Non-aqueous electrolytes, secondary batteries, and electrical devices

The use of a cyclic sulfate ester compound in non-aqueous electrolytes forms a stable SEI film to prevent electrolyte decomposition at the negative electrode, addressing performance and lifespan issues in lithium-ion secondary batteries.

JP7843422B2Active Publication Date: 2026-04-09CONTEMPORARY AMPEREX TECHNOLOGY (HONG KONG) LIMITED
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-03-09
Publication Date
2026-04-09

AI Technical Summary

Technical Problem

Lithium-ion secondary batteries face challenges in rapid charging performance, cycle life, and safety performance, particularly due to continuous electrolyte decomposition at the negative electrode during charging, which degrades battery life.

Method used

Incorporation of a cyclic sulfate ester compound as an additive in a non-aqueous electrolyte forms a stable inorganic-organic mixed solid electrolyte interface (SEI) film on the negative electrode, blocking electrons and preventing electrolyte decomposition, thereby enhancing cycle performance and battery life.

Benefits of technology

The SEI film improves the cycle performance and extends the lifespan of lithium-ion secondary batteries by reducing negative electrode resistance and stabilizing the film against volume changes during cycling.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present application provides a non-aqueous electrolyte, a secondary battery, and an electric device. The non-aqueous electrolyte contains an additive, and the additive contains a cyclic sulfate ester compound having a structure represented by general formula (I), in which R 1 , R 2 , R 3 , R 4 , R 5 and R 6 are each independently any one selected from a group having a structure represented by general formula (II), a hydrogen atom, a halogen atom, a C1-C6 alkyl group, a C1-C6 haloalkyl group, a C1-C6 alkoxy group, a C1-C6 haloalkoxy group, a C2-C6 alkenyl group, a C2-C6 ester group, a cyano group, and a sulfonic acid group, and n1, n2, and n3 are each independently any integer from 0 to 2.
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Description

[Technical Field]

[0001] This application relates to the field of battery technology, and more particularly to non-aqueous electrolytes, secondary batteries, and electrical devices. [Background technology]

[0002] In recent years, with the advancement of lithium-ion secondary battery technology, lithium-ion secondary batteries have been widely applied to many fields, including energy storage and power systems such as hydroelectric power plants, thermal power plants, wind power plants, and solar power plants, as well as power tools, electric bicycles, electric motorcycles, electric vehicles, military equipment, and aerospace. Because lithium-ion secondary batteries have undergone such significant development, there are increasingly higher demands on their rapid charging performance, cycle life, and safety performance.

[0003] Among battery performance aspects, extended lifespan is particularly required for lithium-ion secondary batteries used in automobiles. It is known that continuous reduction of the electrolyte at the negative electrode during the charging process is a cause of battery life degradation. To overcome these problems, attempts have been made to add various compounds to the electrolyte and form a passivation layer, also known as an SEI film, on the negative electrode surface. This SEI film is a good conductor of lithium ions and a poor conductor of electrons, thus suppressing the continuation of the lithium consumption reaction and protecting the electrode. Research has revealed that the formation of a solid electrolyte phase boundary film (SEI) with excellent properties such as uniformity, density, stability, low impedance, and good adhesion is advantageous for improving the electrochemical performance of batteries. [Overview of the project]

[0004] This application provides a non-aqueous electrolyte, a secondary battery, and an electrical device to improve the cycle performance of secondary batteries.

[0005] A first aspect of the present application provides a non-aqueous electrolyte containing an additive, the additive comprising a cyclic sulfate ester compound having a structure represented by general formula (I), [ka] Among them, R 1 , R 2 , R 3 and R 4 each independently represents a group having a structure represented by the general formula (II), a hydrogen atom, a halogen atom, a C1-C6 alkyl group, a C1-C6 haloalkyl group, a C1-C6 alkoxy group, a C1-C6 haloalkoxy group, a C2-C6 alkenyl group, a C2-C6 ester group, a cyano group or a sulfonic acid group, and n1 and n2 each independently represent an arbitrary integer of 0 to 2, The general formula (II) is

Chemical formula

[0006] When the above-mentioned cyclic sulfate ester compound having general formula (I) is used as an additive to a non-aqueous electrolyte, a more stable inorganic-organic mixed SEI film with higher electron-blocking capability is formed on the negative electrode side during the initial charging process of the secondary battery. Because this SEI film blocks electrons and prevents the continuous decomposition of the electrolyte at the negative electrode, the negative electrode piece has low resistance performance, the cycle performance of the battery core is greatly improved, and the battery life can be clearly extended.

[0007] In any embodiment of the first aspect, the cyclic sulfate ester compound has a structure represented by general formula (I-1), [ka] R 1 , R 2 , R 3 and R 4 Each of these is independently selected from a group having a structure represented by general formula (II-1), a hydrogen atom, a halogen atom, a C1-C6 alkyl group, a C1-C6 haloalkyl group, a C1-C6 alkoxy group, a C1-C6 haloalkoxy group, a C2-C6 alkenyl group, a C2-C6 ester group, a cyano group, and a sulfonic acid group. General formula (II-1) is, [ka] And R 5 and R 6 Each of these is independently one of the following: a group having a structure represented by general formula (II-1), a hydrogen atom, a halogen atom, a C1-C6 alkyl group, a C1-C6 haloalkyl group, a C1-C6 alkoxy group, a C1-C6 haloalkoxy group, a C2-C6 alkenyl group, a C2-C6 ester group, a cyano group, and a sulfonic acid group.

[0008] Since all the cyclic sulfate ester rings in the above general formula (I-1) are 5-membered rings, a denser SEI film can be formed. They have greater ring tension than 6-membered rings and are easier to form films at the positive and negative electrodes. However, 6-membered rings have relatively small ring tension, are relatively stable, and form films at the negative electrode is relatively slow, resulting in a relatively low efficiency in generating electron-blocking SEI films, which affects the effectiveness of the SEI film.

