Electrochemical and Electronic Devices

By integrating an intermediate layer with a specific area ratio and a sulfur-oxygen double bond compound in the electrolyte, the lithium-ion battery's internal resistance and safety are enhanced, addressing charging speed and overheating issues.

JP7680534B2Active Publication Date: 2025-05-20NINGDE AMPEREX TECHNOLOGY LTD
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Patent Information

Application Number
JP2023523109
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2020-10-15
Publication Date
2025-05-20
Estimated Expiration
2040-10-15

AI Technical Summary

Technical Problem

Lithium-ion batteries face issues with high internal resistance, slow charging times, and safety hazards due to uneven heat dissipation during high-rate charging and discharging, leading to local overheating, capacity decline, and potential explosions.

Method used

Incorporating an intermediate layer between the electrode and active material layer with a specific area ratio and using an electrolyte containing a compound with a sulfur-oxygen double bond, along with conductive materials like carbon black or graphene, to enhance conductivity and heat management.

Benefits of technology

This configuration reduces DC internal resistance, thickness expansion rate, and improves safety by stabilizing the electrode interface, allowing for faster charging and reducing the risk of overheating and explosions.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to an electrochemical device and an electronic device. The electrochemical device includes an electrode and an electrolyte. The electrode includes a current collector, an intermediate layer disposed on the current collector, and an active material layer disposed on the intermediate layer. The intermediate layer and the active material layer have a specific area ratio, and the electrolyte includes a compound containing a sulfur-oxygen double bond. The electrochemical device of the present invention has improved DC internal resistance and safety.
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Description

[Technical field]

[0001] The present invention relates to the technical field of energy storage, in particular electrochemical and electronic devices, especially lithium-ion batteries. [Background technology]

[0002] With the development of technology and the increasing demand for mobile devices, various demands for electrochemical devices (e.g., lithium-ion batteries) are also increasing. At the same time, the pursuit of longer sustained life has put forward higher requirements for the performance of lithium-ion batteries, especially the safety of lithium-ion batteries.

[0003] Lithium-ion batteries generally have the following shortcomings and problems: the internal resistance of the battery is relatively large, the current allowed for charging and discharging is small, and the charging time is too long (for example, slow charging takes at least 3.5 hours, and fast charging takes at least 30 minutes). When lithium-ion batteries are charged and discharged at high rates, the internal resistance of the battery will generate a large amount of heat. Due to the lack of effective means to dissipate heat evenly in lithium-ion batteries, the inside of the lithium-ion battery will be locally overheated, which will not only accelerate the aging of the lithium-ion battery and cause the decline of battery capacity and power performance, but also lead to safety hazards such as expansion, deformation, and even explosion of the lithium-ion battery.

[0004] In view of this, there is a need to provide electrochemical and electronic devices with improved performance. Summary of the Invention [Problem to be solved by the invention]

[0005] SUMMARY OF THE DISCLOSURE The present invention solves, at least in part, at least one problem in the related art by providing electrochemical and electronic devices having improved DC internal resistance and safety. [Means for solving the problem]

[0006] In one aspect of the present invention, the present invention provides an electrochemical device comprising an electrode and an electrolyte solution, the electrode comprising a current collector, an intermediate layer located on the current collector, and an active material layer located on the intermediate layer, wherein an area ratio A between the intermediate layer and the active material layer is within a range of 0.9 to 1.1, and the electrolyte solution contains a compound containing a sulfur-oxygen double bond.

[0007] According to an embodiment of the present invention, the intermediate layer includes a conductive material, and the conductive material has an average particle size of 1 μm or less.

[0008] According to an embodiment of the present invention, the conductive material includes at least one of carbon black, carbon fiber, graphene, and carbon nanotube.

[0009] According to an embodiment of the present invention, the specific surface area of ​​the conductive material is set to X m 2 / g, X is in the range of 20 to 300.

[0010] According to an embodiment of the present invention, when the content of the compound containing a sulfur-oxygen double bond is Y % based on the weight of the electrolyte, Y is in the range of 0.01 to 10.

[0011] According to an embodiment of the present invention, A and Y satisfy 0.009≦A×Y≦6.

[0012] According to an embodiment of the present invention, X and Y satisfy 0.2≦X×Y≦200.

[0013] According to an embodiment of the present invention, the compound containing a sulfur-oxygen double bond includes at least one of a cyclic sulfate ester, a chain sulfate ester, a chain sulfonate ester, a cyclic sulfonate ester, a chain sulfite ester, and a cyclic sulfite ester.

[0014] According to an embodiment of the present invention, the compound containing a sulfur-oxygen double bond includes a compound represented by formula 1: [ka] Where: W is [ka] is selected from L is selected from a single bond and a methylene group, and two L's in the same ring structure are not simultaneously single bonds; m is 1, 2, 3 or 4; n is 0, 1 or 2, and p is 0, 1, 2, 3, 4, 5 or 6.

[0015] According to an embodiment of the present invention, the compound represented by formula 1 is [ka] Includes at least one of the following:

[0016] According to an embodiment of the present invention, the electrolyte further comprises: (a) a propionate ester; (b) an organic compound having a cyano group; (c) lithium difluorophosphate; (d) a compound represented by formula 2; At least one of [ka] Where: R 1 , R 2 , R 3 , R 4 , R 5 and R 6 are each independently a hydrogen atom or C 1 -C 10 is an alkyl group, L 1 and L 2 are each independently -(CR 7 R 8 ) n - and R 7 and R8 are each independently a hydrogen atom or C 1 -C 10 is an alkyl group, and n is 1, 2 or 3.

[0017] According to an embodiment of the present invention, the compound represented by formula 2 is [ka] Includes at least one of the following:

[0018] According to an embodiment of the present invention, when the content of the propionate ester is a % based on the weight of the electrolyte, a is in the range of 10 to 60.

[0019] According to an embodiment of the present invention, when the content of the lithium difluorophosphate is b%, based on the weight of the electrolyte, b is in the range of 0.01 to 2.

[0020] According to an embodiment of the present invention, Y and b satisfy 0.01≦Y / b≦100.

[0021] In a further aspect, the present invention provides an electronic device comprising an electrochemical device as described herein.

[0022] Other aspects and advantages of embodiments of the invention are set forth in part in the description that follows, are illustrated in part, or may be learned through the practice of embodiments of the invention. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0023] Examples of the present invention will be described in detail below. The examples of the present invention should not be construed as limiting the present invention.

[0024] Unless otherwise stated, the following terms used herein have the meanings indicated below.

[0025] In specific embodiments and in the scope of the claims, a list of terms connected by the term "at least one of" means any combination of the listed terms. For example, if terms A and B are listed, then "at least one of A and B" means A only, B only, or A and B. In other examples, if terms A, B, and C are listed, then "at least one of A, B, and C" means A only, or B only, or C only, or A and B (excluding C), or A and C (excluding B), or B and C (excluding A), or all of A, B, and C. Term A may include a single element or multiple elements. Term B may include a single element or multiple elements. Term C may include a single element or multiple elements. The term "at least one of" has the same meaning as the term "at least one of".

[0026] As used herein, the term "alkyl" is expected to be a straight chain saturated hydrocarbon structure having 1-20 carbon atoms. Also, "alkyl" is expected to be a branched or cyclic hydrocarbon structure having 3-20 carbon atoms. When an alkyl group having a particular number of carbon atoms is specified, all geometric isomers having that number of carbon atoms are expected to be included. Thus, for example, "butyl" is meant to include n-butyl, sec-butyl, isobutyl, tert-butyl, and cyclobutyl, and "propyl" is meant to include n-propyl, isopropyl, and cyclopropyl. Examples of alkyl groups include, but are not limited to, methyl, ethyl, n-propyl, isopropyl, cyclopropyl, n-butyl, isobutyl, sec-butyl, tert-butyl, cyclobutyl, n-pentyl, isopentyl, neopentyl, cyclopentyl, methylcyclopentyl, ethylcyclopentyl, n-hexyl, isohexyl, cyclohexyl, n-heptyl, octyl, cyclopropyl, cyclobutyl, norbornyl, and the like.

[0027] As used herein, the term "halogenated" means that some or all of the hydrogen atoms in a group are replaced with halogen atoms (eg, fluorine, chlorine, bromine or iodine).

[0028] As electrochemical devices (e.g., lithium-ion batteries) are widely used, their safety has received more and more attention. The safety hazards of electrochemical devices are mainly due to internal overheating. When a lithium-ion battery is charged and discharged at a high rate, a large amount of heat generated inside the battery cannot be released evenly, accelerating the aging of the lithium-ion battery and causing safety hazards such as expansion, deformation, and even explosion of the lithium-ion battery.

[0029] The present invention solves the above-mentioned problems by providing an intermediate layer between an electrode current collector and an active material layer, the intermediate layer having a specific area ratio with respect to the active material layer, and by using an electrolyte containing a compound containing a sulfur-oxygen double bond in combination.

[0030] In one embodiment, the present invention provides an electrochemical device comprising an electrode and an electrolyte as described below.

[0031] I, electrode One feature of the electrochemical device of the present invention is that the electrode includes a current collector, an intermediate layer located on the current collector, and an active material layer located on the intermediate layer, and when the area ratio of the intermediate layer to the active material layer is A, A is in the range of 0.9 to 1.1. In some embodiments, A is 0.9, 1.0, or 1.1, or is in the range consisting of any two of the aforementioned values. The intermediate layer can significantly reduce the DC internal resistance and thickness expansion rate of the electrochemical device, and improve the safety of the electrochemical device.

[0032] In some embodiments, the intermediate layer includes a conductive material, and the conductive material has an average particle size of 1 μm or less. In some embodiments, the conductive material has an average particle size of 0.8 μm or less. In some embodiments, the conductive material has an average particle size of 0.7 μm or less. In some embodiments, the conductive material has an average particle size of 0.5 μm or less. In some embodiments, the conductive material has an average particle size of 0.2 μm or less. In some embodiments, the conductive material has an average particle size of 0.1 μm or less. When the conductive material has an average particle size within the above range, not only can the conductivity at the interface between the negative electrode current collector and the negative electrode active material layer be increased, but the interface can also be blurred to increase the adhesion between the two. The conductive material is usually aggregated in a direction parallel to the surface of the negative electrode current collector, and is hardly stacked in a direction perpendicular to the negative electrode current collector. In this case, if the average particle size of the conductive material is smaller than the average particle size of the negative electrode active material, the interface containing the conductive material between the negative electrode current collector and the negative electrode active material layer is very thin, which significantly reduces the DC internal resistance and thickness expansion rate of the electrochemical device and improves the safety of the electrochemical device.

