01M50/40Separators; Membranes; Diaphragms; Spacing elements inside cells
    • H01M50/471Spacing elements inside cells other than separators, membranes or diaphragms; Manufacturing processes thereof
    • 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

Definitions

  • the present application relates to the field of energy storage, in particular to an electrochemical device and an electronic device.
  • the method of connecting multiple lithium-ion batteries in series is generally used to increase the output voltage, but there are many problems in series connection of multiple lithium-ion batteries, such as: the wires and contact resistances used in series introduce additional electronic resistance, resulting in waste of heat and affecting battery life. ; The higher the voltage, the more lithium-ion batteries are needed, which increases the difficulty of battery management.
  • the concept of high output voltage battery was proposed, which uses the internal series connection of electrode assemblies to achieve high voltage output of a single battery, reduces the total heat production of the battery, and reduces the temperature rise during use.
  • the carbon material used as the material of the substrate layer includes at least one of carbon felt, carbon film, carbon black, acetylene black, fullerene, conductive graphite film or graphene film.
  • the present application provides an electrochemical device, which includes a casing and a first electrode assembly and a second electrode assembly disposed in the casing, the first electrode assembly and the second electrode assembly are connected in series, and satisfy the following relationship:
  • the inventors of the present application have found through research that: the capacity difference between individual electrode assemblies has an important impact on the cycle performance of the internal series high output voltage battery, by making the capacity C1 of the first electrode assembly and the capacity C2 of the second electrode assembly satisfy According to the above relationship, during the series charge and discharge process, the potential levels between the first electrode assembly and the second electrode assembly can tend to be consistent, reducing the risk of overcharging and/or overdischarging of one of the electrode assemblies, thereby inhibiting the Premature degradation of a certain electrode assembly can not only improve the cycle performance of the internal series high output voltage battery, but also reduce the expansion rate of the internal series high output voltage battery.
  • the area of the second positive electrode active material layer is Sc2, and the area of the second negative electrode active material layer is Sa2, get the second positive electrode sheet that test area is Stc2, take lithium metal as counter electrode and assemble into button type half cell, test area is
  • the first electrode assembly and the second electrode assembly form a solid electrolyte interface film in the formation stage, and the lithium content consumed in the positive electrode piece matches, which can reduce the subsequent series charging.
  • the risk of excessively high potential of the positive pole piece in a certain electrode assembly inhibits the destruction of the positive active material in the positive pole piece and the solid electrolyte interfacial film structure, thereby improving the cycle performance of the internal series high output voltage battery.
  • W1 represents the coating weight of the first negative electrode active material layer, the unit is mg/1540.25mm 2 ;
  • W2 represents the coating weight of the second negative electrode active material layer, the unit is mg/1540.25mm 2 , CB1 and CB2 are as above definition.
  • W1 represents the coating weight of the first negative electrode active material layer, the unit is mg/1540.25mm 2 ;
  • W2 represents the coating weight of the second negative electrode active material layer, the unit is mg/1540.25mm 2 ;
  • CB1 and CB2 are as above definition.
  • the value range is 0.01% to 8%, specifically, it can be 8%, 7%, 6%, 5%, 4%, 3%, 2%, 1%, 0.5% or 0.25%.
  • the electrochemical device satisfies at least one of the following conditions (iii) and (iv): (iii) the value range of W1 is 100mg/1540.25mm 2 to 200mg/1540.25mm 2 ; (iv) The value range of W2 is 100mg/1540.25mm 2 to 200mg/1540.25mm 2 .
  • the first negative pole piece and the second negative pole piece are not particularly limited, as long as the purpose of the present application can be achieved.
  • the first negative electrode sheet and the second negative electrode sheet generally include a negative electrode current collector and a negative electrode active material.
  • the negative electrode current collector is not particularly limited, and any negative electrode current collector known in the art can be used, such as copper foil, aluminum foil, aluminum alloy foil, and composite current collectors.
  • the negative active material is not particularly limited, and any negative active material known in the art can be used. For example, at least one of graphite, mesocarbon microspheres, silicon, silicon carbon, silicon oxide, soft carbon, hard carbon, lithium titanate, or niobium titanate may be included.
  • a separator may include a substrate layer and a surface treatment layer.
  • the substrate layer can be a non-woven fabric, a film or a composite film with a porous structure, and the material of the substrate layer can include at least one of polyethylene, polypropylene, polyethylene terephthalate and polyimide .
  • a polypropylene porous film, a polyethylene porous film, a polypropylene non-woven fabric, a polyethylene non-woven fabric, or a polypropylene-polyethylene-polypropylene porous composite film may be used.
  • at least one surface of the substrate layer is provided with a surface treatment layer, and the surface treatment layer may be a polymer layer or an inorganic layer, or a layer formed by mixing a polymer and an inorganic material.
  • the electrochemical device further includes an electrolytic solution.
  • the electrolytic solution mentioned in this application may contain a lithium salt and a non-aqueous solvent.
  • the lithium salt is not particularly limited, and any lithium salt known in the art can be used as long as the purpose of the present application can be achieved.
  • lithium salts may include LiPF 6 , LiBF 4 , LiAsF 6 , LiClO 4 , LiB(C 6 H 5 ) 4 , LiCH 3 SO 3 , LiCF 3 SO 3 , LiN(SO 2 CF 3 ) 2 , LiC(SO 2 At least one of CF 3 ) 3 or LiPO 2 F 2 .
  • LiPF 6 may be selected as the lithium salt.
  • the non-aqueous solvent is not particularly limited, as long as the purpose of the present application can be achieved.
  • the nonaqueous solvent may include at least one of carbonate compounds, carboxylate compounds, ether compounds, nitrile compounds, and other organic solvents.
  • the carbonate compound may include diethyl carbonate (DEC), dimethyl carbonate (DMC), dipropyl carbonate (DPC), methylpropyl carbonate (MPC), ethylpropyl carbonate (EPC), methyl ethyl carbonate Carbonate (MEC), Ethylene Carbonate (EC), Propylene Carbonate (PC), Butylene Carbonate (BC), Vinyl Ethylene Carbonate (VEC), Fluoroethylene Carbonate (FEC), Carbonic Acid 1 ,2-Difluoroethylene carbonate, 1,1-difluoroethylene carbonate, 1,1,2-trifluoroethylene carbonate, 1,1,2,2-tetrafluoroethylene carbonate, 1 -Fluoro-2-methylethylene carbonate, 1-fluoro-1-methylethylene carbonate, 1,2-difluoro-1-methylethylene carbonate, 1,1,2-trifluoro- At least one of 2-methylethylene carbonate and trifluoromethylethylene carbonate.
  • DEC diethyl carbonate
  • DMC
  • the present application has no special limitation on the casing, as long as the purpose of the present application can be achieved.
  • the casing includes at least one of an aluminum-plastic film, an aluminum shell, a steel shell, and a plastic shell.
  • the housing can include an inner layer and an outer layer, and the inner layer is sealed and connected with the separator, so the material of the inner layer can include a polymer material to achieve a good sealing effect; at the same time, the combination of the inner layer and the outer layer can effectively protect Internal structure of an electrochemical device.
  • the thickness of the casing there is no special limitation on the thickness of the casing, as long as the purpose of this application can be achieved.
  • the casing has a thickness of 60 ⁇ m to 500 ⁇ m, preferably 60 ⁇ m to 300 ⁇ m, more preferably 60 ⁇ m to 200 ⁇ m, and the above thickness of the casing can effectively protect the internal structure of the electrochemical device.
  • the present application has no special limitation on the sealing connection method between the spacer and the housing, as long as the purpose of the present application can be achieved.
  • the sealing method includes one of hot pressing, glue sealing and welding.
  • the hot-pressing conditions are not particularly limited, as long as the purpose of this application can be achieved, for example, for the polypropylene inner layer material, the hot-pressing temperature is 150°C to 220°C, and the hot-pressing pressure is 0.1Mpa to 0.6 MPa.
  • the structure of the electrode assembly is a wound structure, and the electrode assembly includes a single tab or multiple tabs.
  • the electrode assembly includes a monopole lug, and a positive pole lug and a negative pole lug are led out from the positive pole piece and the negative pole piece respectively.
  • the electrode assembly includes multiple tabs, one positive tab and one negative tab can be drawn from each circle of positive pole pieces and negative pole pieces, or two or more circles of positive pole pieces and negative pole pieces can be drawn out.
  • One positive pole tab and one negative pole tab are led out respectively, and finally an electrode assembly with a winding structure includes multiple sets of positive pole tabs and negative pole tabs, and then the tab leads are transferred through transfer welding.
  • the structure of the electrode assembly is a stacked sheet structure, and the electrode assembly includes multiple tabs, which may be a positive tab and a negative tab respectively drawn from each layer of positive pole pieces and negative pole pieces. Ears, the final electrode assembly of a laminated structure includes multiple sets of positive and negative pole tabs, and then the tab leads are transferred through transfer welding.
  • the electrochemical device provided in the present application may contain two electrode assemblies, or may contain three or more electrode assemblies.
  • the preparation method of the electrochemical device containing two electrode assemblies or three or more electrode assemblies can refer to the preparation method of the above electrochemical device. Electrochemical devices comprising three or more electrode assemblies are also within the scope of protection defined by the claims of the present application.
  • the present application also provides an electronic device, which includes the electrochemical device provided in the present application.
  • the electronic device in this application is not particularly limited, and it may be any electronic device known in the prior art. Examples of electronic devices include, but are not limited to, notebook computers, pen-based computers, mobile computers, e-book players, cellular phones, portable fax machines, portable copiers, portable printers, headsets, VCRs, LCD televisions, portable Cleaners, portable CD players, mini discs, transceivers, electronic organizers, calculators, memory cards, portable recorders, radios, backup power supplies, electric motors, automobiles, motorcycles, power-assisted bicycles, bicycles, lighting appliances, toys, game consoles , clocks, electric tools, flashlights, cameras, large household batteries and lithium-ion capacitors, etc.
  • the coating weight m1-m2;
  • Thickness expansion rate (h2-h1)/h1 ⁇ 100%.
  • Preparation of the negative pole piece mix the negative active material artificial graphite, conductive carbon black (Super P), and styrene-butadiene rubber (SBR) in a weight ratio of 96:1.5:2.5, add deionized water as a solvent, and prepare A slurry with a solid content of 70wt%, and stirred evenly.
  • the slurry was uniformly coated on one surface of a negative electrode current collector copper foil with a thickness of 10 ⁇ m, and dried at 110° C. to obtain a negative electrode sheet with a coating thickness of 150 ⁇ m coated on one side with a negative electrode active material layer.
  • the above steps are repeated on the other surface of the negative electrode sheet to obtain a negative electrode sheet coated with negative electrode active material layers on both sides. Then, the negative electrode sheet was cut into a size of 41 mm ⁇ 61 mm for use.
  • the positive active material lithium cobaltate (LiCoO 2 ), conductive carbon black (Super P), and polyvinylidene fluoride (PVDF) were mixed according to the weight ratio of 97.5:1.0:1.5, and N - Using methylpyrrolidone (NMP) as a solvent, prepare a slurry with a solid content of 75 wt%, and stir evenly. The slurry was uniformly coated on one surface of a positive electrode current collector aluminum foil with a thickness of 12 ⁇ m, and dried at 90° C. to obtain a positive electrode sheet with a positive electrode active material layer thickness of 100 ⁇ m. On the other surface of the positive electrode current collector aluminum foil, the above steps were repeated to obtain a positive electrode sheet coated with a positive electrode active material layer on both sides. Then, cut the positive electrode sheet into a size of 38mm ⁇ 58mm for use.
  • NMP methylpyrrolidone
  • each electrode assembly includes a positive electrode tab and a negative electrode tab, and a polyethylene (PE) film with a thickness of 15 ⁇ m is selected as the separator.
  • PE polyethylene
  • Assembly of electrode assembly A Place the aluminum-plastic film 1 formed by punching the pit in the assembly jig with the pit face up, place the electrode assembly A in the pit with the diaphragm face up, and then place the separator on the electrode On component A, make the edges aligned, and apply external force to press to obtain the assembled semi-finished product.
  • Liquid injection encapsulation separately inject electrolyte solution into the two cavities of the assembled electrode assembly, and lead all the tabs of the electrode assembly A and B out of the aluminum plastic film.