[0009] In any embodiment of the first aspect, optionally, R 1 , R 2 , R 3 , R 4 , R 5 and R 6Each of these is independently one selected from a group having a structure represented by general formula (II-1), a hydrogen atom, a halogen atom, a C1-C3 alkyl group, a C1-C3 haloalkyl group, a C1-C3 alkoxy group, a C1-C3 haloalkoxy group, a C2-C3 alkenyl group, a C1-C3 ester group, a cyano group, and a sulfonic acid group.

[0010] In any embodiment of the first aspect, optionally, R 1 , R 2 , R 3 , R 4 , R 5 and R 6 Each of these is independently selected from a group having a structure represented by general formula (II-1), a hydrogen atom, a halogen atom, a C1-C3 alkyl group, or a C1-C3 haloalkyl group.

[0011] In any embodiment of the first aspect, optionally, R 1 , R 2 , R 3 , R 4 , R 5 and R 6 Each of these is independently selected from a group having a structure represented by general formula (II-1), a hydrogen atom, a F atom, a Cl atom, a Br atom, a methyl group, an ethyl group, a propyl group, and an isopropyl group. In any embodiment of the first aspect, optionally, the base of the structure represented by general formula (II-1) is [ka] It is one of the following elements, where X is a F atom, a Cl atom, or a Br atom.

[0012] In any embodiment of the first aspect, optionally, R 1 , R 2 , R 3 and R 4 Each of them operates independently. [ka] X is one of the following: a hydrogen atom, a fluorine atom, a chlorine atom, a brinol atom, a methyl group, an ethyl group, and a propyl group, where X is a fluorine atom.

[0013] In any embodiment of the first aspect, optionally, R 1 , R 2 , R 3 and R 4 Each of them operates independently. [ka] X is one of the following: a hydrogen atom, a methyl group, and an ethyl group, and X is a fluorine atom.

[0014] In any embodiment of the first aspect, the cyclic sulfate ester compound is [ka] It is one or more compounds selected from the following:

[0015] The above method for producing the cyclic sulfate ester compound is simpler, more readily applicable and implementable industrially, and provides a more stable improvement in the cycle performance of secondary batteries.

[0016] In any embodiment of the first aspect, the mass content of the cyclic sulfate ester compound in the non-aqueous electrolyte is 0.001% to 20%, for example, 0.001%, 0.005%, 0.01%, 0.05%, 0.1%, 0.5%, 1%, 2%, 3%, 4%, 5%, 6%, 7%, 8%, 9%, 10%, 15%, 20%, selectively 0.1% to 10%, and even more selectively 0.1% to 5%. By utilizing the cyclic sulfate ester compound, a sufficiently stable organic-inorganic mixed SEI film with higher electron-blocking capability can be formed, which not only effectively improves the cycle performance of the secondary battery but also improves the output power of the secondary battery.

[0017] In any embodiment of the first aspect, the non-aqueous electrolyte further comprises an electrolyte, which optionally comprises an alkali metal salt electrolyte, which optionally comprises a lithium salt or a sodium salt, which optionally comprises one or more selected from the group consisting of lithium hexafluoride phosphate (LiPF6), lithium perchlorate (LiClO4), lithium hexafluoride arsenate (LiAsF6), lithium bis(fluorosulfonyl)imide (LiFSI), and lithium bis(trifluoromethanesulfonyl)imide (LiTFSI), and the sodium salt comprises one or more selected from the group consisting of sodium hexafluoride phosphate, sodium difluoro(oxalate)borate, sodium perchlorate, sodium bis(fluorosulfonyl)imide, sodium bis(trifluoromethanesulfonyl)imide, and sodium trifluoromethanesulfonic acid. Each of the above lithium salts may be used alone or in combination of two or more.

[0018] In any embodiment of the first aspect, the non-aqueous electrolyte further comprises a non-aqueous solvent, the non-aqueous solvent comprising one or more selected from the group consisting of cyclic carbonates, linear carbonates, nitrile solvents, ketone solvents and sulfone solvents. Selectively, the non-aqueous solvent comprises one or more selected from the group consisting of ethylene carbonate, propylene carbonate, ethyl methyl carbonate, diethyl carbonate, dimethyl carbonate, dipropyl carbonate, methyl propyl carbonate, ethyl propyl carbonate, butylene carbonate, fluoroethylene carbonate, methyl formate, methyl acetate, ethyl acetate, propyl acetate, methyl propionate, ethyl propionate, propyl propionate, methyl butyrate, ethyl butyrate, 1,4-butyrolactone, sulfolane, dimethyl sulfone, methyl ethyl sulfone, diethyl sulfone, tetrahydrofuran, ethylene glycol dimethyl ether, dioxolane, acetone, acetonitrile and butyronitrile. The above non-aqueous solvents may be used individually or in combination of two or more.

[0019] In any embodiment of the first aspect, the additive further comprises one or more sultone compounds, thereby further improving the battery's cycle performance. A second aspect of the present application provides a secondary battery comprising a positive electrode piece, an electrolyte, a separator film, and a negative electrode piece, wherein the electrolyte is one of the non-aqueous electrolytes described above. The secondary battery having the non-aqueous electrolyte according to the present application exhibits significantly improved output power and lifespan.

[0020] A third aspect of the present application provides an electrical device including a secondary battery, the secondary battery including any one of the above secondary batteries. The electrical device having the secondary battery according to the present application has a longer service life. [Brief explanation of the drawing]

[0021] To further clarify the technical concept in the embodiments of the present application, the drawings used in the embodiments of the present application are briefly introduced below. Clearly, the drawings in the following description represent only a few embodiments of the present application, and those skilled in the art can obtain further drawings without any creative effort. [Figure 1] This is a schematic diagram of a secondary battery according to one embodiment of the present invention. [Figure 2] Figure 1 is an exploded view of a secondary battery according to one embodiment of the present invention. [Figure 3] This is a schematic diagram of a battery module according to one embodiment of the present invention. [Figure 4] This is a schematic diagram of a battery pack according to one embodiment of the present invention. [Figure 5] Figure 4 is an exploded view of a battery pack according to one embodiment of the present invention. [Figure 6] This is a schematic diagram of an electrical device that uses a secondary battery as a power source according to one embodiment of the present invention.