[0033] In some embodiments, the conductive material includes at least one of carbon black, carbon fiber, graphene, and carbon nanotubes. In some embodiments, the carbon black includes at least one of acetylene black, furnace black, and ketjen black.

[0034] In some embodiments, the specific surface area of ​​the conductive material is X m 2 / g, X is in the range of 20 to 300. In some embodiments, X is in the range of 50 to 250. In some embodiments, X is in the range of 80 to 200. In some embodiments, X is in the range of 100 to 150. In some embodiments, X is 20, 50, 80, 100, 120, 150, 180, 200, 250, 280, or 300, or in a range consisting of any two of the foregoing values. When the specific surface area of ​​the conductive material is within the above ranges, the DC internal resistance and thickness expansion rate of the electrochemical device can be further reduced, which helps improve the safety of the electrochemical device.

[0035] The specific surface area (BET) of a conductive material can be measured by the following method: Using a surface area meter (for example, a fully automatic surface area measuring device manufactured by Okura Riken), a sample is pre-dried at 150°C for 30 minutes under a nitrogen stream, and then the specific surface area is measured by the nitrogen adsorption BET one-point method using a gas flow method, using a nitrogen-helium mixed gas in which the relative pressure of the nitrogen gas to the atmospheric pressure is accurately adjusted to 0.3.

[0036] The electrodes according to the present invention may be positive or negative electrodes.

[0037] positive electrode The positive electrode includes a positive electrode current collector and a positive electrode active material layer provided on one or both sides of the positive electrode current collector.

[0038] 1. Positive electrode active material layer The positive electrode active material layer includes a positive electrode active material, and the positive electrode active material layer may be a single layer or multiple layers. Each layer in a multiple layer positive electrode active material layer may include the same or different positive active materials. The positive electrode active material is any material that can reversibly insert and extract metal ions, such as lithium ions.

[0039] The type of the positive electrode active material is not particularly limited as long as it can electrochemically absorb and release metal ions (e.g., lithium ions). In some embodiments, the positive electrode active material is a material containing lithium and at least one transition metal. Examples of the positive electrode active material include, but are not limited to, lithium transition metal composite oxides and lithium-containing transition metal phosphate compounds.

[0040] In some embodiments, the transition metal in the lithium transition metal composite oxide may be V, Ti, Cr, Mn, Fe, Co, Ni, Cu, etc. In some embodiments, the lithium transition metal composite oxide may be LiCoO 2 Lithium cobalt composite oxides such as LiNiO 2 Lithium nickel composite oxides such as LiMnO 2 , LiMn 2 O 4 , Li 2 MnO 4 Lithium manganese composite oxides such as LiNi 1 / 3 Mn 1 / 3 Co 1 / 3 O 2 , LiNi 0.5 Mn 0.3 Co 0.2 O 2 In these lithium transition metal composite oxides, a part of the transition metal atoms that are the main components is replaced with other elements such as Na, K, B, F, Al, Ti, V, Cr, Mn, Fe, Co, Li, Ni, Cu, Zn, Mg, Ga, Zr, Si, Nb, Mo, Sn, and W. Examples of lithium transition metal composite oxides include LiNi 0.5 Mn 0.5 O 2 , LiNi 0.85 Co 0.10 Al 0.05 O 2 , LiNi 0.33 Co 0.33 Mn 0.33 O 2 , LiNi 0.45 Co 0.10 Al 0.45 O 2 , LiMn1.8 Al 0.2 O 4 and LiMn 1.5 Ni 0.5 O 4 Examples of combinations of lithium transition metal composite oxides include, but are not limited to, LiCoO 2 and LiMn 2 O 4 and combinations thereof, including, but not limited to, LiMn 2 O 4 A part of Mn may be replaced by a transition metal (e.g., LiNi 0.33 Co 0.33 Mn 0.33 O 2 ), LiCoO 2 A part of Co may be substituted with a transition metal.

[0041] In some embodiments, the transition metal in the lithium-containing transition metal phosphate compound may include V, Ti, Cr, Mn, Fe, Co, Ni, Cu, etc. In some embodiments, the lithium-containing transition metal phosphate compound may include LiFePO 4 , Li 3 Fe 2 (PO 4 ) 3 , LifeP 2 O 7 Iron phosphates such as LiCoPO 4 and the like, in which a part of the transition metal atoms that are the main components of these lithium-containing transition metal phosphate compounds are substituted with other elements such as Al, Ti, V, Cr, Mn, Fe, Co, Li, Ni, Cu, Zn, Mg, Ga, Zr, Nb, and Si.

[0042] In some embodiments, the positive electrode active material includes lithium phosphate, which improves the continuous charging characteristics of the electrochemical device. There is no limitation on the use of lithium phosphate. In some embodiments, the positive electrode active material and lithium phosphate are mixed and used. In some embodiments, the content of lithium phosphate is greater than 0.1%, greater than 0.3%, or greater than 0.5% by weight of the positive electrode active material and lithium phosphate. In some embodiments, the content of lithium phosphate is less than 10%, less than 8%, or less than 5% by weight of the positive electrode active material and lithium phosphate. In some embodiments, the content of lithium phosphate is within the range consisting of any two of the above values.

[0043] Surface Coating The surface of the positive electrode active material may have a substance attached thereto that is different in composition from the positive electrode active material. Examples of the surface-attached substance include, but are not limited to, oxides such as alumina, silica, titania, zirconia, magnesia, calcium oxide, boron oxide, antimony oxide, and bismuth oxide, sulfates such as lithium sulfate, sodium sulfate, potassium sulfate, magnesium sulfate, calcium sulfate, and aluminum sulfate, carbonates such as lithium carbonate, calcium carbonate, and magnesium carbonate, and carbon.

[0044] These surface-attaching substances can be attached to the surface of the positive electrode active material by the following methods: a method of dissolving or suspending the surface-attaching substance in a solvent, permeating the positive electrode active material, and drying; a method of dissolving or suspending a precursor of the surface-attaching substance in a solvent, permeating the positive electrode active material, and then reacting by heating, and a method of adding the precursor to the positive electrode active material and baking it. When carbon is attached, a method of mechanically attaching a carbon material (e.g., activated carbon, etc.) may be used.

[0045] In some embodiments, the content of the surface-attached material is greater than 0.1 ppm, greater than 1 ppm, or greater than 10 ppm based on the weight of the positive electrode active material layer. In some embodiments, the content of the surface-attached material is less than 10%, less than 5%, or less than 2% based on the weight of the positive electrode active material layer. In some embodiments, the content of the surface-attached material is within the range consisting of any two of the above values ​​based on the weight of the positive electrode active material layer.

[0046] By attaching a substance to the surface of the positive electrode active material, the oxidation reaction of the electrolyte on the surface of the positive electrode active material can be suppressed, and the life of the electrochemical device can be extended. If the amount of the surface-attached substance is too small, the effect is not fully manifested. If the amount of the surface-attached substance is too large, the ingress and egress of lithium ions is hindered, which may increase the resistance.

[0047] In the present invention, a positive electrode active material having a substance with a different composition attached to its surface is also referred to as a "positive electrode active material".

[0048] shape In some embodiments, the shape of the positive electrode active material particles may include, but is not limited to, block-like, polyhedral, spherical, elliptical, plate-like, needle-like, columnar, etc. In some embodiments, the positive electrode active material particles include primary particles, secondary particles, or a combination thereof. In some embodiments, the primary particles may aggregate to form secondary particles.

[0049] Tap Density In some embodiments, the tap density of the positive electrode active material is 0.5 g / cm 3 Super, 0.8g / cm 3 More than or equal to 1.0 g / cm 3When the tap density of the positive electrode active material is within the above range, the amount of dispersion medium required for forming the positive electrode active material layer and the amount of conductive material and positive electrode binder required can be reduced, thereby ensuring the packing rate of the positive electrode active material and the capacity of the electrochemical device. By using a complex oxide powder with a high tap density, a positive electrode active material layer having a high density can be formed. Generally, the higher the tap density, the more preferable it is, and there is no particular upper limit. In some embodiments, the tap density of the positive electrode active material is 4.0 g / cm 3 Less than 3.7g / cm 3 Less than or equal to 3.5g / cm 3 When the tap density of the positive electrode active material has the above upper limit, it is possible to suppress a decrease in the load characteristics.

[0050] The tap density of the positive electrode active material can be calculated by putting 5 g to 10 g of positive electrode active material powder into a 10 mL glass measuring cylinder, subjecting it to 200 strokes of 20 mm vibration, and obtaining the powder packing density (tap density).

[0051] Median diameter (D50) When the positive electrode active material particles are primary particles, the median diameter (D50) of the positive electrode active material particles refers to the primary particle diameter of the positive electrode active material particles. When the primary particles of the positive electrode active material particles are aggregated to form secondary particles, the median diameter (D50) of the positive electrode active material particles refers to the secondary particle diameter of the positive electrode active material particles.

[0052] In some embodiments, the median diameter (D50) of the positive electrode active material particles is greater than 0.3 μm, greater than 0.5 μm, greater than 0.8 μm, or greater than 1.0 μm. In some embodiments, the median diameter (D50) of the positive electrode active material particles is less than 30 μm, less than 27 μm, less than 25 μm, or less than 22 μm. In some embodiments, the median diameter (D50) of the positive electrode active material particles is within the range consisting of any two of the above values. When the median diameter (D50) of the positive electrode active material particles is within the above range, a positive electrode active material having a high tap density can be obtained, and the deterioration of the performance of the electrochemical device can be suppressed. On the other hand, during the manufacturing process of the positive electrode of the electrochemical device (i.e., when the positive electrode active material, the conductive material, the binder, etc. are slurried with a solvent and applied in the form of a film), problems such as the occurrence of stripes can be prevented. Here, by mixing two or more positive electrode active materials having different median diameters, the filling property during the preparation of the positive electrode can be further improved.

[0053] The median diameter (D50) of the positive electrode active material particles can be measured using a laser diffraction / scattering type particle size distribution analyzer. When using a HORIBA LA-920 as the particle size distribution analyzer, a 0.1% sodium hexametaphosphate aqueous solution is used as the dispersion medium used in the measurement, and the measurement refractive index is set to 1.24 after ultrasonic dispersion for 5 minutes.