  • Embodiment 2-23 and comparative example 1 are identical to Embodiment 2-23 and comparative example 1
  • W1 represents the coating weight of the negative electrode active material layer in the electrode assembly A, and the unit is mg/1540.25mm 2 ;
  • CB1 represents the CB value of electrode assembly A
  • C2 represents the capacity of electrode assembly B
  • the capacity retention rate can reach more than 80%. This is because, through CB1 and CB2 satisfying the above relationship, the first electrode assembly and the second electrode assembly form the solid electrolyte interfacial film in the formation stage, the lithium content consumed in the positive electrode sheet matches, and the lithium content in the positive electrode sheet can be reduced. In the subsequent series charge and discharge process, the risk of the positive electrode sheet potential in a certain electrode assembly being too high can inhibit the destruction of the positive electrode active material in the positive electrode sheet and the solid electrolyte interface film structure, thereby improving the internal series connection of high output voltage batteries. cycle performance.
  • the capacity retention rate can be further improved to more than 85%, and the battery expansion rate can be further reduced to less than 8%; at this time, the reversible capacity corresponding to the same area of the negative electrode active material layer in the first electrode assembly and the second electrode assembly can be Matching can make the adaptability of each electrode assembly to the charge and discharge rate relatively consistent, thereby further improving the cycle performance and safety performance of the internal series high output voltage battery.

Abstract

An electrochemical device, comprising a casing and a first electrode assembly and a second electrode assembly that are disposed in the casing. The first electrode assembly and the second electrode assembly are in series connection, and satisfy the following relationship: formula (I), wherein C1 represents the capacity of the first electrode assembly, and C2 represents the capacity of the second electrode assembly. An electronic device, comprising an electrochemical device.

Description

电化学装置及电子装置Electrochemical devices and electronic devices 技术领域technical field
本申请涉及储能领域,具体涉及一种电化学装置及电子装置。The present application relates to the field of energy storage, in particular to an electrochemical device and an electronic device.
背景技术Background technique
在现有锂离子电池体系中,由于正极材料和负极材料的电压差有限,电解液抗氧化还原能力有限等,电池的开路电压很难超过5V。但在电池实际使用中,需要用到超过5V电压的场景很多,如电动交通工具、电动工具、储能系统等。即使在手机市场中,为了满足快充等需求,也需要提升电池的开路电压。当前,一般采用多个锂离子电池串联的方法来提高输出电压,但多个锂离子电池串联存在诸多问题,如:串联用导线和接触电阻引入额外的电子电阻,导致发热浪费能量并影响电池寿命;电压越高需要锂离子电池数量越多,提高了电池管理的难度等。为了解决上述问题,高输出电压电池的概念被提出,其利用电极组件内部串联的方式实现单个电池的高电压输出,减小电池总产热,降低了使用过程中的升温幅度。然而,高输出电压电池由于串联方式的固有缺陷,其中一个电极组件的过早劣化将会导致高输出电压电池整体的循环性能急剧下降,因此,高输出电压电池的循环性能有待进一步改善。In the existing lithium-ion battery system, due to the limited voltage difference between the positive electrode material and the negative electrode material, and the limited anti-oxidation and reduction ability of the electrolyte, it is difficult for the open circuit voltage of the battery to exceed 5V. However, in the actual use of the battery, there are many scenarios that require a voltage exceeding 5V, such as electric vehicles, electric tools, and energy storage systems. Even in the mobile phone market, in order to meet the needs of fast charging, it is necessary to increase the open circuit voltage of the battery. At present, the method of connecting multiple lithium-ion batteries in series is generally used to increase the output voltage, but there are many problems in series connection of multiple lithium-ion batteries, such as: the wires and contact resistances used in series introduce additional electronic resistance, resulting in waste of heat and affecting battery life. ; The higher the voltage, the more lithium-ion batteries are needed, which increases the difficulty of battery management. In order to solve the above problems, the concept of high output voltage battery was proposed, which uses the internal series connection of electrode assemblies to achieve high voltage output of a single battery, reduces the total heat production of the battery, and reduces the temperature rise during use. However, due to the inherent defects of the series connection of high output voltage batteries, the premature degradation of one of the electrode components will lead to a sharp decline in the cycle performance of the high output voltage battery as a whole. Therefore, the cycle performance of high output voltage batteries needs to be further improved.
发明内容Contents of the invention
鉴于现有技术存在的上述问题,本申请提供一种电化学装置和包含该电化学装置的电子装置,以提高内部串联的电化学装置的循环性能。In view of the above-mentioned problems in the prior art, the present application provides an electrochemical device and an electronic device including the electrochemical device, so as to improve the cycle performance of the internal series-connected electrochemical devices.
在第一方面,本申请提供了一种电化学装置,其包括壳体和设置于壳体中的第一电极组件和第二电极组件,第一电极组件和第二电极组件串联连接,并且满足如下关系式:In a first aspect, the present application provides an electrochemical device, which includes a casing and a first electrode assembly and a second electrode assembly disposed in the casing, the first electrode assembly and the second electrode assembly are connected in series, and satisfy The following relational formula:
Figure PCTCN2022079189-appb-000001
Figure PCTCN2022079189-appb-000001
其中,C1表示第一电极组件的容量,C2表示第二电极组件的容量。Wherein, C1 represents the capacity of the first electrode assembly, and C2 represents the capacity of the second electrode assembly.
本申请的发明人通过研究发现:单个电极组件之间的容量差异,一方面,对内部 串联高输出电压电池的循环性能具有重要影响,通过第一电极组件的容量C1和第二电极组件的容量C2满足上述关系式,在串联充放电过程中,第一电极组件和第二电极组件之间的电位水平能够趋于一致,降低其中某一电极组件发生过充和/或过放的风险,从而抑制其中某一电极组件过早发生劣化,提升内部串联高输出电压电池的循环性能;另一方面,单个电极组件之间的容量差异,也影响着内部串联的高输出电压电池实际可发挥出的容量水平,通过第一电极组件的容量C1和第二电极组件的容量C2满足上述关系式,在串联放电过程中,第一电极组件和第二电极组件的容量均能够得到有效发挥,有利于提升电化学装置的能量密度。The inventors of the present application have found through research that: the capacity difference between individual electrode assemblies, on the one hand, has an important impact on the cycle performance of the internal series high output voltage battery, through the capacity C1 of the first electrode assembly and the capacity of the second electrode assembly C2 satisfies the above relational expression. During the series charge and discharge process, the potential levels between the first electrode assembly and the second electrode assembly can tend to be consistent, reducing the risk of overcharging and/or overdischarging of one of the electrode assemblies, thereby Inhibit the premature deterioration of one of the electrode components and improve the cycle performance of the internal series high output voltage battery; on the other hand, the capacity difference between individual electrode components also affects the actual performance of the internal series high output voltage battery. Capacity level, through the capacity C1 of the first electrode assembly and the capacity C2 of the second electrode assembly satisfying the above relationship, in the process of series discharge, the capacities of the first electrode assembly and the second electrode assembly can be effectively exerted, which is conducive to improving Energy density of electrochemical devices.
根据本申请的一些实施方式,第一电极组件包括第一负极极片和第一正极极片,所述第一负极极片包括第一负极集流体和位于所述第一负极集流体表面的第一负极活性材料层,所述第一正极极片包括第一正极集流体和位于所述第一正极集流体表面的第一正极活性材料层,所述第一正极活性材料层的面积为Sc1,所述第一负极活性材料层的面积为Sa1,取测试面积为Stc1的第一正极极片,以锂金属为对电极组装成扣式半电池,测试面积为Stc1的第一正极极片的容量为Ctc1;取测试面积为Sta1的第一负极极片,以锂金属为对电极组装成扣式半电池,测试面积为Sta1的第一负极极片的容量为Cta1;CB1=(Cta1×Sa1/Sta1)/(Ctc1×Sc1/Stc1)。According to some embodiments of the present application, the first electrode assembly includes a first negative electrode sheet and a first positive electrode sheet, and the first negative electrode sheet includes a first negative electrode current collector and a first negative electrode current collector on the surface of the first negative electrode current collector. A negative electrode active material layer, the first positive electrode sheet includes a first positive electrode current collector and a first positive electrode active material layer positioned on the surface of the first positive electrode current collector, the area of the first positive electrode active material layer is Sc1, The area of the first negative electrode active material layer is Sa1, the first positive pole piece with a test area of Stc1 is taken, and lithium metal is used as a counter electrode to assemble a button-type half-cell, and the test area is the capacity of the first positive pole piece of Stc1 is Ctc1; get the first negative pole piece that test area is Sta1, take lithium metal as counter electrode and assemble into button type half cell, the capacity of the first negative pole piece that test area is Sta1 is Cta1; CB1=(Cta1×Sa1/ Sta1)/(Ctc1×Sc1/Stc1).
第二电极组件包括第二负极极片和第二正极极片,第二负极极片包括第二负极集流体和位于所述第二负极集流体表面的第二负极活性材料层,第二正极极片包括第二正极集流体和位于第二正极集流体表面的第二正极活性材料层,第二正极活性材料层的面积为Sc2,第二负极活性材料层的面积为Sa2,取测试面积为Stc2的第二正极极片,以锂金属为对电极组装成扣式半电池,测试面积为Stc2的第二正极极片的容量为Ctc2;取测试面积为Sta2的第二负极极片,以锂金属为对电极组装成扣式半电池,测试面积为Sta2的第二负极极片的容量为Cta2;CB2=(Cta2×Sa2/Sta2)/(Ctc2×Sc2/Stc2)。The second electrode assembly includes a second negative pole piece and a second positive pole piece, the second negative pole piece includes a second negative current collector and a second negative active material layer positioned on the surface of the second negative current collector, the second positive pole The sheet includes a second positive electrode current collector and a second positive electrode active material layer positioned on the surface of the second positive electrode current collector, the area of the second positive electrode active material layer is Sc2, the area of the second negative electrode active material layer is Sa2, and the test area is Stc2 The second positive pole piece is assembled into a button-type half-cell with lithium metal as the counter electrode, and the capacity of the second positive pole piece whose test area is Stc2 is Ctc2; the second negative pole piece whose test area is Sta2 is To assemble the electrode into a button-type half-cell, the capacity of the second negative pole sheet whose test area is Sta2 is Cta2; CB2=(Cta2*Sa2/Sta2)/(Ctc2*Sc2/Stc2).
其中,第一电极组件和第二电极组件还满足如下关系式:Wherein, the first electrode assembly and the second electrode assembly also satisfy the following relationship:
Figure PCTCN2022079189-appb-000002
Figure PCTCN2022079189-appb-000002
通过CB1和CB2满足上述关系式,第一电极组件和第二电极组件在化成阶段形成固体电解质界面膜的过程中,正极极片中所消耗的的锂含量相匹配,能够降低在后续的串联充放电过程中,某一电极组件中的正极极片电位过高的风险,抑制正极极片 中的正极活性材料以及固体电解质界面膜结构的破坏,进而提升内部串联高输出电压电池的循环性能。By satisfying the above relationship between CB1 and CB2, the first electrode assembly and the second electrode assembly form a solid electrolyte interface film in the formation stage, and the lithium content consumed in the positive electrode piece matches, which can reduce the subsequent series charging. During the discharge process, the risk of excessively high potential of the positive pole piece in a certain electrode assembly inhibits the destruction of the positive active material in the positive pole piece and the solid electrolyte interfacial film structure, thereby improving the cycle performance of the internal series high output voltage battery.
根据本申请的一些实施方式,第一电极组件和第二电极组件还满足如下关系式:According to some embodiments of the present application, the first electrode assembly and the second electrode assembly also satisfy the following relationship:
Figure PCTCN2022079189-appb-000003
Figure PCTCN2022079189-appb-000003
其中,W1表示第一负极活性材料层的涂布重量,单位为mg/1540.25mm 2;W2表示第二负极活性材料层的涂布重量,单位为mg/1540.25mm 2,CB1和CB2如上文所定义。通过W1、W2、CB1和CB2满足上述关系式,第一电极组件和第二电极组件中相同面积负极活性材料层所对应的可逆容量能够相匹配,能够使各电极组件对充放电倍率的适应性较为一致,从而进一步提升内部串联高输出电压电池的循环性能。 Among them, W1 represents the coating weight of the first negative electrode active material layer, the unit is mg/1540.25mm 2 ; W2 represents the coating weight of the second negative electrode active material layer, the unit is mg/1540.25mm 2 , CB1 and CB2 are as above definition. By W1, W2, CB1 and CB2 satisfying the above relationship, the reversible capacity corresponding to the negative electrode active material layer of the same area in the first electrode assembly and the second electrode assembly can be matched, and the adaptability of each electrode assembly to the charge and discharge rate can be made It is relatively consistent, thereby further improving the cycle performance of the internal series high output voltage battery.