[0022] In drawings, the drawings are not drawn to actual scale. Explanation of symbols: 1. Battery pack 2. Upper case 3. Lower case 4. Battery module 5, secondary battery 51. Casing 52. Electrode Assembly 53. Top cover assembly. [Modes for carrying out the invention]

[0023] The embodiments of this application will be described in more detail below, in conjunction with the drawings and examples. The detailed description of the following embodiments and the drawings are used to illustrate the principles of this application, but are not intended to limit the scope of this application; that is, this application is not limited to the embodiments described.

[0024] The following description will detail embodiments specifically disclosing the non-aqueous electrolyte, secondary battery, and electrical device relating to this application, with reference to the drawings as appropriate. However, unnecessary detailed explanations may be omitted. For example, detailed explanations of already well-known matters and repeated explanations of substantially identical configurations may be omitted. This is to avoid making the following description unnecessarily long and to facilitate understanding by those skilled in the art. Furthermore, the drawings and the following description are provided so that this application can be fully understood by those skilled in the art and are not intended to limit the essence of what is stated in the claims.

[0025] The “range” disclosed in this application is limited by a lower and upper limit, and a given range is limited by selecting one lower limit and one upper limit, and the boundaries of a special range are limited by the selected lower and upper limits. The range thus limited may or may not include the values ​​at both ends, and may be in any combination, that is, any lower limit can be combined with any upper limit to form a single range. For example, if the ranges 60~120 and 80~110 are given for a particular parameter, it is understood that the ranges 60~110 and 80~120 are also expected. Also, if the minimum range values ​​given are 1 and 2, and the maximum range values ​​are 3, 4 and 5, then the ranges 1~3, 1~4, 1~5, 2~3, 2~4 and 2~5 are all expected. In this application, unless otherwise stated, the numerical range “a~b” represents an abbreviated expression for any combination of real numbers between a and b, where a and b are both real numbers. For example, the numerical range "0 to 5" indicates that all real numbers between "0 to 5" have already been listed in this specification, and "0 to 5" is simply an abbreviation for combinations of those numbers. Furthermore, when a parameter is described as being an integer ≥ 2, it is equivalent to disclosing that the parameter is an integer such as 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, or 12.

[0026] Unless otherwise specified, all embodiments and optional embodiments of this application can be combined to form new technical solutions.

[0027] Unless otherwise specified, all technical features and optional technical features of this application can be combined to form new technical solutions.

[0028] Unless otherwise specified, all steps of this invention may be performed sequentially or randomly, but it is preferable that they be performed sequentially. For example, the fact that the above method includes steps (a) and (b) means that the above method may include steps (a) and (b) performed sequentially, or steps (b) and (a) performed sequentially. For example, the fact that the above method may further include step (c) means that step (c) can be added to the above method in any order, for example, the above method may include steps (a), (b) and (c), or steps (a), (c) and (b), or steps (c), (a) and (b), etc.

[0029] Unless otherwise specified, the terms “includes” and “inclusion” as used in this application may be open or closed. For example, the terms “includes” and “inclusion” above may include or include other components not listed, or may include or include only the listed components.

[0030] Unless otherwise specified, the term "or" in this application is inclusive. For example, the phrase "A or B" means "A, B, or both A and B." More specifically, any of the following conditions satisfy the "A or B" condition: A is true (or exists) and B is false (or does not exist); A is false (or does not exist) and B is true (or exists); or both A and B are true (or exist).

[0031] [Secondary battery]

[0032] Secondary batteries, also known as rechargeable batteries or storage batteries, are batteries that can be used continuously by recharging them after discharge to activate the active material.

[0033] Typically, a secondary battery includes a positive electrode, a negative electrode, a separator film, and an electrolyte. During the charging and discharging process of the battery, active ions (e.g., lithium ions or sodium ions) repeatedly insert into and remove from the positive and negative electrode. The separator film is placed between the positive and negative electrode and primarily serves to prevent short circuits between the positive and negative electrodes while simultaneously allowing the passage of active ions. The electrolyte is located between the positive and negative electrode and primarily serves to conduct active ions.

[0034] [Nonaqueous electrolyte] One embodiment of the present application provides a non-aqueous electrolyte containing an additive, the additive comprising a cyclic sulfate ester compound having a structure represented by general formula (I), [ka] Eventually, R 1 , R 2 , R 3 and R 4 n1 and n2 are each independently selected from a group having the structure represented by general formula (II), a hydrogen atom, a halogen atom, a C1-C6 alkyl group, a C1-C6 haloalkyl group, a C1-C6 alkoxy group, a C1-C6 haloalkoxy group, a C2-C6 alkenyl group, a C2-C6 ester group, a cyano group, and a sulfonic acid group, and n1 and n2 are each independently any integer from 0 to 2. General formula (II) is, [ka] And R 5 and R 6 Each of these is independently selected from a group having a structure represented by general formula (II), a hydrogen atom, a halogen atom, a C1-C6 alkyl group, a C1-C6 haloalkyl group, a C1-C6 alkoxy group, a C1-C6 haloalkoxy group, a C2-C6 alkenyl group, a C2-C6 ester group, a cyano group, and a sulfonic acid group, and n3 is any integer from 0 to 2. R 1 and R 2 It is not a hydrogen atom at the same time, and R 3 and R 4Rather than being a hydrogen atom simultaneously, or R 1 R 2 R 3 R 4 R 5 and R 6 satisfy the following conditions: R 1 and R 2 are hydrogen atoms simultaneously, and R 3 and R 4 are such that one of them is a hydrogen atom and the other is a group having a structure represented by general formula (II), a halogen atom, a C1-C6 alkyl group, a C1-C6 haloalkyl group, a C1-C6 alkoxy group, a C1-C6 haloalkoxy group, a C2-C6 alkenyl group, a C2-C6 ester group, a cyano group, or a sulfonic acid group, and in the group having the structure represented by general formula (II), R 5 and R 6 are not hydrogen atoms simultaneously, or R 1 R 2 R 3 R 4 R 5 and R 6 satisfy the following conditions: R 3 and R 4 are hydrogen atoms simultaneously, and R 1 and R 2 are such that one of them is a hydrogen atom and the other is a group having a structure represented by general formula (II), a halogen atom, a C1-C6 alkyl group, a C1-C6 haloalkyl group, a C1-C6 alkoxy group, a C1-C6 haloalkoxy group, a C2-C6 alkenyl group, a C2-C6 ester group, a cyano group, or a sulfonic acid group selected from a cyano group and a sulfonic acid group, and in the group having the structure represented by general formula (II), R 5 and R 6 are not hydrogen atoms simultaneously, a non-aqueous electrolyte.