[0054] Average primary particle size When the primary particles of the positive electrode active material particles are aggregated to form secondary particles, in some embodiments, the average primary particle size of the positive electrode active material is greater than 0.05 μm, greater than 0.1 μm, or greater than 0.5 μm. In some embodiments, the average primary particle size of the positive electrode active material is less than 5 μm, less than 4 μm, less than 3 μm, or less than 2 μm. In some embodiments, the average primary particle size of the positive electrode active material is within a range consisting of any two of the above values. When the average primary particle size of the positive electrode active material is within the above range, the powder packing property and specific surface area are ensured, the deterioration of the battery performance is suppressed, and appropriate crystallinity is obtained, thereby ensuring the reversibility of charging and discharging the electrochemical device.

[0055] The average primary particle diameter of the positive electrode active material can be obtained by observing an image obtained by a scanning electron microscope (SEM). For 50 primary particles selected from an SEM image at a magnification of 10,000 times, the maximum length of a slice obtained from the left and right boundary lines of the primary particles relative to a horizontal line is calculated, and the average value is calculated to obtain the average primary particle diameter.

[0056] Specific surface area (BET) In some embodiments, the specific surface area (BET) of the positive electrode active material is less than or equal to 0.1 m 2 / g, 0.2m 2 / g or more than 0.3m 2 In some embodiments, the specific surface area (BET) of the positive electrode active material is greater than 50 m 2 / g, less than 40m 2 / g or less than 30m 2 / g. In some embodiments, the specific surface area (BET) of the positive electrode active material is within the range consisting of any two of the above values. When the specific surface area (BET) of the positive electrode active material is within the above range, the performance of the electrochemical device can be ensured and the positive electrode active material can have good coating properties.

[0057] The specific surface area (BET) of the positive electrode active material can be measured by the following method: Using a surface area meter (e.g., a fully automatic surface area measuring device manufactured by Okura Riken), a sample is pre-dried at 150°C for 30 minutes under a nitrogen stream, and then the specific surface area is measured by a nitrogen adsorption BET one-point method using a gas flow method, using a nitrogen-helium mixed gas in which the relative pressure of the nitrogen gas to the atmospheric pressure is accurately adjusted to 0.3.

[0058] Positive electrode conductive material The type of the positive electrode conductive material is not limited, and any known conductive material can be used. Examples of the positive electrode conductive material include, but are not limited to, graphite such as natural graphite and artificial graphite, carbon black such as acetylene black, carbon materials such as amorphous carbon such as needle coke, carbon nanotubes, graphene, etc. The positive electrode conductive material can be used alone or in any combination.

[0059] In some embodiments, the content of the positive electrode conductive material is greater than 0.01%, greater than 0.1%, or greater than 1% based on the weight of the positive electrode active material layer. In some embodiments, the content of the positive electrode conductive material is less than 10%, less than 8%, or less than 5% based on the weight of the positive electrode active material layer. When the content of the positive electrode conductive material is within the above range, sufficient conductivity and capacity of the electrochemical device can be ensured.

[0060] Positive electrode binder The type of positive electrode binder used in the manufacture of the positive electrode active material layer is not particularly limited, and in the case of the coating method, any material that can be dissolved or dispersed in the liquid medium used in the manufacture of the electrode may be used. Positive electrode binders include resin-based polymers such as polyethylene, polypropylene, polyethylene terephthalate, polymethyl methacrylate, polyimide, aromatic polyamide, cellulose, and cellulose nitrate, rubber-like polymers such as styrene butadiene rubber (SBR), nitrile rubber (NBR), fluororubber, isoprene rubber, polybutadiene rubber, and ethylene-propylene rubber, styrene-butadiene-styrene block copolymers or hydrogenated products thereof, ethylene-propylene-diene terpolymers (EPDM), styrene-ethylene-butadiene-ethylene copolymers, and styrene-isoprene. The positive electrode binder may be one or more of the following: thermoplastic elastomer-like polymers such as styrene block copolymers or hydrogenated products thereof, soft resin-like polymers such as syndiotactic-1,2-polybutadiene, polyvinyl acetate, ethylene-vinyl acetate copolymers, and propylene-α-olefin copolymers, fluorine-based polymers such as polyvinylidene fluoride (PVDF), polytetrafluoroethylene, fluorinated polyvinylidene fluoride, and polytetrafluoroethylene-ethylene copolymers, and polymer compositions having ionic conductivity for alkali metal ions (especially lithium ions). The positive electrode binder may be used alone or in any combination.

[0061] In some embodiments, the positive electrode binder content is greater than 0.1%, greater than 1%, or greater than 1.5% based on the weight of the positive electrode active material layer. In some embodiments, the positive electrode binder content is less than 10%, less than 5%, less than 4%, or less than 3% based on the weight of the positive electrode active material layer. When the positive electrode binder content is within the above range, the positive electrode has good electrical conductivity and sufficient mechanical strength to ensure the capacity of the electrochemical device.

[0062] solvent The type of solvent for forming the positive electrode slurry is not limited, and any solvent may be used as long as it can dissolve or disperse the positive electrode active material, the conductive material, the positive electrode binder, and the thickener used as needed. The solvent for forming the positive electrode slurry may be either an aqueous solvent or an organic solvent. Examples of the aqueous medium include, but are not limited to, water, and a mixture of alcohol and water. Examples of the organic medium include, but are not limited to, aliphatic hydrocarbons such as hexane, aromatic hydrocarbons such as benzene, toluene, xylene, and methylnaphthalene, heterocyclic compounds such as quinoline and pyridine, ketones such as acetone, methyl ethyl ketone, and cyclohexanone, esters such as methyl acetate and methyl acrylate, amines such as diethylenetriamine and N,N-dimethylaminopropylamine, ethers such as diethyl ether, propylene oxide, and tetrahydrofuran (THF), amides such as N-methylpyrrolidone (NMP), dimethylformamide, and dimethylacetamide, and aprotic polar solvents such as hexamethylphosphamide and dimethylsulfoxide.

[0063] Thickener A thickener is usually used to adjust the viscosity of the slurry. When an aqueous medium is used, a slurry can be made using a thickener and a styrene butadiene rubber (SBR) emulsion. The type of thickener is not particularly limited, and examples thereof include, but are not limited to, carboxymethyl cellulose, methyl cellulose, hydroxymethyl cellulose, ethyl cellulose, polyvinyl alcohol, oxidized starch, phosphorylated starch, casein, and salts thereof. The thickeners can be used alone or in any combination.

[0064] In some embodiments, the content of the thickener is greater than 0.1%, greater than 0.2%, or greater than 0.3%, based on the weight of the positive electrode active material layer. In some embodiments, the content of the thickener is less than 5%, less than 3%, or less than 2%, based on the weight of the positive electrode active material layer. In some embodiments, the content of the thickener is within the range consisting of any two of the above values, based on the weight of the positive electrode active material layer. When the content of the thickener is within the above range, the positive electrode slurry can have good coating properties, and the decrease in capacity and the increase in resistance of the electrochemical device can be suppressed.

[0065] Positive electrode active material content In some embodiments, the content of the positive electrode active material is greater than 80%, greater than 82%, or greater than 84% based on the weight of the positive electrode active material layer. In some embodiments, the content of the positive electrode active material is less than 99% or less than 98% based on the weight of the positive electrode active material layer. In some embodiments, the content of the positive electrode active material is within the range consisting of any two of the above values ​​based on the weight of the positive electrode active material layer. When the content of the positive electrode active material is within the above range, the electric capacity of the positive electrode active material in the positive electrode active material layer can be ensured and the strength of the positive electrode can be maintained.

[0066] Density of the positive electrode active material layer The positive electrode active material layer obtained by coating and drying can be subjected to a pressing process using a manual press, a roll press, or the like in order to increase the packing density of the positive electrode active material. In some embodiments, the density of the positive electrode active material layer is 1.5 g / cm 3 Super, 2g / cm 3 More than 2.2g / cm 3 In some embodiments, the density of the positive electrode active material layer is greater than 5 g / cm 3 Less than 4.5g / cm 3 Less than or equal to 4g / cm 3 In some embodiments, the density of the positive electrode active material layer is within the range consisting of any two of the above values. When the density of the positive electrode active material layer is within the above range, the electrochemical device can have good charge / discharge characteristics and can simultaneously suppress an increase in resistance.

[0067] Thickness of the positive electrode active material layer The thickness of the positive electrode active material layer refers to the thickness of the positive electrode active material layer on either side of the positive electrode current collector. In some embodiments, the thickness of the positive electrode active material layer is greater than 10 μm, or greater than 20 μm. In some embodiments, the thickness of the positive electrode active material layer is less than 500 μm, or less than 450 μm.

[0068] Method for producing positive electrode active material The positive electrode active material can be produced by a general method for producing inorganic compounds. To produce a spherical or elliptical positive electrode active material, the raw material of the transition metal is dissolved or crushed and dispersed in a solvent such as water, the pH is adjusted while stirring, a spherical precursor is produced and recovered, and after drying as necessary, LiOH, Li 2 CO 3 , LiNO 3 and calcining the mixture at a high temperature to obtain a positive electrode active material.

[0069] 2, Positive electrode current collector The type of the positive electrode current collector is not particularly limited, and may be any material known to be suitable for use as a positive electrode current collector. Positive electrode current collectors include, but are not limited to, metal materials such as aluminum, stainless steel, nickel plating, titanium, tantalum, and carbon materials such as carbon cloth and carbon paper. In some embodiments, the positive electrode current collector is a metal material. In some embodiments, the positive electrode current collector is aluminum.

[0070] The form of the positive electrode current collector is not particularly limited. When the positive electrode current collector is a metal material, the form of the positive electrode current collector includes, but is not limited to, a metal foil, a metal cylinder, a metal coil material, a metal plate, a metal foil, a metal plate net, a pressed metal, a foam metal, and the like. When the positive electrode current collector is a carbon material, the form of the positive electrode current collector includes, but is not limited to, a carbon plate, a carbon thin film, a carbon cylinder, and the like. In some embodiments, the positive electrode current collector is a metal foil. In some embodiments, the metal foil is in a net shape. The thickness of the metal foil is not particularly limited. In some embodiments, the thickness of the metal foil is greater than 1 μm, greater than 3 μm, or greater than 5 μm. In some embodiments, the thickness of the metal foil is less than 1 mm, less than 100 μm, or less than 50 μm. In some embodiments, the thickness of the metal foil is within the range consisting of any two of the above values.

[0071] In order to reduce the electronic contact resistance between the positive electrode current collector and the positive electrode active material layer, the surface of the positive electrode current collector may contain a conductive additive, which may include, but is not limited to, carbon, precious metals such as gold, platinum, and silver.