根据本申请的一些实施方式,第一电极组件和第二电极组件满足如下关系式:According to some embodiments of the present application, the first electrode assembly and the second electrode assembly satisfy the following relationship:
Figure PCTCN2022079189-appb-000004
Figure PCTCN2022079189-appb-000004
其中,W1表示第一负极活性材料层的涂布重量,单位为mg/1540.25mm 2;W2表示第二负极活性材料层的涂布重量,单位为mg/1540.25mm 2;CB1和CB2如上文所定义。 Wherein, W1 represents the coating weight of the first negative electrode active material layer, the unit is mg/1540.25mm 2 ; W2 represents the coating weight of the second negative electrode active material layer, the unit is mg/1540.25mm 2 ; CB1 and CB2 are as above definition.
根据本申请的一些实施方式,所述电化学装置满足下列条件(i)和(ii)中的至少一者:(i)CB1的取值范围为0.7至1.1;(ii)CB2的取值范围为0.7至1.1。CB1和/或CB2的取值范围在上述范围内,第一电极组件和/或第二电极组件中正负极的容量较为匹配,一方面,能够降低在充放电过程中,正极电位过高导致正极活性材料结构破坏的风险,提升电池的循环性能;另一方面,也能够降低在充放电过程中负极发生析锂的风险,提升电池的安全性能。According to some embodiments of the present application, the electrochemical device satisfies at least one of the following conditions (i) and (ii): (i) the value range of CB1 is 0.7 to 1.1; (ii) the value range of CB2 0.7 to 1.1. The value range of CB1 and/or CB2 is within the above range, and the capacity of the positive and negative electrodes in the first electrode assembly and/or the second electrode assembly is relatively matched. On the one hand, it can reduce the positive electrode activity caused by the high potential of the positive electrode during the charge and discharge process. The risk of damage to the material structure can improve the cycle performance of the battery; on the other hand, it can also reduce the risk of lithium deposition on the negative electrode during charging and discharging, and improve the safety performance of the battery.
根据本申请的一些实施方式,所述电化学装置满足下列条件(iii)和(iv)中的至少一者:(iii)W1的取值范围为100mg/1540.25mm 2至200mg/1540.25mm 2;(iv)W2的取值范围为100mg/1540.25mm 2至200mg/1540.25mm 2According to some embodiments of the present application, the electrochemical device satisfies at least one of the following conditions (iii) and (iv): (iii) the value range of W1 is 100mg/1540.25mm 2 to 200mg/1540.25mm 2 ; (iv) The value range of W2 is 100mg/1540.25mm 2 to 200mg/1540.25mm 2 .
根据本申请的一些实施方式,所述电化学装置还包括隔离件,隔离件位于第一电极组件和第二电极组件之间。According to some embodiments of the present application, the electrochemical device further includes a separator located between the first electrode assembly and the second electrode assembly.
根据本申请的一些实施方式,隔离件包括基材层和位于基材层表面的封装层,基材层的材质包括金属、碳材料或第一聚合物中的至少一种;封装层的材质包括第二聚 合物。According to some embodiments of the present application, the spacer includes a substrate layer and an encapsulation layer located on the surface of the substrate layer, and the material of the substrate layer includes at least one of metal, carbon material or first polymer; the material of the encapsulation layer includes second polymer.
根据本申请的一些实施方式,作为基材层材质的金属包括Ni、Ti、Cu、Ag、Au、Pt、Fe、Co、Cr、W、Mo、Al、Mg、K、Na、Ca、Sr、Ba、Si、Ge、Sb、Pb、In、Zn、不锈钢及其组合物或合金中的至少一种。According to some embodiments of the present application, the metal used as the material of the substrate layer includes Ni, Ti, Cu, Ag, Au, Pt, Fe, Co, Cr, W, Mo, Al, Mg, K, Na, Ca, Sr, At least one of Ba, Si, Ge, Sb, Pb, In, Zn, stainless steel, and combinations or alloys thereof.
根据本申请的一些实施方式,作为基材层材质的碳材料包括碳毡、碳膜、炭黑、乙炔黑、富勒烯、导电石墨膜或石墨烯膜中的至少一种。According to some embodiments of the present application, the carbon material used as the material of the substrate layer includes at least one of carbon felt, carbon film, carbon black, acetylene black, fullerene, conductive graphite film or graphene film.
根据本申请的一些实施方式,作为基材层材质的第一聚合物包括聚对苯二甲酸乙二醇酯、聚对苯二甲酸丁二醇酯、聚萘二甲酸乙二醇酯、聚醚醚酮、聚酰亚胺、聚酰胺、聚乙二醇、聚酰胺酰亚胺、聚碳酸酯、环状聚烯烃、聚苯硫醚、聚乙酸乙烯酯、聚四氟乙烯,聚亚甲基萘、聚偏二氟乙烯,聚碳酸亚丙酯、聚(偏二氟乙烯-六氟丙烯)、聚(偏二氟乙烯-共-三氟氯乙烯)、有机硅、维尼纶、聚丙烯、酸酐改性聚丙烯、聚乙烯、乙烯-丙烯共聚物、聚氯乙烯、聚苯乙烯、聚醚腈、聚氨酯、聚苯醚、聚酯、聚砜、非晶态α-烯烃共聚物或上述物质衍生物中的至少一种。According to some embodiments of the present application, the first polymer used as the material of the substrate layer includes polyethylene terephthalate, polybutylene terephthalate, polyethylene naphthalate, polyether Etherketone, polyimide, polyamide, polyethylene glycol, polyamideimide, polycarbonate, cyclic polyolefin, polyphenylene sulfide, polyvinyl acetate, polytetrafluoroethylene, polymethylene Naphthalene, polyvinylidene fluoride, polypropylene carbonate, poly(vinylidene fluoride-hexafluoropropylene), poly(vinylidene fluoride-co-chlorotrifluoroethylene), silicone, vinylon, polypropylene, Anhydride-modified polypropylene, polyethylene, ethylene-propylene copolymer, polyvinyl chloride, polystyrene, polyethernitrile, polyurethane, polyphenylene ether, polyester, polysulfone, amorphous alpha-olefin copolymer, or the above at least one of the derivatives.
根据本申请的一些实施方式,作为封装层材质的第二聚合物包括:聚丙烯、酸酐改性聚丙烯、聚乙烯、乙烯-丙烯共聚物、聚氯乙烯、聚苯乙烯、聚醚腈、聚氨酯、聚酰胺、聚酯、非晶态α-烯烃共聚物或上述物质衍生物中的至少一种。According to some embodiments of the present application, the second polymer used as the material of the encapsulation layer includes: polypropylene, anhydride-modified polypropylene, polyethylene, ethylene-propylene copolymer, polyvinyl chloride, polystyrene, polyether nitrile, polyurethane , polyamide, polyester, amorphous α-olefin copolymer or at least one of the derivatives of the above substances.
在第二方面,本申请提供了一种电子装置,其包括本申请第一方面所述的电化学装置。In a second aspect, the present application provides an electronic device, which includes the electrochemical device described in the first aspect of the present application.
本申请通过对内部串联的电化学装置中各电极组件的容量、CB值、涂布重量W及其之间的关系进行限定,可以显著提高内部串联的电化学装置的循环性能。The present application limits the capacity, CB value, coating weight W and the relationship between each electrode assembly in the internal series electrochemical device, which can significantly improve the cycle performance of the internal series electrochemical device.
附图说明Description of drawings
为了更清楚地说明本申请实施例的技术方案,下面将对实施例描述中所需要使用的附图作简单地介绍,显而易见地,下面描述中的附图仅仅是本申请的一些实施例。In order to more clearly illustrate the technical solutions of the embodiments of the present application, the following will briefly introduce the drawings required for the description of the embodiments. Apparently, the drawings in the following description are only some embodiments of the present application.
图1是根据本申请的一些实施方式的电化学装置的示意图。Figure 1 is a schematic diagram of an electrochemical device according to some embodiments of the present application.
附图标记如下:The reference signs are as follows:
001:电化学装置001: Electrochemical device
11:电极组件A11: Electrode assembly A
12:电极组件B12: Electrode assembly B
20:隔离件20: Isolation piece
41:上包装壳41: upper packaging shell
42:下包装壳。42: the lower packaging shell.
具体实施方式Detailed ways
下面结合具体实施方式,进一步阐述本申请。应理解,这些具体实施方式仅用于说明本申请,而非对本申请进行限制。The present application will be further elaborated below in combination with specific embodiments. It should be understood that these specific implementations are only used to illustrate the present application, not to limit the present application.
本申请提供了一种电化学装置,其包括壳体和设置于壳体中的第一电极组件和第二电极组件,第一电极组件和第二电极组件串联连接,并且满足如下关系式:The present application provides an electrochemical device, which includes a casing and a first electrode assembly and a second electrode assembly disposed in the casing, the first electrode assembly and the second electrode assembly are connected in series, and satisfy the following relationship:
Figure PCTCN2022079189-appb-000005
Figure PCTCN2022079189-appb-000005
其中,C1表示第一电极组件的容量,C2表示第二电极组件的容量。Wherein, C1 represents the capacity of the first electrode assembly, and C2 represents the capacity of the second electrode assembly.
本申请的发明人通过研究发现:单个电极组件之间的容量差异,对内部串联高输出电压电池的循环性能具有重要影响,通过使第一电极组件的容量C1和第二电极组件的容量C2满足上述关系式,在串联充放电过程中,第一电极组件和第二电极组件之间的电位水平能够趋于一致,降低其中某一电极组件发生过充和/或过放的风险,从而抑制其中某一电极组件过早发生劣化,不仅可以提升内部串联高输出电压电池的循环性能,还能够降低内部串联高输出电压电池的膨胀率。在一些实施例中,
Figure PCTCN2022079189-appb-000006
Figure PCTCN2022079189-appb-000007
9%、8%、7%、6%、5%、4%、3%、2%、1%、0.5%或0.25%。在一些实施例中,
Figure PCTCN2022079189-appb-000008
的取值范围为0.01%至9.5%,具体可以是9%、8%、7%、6%、5%、4%、3%、2%、1%、0.5%或0.25%。
The inventors of the present application have found through research that: the capacity difference between individual electrode assemblies has an important impact on the cycle performance of the internal series high output voltage battery, by making the capacity C1 of the first electrode assembly and the capacity C2 of the second electrode assembly satisfy According to the above relationship, during the series charge and discharge process, the potential levels between the first electrode assembly and the second electrode assembly can tend to be consistent, reducing the risk of overcharging and/or overdischarging of one of the electrode assemblies, thereby inhibiting the Premature degradation of a certain electrode assembly can not only improve the cycle performance of the internal series high output voltage battery, but also reduce the expansion rate of the internal series high output voltage battery. In some embodiments,
Figure PCTCN2022079189-appb-000006
Figure PCTCN2022079189-appb-000007
9%, 8%, 7%, 6%, 5%, 4%, 3%, 2%, 1%, 0.5%, or 0.25%. In some embodiments,
Figure PCTCN2022079189-appb-000008
The range of value is 0.01% to 9.5%, specifically, it can be 9%, 8%, 7%, 6%, 5%, 4%, 3%, 2%, 1%, 0.5% or 0.25%.
根据本申请的一些实施方式,第一电极组件包括第一负极极片和第一正极极片。第一负极极片包括第一负极集流体和位于第一负极集流体表面的第一负极活性材料层,所述第一正极极片包括第一正极集流体和位于第一正极集流体表面的第一正极活性材料层。第一正极活性材料层的面积为Sc1,第一负极活性材料层的面积为Sa1,取测试面积为Stc1的第一正极极片,以锂金属为对电极组装成扣式半电池,测试面积为Stc1的第一正极极片的容量为Ctc1;取测试面积为Sta1的第一负极极片,以锂金属为对电极组装成扣式半电池,测试面积为Sta1的第一负极极片的容量为Cta1;CB1= (Cta1×Sa1/Sta1)/(Ctc1×Sc1/Stc1)。According to some embodiments of the present application, the first electrode assembly includes a first negative pole piece and a first positive pole piece. The first negative pole piece includes a first negative current collector and a first negative active material layer positioned on the surface of the first negative current collector, and the first positive pole piece includes a first positive current collector and a first negative active material layer positioned on the surface of the first positive current collector. A positive electrode active material layer. The area of the first positive electrode active material layer is Sc1, the area of the first negative electrode active material layer is Sa1, and the first positive pole piece with the test area of Stc1 is taken, and the lithium metal is assembled into a button-type half-cell as the counter electrode, and the test area is The capacity of the first positive pole piece of Stc1 is Ctc1; take the first negative pole piece with the test area of Sta1, and use lithium metal as the counter electrode to assemble into a button-type half-cell, and the capacity of the first negative pole piece with the test area of Sta1 is Cta1; CB1=(Cta1*Sa1/Sta1)/(Ctc1*Sc1/Stc1).