[0035] When the above-mentioned cyclic sulfate ester compound having general formula (I) is used as an additive to a non-aqueous electrolyte, a more stable inorganic-organic mixed SEI film with higher electron-blocking capability is formed on the negative electrode side during the initial charging process of the secondary battery. Because this SEI film blocks electrons and prevents the continuous decomposition of the electrolyte at the negative electrode, the negative electrode piece has low resistance performance, the cycle performance of the battery core is greatly improved, and the battery life can be clearly extended.

[0036] Although the mechanism by which the above-mentioned cyclic sulfate ester compound produces the above-mentioned effect is not yet clear, the applicant has speculated as follows: Based on the fact that the cyclic sulfate ester compound has a skeleton connected by two cyclic sulfate ester rings, by introducing substituents such as alkyl groups, it is possible to create an elastic SEI film with longer organic chains at the negative electrode, thereby preventing the SEI film from breaking down in response to volume changes that occur at the negative electrode during the cycling process. By introducing substituents including F and N, it is possible to create an SEI film that is richer in more inorganic components such as LiF and Li3N that participate in film formation at the negative electrode, thereby improving the mechanical strength of the SEI film, further improving the stability of the SEI film at the negative electrode, and achieving the objective of improving the battery's cycle performance.

[0037] The alkyl group mentioned above may be a linear alkyl group, a branched alkyl group, or a cycloalkyl group, and includes, but is not limited to, a methyl group, an ethyl group, a propyl group, an isopropyl group, an n-butyl group, an isobutyl group, a cyclopropyl group, or a cyclobutyl group. The alkyl group in the haloalkyl group mentioned above includes, but is not limited to, a linear alkyl group, a branched alkyl group such as a methyl group, an ethyl group, a propyl group, an isopropyl group, an n-butyl group, an isobutyl group, a cyclopropyl group, or a cyclobutyl group. The halogen atom may be a fluorine atom, a base atom, or a bromine atom. One or more hydrogen atoms are substituted, and the alkoxy group includes, but is not limited to, a cyclopropyl group, an oxetanyl group, etc., and the halogen atom in the haloalkoxy group may be a fluorine atom, a base atom, or a bromine atom, and the halogen atom substitutes one or more hydrogen atoms in the alkoxy group, and the alkenyl group includes, but is not limited to, -CH=CH2, -CH=CH2CH3, -CH2CH=CH2, and -CH2CH=CH2CH3, and the ester group includes, but is not limited to, a methyl formate group, an ethyl formate group, an ethyl acetate group, a methyl propionate group, an ethyl propionate group, a propyl propionate group, etc.

[0038] In some embodiments of the present application, the above-mentioned cyclic sulfate ester compound has a structure represented by general formula (I-1), [ka] R 1 , R 2 , R 3 and R 4 Each of these is independently selected from a group having a structure represented by general formula (II-1), a hydrogen atom, a halogen atom, a C1-C6 alkyl group, a C1-C6 haloalkyl group, a C1-C6 alkoxy group, a C1-C6 haloalkoxy group, a C2-C6 alkenyl group, a C2-C6 ester group, a cyano group, and a sulfonic acid group. General formula (II-1) is, [ka] And R 5 and R 6 Each of these is independently one of the following: a group having a structure represented by general formula (II-1), a hydrogen atom, a halogen atom, a C1-C6 alkyl group, a C1-C6 haloalkyl group, a C1-C6 alkoxy group, a C1-C6 haloalkoxy group, a C2-C6 alkenyl group, a C2-C6 ester group, a cyano group, and a sulfonic acid group.

[0039] Since all the cyclic sulfate ester rings in the above general formula (I-1) are 5-membered rings, a denser SEI film can be formed. They have greater ring tension than 6-membered rings and are easier to form films at the positive and negative electrodes. However, 6-membered rings have relatively small ring tension, are relatively stable, and form films at the negative electrode is relatively slow, resulting in a relatively low efficiency in generating electron-blocking SEI films, which affects the effectiveness of the SEI film.

[0040] In some embodiments of this application, R 1 , R 2 , R 3 , R 4 , R 5 and R 6 Each of these is independently selected from a group having a structure represented by general formula (II-1), a hydrogen atom, a halogen atom, a C1-C3 alkyl group, a C1-C3 haloalkyl group, a C1-C3 alkoxy group, a C1-C3 haloalkoxy group, a C2-C3 alkenyl group, a C1-C3 ester group, a cyano group, and a sulfonic acid group.

[0041] In some embodiments of this application, R 1 , R 2 , R 3 , R 4 , R 5 and R 6 Each of these is independently selected from a group having a structure represented by general formula (II-1), a hydrogen atom, a halogen atom, a C1-C3 alkyl group, or a C1-C3 haloalkyl group.

[0042] In some embodiments of this application, R 1 , R 2 , R 3 , R 4 , R 5 and R 6 Each of these is independently selected from a group having a structure represented by general formula (II-1), a hydrogen atom, a F atom, a Cl atom, a Br atom, a methyl group, an ethyl group, a propyl group, and an isopropyl group.

[0043] In some embodiments of the present application, the base of the structure represented by the above general formula (II-1) is optionally: [ka] It is one of the following elements, where X is a F atom, a Cl atom, or a Br atom.

[0044] In some embodiments of this application, R 1 , R 2 , R 3 and R 4 Each is independent [ka] X is one of the following: a hydrogen atom, a fluorine atom, a chlorine atom, a brinol atom, a methyl group, an ethyl group, a propyl group, and an isopropyl group, and X is a fluorine atom.