[0072] The thickness ratio of the positive electrode active material layer to the positive electrode current collector is the thickness of the positive electrode active material layer on one side divided by the thickness of the positive electrode current collector, and the value is not particularly limited. In some embodiments, the thickness ratio is less than 50, less than 30, or less than 20. In some embodiments, the thickness ratio is greater than 0.5, greater than 0.8, or greater than 1. In some embodiments, the thickness ratio is within the range consisting of any two of the above values. When the thickness ratio is within the above range, heat dissipation from the positive electrode current collector during charging and discharging at a high current density can be suppressed, and the capacity of the electrochemical device can be ensured.

[0073] 3. How to make the positive electrode The positive electrode can be produced by forming a positive electrode active material layer containing a positive electrode active material and a binder on a current collector. The positive electrode using the positive electrode active material can be produced by a normal method. That is, the positive electrode active material and the binder, and if necessary, a conductive material and a thickener, etc. are dry-mixed to form a sheet, and the obtained sheet is pressed onto the positive electrode current collector, or these materials are dissolved or dispersed in a liquid medium to form a slurry, and the slurry is applied to the positive electrode current collector and dried to form a positive electrode active material layer on the current collector, thereby obtaining a positive electrode.

[0074] negative electrode The negative electrode includes a negative electrode current collector and a negative electrode active material layer provided on one or both sides of the negative electrode current collector, the negative electrode active material layer including a negative electrode active material. The negative electrode active material layer may be a single layer or multiple layers, and each layer in the multiple layers of the negative electrode active material may include the same or different negative electrode active materials. The negative electrode active material may be any material capable of reversibly inserting and extracting metal ions, such as lithium ions. In some embodiments, the chargeable capacity of the negative electrode active material is greater than the discharge capacity of the positive electrode active material to prevent inadvertent deposition of lithium metal on the negative electrode during charging.

[0075] The current collector that holds the negative electrode active material can be any known current collector. The negative electrode current collector can be made of metal materials such as aluminum, copper, nickel, stainless steel, and nickel-plated steel, but is not limited thereto. In some embodiments, the negative electrode current collector is copper.

[0076] When the negative electrode current collector is a metal material, the form of the negative electrode current collector includes, but is not limited to, a metal foil, a metal cylinder, a metal coil material, a metal plate, a metal film, a mesh made of a metal plate, a pressed metal, a metal foam, etc. In some embodiments, the negative electrode current collector is a metal film. In some embodiments, the negative electrode current collector is a copper foil. In some embodiments, the negative electrode current collector is a rolled copper foil based on a rolling method or an electrolytic copper foil based on an electrolytic method.

[0077] In some embodiments, the thickness of the negative electrode current collector is greater than 1 μm, or greater than 5 μm. In some embodiments, the thickness of the negative electrode current collector is less than 100 μm, or less than 50 μm. In some embodiments, the thickness of the negative electrode current collector is within the range consisting of any two of the above values.

[0078] The negative electrode active material is not particularly limited as long as it can reversibly absorb and release lithium ions. Examples of the negative electrode active material include, but are not limited to, carbon materials such as natural graphite and artificial graphite, metals such as silicon (Si) and tin (Sn), and oxides of metal elements such as Si and Sn. The negative electrode active materials can be used alone or in combination.

[0079] The negative electrode active material layer may also include a negative electrode binder. The negative electrode binder can enhance the bonding between the negative electrode active material particles and the bonding between the negative electrode active material and the current collector. The type of the negative electrode binder is not particularly limited, and may be a material that is stable to the electrolyte and the solvent used in the manufacture of the electrode. In some embodiments, the negative electrode binder includes a resin binder. Examples of the resin binder include, but are not limited to, fluororesin, polyacrylonitrile (PAN), polyimide resin, acrylic resin, polyolefin resin, and the like. When the negative electrode mixture slurry is manufactured using an aqueous solvent, examples of the negative electrode binder include, but are not limited to, carboxymethylcellulose (CMC) or a salt thereof, styrene-butadiene rubber (SBR), polyacrylic acid (PAA) or a salt thereof, polyvinyl alcohol, and the like.

[0080] The negative electrode can be produced by the following method: A negative electrode mixture slurry containing a negative electrode active material, a resin binder, etc. is applied onto a negative electrode current collector, and then dried and rolled to form a negative electrode active material layer on both sides of the negative electrode current collector, thereby obtaining a negative electrode.

[0081] II, electrolyte The electrolytic solution used in the electrochemical device of the present invention includes an electrolyte and a solvent that dissolves the electrolyte. In some embodiments, the electrolytic solution used in the electrochemical device of the present invention further includes an additive.

[0082] Another feature of the electrochemical device of the present invention is that the electrolyte comprises a compound containing a sulfur-oxygen double bond.

[0083] In some embodiments, the compound containing a sulfur-oxygen double bond includes at least one of a cyclic sulfate, a chain sulfate, a chain sulfonate, a cyclic sulfonate, a chain sulfite, and a cyclic sulfite.

[0084] In some embodiments, the cyclic sulfates can include, but are not limited to, one or more of 1,2-ethylene sulfate, 1,2-propylene sulfate, 1,3-propylene sulfate, 1,2-butylene sulfate, 1,3-butylene sulfate, 1,4-butylene sulfate, 1,2-pentylene sulfate, 1,3-pentylene sulfate, 1,4-pentylene sulfate, and 1,5-pentylene sulfate.

[0085] In some embodiments, the linear sulfate esters include, but are not limited to, one or more of dimethyl sulfate, ethyl methyl sulfate, and diethyl sulfate.

[0086] In some embodiments, the linear sulfonate esters include, but are not limited to, one or more of fluorosulfonates such as methyl fluorosulfonate and ethyl fluorosulfonate, methyl methanesulfonate, ethyl methanesulfonate, butyl dimethylsulfonate, methyl 2-(methanesulfonyloxy)propionate, and ethyl 2-(methanesulfonyloxy)propionate.

[0087] In some embodiments, the cyclic sulfonate ester may be 1,3-propane sultone, 1-fluoro-1,3-propane sultone, 2-fluoro-1,3-propane sultone, 3-fluoro-1,3-propane sultone, 1-methyl-1,3-propane sultone, 2-methyl-1,3-propane sultone, 3-methyl-1,3-propane sultone, 1-propene-1,3-sultone, 2-propylene-1,3-sultone, 1-fluoro-1-propene-1,3-sultone, 2-fluoro-1-propene-1,3-sultone, 3-fluoro-1-propene-1,3-sultone, 1-fluoro-2-propene-1,3-sultone, The sultone may include, but is not limited to, one or more of 1,4-butane sultone, 1,5-pentane sultone, methylene methane disulfonate, ethylene methane disulfonate, and the like.

[0088] In some embodiments, the linear sulfite ester may include, but is not limited to, one or more of dimethyl sulfite, ethyl methyl sulfite, and diethyl sulfite.

[0089] In some embodiments, the cyclic sulfites can include, but are not limited to, one or more of 1,2-ethylene sulfite, 1,2-propylene sulfite, 1,3-propylene sulfite, 1,2-butylene sulfite, 1,3-butylene sulfite, 1,4-butylene sulfite, 1,2-pentylene sulfite, 1,3-pentylene sulfite, 1,4-pentylene sulfite, and 1,5-pentylene sulfite.

[0090] In some embodiments, the compound containing a sulfur-oxygen double bond includes a compound represented by formula 1: [ka] Where: W is [ka] is selected from L is selected from a single bond and a methylene group, and two L's in the same ring structure are not simultaneously single bonds; m is 1, 2, 3 or 4; n is 0, 1 or 2, and p is 0, 1, 2, 3, 4, 5 or 6.

[0091] In some embodiments, the compound represented by formula 1 is [ka] Includes at least one of the following:

[0092] In some embodiments, when the content of the compound containing a sulfur-oxygen double bond is Y% based on the weight of the electrolyte, Y is in the range of 0.01 to 10. In some embodiments, Y is in the range of 0.1 to 8. In some embodiments, Y is in the range of 0.5 to 5. In some embodiments, Y is in the range of 1 to 3. In some embodiments, Y is 0.01, 0.05, 0.1, 0.5, 0.8, 1, 1.5, 2, 2.5, 3, 3.5, 4, 4.5, 5, 5.5, 6, 6.5, 7, 7.5, 8, 8.5, 9, 9.5, or 10, or in a range consisting of any two of the foregoing values. When the content of the compound containing a sulfur-oxygen double bond in the electrolyte is in the above range, it is helpful in further reducing the DC internal resistance and thickness expansion rate of the electrochemical device, and improving the safety of the electrochemical device.

[0093] In some embodiments, the content Y% of the compound containing a sulfur-oxygen double bond in the electrolyte and the area ratio A of the intermediate layer to the active material layer satisfy 0.009≦A×Y≦6. In some embodiments, A×Y satisfies 0.01≦A×Y≦5. In some embodiments, A×Y satisfies 0.05≦A×Y≦3. In some embodiments, A×Y satisfies 0.1≦A×Y≦2. In some embodiments, A×Y satisfies 0.5≦A×Y≦1. In some embodiments, A×Y is 0.009, 0.01, 0.05, 0.1, 0.5, 1, 2, 3, 4, 5, or 6, or within a range consisting of any two of the foregoing values. When the content Y% of the compound containing a sulfur-oxygen double bond in the electrolyte and the area ratio A of the intermediate layer to the active material layer satisfy the above relationship, the DC internal resistance and thickness expansion rate of the electrochemical device can be further reduced, and the safety of the electrochemical device can be improved.

[0094] In some embodiments, the content of the compound containing a sulfur-oxygen double bond in the electrolyte is Y% and the specific surface area of ​​the conductive material is X m 2 / g satisfies 0.2≦X×Y≦200. In some embodiments, X×Y satisfies 0.5≦X×Y≦150. In some embodiments, X×Y satisfies 1≦X×Y≦100. In some embodiments, X×Y satisfies 5≦X×Y≦80. In some embodiments, X×Y satisfies 10≦X×Y≦50. In some embodiments, X×Y is 0.2, 0.5, 1, 5, 10, 20, 50, 80, 100, 120, 150, 180 or 200, or within a range consisting of any two of the foregoing numerical values. The content Y% of the compound containing a sulfur-oxygen double bond in the electrolyte and the specific surface area X m of the conductive material are 2 When / g satisfies the above relationship, the DC internal resistance and thickness expansion rate of the electrochemical device can be further reduced, and the safety of the electrochemical device can be improved.