根据本申请的一些实施方式,第二电极组件包括第二负极极片和第二正极极片,第二负极极片包括第二负极集流体和位于第二负极集流体表面的第二负极活性材料层,第二正极极片包括第二正极集流体和位于第二正极集流体表面的第二正极活性材料层。第二正极活性材料层的面积为Sc2,第二负极活性材料层的面积为Sa2,取测试面积为Stc2的第二正极极片,以锂金属为对电极组装成扣式半电池,测试面积为Stc2的第二正极极片的容量为Ctc2;取测试面积为Sta2的第二负极极片,以锂金属为对电极组装成扣式半电池,测试面积为Sta2的第二负极极片的容量为Cta2;CB2=(Cta2×Sa2/Sta2)/(Ctc2×Sc2/Stc2)。According to some embodiments of the present application, the second electrode assembly includes a second negative pole piece and a second positive pole piece, and the second negative pole piece includes a second negative current collector and a second negative active material on the surface of the second negative current collector The second positive electrode sheet includes a second positive electrode current collector and a second positive electrode active material layer on the surface of the second positive electrode current collector. The area of the second positive electrode active material layer is Sc2, and the area of the second negative electrode active material layer is Sa2, get the second positive electrode sheet that test area is Stc2, take lithium metal as counter electrode and assemble into button type half cell, test area is The capacity of the second positive pole piece of Stc2 is Ctc2; Get the second negative pole piece that test area is Sta2, take lithium metal as counter electrode and assemble into button type half cell, the capacity of the second negative pole piece that test area is Sta2 is Cta2; CB2=(Cta2*Sa2/Sta2)/(Ctc2*Sc2/Stc2).
根据本申请的一些实施方式,第一电极组件和第二电极组件还满足如下关系式:According to some embodiments of the present application, the first electrode assembly and the second electrode assembly also satisfy the following relationship:
Figure PCTCN2022079189-appb-000009
Figure PCTCN2022079189-appb-000009
通过CB1和CB2满足上述关系式,第一电极组件和第二电极组件在化成阶段形成固体电解质界面膜的过程中,正极极片中所消耗的的锂含量相匹配,能够降低在后续的串联充放电过程中,某一电极组件中的正极极片电位过高的风险,抑制正极极片中的正极活性材料以及固体电解质界面膜结构的破坏,进而提升内部串联高输出电压电池的循环性能。By satisfying the above relationship between CB1 and CB2, the first electrode assembly and the second electrode assembly form a solid electrolyte interface film in the formation stage, and the lithium content consumed in the positive electrode piece matches, which can reduce the subsequent series charging. During the discharge process, the risk of excessively high potential of the positive pole piece in a certain electrode assembly inhibits the destruction of the positive active material in the positive pole piece and the solid electrolyte interfacial film structure, thereby improving the cycle performance of the internal series high output voltage battery.
在一些实施例中,
Figure PCTCN2022079189-appb-000010
12%、10%、9.5%、9%、8%、7%、6%、5%、4%、3%、2%、1%、0.5%或0.25%。在一些实施例中,
Figure PCTCN2022079189-appb-000011
的取值范围为0.01%至10%,具体可以是10%、9%、8%、7%、6%、5%、4%、3%、2%、1%、0.5%或0.25%。
In some embodiments,
Figure PCTCN2022079189-appb-000010
12%, 10%, 9.5%, 9%, 8%, 7%, 6%, 5%, 4%, 3%, 2%, 1%, 0.5%, or 0.25%. In some embodiments,
Figure PCTCN2022079189-appb-000011
The range of value is 0.01% to 10%, specifically, it can be 10%, 9%, 8%, 7%, 6%, 5%, 4%, 3%, 2%, 1%, 0.5% or 0.25%.
根据本申请的一些实施方式,第一电极组件和第二电极组件还满足如下关系式:According to some embodiments of the present application, the first electrode assembly and the second electrode assembly also satisfy the following relationship:
Figure PCTCN2022079189-appb-000012
Figure PCTCN2022079189-appb-000012
其中,W1表示第一负极活性材料层的涂布重量,单位为mg/1540.25mm 2;W2表示第二负极活性材料层的涂布重量,单位为mg/1540.25mm 2,CB1和CB2如上文所定义。通过W1、W2、CB1和CB2满足上述关系式,第一电极组件和第二电极组件中相同面积负极活性材料层所对应的可逆容量能够相匹配,能够使各电极组件对充放电倍率的适应性较为一致,从而进一步提升内部串联高输出电压电池的循环性能。 Among them, W1 represents the coating weight of the first negative electrode active material layer, the unit is mg/1540.25mm 2 ; W2 represents the coating weight of the second negative electrode active material layer, the unit is mg/1540.25mm 2 , CB1 and CB2 are as above definition. By W1, W2, CB1 and CB2 satisfying the above relationship, the reversible capacity corresponding to the negative electrode active material layer of the same area in the first electrode assembly and the second electrode assembly can be matched, and the adaptability of each electrode assembly to the charge and discharge rate can be made It is relatively consistent, thereby further improving the cycle performance of the internal series high output voltage battery.
在一些实施例中,
Figure PCTCN2022079189-appb-000013
16%、14%、12%、10%、9.5%、9%、8%、7%、6%、5%、4%、3%、2%、1%、0.5%或0.25%。在一些实施例中,
Figure PCTCN2022079189-appb-000014
的取值范围为0.01%至10%,具体可以是10%、9%、8%、7%、6%、5%、4%、3%、2%、1%、0.5%或0.25%。
In some embodiments,
Figure PCTCN2022079189-appb-000013
16%, 14%, 12%, 10%, 9.5%, 9%, 8%, 7%, 6%, 5%, 4%, 3%, 2%, 1%, 0.5%, or 0.25%. In some embodiments,
Figure PCTCN2022079189-appb-000014
The range of value is 0.01% to 10%, specifically, it can be 10%, 9%, 8%, 7%, 6%, 5%, 4%, 3%, 2%, 1%, 0.5% or 0.25%.
根据本申请的一些实施方式,第一电极组件和第二电极组件满足如下关系式:According to some embodiments of the present application, the first electrode assembly and the second electrode assembly satisfy the following relationship:
Figure PCTCN2022079189-appb-000015
Figure PCTCN2022079189-appb-000015
其中,W1表示第一负极活性材料层的涂布重量,单位为mg/1540.25mm 2;W2表示第二负极活性材料层的涂布重量,单位为mg/1540.25mm 2;CB1和CB2如上文所定义。在一些实施例中,
Figure PCTCN2022079189-appb-000016
16%、14%、12%、10%、8%、7%、6%、5%、4%、3%、2%、1%、0.5%或0.25%。在一些实施例中,
Figure PCTCN2022079189-appb-000017
的取值范围为0.01%至8%,具体可以是8%、7%、6%、5%、4%、3%、2%、1%、0.5%或0.25%。
Wherein, W1 represents the coating weight of the first negative electrode active material layer, the unit is mg/1540.25mm 2 ; W2 represents the coating weight of the second negative electrode active material layer, the unit is mg/1540.25mm 2 ; CB1 and CB2 are as above definition. In some embodiments,
Figure PCTCN2022079189-appb-000016
16%, 14%, 12%, 10%, 8%, 7%, 6%, 5%, 4%, 3%, 2%, 1%, 0.5%, or 0.25%. In some embodiments,
Figure PCTCN2022079189-appb-000017
The value range is 0.01% to 8%, specifically, it can be 8%, 7%, 6%, 5%, 4%, 3%, 2%, 1%, 0.5% or 0.25%.
根据本申请的一些实施方式,所述电化学装置满足下列条件(i)和(ii)中的至少一者:(i)CB1的取值范围为0.7至1.1,具体可以是0.7、0.75、0.8、0.85、0.9、0.95、1.0、1.05或1.1;(ii)CB2的取值范围为0.7至1.1,具体可以是0.7、0.75、0.8、0.85、0.9、0.95、1.0、1.05或1.1。CB1和/或CB2的取值范围在上述范围内,第一电极组件和/或第二电极组件中正负极的容量较为匹配,一方面,能够降低在充放电过程中,正极电位过高导致正极活性材料结构破坏的风险,提升电池的循环性能;另一方面,也能够降低在充放电过程中负极发生析锂的风险,提升电池的安全性能。According to some embodiments of the present application, the electrochemical device satisfies at least one of the following conditions (i) and (ii): (i) the value range of CB1 is 0.7 to 1.1, specifically 0.7, 0.75, 0.8 , 0.85, 0.9, 0.95, 1.0, 1.05 or 1.1; (ii) The value range of CB2 is 0.7 to 1.1, specifically 0.7, 0.75, 0.8, 0.85, 0.9, 0.95, 1.0, 1.05 or 1.1. The value range of CB1 and/or CB2 is within the above range, and the capacity of the positive and negative electrodes in the first electrode assembly and/or the second electrode assembly is relatively matched. On the one hand, it can reduce the positive electrode activity caused by the high potential of the positive electrode during the charge and discharge process. The risk of damage to the material structure can improve the cycle performance of the battery; on the other hand, it can also reduce the risk of lithium deposition on the negative electrode during charging and discharging, and improve the safety performance of the battery.
根据本申请的一些实施方式,所述电化学装置满足下列条件(iii)和(iv)中的至少一者:(iii)W1的取值范围为100mg/1540.25mm 2至200mg/1540.25mm 2;(iv)W2的取值范围为100mg/1540.25mm 2至200mg/1540.25mm 2According to some embodiments of the present application, the electrochemical device satisfies at least one of the following conditions (iii) and (iv): (iii) the value range of W1 is 100mg/1540.25mm 2 to 200mg/1540.25mm 2 ; (iv) The value range of W2 is 100mg/1540.25mm 2 to 200mg/1540.25mm 2 .
根据本申请的一些实施方式,所述电化学装置还包括隔离件,隔离件位于第一电极组件和第二电极组件之间。According to some embodiments of the present application, the electrochemical device further includes a separator located between the first electrode assembly and the second electrode assembly.
根据本申请的一些实施方式,隔离件包括基材层和位于基材层表面的封装层,基材层的材质包括金属、碳材料或第一聚合物中的至少一种;封装层的材质包括第二聚 合物。在本申请的一些实施方案中,封装层可以设置于离子绝缘层的两侧,所述封装层设置在离子绝缘层表面的四周边缘处或其整个表面上,所述封装层用于将离子绝缘层与壳体密封连接。According to some embodiments of the present application, the spacer includes a substrate layer and an encapsulation layer located on the surface of the substrate layer, and the material of the substrate layer includes at least one of metal, carbon material or first polymer; the material of the encapsulation layer includes second polymer. In some embodiments of the present application, the encapsulation layer can be disposed on both sides of the ion insulating layer, the encapsulation layer is disposed on the peripheral edge of the surface of the ion insulating layer or on the entire surface thereof, and the encapsulation layer is used to insulate the ion The layers are hermetically connected to the housing.
根据本申请的一些实施方式,作为基材层材质的金属包括Ni、Ti、Cu、Ag、Au、Pt、Fe、Co、Cr、W、Mo、Al、Mg、K、Na、Ca、Sr、Ba、Si、Ge、Sb、Pb、In、Zn、不锈钢及其组合物或合金中的至少一种。According to some embodiments of the present application, the metal used as the material of the substrate layer includes Ni, Ti, Cu, Ag, Au, Pt, Fe, Co, Cr, W, Mo, Al, Mg, K, Na, Ca, Sr, At least one of Ba, Si, Ge, Sb, Pb, In, Zn, stainless steel, and combinations or alloys thereof.
根据本申请的一些实施方式,作为基材层材质的碳材料包括碳毡、碳膜、炭黑、乙炔黑、富勒烯、导电石墨膜或石墨烯膜中的至少一种。According to some embodiments of the present application, the carbon material used as the material of the substrate layer includes at least one of carbon felt, carbon film, carbon black, acetylene black, fullerene, conductive graphite film or graphene film.