[0045] In some embodiments of this application, R 1 , R 2 , R 3 and R 4 Each is independent [ka] X is one of the following: a hydrogen atom, a methyl group, and an ethyl group, and X is a fluorine atom.

[0046] In some embodiments of the present application, the above-mentioned cyclic sulfate ester compound is [ka] It is one or more compounds selected from the following:

[0047] Some of the above-mentioned cyclic sulfate ester compounds are simpler, more readily applicable and implemented industrially, and have a more stable effect in improving the lifespan of secondary batteries.

[0048] The dose of the cyclic sulfate ester compound in each of the above embodiments of this application may refer to the dose of a typical cyclic sulfate ester compound in a typical non-aqueous electrolyte. In some embodiments, the mass content of the cyclic sulfate ester compound in the non-aqueous electrolyte is 0.001% to 20%, for example, 0.001%, 0.005%, 0.01%, 0.05%, 0.1%, 0.5%, 1%, 2%, 3%, 4%, 5%, 6%, 7%, 8%, 9%, 10%, 15%, 20%, selectively 0.1% to 10%, and even more selectively 0.1% to 5%. By utilizing the cyclic sulfate ester compound, a more stable organic-inorganic mixed SEI film with higher electron-blocking capability can be sufficiently formed, which can not only effectively improve the cycle performance of the secondary battery but also improve the output power of the secondary battery. The above limitations on mass content prevent the SEI film from not functioning properly due to insufficient cyclic sulfate ester compound content, and also prevent the electrolyte viscosity from becoming too high and the SEI film formed on the negative electrode from becoming too thick due to excessive cyclic sulfate ester compound content, which would reduce the conductivity of the electrolyte and further diminish the improvement in cycle performance and charging capacity.

[0049] In some embodiments, the non-aqueous electrolyte further comprises an electrolyte, and any electrolyte generally usable in non-aqueous electrolytes may be used in the non-aqueous electrolyte of this application. Those skilled in the art can select the non-aqueous electrolyte depending on the battery system in which it is used, for example, by selecting a common electrolyte applicable to lithium-ion secondary batteries or sodium-ion secondary batteries. In some embodiments, the electrolyte in the non-aqueous electrolyte comprises an alkali metal salt-based electrolyte, and selectively the electrolyte comprises a lithium salt or a sodium salt, and selectively the lithium salt comprises one or more selected from the group consisting of lithium hexafluoride phosphate (LiPF6), lithium perchlorate (LiClO4), lithium hexafluoride arsenate (LiAsF6), lithium bis(fluorosulfonyl)imide (LiFSI), and lithium bis(trifluoromethanesulfonyl)imide (LiTFSI), and the sodium salt comprises one or more selected from the group consisting of sodium hexafluoride phosphate, sodium difluoro(oxalate)borate, sodium perchlorate, sodium bis(fluorosulfonyl)imide, sodium bis(trifluoromethanesulfonyl)imide, and sodium trifluoromethanesulfonic acid. Each of the above lithium salts or sodium salts may be used alone or in combination of two or more.

[0050] The electrolyte content in a non-aqueous electrolyte can refer to the electrolyte content in a typical non-aqueous electrolyte, and in some embodiments, the electrolyte content in the non-aqueous electrolyte is 0.1 to 5 mol / L, for example, 0.1 mol / L, 0.3 mol / L, 0.5 mol / L, 1 mol / L, 1.5 mol / L, 2 mol / L, 2.5 mol / L, 3 mol / L, 4 mol / L, or 5 mol / L, selectively 0.5 to 1.5 mol / L, and even more selectively 0.7 to 1.2 mol / L.

[0051] The non-aqueous solvent of this application can be selected from ordinary non-aqueous solvents for secondary batteries, and in some embodiments, the non-aqueous solvent includes one or more selected from the group consisting of cyclic carbonates, linear carbonates, nitrile solvents, ketone solvents and sulfone solvents. Selectively, the non-aqueous solvent includes one or more selected from the group consisting of ethylene carbonate, propylene carbonate, ethyl methyl carbonate, diethyl carbonate, dimethyl carbonate, dipropyl carbonate, methyl propyl carbonate, ethyl propyl carbonate, butylene carbonate, fluoroethylene carbonate, methyl formate, methyl acetate, ethyl acetate, propyl acetate, methyl propionate, ethyl propionate, propyl propionate, methyl butyrate, ethyl butyrate, 1,4-butyrolactone, sulfolane, dimethyl sulfone, methyl ethyl sulfone, diethyl sulfone, tetrahydrofuran, ethylene glycol dimethyl ether, dioxolane, acetone, acetonitrile and butyronitrile. The above non-aqueous solvents may be used alone or in mixtures of two or more. For example, a mixed solvent of cyclic carbonate esters and linear carbonate esters can be used to improve the load characteristics and low-temperature characteristics of a secondary battery. When the non-aqueous electrolyte according to this application is used in a solid battery, a solid solvent such as dimethyl sulfone can be used.

[0052] In addition to the above-mentioned additives, the additives may include negative electrode film additives, positive electrode film additives, and additives capable of improving certain battery performance, such as additives that improve the battery's overcharge performance or additives that improve the battery's high-temperature or low-temperature performance. In some embodiments, the additives further include one or more sultone compounds. Adding sultone compounds further improves the cycle performance of the secondary battery.

[0053] [Method for producing cyclic sulfate ester compounds having the structure represented by general formula (I)] A method for producing a cyclic sulfate ester compound having the structure represented by general formula (I) relating to this application refers to the following synthetic route: [ka] In this process, the reaction temperature of the first step is controlled to 30-60°C, and the reaction temperature of the second step is controlled to 10-30°C. The second step is catalyzed with a catalyst such as ruthenium trichloride trihydrate, and the oxidizing agent may be sodium hypochlorite, ozone, or the like.

[0054] [Positive electrode piece] A positive electrode piece generally includes a positive electrode current collector and a positive electrode film layer placed on at least one surface of the positive electrode current collector, the positive electrode film layer containing a positive electrode active material.

[0055] For example, the positive electrode current collector has two opposing surfaces in its own thickness direction, and the positive electrode film layer is installed on one or both of the two opposing surfaces of the positive electrode current collector.