[0095] In some embodiments, the electrolyte further comprises: (a) a propionate ester; (b) an organic compound having a cyano group; (c) lithium difluorophosphate; (d) a compound represented by formula 2; At least one of [ka] Where: R 1 , R 2 , R 3 , R 4 , R 5 and R 6 are each independently hydrogen or C 1 -C 10 is an alkyl group, L 1 and L 2 are each independently -(CR 7 R 8 ) n - and R 7 and R 8 are each independently hydrogen or C 1 -C 10 is an alkyl group, and n is 1, 2 or 3.

[0096] (a) Propionate ester In some embodiments, the propionate ester comprises a compound of formula 3: [ka] Where: R 1 is selected from an ethyl group and a halogenated ethyl group; R 2 is C 1 -C 6 Alkyl groups and C 1 -C 6 The halogenated alkyl groups are selected from halogenated alkyl groups.

[0097] In some embodiments, the propionate ester includes, but is not limited to, methyl propionate, ethyl propionate, propyl propionate, butyl propionate, amyl propionate, methyl halopropionate, ethyl halopropionate, propyl halopropionate, butyl halopropionate, and amyl halopropionate. In some embodiments, the propionate ester is at least one selected from methyl propionate, ethyl propionate, propyl propionate, butyl propionate, and amyl propionate. In some embodiments, the halogen group in the methyl halopropionate, ethyl halopropionate, propyl halopropionate, butyl halopropionate, and amyl halopropionate is one or more selected from fluorine group (-F), chlorine group (-Cl), bromine group (-Br), and iodine group (-I). In some embodiments, the halogen group is a fluorine group (-F), thereby achieving better results.

[0098] In some embodiments, the content of the propionate ester is 10% to 60% based on the weight of the electrolyte. In some embodiments, the content of the propionate ester is 15% to 55% based on the weight of the electrolyte. In some embodiments, the content of the propionate ester is 30% to 50% based on the weight of the electrolyte. In some embodiments, the content of the propionate ester is 30% to 40% based on the weight of the electrolyte. By using a propionate ester having the above content, better effects can be obtained.

[0099] (b) Compounds containing a cyano group In some embodiments, the compound having a cyano group may be succinonitrile, glutaronitrile, adiponitrile, 1,5-dicyanopentane, 1,6-dicyanohexane, tetramethylsuccinonitrile, 2-methylglutaronitrile, 2,4-dimethylglutaronitrile, 2,2,4,4-tetramethylglutaronitrile, 1,4-dicyanopentane, 1,2-dicyanobenzene, 1,3-dicyanobenzene, 1,4-dicyanobenzene, ethylene glycol bis(propionitrile). Ether, 3,5-dioxa-pimelonitrile, 1,4-bis(cyanoethoxy)butane, diethylene glycol bis(2-cyanoethyl)ether, triethylene glycol bis(2-cyanoethyl)ether, tetraethylene glycol bis(2-cyanoethyl)ether, 1,3-bis(2-cyanoethoxy)propane, 1,4-bis(2-cyanoethoxy)butane, 1,5-bis(2-cyanoethoxy)pentane, ethylene glycol bis(4-cyanobutyl)ether, 1,4-dicyano -2-butene, 1,4-dicyano-2-methyl-2-butene, 1,4-dicyano-2-ethyl-2-butene, 1,4-dicyano-2,3-dimethyl-2-butene, 1,4-dicyano-2,3-diethyl-2-butene, 1,6-dicyano-3-hexene, 1,6-dicyano-2-methyl-3-hexene, 1,3,5-pentanetricarbonitrile, 1,2,3-propanetricarbonitrile, 1,3,6-hexanetricarbonitrile, 1,2,6-hexanetricarbonitrile, 1,2,3-tris These include, but are not limited to, one or more of (2-cyanoethoxy)propane, 1,2,4-tris(2-cyanoethoxy)butane, 1,1,1-tris(cyanoethoxymethylene)ethane, 1,1,1-tris(cyanoethoxymethylene)propane, 3-methyl-1,3,5-tris(cyanoethoxy)pentane, 1,2,7-tris(cyanoethoxy)heptane, 1,2,6-tris(cyanoethoxy)hexane, and 1,2,5-tris(cyanoethoxy)pentane.

[0100] The compound having a cyano group may be used alone or in any combination. When the electrolyte contains two or more compounds having a cyano group, the content of the compound having a cyano group means the total content of the two or more compounds having a cyano group. In some embodiments, the content of the compound having a cyano group is 0.1% to 15% based on the weight of the electrolyte. In some embodiments, the content of the compound having a cyano group is 0.5% to 10% based on the weight of the electrolyte. In some embodiments, the content of the compound having a cyano group is 1% to 8% based on the weight of the electrolyte. In some embodiments, the content of the compound having a cyano group is 3% to 5% based on the weight of the electrolyte.

[0101] (c) Lithium difluorophosphate (LiPO 2 F 2 ) In some embodiments, when the content of the lithium difluorophosphate is b% based on the weight of the electrolyte, b is in the range of 0.01 to 2. In some embodiments, b is in the range of 0.05 to 1.5. In some embodiments, b is in the range of 0.1 to 1. In some embodiments, b is in the range of 0.3 to 0.5. In some embodiments, b is 0.01, 0.05, 0.1, 0.15, 0.2, 0.25, 0.3, 0.35, 0.4, 0.45, 0.5, 0.8, 1, 1.2, 1.5, 1.8, or 2, or in the range consisting of any two of the aforementioned values. When the content of lithium difluorophosphate in the electrolyte is in the above range, the DC internal resistance and thickness expansion rate of the electrochemical device can be further reduced, and the safety of the electrochemical device can be improved.

[0102] In some embodiments, the content Y% of the compound containing a sulfur-oxygen double bond and the content b% of lithium difluorophosphate in the electrolyte satisfy 0.01≦Y / b≦100. In some embodiments, Y / b satisfies 0.05≦Y / b≦80. In some embodiments, Y / b satisfies 0.1≦Y / b≦50. In some embodiments, Y / b satisfies 0.5≦Y / b≦20. In some embodiments, Y / b satisfies 1≦Y / b≦10. In some embodiments, Y / b is 0.01, 0.05, 0.1, 0.5, 1, 5, 10, 20, 50, 80, or 100, or within a range consisting of any two of the foregoing values. When the content Y% of the compound containing a sulfur-oxygen double bond and the content b% of lithium difluorophosphate in the electrolyte satisfy the above relationship, the DC internal resistance and thickness expansion rate of the electrochemical device can be further reduced, and the safety of the electrochemical device can be improved.

[0103] (d) Compound represented by formula 2 In some embodiments, the compound represented by formula 2 is [ka] Includes at least one of the following:

[0104] In some embodiments, the content of the compound represented by formula 2 is 0.01% to 5% based on the weight of the electrolyte. In some embodiments, the content of the compound represented by formula 2 is 0.05% to 3% based on the weight of the electrolyte. In some embodiments, the content of the compound represented by formula 2 is 0.1% to 2% based on the weight of the electrolyte. In some embodiments, the content of the compound represented by formula 2 is 0.5% to 1% based on the weight of the electrolyte. In some embodiments, the content of the compound represented by formula 2 is 0.01%, 0.05%, 0.1%, 0.5%, 1%, 2%, 3%, 4%, or 5% based on the weight of the electrolyte, or within a range consisting of any two of the aforementioned values.

[0105] solvent In some embodiments, the electrolyte further comprises any non-aqueous solvent that can be used as a solvent for electrolytes known in the art.

[0106] In some embodiments, the non-aqueous solvent may include, but is not limited to, one or more of cyclic carbonates, chain carbonates, cyclic carboxylates, chain carboxylates, cyclic ethers, chain ethers, phosphorus-containing organic solvents, sulfur-containing organic solvents, and aromatic fluorine-containing solvents.

[0107] In some embodiments, the cyclic carbonate includes, but is not limited to, one or more of ethylene carbonate (EC), propylene carbonate (PC), and butylene carbonate. In some embodiments, the cyclic carbonate has 3 to 6 carbon atoms.

[0108] In some embodiments, the chain carbonate ester may include, but is not limited to, one or more of chain carbonate esters such as dimethyl carbonate, methyl ethyl carbonate, diethyl carbonate (DEC), methyl-n-propyl carbonate, ethyl-n-propyl carbonate, di-n-propyl carbonate, etc. The fluorine-substituted chain carbonate ester may include, but is not limited to, one or more of bis(fluoromethyl)carbonate, bis(difluoromethyl)carbonate, bis(trifluoromethyl)carbonate, bis(2-fluoroethyl)carbonate, bis(2,2-difluoroethyl)carbonate, bis(2,2,2-trifluoroethyl)carbonate, 2-fluoroethylmethylcarbonate, 2,2-difluoroethylmethylcarbonate, and 2,2,2-trifluoroethylmethylcarbonate.

[0109] In some embodiments, the cyclic carboxylic acid ester may include, but is not limited to, one or more of γ-butyrolactone and γ-valerolactone. In some embodiments, some of the hydrogen atoms of the cyclic carboxylic acid ester may be substituted with fluorine.

[0110] In some embodiments, the chain carboxylic acid ester may include, but is not limited to, one or more of methyl acetate, ethyl acetate, propyl acetate, isopropyl acetate, butyl acetate, sec-butyl acetate, isobutyl acetate, tert-butyl acetate, methyl propionate, ethyl propionate, propyl propionate, isopropyl propionate, methyl butyrate, ethyl butyrate, propyl butyrate, methyl isobutyrate, ethyl isobutyrate, methyl valerate, ethyl valerate, methyl pivalate, ethyl pivalate, etc. In some embodiments, a portion of the hydrogen atoms of the chain carboxylic acid ester may be substituted with fluorine. In some embodiments, the fluorine-substituted chain carboxylic acid ester may include, but is not limited to, methyl trifluoroacetate, ethyl trifluoroacetate, propyl trifluoroacetate, butyl trifluoroacetate, and 2,2,2-trifluoroethyl trifluoroacetate.

[0111] In some embodiments, the cyclic ethers include, but are not limited to, one or more of tetrahydrofuran, 2-methyltetrahydrofuran, 1,3-dioxolane, 2-methyl-1,3-dioxolane, 4-methyl-1,3-dioxolane, 1,3-dioxane, 1,4-dioxane, and dimethoxypropane.

[0112] In some embodiments, the linear ethers include, but are not limited to, one or more of dimethoxymethane, 1,1-dimethoxyethane, 1,2-dimethoxyethane, diethoxymethane, 1,1-diethoxyethane, 1,2-diethoxyethane, ethoxymethoxymethane, 1,1-ethoxymethoxyethane, and 1,2-ethoxymethoxyethane.