根据本申请的一些实施方式,作为基材层材质的第一聚合物包括聚对苯二甲酸乙二醇酯、聚对苯二甲酸丁二醇酯、聚萘二甲酸乙二醇酯、聚醚醚酮、聚酰亚胺、聚酰胺、聚乙二醇、聚酰胺酰亚胺、聚碳酸酯、环状聚烯烃、聚苯硫醚、聚乙酸乙烯酯、聚四氟乙烯,聚亚甲基萘、聚偏二氟乙烯,聚碳酸亚丙酯、聚(偏二氟乙烯-六氟丙烯)、聚(偏二氟乙烯-共-三氟氯乙烯)、有机硅、维尼纶、聚丙烯、酸酐改性聚丙烯、聚乙烯、乙烯-丙烯共聚物、聚氯乙烯、聚苯乙烯、聚醚腈、聚氨酯、聚苯醚、聚酯、聚砜、非晶态α-烯烃共聚物或上述物质衍生物中的至少一种。According to some embodiments of the present application, the first polymer used as the material of the substrate layer includes polyethylene terephthalate, polybutylene terephthalate, polyethylene naphthalate, polyether Etherketone, polyimide, polyamide, polyethylene glycol, polyamideimide, polycarbonate, cyclic polyolefin, polyphenylene sulfide, polyvinyl acetate, polytetrafluoroethylene, polymethylene Naphthalene, polyvinylidene fluoride, polypropylene carbonate, poly(vinylidene fluoride-hexafluoropropylene), poly(vinylidene fluoride-co-chlorotrifluoroethylene), silicone, vinylon, polypropylene, Anhydride-modified polypropylene, polyethylene, ethylene-propylene copolymer, polyvinyl chloride, polystyrene, polyethernitrile, polyurethane, polyphenylene ether, polyester, polysulfone, amorphous alpha-olefin copolymer, or the above at least one of the derivatives.
根据本申请的一些实施方式,作为封装层材质的第二聚合物包括:聚丙烯、酸酐改性聚丙烯、聚乙烯、乙烯-丙烯共聚物、聚氯乙烯、聚苯乙烯、聚醚腈、聚氨酯、聚酰胺、聚酯、非晶态α-烯烃共聚物或上述物质衍生物中的至少一种。According to some embodiments of the present application, the second polymer used as the material of the encapsulation layer includes: polypropylene, anhydride-modified polypropylene, polyethylene, ethylene-propylene copolymer, polyvinyl chloride, polystyrene, polyether nitrile, polyurethane , polyamide, polyester, amorphous α-olefin copolymer or at least one of the derivatives of the above substances.
本申请的一些实施方式中,第一电极组件和第二电极组件的结构包括卷绕结构、叠片结构中的至少一种。In some embodiments of the present application, the structures of the first electrode assembly and the second electrode assembly include at least one of a wound structure and a laminated structure.
在本申请中,通过第一电极组件上设置的极耳和第二电极组件上设置的极耳进行连接,对于两个极耳的连接方式没有特别限定,只要能实现本申请的目的即可。例如,焊接连接。上述焊接连接的方式没有特别限定,只要能实现本申请的目的即可。例如,激光焊、超声焊或电阻焊等。本申请中所说的极耳是指正极极片或负极极片上引出来的金属导体。正极极耳是从正极极片上引出,负极极耳是从负极极片上引出。In this application, the connection is made through the tabs provided on the first electrode assembly and the tabs provided on the second electrode assembly. There is no particular limitation on the connection method of the two tabs, as long as the purpose of this application can be achieved. For example, solder connections. There is no particular limitation on the manner of the above welding connection, as long as the purpose of the present application can be achieved. For example, laser welding, ultrasonic welding or resistance welding, etc. The tab mentioned in this application refers to the metal conductor drawn out from the positive pole piece or the negative pole piece. The positive pole lug is drawn from the positive pole piece, and the negative pole lug is drawn from the negative pole piece.
在本申请中,第一和第二电极组件的厚度没有特别限制,只要能够实现本申请目的即可。In the present application, the thicknesses of the first and second electrode assemblies are not particularly limited, as long as the purpose of the present application can be achieved.
在本申请的一些实施方式中,第一正极极片和第二正极极片没有特别限制,只要能够实现本申请目的即可。例如,所述第一正极极片和第二正极极片通常包含正极集 流体和正极活性材料。在本申请中,所述正极集流体没有特别限制,可以为本领域公知的任何正极集流体,例如铜箔、铝箔、铝合金箔以及复合集流体等。所述正极活性材料没有特别限制,可以为现有技术的任何正极活性材料,例如,所述正极活性物质包括镍钴锰酸锂、镍钴铝酸锂、磷酸铁锂、钴酸锂、锰酸锂或磷酸锰铁锂中的至少一种。在本申请中,正极集流体和正极活性材料层的厚度没有特别限制,只要能够实现本申请目的即可。例如,正极集流体的厚度为8μm至12μm,正极活性材料层的厚度为30μm至120μm。In some embodiments of the present application, the first positive electrode piece and the second positive electrode piece are not particularly limited, as long as the purpose of the present application can be achieved. For example, the first positive pole piece and the second positive pole piece generally include a positive current collector and a positive active material. In the present application, the positive current collector is not particularly limited, and may be any positive current collector known in the art, such as copper foil, aluminum foil, aluminum alloy foil, composite current collector, and the like. The positive electrode active material is not particularly limited, and can be any positive electrode active material in the prior art. For example, the positive electrode active material includes nickel-cobalt lithium manganate, nickel-cobalt lithium aluminate, lithium iron phosphate, lithium cobaltate, manganic acid At least one of lithium or lithium manganese iron phosphate. In the present application, the thicknesses of the positive electrode current collector and the positive electrode active material layer are not particularly limited, as long as the purpose of the present application can be achieved. For example, the thickness of the positive electrode current collector is 8 μm to 12 μm, and the thickness of the positive electrode active material layer is 30 μm to 120 μm.
在本申请的一些优选实施方式中,所述第一正极极片和第二正极极片还可以包含导电层,所述导电层位于正极集流体和正极活性材料层之间。所述导电层的组成没有特别限制,可以是本领域常用的导电层。所述导电层包括导电剂和粘接剂。In some preferred embodiments of the present application, the first positive electrode sheet and the second positive electrode sheet may further include a conductive layer, and the conductive layer is located between the positive electrode current collector and the positive electrode active material layer. The composition of the conductive layer is not particularly limited, and may be a commonly used conductive layer in the field. The conductive layer includes a conductive agent and an adhesive.
在本申请的一些实施方式中,第一负极极片和第二负极极片没有特别限制,只要能够实现本申请目的即可。例如,所述第一负极极片和第二负极极片通常包含负极集流体和负极活性材料。在本申请中,所述负极集流体没有特别限制,可以使用本领域公知的任何负极集流体,例如铜箔、铝箔、铝合金箔以及复合集流体等。所述负极活性材料没有特别限制,可以使用本领域公知的任何负极活性材料。例如,可以包括石墨、中间相碳微球、硅、硅碳、硅氧化合物、软碳、硬碳、钛酸锂或钛酸铌中的至少一种。在本申请中,负极集流体和负极活性材料层的厚度没有特别限制,只要能够实现本申请目的即可。例如,负极集流体的厚度为6μm至10μm,负极活性材料的厚度为30μm至120μm。In some embodiments of the present application, the first negative pole piece and the second negative pole piece are not particularly limited, as long as the purpose of the present application can be achieved. For example, the first negative electrode sheet and the second negative electrode sheet generally include a negative electrode current collector and a negative electrode active material. In the present application, the negative electrode current collector is not particularly limited, and any negative electrode current collector known in the art can be used, such as copper foil, aluminum foil, aluminum alloy foil, and composite current collectors. The negative active material is not particularly limited, and any negative active material known in the art can be used. For example, at least one of graphite, mesocarbon microspheres, silicon, silicon carbon, silicon oxide, soft carbon, hard carbon, lithium titanate, or niobium titanate may be included. In the present application, the thickness of the negative electrode current collector and the negative electrode active material layer is not particularly limited, as long as the purpose of the present application can be achieved. For example, the thickness of the negative electrode current collector is 6 μm to 10 μm, and the thickness of the negative electrode active material is 30 μm to 120 μm.
在本申请的一些优选实施方式中,所述第一负极极片和第二负极极片还可以包含导电层,所述导电层位于负极集流体和负极活性材料层之间。所述导电层的组成没有特别限制,可以是本领域常用的导电层。所述导电层包括导电剂和粘接剂。In some preferred embodiments of the present application, the first negative electrode sheet and the second negative electrode sheet may further include a conductive layer, and the conductive layer is located between the negative electrode current collector and the negative electrode active material layer. The composition of the conductive layer is not particularly limited, and may be a commonly used conductive layer in the field. The conductive layer includes a conductive agent and an adhesive.
上述所述导电剂没有特别限制,可以使用本领域公知的任何导电剂,只要能实现本申请目的即可。例如,导电剂可以包括导电炭黑、碳纳米管(CNTs)、碳纤维或石墨烯等中的至少一种。上述所述粘接剂没有特别限制,可以使用本领域公知的任何粘接剂,只要能实现本申请目的即可。例如,粘接剂可以包括聚偏二氟乙烯(PVDF)、丁苯橡胶(SBR)、聚乙烯醇(PVA)、聚四氟乙烯(PTFE)或羧甲基纤维素钠(CMC-Na)等中的至少一种。The conductive agent mentioned above is not particularly limited, and any conductive agent known in the art can be used as long as the purpose of the present application can be achieved. For example, the conductive agent may include at least one of conductive carbon black, carbon nanotubes (CNTs), carbon fibers, or graphene, among others. The above-mentioned adhesive is not particularly limited, and any adhesive known in the art can be used as long as the purpose of the present application can be achieved. For example, the adhesive may include polyvinylidene fluoride (PVDF), styrene-butadiene rubber (SBR), polyvinyl alcohol (PVA), polytetrafluoroethylene (PTFE), or sodium carboxymethylcellulose (CMC-Na), etc. at least one of the
在本申请的一些实施方式中,隔膜没有特别限制,只要能够实现本申请目的即可。 例如,隔膜的厚度可以为5μm至15μm,隔膜可以包括对本申请的电解质稳定的材料形成的聚合物或无机物等。在本申请中,隔膜也可以称为隔离膜。In some embodiments of the present application, the separator is not particularly limited, as long as the purpose of the present application can be achieved. For example, the thickness of the separator may be 5 μm to 15 μm, and the separator may include a polymer or an inorganic substance formed of a material stable to the electrolyte of the present application, or the like. In the present application, the separator may also be referred to as a separator.
例如,隔膜可以包括基材层和表面处理层。基材层可以为具有多孔结构的无纺布、膜或复合膜,基材层的材料可以包括聚乙烯、聚丙烯、聚对苯二甲酸乙二醇酯和聚酰亚胺中的至少一种。任选地,可以使用聚丙烯多孔膜、聚乙烯多孔膜、聚丙烯无纺布、聚乙烯无纺布或聚丙烯-聚乙烯-聚丙烯多孔复合膜。任选地,基材层的至少一个表面上设置有表面处理层,表面处理层可以是聚合物层或无机物层,也可以是混合聚合物与无机物所形成的层。For example, a separator may include a substrate layer and a surface treatment layer. The substrate layer can be a non-woven fabric, a film or a composite film with a porous structure, and the material of the substrate layer can include at least one of polyethylene, polypropylene, polyethylene terephthalate and polyimide . Optionally, a polypropylene porous film, a polyethylene porous film, a polypropylene non-woven fabric, a polyethylene non-woven fabric, or a polypropylene-polyethylene-polypropylene porous composite film may be used. Optionally, at least one surface of the substrate layer is provided with a surface treatment layer, and the surface treatment layer may be a polymer layer or an inorganic layer, or a layer formed by mixing a polymer and an inorganic material.
例如,无机物层包括无机颗粒和粘结剂,所述无机颗粒没有特别限制,例如可以选自氧化铝、氧化硅、氧化镁、氧化钛、二氧化铪、氧化锡、二氧化铈、氧化镍、氧化锌、氧化钙、氧化锆、氧化钇、碳化硅、勃姆石、氢氧化铝、氢氧化镁、氢氧化钙和硫酸钡中的至少一种。所述粘结剂没有特别限制,例如可以选自聚偏氟乙烯、偏氟乙烯-六氟丙烯的共聚物、聚酰胺、聚丙烯腈、聚丙烯酸酯、聚丙烯酸、聚丙烯酸盐、聚乙烯呲咯烷酮、聚乙烯醚、聚甲基丙烯酸甲酯、聚四氟乙烯和聚六氟丙烯中的一种或几种的组合。聚合物层中包含聚合物,聚合物的材料包括聚酰胺、聚丙烯腈、丙烯酸酯聚合物、聚丙烯酸、聚丙烯酸盐、聚乙烯呲咯烷酮、聚乙烯醚、聚偏氟乙烯或聚(偏氟乙烯-六氟丙烯)中的至少一种。For example, the inorganic layer includes inorganic particles and a binder, and the inorganic particles are not particularly limited, for example, they can be selected from aluminum oxide, silicon oxide, magnesium oxide, titanium oxide, hafnium oxide, tin oxide, cerium oxide, nickel oxide , zinc oxide, calcium oxide, zirconia, yttrium oxide, silicon carbide, boehmite, aluminum hydroxide, magnesium hydroxide, calcium hydroxide and barium sulfate. The binder is not particularly limited, for example, it can be selected from polyvinylidene fluoride, a copolymer of vinylidene fluoride-hexafluoropropylene, polyamide, polyacrylonitrile, polyacrylate, polyacrylic acid, polyacrylate, polyvinyl pyrene One or a combination of rolidone, polyvinyl ether, polymethyl methacrylate, polytetrafluoroethylene and polyhexafluoropropylene. The polymer layer comprises a polymer, and the polymer material includes polyamide, polyacrylonitrile, acrylate polymer, polyacrylic acid, polyacrylate, polyvinylpyrrolidone, polyvinyl ether, polyvinylidene fluoride or poly( at least one of vinylidene fluoride-hexafluoropropylene).