[0056] In some embodiments, the positive electrode current collector can be a metal foil or a composite current collector. For example, aluminum foil can be used as the metal foil. The composite current collector may include a polymer material substrate and a metal layer formed on at least one surface of the polymer material substrate. The composite current collector can be formed by forming a metal material (such as aluminum, aluminum alloy, nickel, nickel alloy, titanium, titanium alloy, silver, and silver alloy) on a polymer material substrate (for example, a substrate such as polypropylene (PP), polyethylene terephthalate (PET), polybutylene terephthalate (PBT), polystyrene (PS), or polyethylene (PE)).

[0057] In some embodiments, the positive electrode active material can be any positive electrode active material used in batteries known in the art. For example, a positive electrode active material used in a lithium-ion secondary battery may include at least one of the following materials: olivine-structured lithium-containing phosphate, lithium transition metal oxide, and modified compounds thereof. However, the present application is not limited to these materials, and other conventional materials that can be used as positive electrode active materials for batteries may be used. These positive electrode active materials may be used individually or in combination of two or more. Examples of lithium transition metal oxides include lithium cobalt oxide (e.g., LiCoO2), lithium nickel oxide (e.g., LiNiO2), lithium manganese oxide (e.g., LiMnO2, LiMn2O4), lithium nickel cobalt oxide, lithium manganese cobalt oxide, lithium nickel manganese oxide, and lithium nickel cobalt manganese oxide (e.g., LiNi 1 / 3 Co 1 / 3 Mn 1 / 3 O2(NCM 333 Examples of lithium-containing phosphates with an olivine structure may include, but are not limited to, lithium iron phosphate (which may be abbreviated as LiFePO4 (which may be abbreviated as LFP)), composite materials of lithium iron phosphate and carbon, lithium manganese phosphate (which may be abbreviated as LiMnPO4), composite materials of lithium manganese phosphate and carbon, lithium manganese iron phosphate, and composite materials of lithium manganese iron phosphate and carbon.

[0058] As an example, the positive electrode active material used in a sodium-ion secondary battery may contain at least one of sodium transition metal oxides, polyanion-based compounds, and Prussian blue-based compounds. However, the present application is not limited to these materials, and other conventional materials that can be used as the positive electrode active material of the battery may also be used. These positive electrode active materials may be used alone as only one kind, or may be used in combination of two or more kinds. Among them, in the sodium transition metal oxide, the transition metal contains at least one selected from the group consisting of Mn, Fe, Ni, Co, Cr, Cu, Ti, Zn, V, Zr, and Ce. The sodium transition metal oxide is, for example, NaxMO2, where M contains one or more selected from the group consisting of Ti, V, Mn, Co, Ni, Fe, Cr, and Cu, and 0 < x ≦ 1. The polyanion-based compound is a compound having sodium ions, transition metal ions, and a tetrahedral (YO4) n- anion unit, the transition metal contains at least one selected from the group consisting of Mn, Fe, Ni, Co, Cr, Cu, Ti, Zn, V, Zr, and Ce, Y contains at least one selected from the group consisting of P, S, and Si, and n represents the valence state of (YO4) n- The polyanion-based compound may be a compound having sodium ions, transition metal ions, a tetrahedral (YO4) n- anion unit, and a halogen anion, the transition metal contains at least one selected from the group consisting of Mn, Fe, Ni, Co, Cr, Cu, Ti, Zn, V, Zr, and Ce, Y contains at least one selected from the group consisting of P, S, and Si, and n represents the valence state of (YO4) n- The halogen contains at least one selected from the group consisting of F, Cl, and Br. The polyanion-based compound may be a compound having sodium ions, a tetrahedral (YO4) n- anion unit, a polyhedron unit (ZO y ) m+ and a selective halogen anion, Y contains at least one selected from the group consisting of P, S, and Si, and n represents the valence state of (YO4) n-The valence state is shown, where Z represents a transition metal and includes at least one selected from the group consisting of Mn, Fe, Ni, Co, Cr, Cu, Ti, Zn, V, Zr, and Ce, and m is (ZO y ) m+ The valence state is shown, and the halogen contains at least one selected from the group consisting of F, Cl, and Br. Polyanionic compounds include NaFePO4, Na3V2(PO4)3, NaM'PO4F (where M' contains one or more selected from the group consisting of V, Fe, Mn, and Ni), and Na3(VO y )2(PO4)2F 3-2y It includes at least one selected from the group consisting of (0 ≤ y ≤ 1). Prussian blue compounds include sodium ions, transition metal ions, and cyanide ions (CN - The compound may have ). The transition metal includes at least one selected from the group consisting of Mn, Fe, Ni, Co, Cr, Cu, Ti, Zn, V, Zr, and Ce. The Prussian blue compound is, for example, Na a Me b Me' c (CN)6, of which Me and Me' each independently include at least one selected from the group consisting of Ni, Cu, Fe, Mn, Co and Zn, 0 <a≦2、0<b<1、0<c<1である。

[0059] In some embodiments, the positive electrode film layer may further selectively contain an adhesive. For example, the adhesive may include at least one of polyvinylidene fluoride (PVDF), polytetrafluoroethylene (PTFE), vinylidene fluoride-tetrafluoroethylene-propylene terpolymer, vinylidene fluoride-hexafluoropropylene-tetrafluoroethylene terpolymer, tetrafluoroethylene-hexafluoropropylene copolymer, and fluorine-containing acrylate resin.

[0060] In some embodiments, the positive electrode film layer may further selectively contain a conductive agent. For example, the conductive agent may include at least one of superconducting carbon, acetylene black, carbon black, Ketjen black, carbon dots, carbon nanotubes, graphene, and carbon nanofibers.

[0061] In some embodiments, positive electrode pieces can be manufactured as follows: components for manufacturing positive electrode pieces, such as positive electrode active material, conductive agent, adhesive and any other components, are dispersed in a solvent (e.g., N-methylpyrrolidone) to form a positive electrode slurry; the positive electrode slurry is applied to a positive electrode current collector; and after processes such as drying and cold pressing, a positive electrode piece can be obtained.