[0113] In some embodiments, the phosphorus-containing organic solvents include, but are not limited to, one or more of trimethyl phosphate, triethyl phosphate, dimethylethyl phosphate, methyldiethyl phosphate, ethylenemethyl phosphate, ethyleneethyl phosphate, triphenyl phosphate, trimethyl phosphite, triethyl phosphite, triphenyl phosphite, tri(2,2,2-trifluoroethyl)phosphate, and tri(2,2,3,3,3-pentafluoropropyl)phosphate, and the like.

[0114] In some embodiments, the sulfur-containing organic solvent may include, but is not limited to, one or more of sulfolane, 2-methylsulfolane, 3-methylsulfolane, dimethylsulfone, diethylsulfone, ethylmethylsulfone, methylpropylsulfone, dimethylsulfoxide, methyl methanesulfonate, ethyl methanesulfonate, methyl ethanesulfonate, ethyl ethanesulfonate, dimethyl sulfate, diethyl sulfate, and dibutyl sulfate.In some embodiments, some of the hydrogen atoms of the sulfur-containing organic solvent may be replaced by fluorine.

[0115] In some embodiments, the aromatic fluorine-containing solvent includes, but is not limited to, one or more of fluorobenzene, difluorobenzene, trifluorobenzene, tetrafluorobenzene, pentafluorobenzene, hexafluorobenzene, and trifluoromethylbenzene.

[0116] In some embodiments, the solvent used in the electrolyte of the present invention includes cyclic carbonate esters, chain carbonate esters, cyclic carboxylate esters, chain carboxylate esters, and combinations thereof. In some embodiments, the solvent used in the electrolyte of the present invention includes an organic solvent selected from the group consisting of ethylene carbonate, propylene carbonate, diethyl carbonate, ethyl propionate, propyl propionate, n-propyl acetate, ethyl acetate, and combinations thereof. In some embodiments, the solvent used in the electrolyte of the present invention includes ethylene carbonate, propylene carbonate, diethyl carbonate, ethyl propionate, propyl propionate, γ-butyrolactone, and combinations thereof.

[0117] Additives In some embodiments, the additives include, but are not limited to, one or more of fluorocarbonates, ethylene carbonate containing carbon-carbon double bonds, and acid anhydrides.

[0118] In some embodiments, the content of the additive is 0.01% to 15%, 0.1% to 10%, or 1% to 5% based on the weight of the electrolyte.

[0119] According to an embodiment of the present invention, the content of the propionate ester is 1.5 to 30 times, 1.5 to 20 times, 2 to 20 times, or 5 to 20 times that of the additive based on the weight of the electrolyte.

[0120] In some embodiments, the additive comprises one or more ethylene carbonates containing carbon-carbon double bonds, including, but not limited to, vinylene carbonate, methylvinylene carbonate, ethylvinylene carbonate, 1,2-dimethylvinylene carbonate, 1,2-diethylvinylene carbonate, fluorovinylene carbonate, trifluoromethylvinylene carbonate, vinylethylene carbonate, 1-methyl-2-vinylethylene carbonate, 1-ethyl-2-vinylethylene carbonate, 1-n-propyl-2-vinylethylene carbonate, 1-methyl-2-vinylethylene carbonate, 1,1-divinylethylene carbonate, 1,2-divinylethylene carbonate, 1,1-dimethyl-2-methyleneethylene carbonate, and 1,1-diethyl-2-methyleneethylene carbonate. In some embodiments, the ethylene carbonate containing carbon-carbon double bonds includes vinylene carbonate, which is easily obtained and can provide better results.

[0121] In some embodiments, the additive is a combination of a fluorocarbonate and ethylene carbonate containing a carbon-carbon double bond. In some embodiments, the additive is a combination of a fluorocarbonate and a compound containing a sulfur-oxygen double bond. In some embodiments, the additive is a combination of a fluorocarbonate and a compound having 2 to 4 cyano groups. In some embodiments, the additive is a combination of a fluorocarbonate and a cyclic carboxylic acid ester. In some embodiments, the additive is a combination of a fluorocarbonate and a cyclic phosphoric anhydride. In some embodiments, the additive is a combination of a fluorocarbonate and a carboxylic acid anhydride. In some embodiments, the additive is a combination of a fluorocarbonate and a sulfonic acid anhydride. In some embodiments, the additive is a combination of a fluorocarbonate and a carboxylic acid sulfonic acid anhydride.

[0122] electrolyte The electrolyte is not particularly limited, and any known electrolyte can be used. In the case of a lithium secondary battery, a lithium salt is usually used. An example of the electrolyte is LiPF 6 , LiBF 4 , LiClO 4 , LiAlF 4 , LiSbF 6 , LiWF 7 Inorganic lithium salts such as LiWOF 5 Lithium tungstates such as HCO 2 Li, C.H. 3 CO 2 Li, C.H. 2 FCO 2 Li, C.H.F. 2 CO 2 Li, C.F. 3 CO 2 Li, C.F. 3 CH 2 CO 2 Li, C.F. 3 CF 2 CO 2 Li, C.F. 3 CF 2 CF 2 CO 2 Li, C.F. 3 CF 2 CF 2 CF 2 CO 2 Lithium carboxylates such as Li, FSO 3 Li, C.H. 3 SO 3 Li, C.H. 2 FSO 3 Li, C.H.F. 2 SO 3 Li, C.F. 3 SO 3 Li, C.F. 3 CF 2 SO 3 Li, C.F. 3 CF 2 CF 2 SO 3 Li, C.F. 3 CF 2 CF 2 CF 2 SO3 Lithium sulfonate salts such as LiN(FCO) 2 , LiN(FCO)(FSO 2 ), LiN(FSO 2 ) 2 , LiN(FSO 2 )(CF 3 SO 2 ), LiN(CF 3 SO 2 ) 2 , LiN(C 2 F 5 SO 2 ) 2 , cyclic 1,2-perfluoroethanebissulfonylimide lithium, cyclic 1,3-perfluoropropanebissulfonylimide lithium, LiN(CF 3 SO 2 )(C 4 F 9 SO 2 ) and other imide lithium salts, LiC(FSO 2 ) 3 , LiC(CF 3 SO 2 ) 3 , LiC(C 2 F 5 SO 2 ) 3 Lithium methylated salts such as lithium methylated salts, lithium ... 4 (CF 3 ) 2 , LiPF 4 (C 2 F 5 ) 2 , LiPF 4 (CF 3 SO 2 ) 2 , LiPF 4 (C 2 F 5 SO 2 ) 2 , LiBF 3 CF3 , LiBF 3 C 2 F 5 , LiBF 3 C 3 F 7 , LiBF 2 (CF 3 ) 2 , LiBF 2 (C 2 F 5 ) 2 , LiBF 2 (CF 3 SO 2 ) 2 , LiBF 2 (C 2 F 5 SO 2 ) 2 lithium oxalatoborate salts such as lithium difluorooxalatoborate, lithium bis(oxalato)borate, and lithium oxalatophosphate salts such as lithium tetrafluorooxalatophosphate, lithium difluorobis(oxalato)phosphate, and lithium tris(oxalato)phosphate, but are not limited to these.

[0123] In certain embodiments, the electrolyte is LiPF 6 , LiSbF 6 , FSO 3 Li, C.F. 3 SO 3 Li, LiN(FSO 2 ) 2 , LiN(FSO 2 )(CF 3 SO 2 ), LiN(CF 3 SO 2 ) 2 , LiN(C 2 F 5 SO 2 ) 2 , cyclic 1,2-perfluoroethanebissulfonylimide lithium, cyclic 1,3-perfluoropropanebissulfonylimide lithium, LiC(FSO 2 ) 3 , LiC(CF 3 SO 2 )3 , LiC(C 2 F 5 SO 2 ) 3 , LiBF 3 CF 3 , LiBF 3 C 2 F 5 , LiPF 3 (CF 3 ) 3 , LiPF 3 (C 2 F 5 ) 3 , lithium difluorooxalatoborate, lithium bis(oxalato)borate, and lithium difluorobis(oxalato)phosphate, which helps to improve the output characteristics, high-rate charge / discharge characteristics, high-temperature storage characteristics, cycle characteristics, etc. of the electrochemical device.

[0124] The content of the electrolyte is not particularly limited as long as it does not impair the effect of the present invention. In some embodiments, the total molar concentration of lithium in the electrolyte is more than 0.3 mol / L, more than 0.4 mol / L, or more than 0.5 mol / L. In some embodiments, the total molar concentration of lithium in the electrolyte is less than 3 mol / L, less than 2.5 mol / L, or less than 2.0 mol / L. In some embodiments, the total molar concentration of lithium in the electrolyte is within a range consisting of any two of the above numerical values. When the electrolyte concentration is within the above range, the amount of lithium, which is a charged particle, is not too small, and the viscosity can be set to an appropriate range, making it easy to ensure good electrical conductivity.

[0125] When more than one electrolyte is used, the electrolyte comprises at least one salt selected from the group consisting of monofluorophosphate, borate, oxalate, and fluorosulfonate. In some embodiments, the electrolyte comprises a salt selected from the group consisting of monofluorophosphate, oxalate, and fluorosulfonate. In some embodiments, the electrolyte comprises a lithium salt. In some embodiments, the content of the salt selected from the group consisting of monofluorophosphate, borate, oxalate, and fluorosulfonate is greater than 0.01%, or greater than 0.1%, based on the weight of the electrolyte. In some embodiments, the content of the salt selected from the group consisting of monofluorophosphate, borate, oxalate, and fluorosulfonate is less than 20%, or less than 10%, based on the weight of the electrolyte. In some embodiments, the content of the salt selected from the group consisting of monofluorophosphate, borate, oxalate, and fluorosulfonate is within the range consisting of any two of the above values.

[0126] In some embodiments, the electrolyte includes at least one material selected from the group consisting of monofluorophosphates, borates, oxalates, and fluorosulfonates, and at least one other salt. The other salts include the lithium salts exemplified above, and in some embodiments, the other salts include LiPF 6 , LiN(FSO 2 )(CF 3 SO 2 ), LiN(CF 3 SO 2 ) 2 , LiN(C 2 F 5 SO 2 ) 2 , cyclic 1,2-perfluoroethane bissulfonylimide lithium, cyclic 1,3-perfluoropropane bissulfonylimide lithium, LiC(FSO 2 ) 3 , LiC(CF 3 SO 2 ) 3 , LiC(C 2 F 5 SO 2 )3 , LiBF 3 CF 3 , LiBF 3 C 2 F 5 , LiPF 3 (CF 3 ) 3 , LiPF 3 (C 2 F 5 ) 3 In some embodiments, the other salt is LiPF 6 It is.