根据本申请的实施方式,电化学装置还包括电解液。在本申请所说的电解液可以包含锂盐和非水溶剂。在本申请中,所述锂盐没有特别限制,可以使用本领域公知的任何锂盐,只要能实现本申请的目的即可。例如,锂盐可以包括LiPF 6、LiBF 4、LiAsF 6、LiClO 4、LiB(C 6H 5) 4、LiCH 3SO 3、LiCF 3SO 3、LiN(SO 2CF 3) 2、LiC(SO 2CF 3)3或LiPO 2F 2中的至少一种。例如,锂盐可选用LiPF 6。在本申请中,所述非水溶剂没有特别限定,只要能实现本申请的目的即可。例如,非水溶剂可以包括碳酸酯化合物、羧酸酯化合物、醚化合物、腈化合物、其它有机溶剂中的至少一种。 According to an embodiment of the present application, the electrochemical device further includes an electrolytic solution. The electrolytic solution mentioned in this application may contain a lithium salt and a non-aqueous solvent. In the present application, the lithium salt is not particularly limited, and any lithium salt known in the art can be used as long as the purpose of the present application can be achieved. For example, lithium salts may include LiPF 6 , LiBF 4 , LiAsF 6 , LiClO 4 , LiB(C 6 H 5 ) 4 , LiCH 3 SO 3 , LiCF 3 SO 3 , LiN(SO 2 CF 3 ) 2 , LiC(SO 2 At least one of CF 3 ) 3 or LiPO 2 F 2 . For example, LiPF 6 may be selected as the lithium salt. In the present application, the non-aqueous solvent is not particularly limited, as long as the purpose of the present application can be achieved. For example, the nonaqueous solvent may include at least one of carbonate compounds, carboxylate compounds, ether compounds, nitrile compounds, and other organic solvents.
例如,碳酸酯化合物可以包括碳酸二乙酯(DEC)、碳酸二甲酯(DMC)、碳酸二丙酯(DPC)、碳酸甲丙酯(MPC)、碳酸乙丙酯(EPC)、碳酸甲乙酯(MEC)、碳酸亚乙酯(EC)、碳酸亚丙酯(PC)、碳酸亚丁酯(BC)、碳酸乙烯基亚乙酯(VEC)、碳酸氟代亚乙酯(FEC)、碳酸1,2-二氟亚乙酯、碳酸1,1-二氟亚乙酯、碳酸1,1,2-三氟亚乙酯、碳酸1,1,2,2-四氟亚乙酯、碳酸1-氟-2-甲基亚乙酯、碳酸1-氟-1-甲基亚乙酯、碳酸1,2-二氟-1-甲基 亚乙酯、碳酸1,1,2-三氟-2-甲基亚乙酯、碳酸三氟甲基亚乙酯中的至少一种。For example, the carbonate compound may include diethyl carbonate (DEC), dimethyl carbonate (DMC), dipropyl carbonate (DPC), methylpropyl carbonate (MPC), ethylpropyl carbonate (EPC), methyl ethyl carbonate Carbonate (MEC), Ethylene Carbonate (EC), Propylene Carbonate (PC), Butylene Carbonate (BC), Vinyl Ethylene Carbonate (VEC), Fluoroethylene Carbonate (FEC), Carbonic Acid 1 ,2-Difluoroethylene carbonate, 1,1-difluoroethylene carbonate, 1,1,2-trifluoroethylene carbonate, 1,1,2,2-tetrafluoroethylene carbonate, 1 -Fluoro-2-methylethylene carbonate, 1-fluoro-1-methylethylene carbonate, 1,2-difluoro-1-methylethylene carbonate, 1,1,2-trifluoro- At least one of 2-methylethylene carbonate and trifluoromethylethylene carbonate.
本申请对壳体没有特别限制,只要能实现本申请的目的即可。所述壳体包括铝塑膜、铝壳、钢壳、塑料壳中的至少一种。例如,壳体可以包含内层和外层,内层与隔离件密封连接,因此内层的材料可以包括高分子材料,从而实现良好的密封效果;同时内层和外层的结合能够有效得保护电化学装置的内部结构。在本申请中,所述内层材料没有特别限制,只要能实现本申请的目的即可,例如,内层的材料包括聚丙烯、聚酯、对羟基苯甲醛、聚酰胺、聚苯醚、聚氨酯等中的至少一种。在本申请中,所述外层材料没有特别限制,只要能实现本申请的目的即可,例如,外层的材料包括铝箔、氧化铝层、氮化硅层等中的至少一种。The present application has no special limitation on the casing, as long as the purpose of the present application can be achieved. The casing includes at least one of an aluminum-plastic film, an aluminum shell, a steel shell, and a plastic shell. For example, the housing can include an inner layer and an outer layer, and the inner layer is sealed and connected with the separator, so the material of the inner layer can include a polymer material to achieve a good sealing effect; at the same time, the combination of the inner layer and the outer layer can effectively protect Internal structure of an electrochemical device. In the present application, the material of the inner layer is not particularly limited, as long as the purpose of the application can be achieved, for example, the material of the inner layer includes polypropylene, polyester, p-hydroxybenzaldehyde, polyamide, polyphenylene ether, polyurethane at least one of these. In the present application, the material of the outer layer is not particularly limited, as long as the purpose of the application can be achieved, for example, the material of the outer layer includes at least one of aluminum foil, aluminum oxide layer, silicon nitride layer and the like.
在本申请对壳体的厚度没有特殊限制,只要能实现本申请的目的即可。例如,壳体的厚度为60μm至500μm,优选为60μm至300μm,更优选60μm至200μm,上述厚度的壳体可以有效保护电化学装置的内部结构。In this application, there is no special limitation on the thickness of the casing, as long as the purpose of this application can be achieved. For example, the casing has a thickness of 60 μm to 500 μm, preferably 60 μm to 300 μm, more preferably 60 μm to 200 μm, and the above thickness of the casing can effectively protect the internal structure of the electrochemical device.
本申请对隔离件与壳体的密封连接方式没有特别限制,只要能实现本申请的目的即可。例如,密封方式包括热压、胶水胶封、焊接中的一种。在本申请中,所述热压条件没有特别限定,只要能实现本申请的目的即可,例如针对聚丙烯内层材料,热压温度为150℃至220℃,热压压力为0.1Mpa至0.6MPa。The present application has no special limitation on the sealing connection method between the spacer and the housing, as long as the purpose of the present application can be achieved. For example, the sealing method includes one of hot pressing, glue sealing and welding. In this application, the hot-pressing conditions are not particularly limited, as long as the purpose of this application can be achieved, for example, for the polypropylene inner layer material, the hot-pressing temperature is 150°C to 220°C, and the hot-pressing pressure is 0.1Mpa to 0.6 MPa.
在本申请的一些实施方式中,所述电极组件的结构为卷绕结构,电极组件包含单极耳或多极耳。所述电极组件包含单极耳,是从正极极片和负极极片上分别引出一个正极极耳和一个负极极耳。所述电极组件包含多极耳,可以是从每一圈正极极片和负极极片上分别引出一个正极极耳和一个负极极耳,也可以是从两圈或多圈正极极片和负极极片上分别引出一个正极极耳和一个负极极耳,最终一个卷绕结构的电极组件包含多组正极极耳和负极极耳,然后经转接焊转极耳引线。In some embodiments of the present application, the structure of the electrode assembly is a wound structure, and the electrode assembly includes a single tab or multiple tabs. The electrode assembly includes a monopole lug, and a positive pole lug and a negative pole lug are led out from the positive pole piece and the negative pole piece respectively. The electrode assembly includes multiple tabs, one positive tab and one negative tab can be drawn from each circle of positive pole pieces and negative pole pieces, or two or more circles of positive pole pieces and negative pole pieces can be drawn out. One positive pole tab and one negative pole tab are led out respectively, and finally an electrode assembly with a winding structure includes multiple sets of positive pole tabs and negative pole tabs, and then the tab leads are transferred through transfer welding.
在本申请的一些实施方式中,所述电极组件的结构为叠片结构,电极组件包含多极耳,可以是从每一层正极极片和负极极片上分别引出一个正极极耳和一个负极极耳,最终一个叠片结构的电极组件包含多组正极极耳和负极极耳,然后经转接焊转极耳引线。In some embodiments of the present application, the structure of the electrode assembly is a stacked sheet structure, and the electrode assembly includes multiple tabs, which may be a positive tab and a negative tab respectively drawn from each layer of positive pole pieces and negative pole pieces. Ears, the final electrode assembly of a laminated structure includes multiple sets of positive and negative pole tabs, and then the tab leads are transferred through transfer welding.
本申请提供的电化学装置中可以包含两个电极组件,也可以包含三个及以上电极组件。含有两个电极组件或三个及以上电极组件的电化学装置的制备方法均可参照上述电化学装置的制备方法。包含三个或多个电极组件的电化学装置同样在本申请权利 要求所定义的保护范围内。The electrochemical device provided in the present application may contain two electrode assemblies, or may contain three or more electrode assemblies. The preparation method of the electrochemical device containing two electrode assemblies or three or more electrode assemblies can refer to the preparation method of the above electrochemical device. Electrochemical devices comprising three or more electrode assemblies are also within the scope of protection defined by the claims of the present application.
本申请还提供了一种电子装置,其包含本申请提供的电化学装置。本申请的电子装置没有特别限定,其可以是现有技术中已知的任何电子装置。例如,电子装置包括但不限于笔记本电脑、笔输入型计算机、移动电脑、电子书播放器、便携式电话、便携式传真机、便携式复印机、便携式打印机、头戴式立体声耳机、录像机、液晶电视、手提式清洁器、便携CD机、迷你光盘、收发机、电子记事本、计算器、存储卡、便携式录音机、收音机、备用电源、电机、汽车、摩托车、助力自行车、自行车、照明器具、玩具、游戏机、钟表、电动工具、闪光灯、照相机、家庭用大型蓄电池和锂离子电容器等。The present application also provides an electronic device, which includes the electrochemical device provided in the present application. The electronic device in this application is not particularly limited, and it may be any electronic device known in the prior art. Examples of electronic devices include, but are not limited to, notebook computers, pen-based computers, mobile computers, e-book players, cellular phones, portable fax machines, portable copiers, portable printers, headsets, VCRs, LCD televisions, portable Cleaners, portable CD players, mini discs, transceivers, electronic organizers, calculators, memory cards, portable recorders, radios, backup power supplies, electric motors, automobiles, motorcycles, power-assisted bicycles, bicycles, lighting appliances, toys, game consoles , clocks, electric tools, flashlights, cameras, large household batteries and lithium-ion capacitors, etc.
测试方法Test Methods
涂布重量测试方法:Coating Weight Test Method:
1.测试前准备:打开分析天平,确认天平处于平衡状态,调节归零。1. Preparation before the test: Turn on the analytical balance, confirm that the balance is in a balanced state, and adjust to zero.
2.制作样品:用标准工具(面积1540.25mm 2)裁取极片样品,置于天平上称量重量,记为m1;然后将极片样品上的活性材料层洗净,干燥后置于天平上称量质量,记为m2, 2. Making samples: cut out the pole piece sample with standard tools (area 1540.25mm 2 ), put it on a balance and weigh it, and record it as m1; then clean the active material layer on the pole piece sample, dry it and put it on the balance Weigh the mass on the top, record it as m2,
3.涂布重量计算:3. Coating weight calculation:
若极片样品为单面涂布活性材料层的极片,则涂布重量=m1-m2;If the pole piece sample is a pole piece coated with an active material layer on one side, the coating weight = m1-m2;
若极片样品为双面涂布活性材料层的极片,则涂布重量=(m1-m2)/2。If the pole piece sample is a pole piece coated with active material layers on both sides, the coating weight=(m1-m2)/2.