[0062] [Negative electrode piece] The negative electrode piece includes a negative electrode current collector and a negative electrode film layer placed on at least one surface of the negative electrode current collector, the negative electrode film layer comprising a negative electrode active material.

[0063] For example, the negative electrode current collector has two opposing surfaces in its own thickness direction, and the negative electrode film layer is installed on one or both of the two opposing surfaces of the negative electrode current collector.

[0064] In some embodiments, the negative electrode current collector can be a metal foil or a composite current collector. For example, copper foil may be used as the metal foil. The composite current collector may include a polymer material substrate and a metal layer formed on at least one surface of the polymer material substrate. The composite current collector can be formed by forming a metal material (such as copper, copper alloys, nickel, nickel alloys, titanium, titanium alloys, silver, and silver alloys) on a polymer material substrate (for example, a substrate such as polypropylene (PP), polyethylene terephthalate (PET), polybutylene terephthalate (PBT), polystyrene (PS), or polyethylene (PE)).

[0065] In some embodiments, the negative electrode active material can be any negative electrode active material for batteries known in the art. For example, the negative electrode active material may include at least one of materials such as artificial graphite, natural graphite, soft carbon, hard carbon, silicon-based materials, tin-based materials, and lithium titanate. The silicon-based material may be selected from at least one of elemental silicon, silicon oxygen compounds, silicon carbon composites, silicon nitrogen composites, and silicon alloys. The tin-based material may be selected from at least one of elemental tin, tin oxygen compounds, and tin alloys. However, the present application is not limited to these materials, and other conventional materials usable as negative electrode active materials for batteries may be used. These negative electrode active materials may be used individually or in combination of two or more.

[0066] In some embodiments, the negative electrode film layer may further selectively contain an adhesive. For example, the adhesive may be selected from at least one of styrene-butadiene rubber (SBR), polyacrylic acid (PAA), sodium polyacrylate (PAAS), polyacrylamide (PAM), polyvinyl alcohol (PVA), sodium alginate (SA), polymethacrylic acid (PMAA), and carboxymethyl chitosan (CMCS).

[0067] In some embodiments, the negative electrode film layer may further selectively contain a conductive agent. For example, the conductive agent may be selected from at least one of superconducting carbon, acetylene black, carbon black, Ketjen black, carbon dots, carbon nanotubes, graphene, and carbon nanofibers.

[0068] In some embodiments, the negative electrode film layer may further selectively contain other additives, such as thickeners (e.g., sodium carboxymethylcellulose (CMC-Na)).

[0069] In some embodiments, the negative electrode piece can be manufactured as follows: components for manufacturing the negative electrode piece, such as a negative electrode active material, a conductive agent, an adhesive, and any other components, are dispersed in a solvent (e.g., deionized water) to form a negative electrode slurry; the negative electrode slurry is applied to a negative electrode current collector; and after processes such as drying and cold pressing, a negative electrode piece can be obtained.

[0070] [Separator film] In some embodiments, the secondary battery further includes a separator film. The present application does not particularly limit the type of separator film, but any known porous separator film having good chemical and mechanical stability can be selected.

[0071] In some embodiments, the material of the separator film may be selected from at least one of glass fiber, nonwoven fabric, polyethylene, polypropylene, and polyvinylidene fluoride. The separator film may be a single-layer thin film or a multilayer composite thin film, and there are no particular limitations. If the separator film is a multilayer composite thin film, the materials of each layer may be homologous or homologous, and there are no particular limitations.

[0072] In some embodiments, the positive electrode piece, negative electrode piece, and separator film can be fabricated into an electrode assembly by a winding or lamination process.

[0073] In some embodiments, the secondary battery may include an outer packaging. This outer packaging can be used to enclose the electrode assembly and electrolyte.

[0074] In some embodiments, the outer packaging of the secondary battery may be a rigid casing, such as a rigid plastic casing, an aluminum case, or a steel case. The outer packaging of the secondary battery may also be a pouch, such as a bag-type pouch. The material of the pouch may be plastic, and examples of plastics include polypropylene, polybutylene terephthalate, and polybutylene succinate.

[0075] This invention does not impose any particular restrictions on the shape of the secondary battery, which may be cylindrical, rectangular, or any other shape. For example, Figure 1 shows a rectangular secondary battery 5 as an example.

[0076] In some embodiments, referring to Figure 2, the outer packaging may include a casing 51 and a cover plate 53. The casing 51 includes a base plate and side plates connected to the base plate, with the base plate and side plates surrounding each other to form a housing chamber. The casing 51 has an opening that communicates with the housing cavity, and the cover plate 53 can cover the opening and close the housing cavity. The positive electrode piece, negative electrode piece, and separator film can form an electrode assembly 52 by a winding or lamination process. The electrode assembly 52 is sealed within the housing cavity. The electrolyte permeates the electrode assembly 52. ​​The number of electrode assemblies 52 included in the secondary battery 5 may be one or more, and those skilled in the art can select according to their specific practical needs.

[0077] In some embodiments, the secondary batteries can be assembled into a battery module, and the number of secondary batteries included in the battery module may be one or more, the specific number of which can be selected by those skilled in the art depending on the application and capacity of the battery module.

[0078] Figure 3 shows a battery module 4 as an example. Referring to Figure 3, in the battery module 4, multiple secondary batteries 5 may be installed sequentially along the length of the battery module 4. Of course, they may be installed in any other way. Furthermore, the multiple secondary batteries 5 can be fixed in place by fastening members.

[0079] Selectively, the battery module 4 may further include an outer casing having a housing space, in which multiple secondary batteries 5 are housed.

[0080] In some embodiments, the battery modules can also be assembled into a battery pack, and the number of battery modules included in the battery pack may be one or more, the specific number of which can be selected by those skilled in the art depending on the application and capacity of the battery pack.

[0081] Figures 4 and 5 show an example of a battery pack 1. Referring to Figures 4 and 5, the battery pack 1 may include a battery box and a plurality of battery modules 4 installed inside the battery box. The battery box includes an upper case 2 and a lower case 3, the upper case 2 being covered by the lower case 3 and forming a sealed space for housing the battery modules 4. A plurality of battery modules 4 can be arbitrarily installed inside the battery box.