[0127] In some embodiments, the content of the other salt is greater than 0.01%, or greater than 0.1%, based on the weight of the electrolyte. In some embodiments, the content of the other salt is less than 20%, less than 15%, or less than 10%, based on the weight of the electrolyte. In some embodiments, the content of the other salt is within the range consisting of any two of the above values. The other salt in the above content helps to balance the electrical conductivity and viscosity of the electrolyte.

[0128] In addition to the above-mentioned solvent, additives, and electrolyte salt, the electrolyte may contain additional additives such as an anode film forming agent, a cathode protector, and an overcharge inhibitor, if necessary. The additives may be additives generally used in non-aqueous electrolyte secondary batteries, such as vinylene carbonate, succinic anhydride, biphenyl, cyclohexylbenzene, and 2,4-difluoroanisole, but are not limited thereto. These additives may be used alone or in any combination. The content of these additives in the electrolyte is not particularly limited, and may be appropriately set according to the type of the additive. In some embodiments, the content of the additive is less than 5%, or is within the range of 0.01% to 5%, or is within the range of 0.2% to 5%, based on the weight of the electrolyte.

[0129] III. Separator A separator is usually provided between the positive electrode and the negative electrode to prevent short circuiting, and in this case, the electrolyte of the present invention is usually impregnated into the separator before use.

[0130] The material and shape of the separator are not particularly limited as long as they do not significantly impair the effects of the present invention. The separator may be a resin, glass fiber, inorganic material, etc., made of a material stable to the electrolyte of the present invention. In some embodiments, the separator includes a porous sheet or nonwoven fabric with excellent liquid retention. Materials for the resin or glass fiber separator include, but are not limited to, polyolefin, aromatic polyamide, polytetrafluoroethylene, polyethersulfone, etc. In some embodiments, the polyolefin is polyethylene or polypropylene. In some embodiments, the polyolefin is polypropylene. The materials of the separator may be used alone or in any combination.

[0131] The separator may be a material obtained by laminating the above-mentioned materials, and examples thereof include, but are not limited to, three-layer separators obtained by laminating polypropylene, polyethylene, and polypropylene in this order.

[0132] Inorganic materials include, but are not limited to, oxides such as alumina and silica, nitrides such as aluminum nitride and silicon nitride, and sulfates (e.g., barium sulfate, calcium sulfate, etc.) Inorganic forms include, but are not limited to, particulate or fibrous forms.

[0133] The separator may be in the form of a film, for example, a nonwoven fabric, a woven fabric, a microporous film, etc., but is not limited thereto. In the form of a film, the pore size of the separator is 0.01 μm to 1 μm, and the thickness is 5 μm to 50 μm. In addition to the independent film-like separator, the following separators can also be used. That is, a separator formed by forming a composite porous layer containing the inorganic particles on the surface of the positive electrode and / or negative electrode using a resin binder can be used. For example, a separator formed by forming a porous layer on both sides of the positive electrode using a fluororesin as a binder and alumina particles having a 90% particle size of less than 1 μm can also be used.

[0134] The thickness of the separator is arbitrary. In some embodiments, the thickness of the separator is more than 1 μm, more than 5 μm, or more than 8 μm. In some embodiments, the thickness of the separator is less than 50 μm, less than 40 μm, or less than 30 μm. In some embodiments, the thickness of the separator is within a range consisting of any two of the above numerical values. When the thickness of the separator is within the above range, the rate characteristics and energy density of the electrochemical device can be ensured while ensuring insulation and mechanical strength.

[0135] When a porous material such as a porous sheet or nonwoven fabric is used as the separator, the porosity of the separator is arbitrary. In some embodiments, the porosity of the separator is more than 10%, more than 15%, or more than 20%. In some embodiments, the porosity of the separator is less than 60%, less than 50%, or less than 45%. In some embodiments, the porosity of the separator is within a range consisting of any two of the above values. When the porosity of the separator is within the above range, the resistance of the membrane can be suppressed while ensuring insulation and mechanical strength, and the electrochemical device can have good safety characteristics.

[0136] The average pore size of the separator is also arbitrary. In some embodiments, the average pore size of the separator is less than 0.5 μm, or less than 0.2 μm. In some embodiments, the average pore size of the separator is greater than 0.05 μm. In some embodiments, the average pore size of the separator is within the range consisting of any two of the above values. If the average pore size of the separator exceeds the above range, a short circuit is likely to occur. If the average pore size of the separator is within the above range, the electrochemical device can have good safety characteristics.

[0137] IV. Electrochemical device assembly The electrochemical device assembly includes an electrode assembly, a current collecting structure, an outer case, and a protective element.

[0138] Electrode Assembly The electrode assembly may have any one of a laminated structure in which the positive electrode and the negative electrode are laminated with the separator interposed therebetween, and a structure in which the positive electrode and the negative electrode are spirally wound with the separator interposed therebetween. In some embodiments, the ratio of the mass of the electrode assembly to the internal volume of the battery (electrode assembly occupancy rate) is more than 40% or more than 50%. In some embodiments, the electrode assembly occupancy rate is less than 90% or less than 80%. In some embodiments, the electrode assembly occupancy rate is within a range consisting of any two of the above numerical values. When the electrode assembly occupancy rate is within the above range, the capacity of the electrochemical device can be secured, and deterioration of characteristics such as repeated charge / discharge characteristics and high-temperature storage characteristics caused by an increase in internal pressure can be suppressed.

[0139] Current collection structure The current collecting structure is not particularly limited. In some embodiments, the current collecting structure is a structure that reduces the resistance of the wiring portion and the joint portion. When the electrode assembly has the above-mentioned laminated structure, a structure formed by bundling the metal core portions of the electrode layers and welding them to a terminal is preferably used. Since the internal resistance increases as the electrode area increases, it is also preferable to provide two or more terminals in the electrode to reduce the resistance. When the electrode assembly has the above-mentioned wound structure, the internal resistance can be reduced by providing two or more lead structures on each of the positive electrode and the negative electrode and bundling them to a terminal.

[0140] Outer case The material of the outer case is not particularly limited as long as it is a material that is stable against the electrolyte used. The outer case is made of metals such as nickel-plated steel, stainless steel, aluminum or aluminum alloy, magnesium alloy, or a laminated film of resin and aluminum foil, but is not limited thereto. In some embodiments, the outer case is made of metal such as aluminum or aluminum alloy, or a laminated film.

[0141] Examples of the metal exterior case include, but are not limited to, a sealed structure formed by welding metals together by laser welding, resistance welding, or ultrasonic welding, or a rivet structure formed by using the above metals via a resin gasket. Examples of the exterior case using the laminated film include, but are not limited to, a sealed structure formed by heat-sealing resin layers together. In order to improve the sealing property, a resin different from the resin used in the laminated film may be interposed between the resin layers. When the resin layer is heat-sealed via the current collecting terminal to form a sealed structure, the metal is bonded to the resin, so that a resin having a polar group or a modified resin into which a polar group has been introduced is used as the interposed resin. The shape of the exterior case is also arbitrary, and may be, for example, any one of a cylindrical shape, a rectangular shape, a laminate type, a button type, a large size, etc.

[0142] Protection Device The protective element may be a positive temperature coefficient (PTC) whose resistance increases when abnormal heat is generated or an excessive current flows, a thermal fuse, a thermistor, a valve (current cutoff valve) that cuts off the current flowing in the electric circuit by suddenly increasing the internal pressure or temperature of the battery when abnormal heat is generated, etc. The above protective element may be an element that does not operate under normal use of high current, or it may be designed so that abnormal heat generation or thermal runaway does not occur even without the protective element.

[0143] V. Application The electrochemical device of the present invention includes any device in which an electrochemical reaction occurs, and specific examples thereof include all types of primary batteries, secondary batteries, fuel cells, solar cells, or capacitors. In particular, the electrochemical device is a lithium secondary battery, including a lithium metal secondary battery or a lithium ion secondary battery.

[0144] The present invention further provides an electronic device comprising an electrochemical device according to the present invention.

[0145] The application of the electrochemical device of the present invention is not particularly limited, and can be used in any electronic device known in the prior art. In some embodiments, the electrochemical device of the present invention is used in, but is not limited to, notebook computers, pen-input computers, mobile computers, electronic book players, mobile phones, portable facsimiles, portable copy machines, portable printers, stereo headsets, video recorders, liquid crystal televisions, portable cleaners, portable CD players, minidiscs, transceivers, electronic organizers, calculators, memory cards, portable tape recorders, radios, backup power sources, motors, automobiles, motorcycles, power-assisted bicycles, bicycles, lighting equipment, toys, game machines, watches, power tools, flashlights, cameras, large-scale household storage batteries, and lithium ion capacitors.

[0146] Hereinafter, the preparation of a lithium ion battery will be described with reference to specific examples, and those skilled in the art should understand that the preparation method described in the present invention is merely exemplary, and any other suitable preparation method is within the scope of the present invention.

[0147] Working Example Hereinafter, examples and comparative examples of the lithium ion battery according to the present invention will be described and their performance will be evaluated.

[0148] 1. Preparation of lithium-ion batteries 1. Preparation of the Intermediate Layer The conductive material and styrene-butadiene rubber (SBR) were mixed with deionized water in a mass ratio of 64.5%:35.5% and stirred uniformly to obtain an intermediate layer slurry. This slurry was applied to the positive or negative electrode current collector.

[0149] 2. Preparation of negative electrode Artificial graphite, styrene-butadiene rubber, and sodium carboxymethylcellulose were mixed with deionized water in a mass ratio of 96%:2%:2% and stirred uniformly to obtain a negative electrode slurry. This negative electrode slurry was applied to a 12 μm current collector or intermediate layer. It was then dried, cold-rolled, punched, and tab-welded to obtain a negative electrode.

[0150] 3. Preparation of the positive electrode Lithium cobalt oxide (LiCoO 2 ), conductive material (Super-P), and polyvinylidene fluoride (PVDF) were mixed with N-methylpyrrolidone (NMP) in a mass ratio of 95%:2%:3%, and the mixture was stirred uniformly to obtain a positive electrode slurry. This positive electrode slurry was applied to a 12 μm aluminum foil or intermediate layer, dried, cold rolled, punched, and tabs were welded to obtain a positive electrode.