CB值测试方法:CB value test method:
取测试面积为Stc的正极极片,以锂金属为对电极组装成扣式半电池,测试所述正极极片的容量为Ctc;取测试面积为Sta的负极极片,以锂金属为对电极组装成扣式半电池,测试所述负极极片的容量为Cta;该电池总正极极片面积为Sa,总负极极片面积为Sc,则,CB=(Cta×Sa/Sta)/(Ctc×Sc/Stc)。其中,负极极片的电压测试区间为2V-0.005V,正极极片的电压测试区间为2.5V-4.5V。Take a positive pole piece with a test area of Stc, assemble it into a button half-cell with lithium metal as the counter electrode, and test the capacity of the positive pole piece as Ctc; take a negative pole piece with a test area of Sta, and use lithium metal as the counter electrode Assembled into a button-type half-battery, the capacity of the negative pole piece tested is Cta; the total positive pole piece area of the battery is Sa, and the total negative pole piece area is Sc, then, CB=(Cta×Sa/Sta)/(Ctc ×Sc/Stc). Wherein, the voltage test range of the negative pole piece is 2V-0.005V, and the voltage test range of the positive pole piece is 2.5V-4.5V.
500圈循环容量保持率和厚度膨胀率测试方法:500 cycle cycle capacity retention rate and thickness expansion rate test method:
1. 25±3℃下,2C CC(横流)充电至8.4V,CV(恒压)充电,截止电流为1.0C, 1.0C CC充电至8.8V,CV充电,截止电流为0.05C,最后以1.0C CC放电至6.0V,记录电池的放电容量为C’;并用千分尺测量电池此时的厚度为h1;1. At 25±3°C, 2C CC (cross current) charging to 8.4V, CV (constant voltage) charging, the cut-off current is 1.0C, 1.0C CC charging to 8.8V, CV charging, the cut-off current is 0.05C, and finally 1.0C CC discharge to 6.0V, record the discharge capacity of the battery as C'; and use a micrometer to measure the thickness of the battery at this time as h1;
2.根据步骤1的充放电步骤,电池循环充放电500圈,记录第500圈的放电容量为C”;并用千分尺测量电池此时的厚度为h2;2. According to the charging and discharging steps in step 1, charge and discharge the battery for 500 cycles, record the discharge capacity of the 500th cycle as C"; and measure the thickness of the battery at this time with a micrometer as h2;
3.容量保持率和厚度膨胀率计算:3. Calculation of capacity retention rate and thickness expansion rate:
容量保持率=C”/C’×100%Capacity retention = C”/C’×100%
厚度膨胀率=(h2-h1)/h1×100%。Thickness expansion rate=(h2-h1)/h1×100%.
实施例和对比例Examples and comparative examples
实施例1:Example 1:
(1)负极极片的制备:将负极活性材料人造石墨、导电炭黑(Super P)、丁苯橡胶(SBR)按照重量比96:1.5:2.5进行混合,加入去离子水作为溶剂,调配成固含量为70wt%的浆料,并搅拌均匀。将浆料均匀涂覆在厚度为10μm的负极集流体铜箔的一个表面上,110℃条件下烘干,得到涂层厚度为150μm的单面涂覆有负极活性材料层的负极极片。在该负极极片的另一个表面上重复以上步骤,得到双面涂覆有负极活性材料层的负极极片。然后,将负极极片裁切成41mm×61mm的规格待用。(1) Preparation of the negative pole piece: mix the negative active material artificial graphite, conductive carbon black (Super P), and styrene-butadiene rubber (SBR) in a weight ratio of 96:1.5:2.5, add deionized water as a solvent, and prepare A slurry with a solid content of 70wt%, and stirred evenly. The slurry was uniformly coated on one surface of a negative electrode current collector copper foil with a thickness of 10 μm, and dried at 110° C. to obtain a negative electrode sheet with a coating thickness of 150 μm coated on one side with a negative electrode active material layer. The above steps are repeated on the other surface of the negative electrode sheet to obtain a negative electrode sheet coated with negative electrode active material layers on both sides. Then, the negative electrode sheet was cut into a size of 41 mm×61 mm for use.
(2)正极极片的制备:将正极活性材料钴酸锂(LiCoO 2)、导电炭黑(Super P)、聚偏二氟乙烯(PVDF)按照重量比97.5:1.0:1.5进行混合,加入N-甲基吡咯烷酮(NMP)作为溶剂,调配成固含量为75wt%的浆料,并搅拌均匀。将浆料均匀涂覆在厚度为12μm的正极集流体铝箔的一个表面上,90℃条件下烘干,得到正极活性材料层厚度为100μm的正极极片。在正极集流体铝箔的另一个表面上,重复以上步骤,得到双面涂覆有正极活性材料层的正极极片。然后,将正极极片裁切成38mm×58mm的规格待用。 (2) Preparation of the positive pole piece: the positive active material lithium cobaltate (LiCoO 2 ), conductive carbon black (Super P), and polyvinylidene fluoride (PVDF) were mixed according to the weight ratio of 97.5:1.0:1.5, and N - Using methylpyrrolidone (NMP) as a solvent, prepare a slurry with a solid content of 75 wt%, and stir evenly. The slurry was uniformly coated on one surface of a positive electrode current collector aluminum foil with a thickness of 12 μm, and dried at 90° C. to obtain a positive electrode sheet with a positive electrode active material layer thickness of 100 μm. On the other surface of the positive electrode current collector aluminum foil, the above steps were repeated to obtain a positive electrode sheet coated with a positive electrode active material layer on both sides. Then, cut the positive electrode sheet into a size of 38mm×58mm for use.
(3)电解液的制备:在干燥氩气气氛中,首先将有机溶剂碳酸乙烯酯(EC)、碳酸甲乙酯(EMC)和碳酸二乙酯(DEC)以质量比EC:EMC:DEC=30:50:20混合,然后向有机溶剂中加入锂盐六氟磷酸锂(LiPF 6)溶解并混合均匀,得到锂盐的浓度为1.15mol/L的电解液。 (3) Preparation of electrolyte: in a dry argon atmosphere, at first organic solvent ethylene carbonate (EC), ethyl methyl carbonate (EMC) and diethyl carbonate (DEC) are mixed with mass ratio EC:EMC:DEC= Mix at 30:50:20, then add lithium salt lithium hexafluorophosphate (LiPF 6 ) into the organic solvent to dissolve and mix evenly to obtain an electrolyte solution with a lithium salt concentration of 1.15 mol/L.
(4)电极组件A和电极组件B的制备:将隔膜、双面涂覆负极极片、隔膜、双面涂覆正极极片依次层叠设置组成叠片,然后将整个叠片结构的四个角固定好以备用。 其中,每个电极组件包含一个正极极耳和一个负极极耳,隔膜选用厚度为15μm的聚乙烯(PE)膜。(4) Preparation of electrode assembly A and electrode assembly B: the separator, the double-sided coated negative electrode sheet, the separator, and the double-sided coated positive electrode sheet are sequentially stacked to form a laminate, and then the four corners of the entire laminate structure are Secure it for later use. Wherein, each electrode assembly includes a positive electrode tab and a negative electrode tab, and a polyethylene (PE) film with a thickness of 15 μm is selected as the separator.
(5)隔板:隔板整体厚度为85μm,基材层选择金属Al,厚度为25μm,两侧的封装层选择熔点为140℃的PP,两侧厚度各为30μm。(5) Separator: The overall thickness of the separator is 85 μm, the base material layer is Al, the thickness is 25 μm, the packaging layer on both sides is PP with a melting point of 140 ° C, and the thickness on both sides is 30 μm.
(6)电极组件A的组装:将冲坑成型的铝塑膜1置于组装夹具内,坑面朝上,将电极组件A置于坑内,且隔膜面朝上,然后将隔板放置于电极组件A上,使得边沿对齐,施加外力压紧得到组装半成品。(6) Assembly of electrode assembly A: Place the aluminum-plastic film 1 formed by punching the pit in the assembly jig with the pit face up, place the electrode assembly A in the pit with the diaphragm face up, and then place the separator on the electrode On component A, make the edges aligned, and apply external force to press to obtain the assembled semi-finished product.
(7)电极组件B的组装:将组装半成品置于组装夹具内,隔板一面朝上,将电极组件B隔膜面朝下,放置于隔板上,使得边沿对齐,施加外力压紧,然后将另一个冲坑成型的铝塑膜坑面朝下覆盖于电极组件B上,采用热压的方式热封四周,得到组装电极组件。(7) Assembly of electrode assembly B: place the assembled semi-finished product in the assembly jig with one side of the separator facing up, place the electrode assembly B diaphragm on the separator so that the edges are aligned, apply external force to compress, and then Cover the electrode assembly B with another punched aluminum-plastic film pit face down, and heat seal around it by hot pressing to obtain an assembled electrode assembly.
(8)注液封装:分别给组装电极组件的两个腔体单独注入电解液,并将电极组件A和B的所有极耳引出铝塑膜外。(8) Liquid injection encapsulation: separately inject electrolyte solution into the two cavities of the assembled electrode assembly, and lead all the tabs of the electrode assembly A and B out of the aluminum plastic film.
(9)串联连接:将电极组件A的正极极耳和电极组件B的负极极耳通过激光焊的方式焊接连接在一起,实现串联连接,电池组装完成。(9) Series connection: The positive electrode tab of the electrode assembly A and the negative electrode tab of the electrode assembly B are welded together by laser welding to realize the series connection, and the battery assembly is completed.
实施例2-23和对比例1Embodiment 2-23 and comparative example 1
调整实际生产中各电极组件的涂布重量和CB值,其余条件与实施例1相同。The coating weight and CB value of each electrode assembly in actual production were adjusted, and other conditions were the same as in Example 1.
实施例2-23和对比例1的测试结果参见表1,其中,The test results of Examples 2-23 and Comparative Example 1 are shown in Table 1, wherein,
W1表示电极组件A中的负极活性材料层的涂布重量,单位为mg/1540.25mm 2W1 represents the coating weight of the negative electrode active material layer in the electrode assembly A, and the unit is mg/1540.25mm 2 ;
W2表示电极组件B中的负极活性材料层的涂布重量,单位为mg/1540.25mm 2W2 represents the coating weight of the negative electrode active material layer in the electrode assembly B, and the unit is mg/1540.25mm 2 ;
CB1表示电极组件A的的CB值;CB1 represents the CB value of electrode assembly A;
CB2表示电极组件B的CB值;CB2 represents the CB value of electrode assembly B;
C1表示电极组件A的容量;C1 represents the capacity of the electrode assembly A;
C2表示电极组件B的容量;C2 represents the capacity of electrode assembly B;
X表示
Figure PCTCN2022079189-appb-000018
X means
Figure PCTCN2022079189-appb-000018
Y表示
Figure PCTCN2022079189-appb-000019
Y means
Figure PCTCN2022079189-appb-000019
Z表示
Figure PCTCN2022079189-appb-000020
Z means
Figure PCTCN2022079189-appb-000020
Q表示
Figure PCTCN2022079189-appb-000021
Q means
Figure PCTCN2022079189-appb-000021
表1Table 1
Figure PCTCN2022079189-appb-000022
Figure PCTCN2022079189-appb-000022
Figure PCTCN2022079189-appb-000023
Figure PCTCN2022079189-appb-000023
通过表1中的实施例和对比例可以看出,当内部串联的两个电极组件满足如下关系式:It can be seen from the examples and comparative examples in Table 1 that when the two electrode assemblies connected in series internally satisfy the following relationship:
Figure PCTCN2022079189-appb-000024
时,不仅可以显著提高电池的循环性能,还能够显著降低电池的厚度膨胀率。
Figure PCTCN2022079189-appb-000024
At this time, not only the cycle performance of the battery can be significantly improved, but also the thickness expansion rate of the battery can be significantly reduced.
进一步地,当满足
Figure PCTCN2022079189-appb-000025
时,容量保持率均可达80%以上。这是由于,通过CB1和CB2满足上述关系式,第一电极组件和第二电极组件在化成阶段形成固体电解质界面膜的过程中,正极极片中所消耗的的锂含量相匹配,能够降低在后续的串联充放电过程中,某一电极组件中的正极极片电位过高的风险,抑制正极极片中的正极活性材料以及固体电解质界面膜结构的破坏,进而提升内部串联高输出电压电池的循环性能。
Further, when satisfying
Figure PCTCN2022079189-appb-000025
, the capacity retention rate can reach more than 80%. This is because, through CB1 and CB2 satisfying the above relationship, the first electrode assembly and the second electrode assembly form the solid electrolyte interfacial film in the formation stage, the lithium content consumed in the positive electrode sheet matches, and the lithium content in the positive electrode sheet can be reduced. In the subsequent series charge and discharge process, the risk of the positive electrode sheet potential in a certain electrode assembly being too high can inhibit the destruction of the positive electrode active material in the positive electrode sheet and the solid electrolyte interface film structure, thereby improving the internal series connection of high output voltage batteries. cycle performance.