[0151] 4. Preparation of electrolyte EC, PC, and DEC (weight ratio 1:1:1) were mixed in a dry argon gas atmosphere, and LiPF 6 The base electrolyte was prepared by mixing LiPF 6The concentration of was 1.15 mol / L. By adding different amounts of additives to the basic electrolyte solution, electrolyte solutions of different examples and comparative examples were obtained.

[0152] The abbreviations and names of the components in the electrolyte are shown in the table below.

[0153] [Table 1]

[0154] 5. Preparation of the separator A polyethylene (PE) porous polymer film was used as the separator.

[0155] 6. Preparation of Lithium-ion Battery The obtained positive electrode, separator, and negative electrode were wound in order and placed in an exterior foil, leaving an inlet for injecting electrolyte. The electrolyte was injected through the inlet, and the battery was sealed. After the formation and capacity measurement processes, a lithium-ion battery was obtained.

[0156] 2.Measurement method 1. How to measure the DC internal resistance of lithium-ion batteries At 25°C, the lithium ion battery was charged at 1C (nominal capacity) to 4.45V at a constant current, then charged at a constant voltage of 4.45V until the current was 0.05C or less, left to stand for 5 minutes, then discharged at 1C to a cut-off voltage of 3V at a constant current, then charged at 1C (nominal capacity) to 4.45V at a constant current, then charged at a constant voltage of 4.45V until the current was 0.05C or less, left to stand for 5 minutes, then discharged at 1C to a cut-off voltage of 3V at a constant current, and cycled 400 times in this manner, recording the discharge capacity of the 400th cycle, adjusting the lithium ion battery to 20% of the required full charge capacity with the actual discharge capacity of the 400th cycle, and continuing to discharge at a current of 0.3C for 10 seconds. The DC internal resistance of the lithium ion battery was calculated by the following formula: DC internal resistance = (voltage before discharge - voltage at end of discharge) / current

[0157] For each Example or Comparative Example, 15 samples were measured and the average value was calculated.

[0158] 2. Measurement method for thickness expansion rate of lithium-ion batteries The lithium ion battery was left to stand at 25°C for 30 minutes, its thickness T1 was measured, and then the temperature was increased at a rate of 5°C / min. When the temperature reached 130°C, it was held for 30 minutes and the thickness T2 of the lithium ion battery was measured. The thickness expansion rate of the lithium ion battery was calculated using the following formula. Thickness expansion rate = [(T2-T1) / T1] x 100%

[0159] 3. Measurement results Table 1 shows the influence of the area ratio between the intermediate layer and the active material layer and the compound containing a sulfur-oxygen double bond in the electrolyte on the DC internal resistance and thickness expansion rate of the lithium ion battery.

[0160] [Table 2]

[0161] As a result, when the area ratio of the intermediate layer to the active material layer is within the range of 0.9 to 1.1 and the electrolyte contains a compound containing a sulfur-oxygen double bond, the expansion / contraction of the electrode piece due to the charge / discharge process can be suppressed, and the compound containing a sulfur-oxygen double bond is useful for stabilizing the surface structure of the electrode, the interface between the active material layer and the current collector, and the interface between the active material layer and the electrolyte, thereby significantly reducing the DC internal resistance and thickness expansion rate of the lithium ion battery and improving its safety.

[0162] The intermediate layer can be present in either the positive or negative electrode and can achieve substantially the same effect.

[0163] When the content of the compound containing a sulfur-oxygen double bond in the electrolyte is within the range of 0.01% to 10%, the DC internal resistance and thickness expansion rate of the lithium ion battery can be further reduced, and the safety can be improved.

[0164] When the area ratio A between the intermediate layer and the active material layer and the content Y% of the compound containing a sulfur-oxygen double bond in the electrolyte solution satisfy 0.009≦A×Y≦6, the DC internal resistance and thickness expansion rate of the lithium ion can be further reduced and its safety can be improved.

[0165] Table 2 shows the average particle size and specific surface area of ​​the conductive material, X m 2 / g, and specific surface area X m 2 The relationship between the amount of sulfur-oxygen double bond-containing compound in the electrolyte and the content Y% of the compound in the electrolyte is shown in Table 2. The only differences between Examples 2-1 to 2-12 and Example 1-1 are the parameters shown in Table 2.

[0166] [Table 3]

[0167] As a result, the conductive material can have the following characteristics: the average particle size of the conductive material is 1 μm or less, the specific surface area is 20 m 2 / g~300m 2 / g and the specific surface area is within X m 2 / g, and the content Y% of the compound containing a sulfur-oxygen double bond in the electrolyte satisfies 0.2≦X×Y≦200. When the conductive material has at least one of the above properties, the direct current internal resistance and thickness expansion rate of the lithium ion battery can be further reduced, and the safety of the lithium ion battery can be improved.

[0168] Table 3 shows the influence of the negative electrode active material on the DC internal resistance and thickness expansion rate as the performance of the lithium ion battery. The only differences between Examples 3-1 to 3-5 and Example 1-1 are the parameters shown in Table 3.

[0169] [Table 4]

[0170] As a result, by adjusting the negative electrode active material, the DC internal resistance and thickness expansion rate of the lithium ion battery can be further reduced and the safety of the lithium ion battery can be improved. When the negative electrode active material contains a silicon material or hard carbon, the reduction in the DC internal resistance and thickness expansion rate of the lithium ion battery is particularly remarkable.

[0171] Table 4 shows the influence of the positive electrode active material on the DC internal resistance and thickness expansion rate of the lithium ion battery. The only differences between Examples 4-1 to 4-5 and Example 1-1 are the parameters shown in Table 4.

[0172] [Table 5]

[0173] As a result, by adjusting the positive electrode active material, the DC internal resistance and thickness expansion rate of the lithium ion battery can be further reduced, and the safety thereof can be improved.

[0174] Table 5 shows the effects of the electrolyte components on the DC internal resistance and thickness expansion rate of the lithium ion battery. The only differences between Examples 5-1 to 5-31 and Example 1-1 are the parameters shown in Table 5.

[0175] [Table 6]

[0176] As a result, when the area ratio of the intermediate layer to the active material layer is within the range of 0.9 to 1.1 and the electrolyte contains a compound containing a sulfur-oxygen double bond, as well as a propionic acid ester, an organic compound having a cyano group, lithium difluorophosphate, and / or a compound represented by formula 2, the DC internal resistance and thickness expansion rate of the lithium ion battery can be further reduced and its safety can be improved.

[0177] Table 6 shows the effect of the relationship between the content Y% of the compound containing a sulfur-oxygen double bond in the electrolyte and the content b% of lithium difluorophosphate on the DC internal resistance and thickness expansion rate of the lithium ion battery. The only differences between Examples 6-1 to 6-11 and Example 1-1 are the parameters shown in Table 6.

[0178] [Table 7]

[0179] As a result, when the content of lithium difluorophosphate in the electrolyte is within the range of 0.01% to 2%, the DC internal resistance and thickness expansion rate of the lithium ion battery can be further reduced, and the safety can be improved.

[0180] When the content Y% of the compound containing a sulfur-oxygen double bond and the content b% of lithium difluorophosphate in the electrolyte further satisfy 0.01≦Y / b≦100, the DC internal resistance and thickness expansion rate of the lithium ion battery can be further reduced and the safety of the battery can be improved.

[0181] Throughout the specification, references to "an embodiment," "some of the embodiments," "one embodiment," "another example," "example," "embodiment," or "some of the examples" mean that at least one embodiment or example of the invention includes a particular feature, structure, material, or characteristic described in that embodiment or example. Thus, the appearances of, for example, "in some embodiments," "in an embodiment," "in another example," "in one example," "in a particular example," or "example" in various places throughout the specification do not necessarily refer to the same embodiment or example of the invention. Furthermore, particular features, structures, materials, or characteristics herein may be combined in any suitable manner in one or more embodiments or examples.

[0182] Although exemplary embodiments have been described and illustrated, those skilled in the art should understand that the above-described embodiments are not to be construed as limiting the present invention, and that modifications, substitutions, and alterations to the embodiments are possible without departing from the spirit, principle, and scope of the present invention.

Claims

1. An electrochemical device including electrodes and an electrolyte, the electrode includes a current collector, an intermediate layer located on the current collector, and an active material layer located on the intermediate layer, the intermediate layer contains a conductive material, and the conductive material has an average particle size of 1 μm or less; When the area ratio of the intermediate layer to the active material layer is A, A is in the range of 0.9 to 1.1, The electrolyte contains a compound containing a sulfur-oxygen double bond, When the content of the compound containing a sulfur-oxygen double bond is Y% based on the weight of the electrolyte, A and Y satisfy 0.9≦A×Y≦6; When the specific surface area of ​​the conductive material is X m 2 / g, X is in the range of 20 to 300, and X and Y satisfy 0.2≦X×Y≦200; The compound containing a sulfur-oxygen double bond is 1,3-propane sultone, 1,2-ethylene sulfate, 【Chemistry 1】 【Chemistry 2】 1. An electrochemical device comprising at least one of:

2. 10. The electrochemical device of claim 1, wherein the conductive material comprises at least one of carbon black, carbon fiber, graphene, and carbon nanotubes.

3. The electrochemical device of claim 1 , wherein Y is in the range of 1 to 10.

4. The electrolyte further comprises: (a) a propionate ester; (b) an organic compound having a cyano group; (c) lithium difluorophosphate; and (d) a compound represented by formula 2; and 【Chemistry 3】 R 1 , R 2 , R 3 , R 4 , R 5 and R 6 are each independently hydrogen or C 1 -C 10 is an alkyl group, L 1 and L 2 Each independently represents -(CR 7 R 8 ) n - and R 7 and R 8 are each independently hydrogen or C 1 -C 10 is an alkyl group, and 2. The electrochemical device of claim 1 , wherein n is 1, 2 or 3.

5. The compound represented by formula 2 is 【Chemistry 4】 5. The electrochemical device of claim 4, comprising at least one of:

6. 5. The electrochemical device according to claim 4, wherein the content of the propionate ester is in the range of 10% to 60% based on the weight of the electrolyte.

7. 5. The electrochemical device according to claim 4, wherein b is in the range of 0.01 to 2, where b % is the content of the lithium difluorophosphate based on the weight of the electrolyte.

8. 8. The electrochemical device according to claim 7, wherein Y is in the range of 1 to 10, and Y and b satisfy 0.01≦Y / b≦100.

9. An electronic device comprising an electrochemical device according to any one of claims 1 to 8.

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