进一步地,当满足如下关系式:Furthermore, when the following relationship is satisfied:
Figure PCTCN2022079189-appb-000026
Figure PCTCN2022079189-appb-000026
时,容量保持率可进一步提升至85%以上,且电池膨胀率可以进一步降低至8%以下;此时,第一电极组件和第二电极组件中相同面积负极活性材料层所对应的可逆容量能够相匹配,能够使各电极组件对充放电倍率的适应性较为一致,从而进一步提升内部串联高输出电压电池的循环性能和安全性能。, the capacity retention rate can be further improved to more than 85%, and the battery expansion rate can be further reduced to less than 8%; at this time, the reversible capacity corresponding to the same area of the negative electrode active material layer in the first electrode assembly and the second electrode assembly can be Matching can make the adaptability of each electrode assembly to the charge and discharge rate relatively consistent, thereby further improving the cycle performance and safety performance of the internal series high output voltage battery.
尽管已经演示和描述了说明性实施例,本领域技术人员应该理解上述实施例不能被解释为对本申请的限制,并且可以在不脱离本申请的精神、原理及范围的情况下对实施例进行改变、替代和修改。Although illustrative embodiments have been shown and described, those skilled in the art should understand that the foregoing embodiments are not to be construed as limitations on the present application, and that changes may be made in the embodiments without departing from the spirit, principle and scope of the application. , substitution and modification.

Claims (10)

  1. 一种电化学装置,包括壳体和设置于所述壳体中的第一电极组件和第二电极组件,所述第一电极组件和所述第二电极组件串联连接,并且满足如下关系式:An electrochemical device, comprising a casing and a first electrode assembly and a second electrode assembly disposed in the casing, the first electrode assembly and the second electrode assembly are connected in series and satisfy the following relational expression:
    Figure PCTCN2022079189-appb-100001
    Figure PCTCN2022079189-appb-100001
    其中,C1表示第一电极组件的容量,C2表示第二电极组件的容量。Wherein, C1 represents the capacity of the first electrode assembly, and C2 represents the capacity of the second electrode assembly.
  2. 根据权利要求1所述的电化学装置,其中,The electrochemical device according to claim 1, wherein,
    所述第一电极组件包括第一负极极片和第一正极极片,所述第一负极极片包括第一负极集流体和位于所述第一负极集流体表面的第一负极活性材料层,所述第一正极极片包括第一正极集流体和位于所述第一正极集流体表面的第一正极活性材料层,所述第一正极活性材料层的面积为Sc1,所述第一负极活性材料层的面积为Sa1,取测试面积为Stc1的所述第一正极极片,以锂金属为对电极组装成扣式半电池,测试面积为Stc1的所述第一正极极片的容量为Ctc1;取测试面积为Sta1的所述第一负极极片,以锂金属为对电极组装成扣式半电池,测试面积为Sta1的所述第一负极极片的容量为Cta1;CB1=(Cta1×Sa1/Sta1)/(Ctc1×Sc1/Stc1);The first electrode assembly includes a first negative pole piece and a first positive pole piece, the first negative pole piece includes a first negative current collector and a first negative active material layer located on the surface of the first negative current collector, The first positive electrode sheet includes a first positive electrode current collector and a first positive electrode active material layer positioned on the surface of the first positive electrode current collector, the area of the first positive electrode active material layer is Sc1, and the first negative electrode is active The area of the material layer is Sa1, the first positive pole piece with a test area of Stc1 is taken, and lithium metal is used as a counter electrode to assemble a button half-cell, and the capacity of the first positive pole piece with a test area of Stc1 is Ctc1 Get the described first negative pole sheet that test area is Sta1, take lithium metal as counter electrode and assemble into button type half cell, the capacity of the described first negative pole sheet that test area is Sta1 is Cta1; CB1=(Cta1× Sa1/Sta1)/(Ctc1×Sc1/Stc1);
    所述第二电极组件包括第二负极极片和第二正极极片,所述第二负极极片包括第二负极集流体和位于所述第二负极集流体表面的第二负极活性材料层,所述第二正极极片包括第二正极集流体和位于所述第二正极集流体表面的第二正极活性材料层,所述第二正极活性材料层的面积为Sc2,所述第二负极活性材料层的面积为Sa2,取测试面积为Stc2的所述第二正极极片,以锂金属为对电极组装成扣式半电池,测试面积为Stc2的所述第二正极极片的容量为Ctc2;取测试面积为Sta2的所述第二负极极片,以锂金属为对电极组装成扣式半电池,测试面积为Sta2的所述第二负极极片的容量为Cta2;CB2=(Cta2×Sa2/Sta2)/(Ctc2×Sc2/Stc2);The second electrode assembly includes a second negative pole piece and a second positive pole piece, the second negative pole piece includes a second negative current collector and a second negative active material layer located on the surface of the second negative current collector, The second positive electrode sheet includes a second positive electrode current collector and a second positive electrode active material layer positioned on the surface of the second positive electrode current collector, the area of the second positive electrode active material layer is Sc2, and the second negative electrode is active The area of the material layer is Sa2, the second positive pole piece whose test area is Stc2 is taken, and lithium metal is used as a counter electrode to assemble a button half battery, and the capacity of the second positive pole piece whose test area is Stc2 is Ctc2 Get the described second negative pole sheet that test area is Sta2, take lithium metal as counter electrode and assemble into button type half cell, the capacity of the described second negative pole sheet that test area is Sta2 is Cta2; CB2=(Cta2× Sa2/Sta2)/(Ctc2×Sc2/Stc2);
    第一电极组件和第二电极组件满足如下关系式:The first electrode assembly and the second electrode assembly satisfy the following relationship:
    Figure PCTCN2022079189-appb-100002
    Figure PCTCN2022079189-appb-100002
  3. 根据权利要求2所述的电化学装置,其中,第一电极组件和第二电极组件满 足如下关系式:The electrochemical device according to claim 2, wherein the first electrode assembly and the second electrode assembly satisfy the following relational expression:
    Figure PCTCN2022079189-appb-100003
    Figure PCTCN2022079189-appb-100003
    其中,W1表示第一负极活性材料层的涂布重量,单位为mg/1540.25mm 2;W2表示第二负极活性材料层的涂布重量,单位为mg/1540.25mm 2Wherein, W1 represents the coating weight of the first negative electrode active material layer, and the unit is mg/1540.25mm 2 ; W2 represents the coating weight of the second negative electrode active material layer, and the unit is mg/1540.25mm 2 .
  4. 根据权利要求2所述的电化学装置,其中,第一电极组件和第二电极组件满足如下关系式:The electrochemical device according to claim 2, wherein the first electrode assembly and the second electrode assembly satisfy the following relationship:
    Figure PCTCN2022079189-appb-100004
    Figure PCTCN2022079189-appb-100004
    其中,W1表示第一负极活性材料层的涂布重量,单位为mg/1540.25mm 2;W2表示第二负极活性材料层的涂布重量,单位为mg/1540.25mm 2Wherein, W1 represents the coating weight of the first negative electrode active material layer, and the unit is mg/1540.25mm 2 ; W2 represents the coating weight of the second negative electrode active material layer, and the unit is mg/1540.25mm 2 .
  5. 根据权利要求1所述的电化学装置,其中,所述电化学装置满足下列条件(i)和(ii)中的至少一者:The electrochemical device according to claim 1, wherein the electrochemical device satisfies at least one of the following conditions (i) and (ii):
    (i)CB1的取值范围为0.7至1.1;(i) The value range of CB1 is 0.7 to 1.1;
    (ii)CB2的取值范围为0.7至1.1。(ii) The value range of CB2 is from 0.7 to 1.1.
  6. 根据权利要求3所述的电化学装置,其中,所述电化学装置满足下列条件(iii)和(iv)中的至少一者:The electrochemical device according to claim 3, wherein the electrochemical device satisfies at least one of the following conditions (iii) and (iv):
    (iii)W1的取值范围为100mg/1540.25mm 2至200mg/1540.25mm 2(iii) The value range of W1 is 100mg/1540.25mm 2 to 200mg/1540.25mm 2 ;
    (iv)W2的取值范围为100mg/1540.25mm 2至200mg/1540.25mm 2(iv) The value range of W2 is 100mg/1540.25mm 2 to 200mg/1540.25mm 2 .
  7. 根据权利要求1-6任意一项所述的电化学装置,其中,所述电化学装置还包括隔离件,所述隔离件位于所述第一电极组件和所述第二电极组件之间。The electrochemical device according to any one of claims 1-6, wherein the electrochemical device further comprises a separator located between the first electrode assembly and the second electrode assembly.
  8. 根据权利要求7所述的电化学装置,其中,所述隔离件包括基材层和位于所述基材层表面的封装层,所述基材层的材质包括金属、碳材料或第一聚合物中的至少一种;所述封装层的材质包括第二聚合物。The electrochemical device according to claim 7, wherein the separator comprises a base material layer and an encapsulation layer located on the surface of the base material layer, and the material of the base material layer comprises metal, carbon material or a first polymer At least one of them; the material of the encapsulation layer includes the second polymer.
  9. 根据权利要求8所述的电化学装置,其中,The electrochemical device according to claim 8, wherein,
    所述金属包括Ni、Ti、Cu、Ag、Au、Pt、Fe、Co、Cr、W、Mo、Al、Mg、K、Na、Ca、Sr、Ba、Si、Ge、Sb、Pb、In、Zn、不锈钢及其组合物或合金中的至少一种;The metals include Ni, Ti, Cu, Ag, Au, Pt, Fe, Co, Cr, W, Mo, Al, Mg, K, Na, Ca, Sr, Ba, Si, Ge, Sb, Pb, In, At least one of Zn, stainless steel, and combinations or alloys thereof;
    所述碳材料包括碳毡、碳膜、炭黑、乙炔黑、富勒烯、导电石墨膜或石墨烯膜中的至少一种;The carbon material includes at least one of carbon felt, carbon film, carbon black, acetylene black, fullerene, conductive graphite film or graphene film;
    所述第一聚合物包括聚对苯二甲酸乙二醇酯、聚对苯二甲酸丁二醇酯、聚萘二甲酸乙二醇酯、聚醚醚酮、聚酰亚胺、聚酰胺、聚乙二醇、聚酰胺酰亚胺、聚碳酸酯、环状聚烯烃、聚苯硫醚、聚乙酸乙烯酯、聚四氟乙烯,聚亚甲基萘、聚偏二氟乙烯,聚碳酸亚丙酯、聚(偏二氟乙烯-六氟丙烯)、聚(偏二氟乙烯-共-三氟氯乙烯)、有机硅、维尼纶、聚丙烯、酸酐改性聚丙烯、聚乙烯、乙烯-丙烯共聚物、聚氯乙烯、聚苯乙烯、聚醚腈、聚氨酯、聚苯醚、聚酯、聚砜、非晶态α-烯烃共聚物或上述物质衍生物中的至少一种;The first polymer includes polyethylene terephthalate, polybutylene terephthalate, polyethylene naphthalate, polyether ether ketone, polyimide, polyamide, poly Ethylene glycol, polyamideimide, polycarbonate, cyclic polyolefin, polyphenylene sulfide, polyvinyl acetate, polytetrafluoroethylene, polymethylene naphthalene, polyvinylidene fluoride, polypropylene carbonate Ester, poly(vinylidene fluoride-hexafluoropropylene), poly(vinylidene fluoride-co-chlorotrifluoroethylene), silicone, vinylon, polypropylene, anhydride-modified polypropylene, polyethylene, ethylene-propylene Copolymer, polyvinyl chloride, polystyrene, polyether nitrile, polyurethane, polyphenylene ether, polyester, polysulfone, amorphous α-olefin copolymer or at least one of the above derivatives;
    所述第二聚合物包括:聚丙烯、酸酐改性聚丙烯、聚乙烯、乙烯-丙烯共聚物、聚氯乙烯、聚苯乙烯、聚醚腈、聚氨酯、聚酰胺、聚酯、非晶态α-烯烃共聚物或上述物质衍生物中的至少一种。The second polymer includes: polypropylene, anhydride-modified polypropylene, polyethylene, ethylene-propylene copolymer, polyvinyl chloride, polystyrene, polyether nitrile, polyurethane, polyamide, polyester, amorphous alpha - Olefin copolymers or at least one of the above derivatives.
  10. 一种电子装置,包括根据权利要求1-9中任一项所述的电化学装置。An electronic device comprising the electrochemical device according to any one of claims 1-9.
PCT/CN2022/079189 2022-03-04 2022-03-04 Electrochemical device and electronic device WO2023164914A1 (en)

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