[0082] Furthermore, the present application further provides an electrical device comprising at least one of the secondary battery, battery module, or battery pack provided herein. The secondary battery, battery module, or battery pack may be used as a power source for the electrical device or as an energy storage unit for the electrical device. The electrical device includes, but is not limited to, mobile devices (e.g., mobile phones, laptops, etc.), electric vehicles (e.g., pure electric vehicles, hybrid electric vehicles, plug-in hybrid electric vehicles, electric bicycles, electric scooters, electric golf carts, electric trucks, etc.), electric trains, ships and satellites, and energy storage systems.

[0083] Depending on the usage needs, the above-mentioned electrical device can be selected as a secondary battery, battery module, or battery pack.

[0084] Figure 6 shows an example of an electrical device. This electrical device may be a pure electric vehicle, a hybrid electric vehicle, or a plug-in hybrid electric vehicle. To meet the demands of the above electrical device for high power output and high energy density of secondary batteries, a battery pack or battery module can be used.

[0085] [Examples] Examples of the present application are described below. The examples described below are illustrative and should be used only for interpretation of the present application and should not be understood as limiting the present application. If no specific techniques or conditions are described in the examples, they should be carried out in accordance with the techniques or conditions described in the literature in the art or in accordance with the product instructions. Unless otherwise specified, the reagents or equipment used are all commercially available, common products, and information on other reagents or compounds is recorded in Table 1. [Table 1]

[0086] Synthesis example 1: Compound 1 [ka] synthesis Step 1: Add 300 g (2 mol) of solid 1,6-dideoxygalactitol to a 2 L three-necked flask and begin stirring. Add 523 g (4.4 mol) of thionyl chloride dropwise to the three-necked flask, controlling the temperature to approximately 15°C during the addition process. After the addition is complete, maintain the temperature at 45°C and allow the reaction to proceed for 4 hours. A large amount of paste-like solid will precipitate from the reaction solution. After cooling, slowly add 1 L of deionized water dropwise, and rapidly stir the reaction system to disperse the solid. Filter the obtained solid and wash it by repeatedly slurring it with deionized water until the pH becomes neutral. Dry the filtered cake under reduced pressure at 60°C to obtain the intermediate product.

[0087] Step 2: Add 184.2 g (0.8 mol) of intermediate product 1 to a 3 L three-necked flask, add 1000 mL of acetonitrile, add 80 mg of ruthenium trichloride trihydrate catalyst, purge the reaction system with nitrogen gas, then lower the temperature of the reaction system to 20°C and begin stirring. Within 1 hour, add 2000 g of 20% sodium hypochlorite aqueous solution dropwise to control the reaction temperature to 10-20°C. After the dropwise addition is complete, stir at 10-20°C for 10 minutes, separate the liquid and quench the organic phase with sodium sulfite aqueous solution so that the potassium iodide starch test paper does not turn blue, separate the liquid and quench again, concentrate the organic layer, and the acetonitrile crystallizes, yielding a white powder solid which is compound 1. 1H-NMR, CD3CN, δ ppm 5.42-5.39 (m, 2H), 5.36-5.34 (m, 2H), 1.67-1.65 (d, 6H).

[0088] Synthesis example 2: Compound 2 [ka] synthesis Step 1: Add 356.5 g (2 mol) of solid 3,4,5,6-octanetetraol to a 2 L three-necked flask and begin stirring. Add 523 g (4.4 mol) of thionyl chloride dropwise to the flask, controlling the temperature to approximately 15°C during the addition process. After the addition is complete, maintain the temperature at 45°C and allow the reaction to proceed for 4 hours. A large amount of paste-like solid precipitates from the reaction solution. After cooling, slowly add 1 L of deionized water dropwise, rapidly stir the reaction system to disperse the solid, filter it, and wash the resulting solid by repeatedly slurring it with deionized water until the pH becomes neutral. Dry the filtered cake under reduced pressure at 60°C to obtain the intermediate product.

[0089] Step 2: Add 216.2 g (0.8 mol) of intermediate product 1 to a 3 L three-necked flask, add 1000 mL of acetonitrile, add 80 mg of ruthenium trichloride trihydrate catalyst, purge the reaction system with nitrogen gas, then lower the temperature of the reaction system to 20°C and begin stirring. Within 1 hour, add 2000 g of 20% sodium hypochlorite aqueous solution dropwise to control the reaction temperature to 10-20°C. After the dropwise addition is complete, stir at 10-20°C for 10 minutes, separate the liquid and quench the organic phase with sodium sulfite aqueous solution so that the potassium iodide starch test paper does not turn blue, separate the liquid and quench again, concentrate the organic layer, crystallize the acetonitrile, and obtain compound 2.

[0090] Synthesis example 3: Compound 3 [ka] synthesis Step 1: Add 328.4 g (2 mol) of solid 2,3,4,5-heptanetetraol to a 2 L three-necked flask and begin stirring. Add 523 g (4.4 mol) of thionyl chloride dropwise to the flask, controlling the temperature to approximately 15°C during the addition process. After the addition is complete, maintain the temperature at 45°C and allow the reaction to proceed for 4 hours. A large amount of paste-like solid precipitates from the reaction solution. After cooling, slowly add 1 L of deionized water dropwise, rapidly stir the reaction system to disperse the solid, filter it, and wash the resulting solid by repeatedly slurring it with deionized water until the pH becomes neutral. Dry the filtered cake under reduced pressure at 60°C to obtain the intermediate product.

[0091] Step 2: Add 205 g (0.8 mol) of intermediate product 1 to a 3 L three-necked flask, add 1000 mL of acetonitrile, stir until the solid is completely dissolved, add 80 mg of ruthenium trichloride trihydrate catalyst, purge the reaction system with nitrogen gas, then cool the reaction system to 20°C and start stirring. Within 1 hour, add 2000 g of 20% sodium hypochlorite aqueous solution dropwise to control the reaction temperature to 10-20°C. After the dropwise addition is complete, stir at 10-20°C for 10 minutes, separate the liquid and quench the organic phase with sodium sulfite aqueous solution so that the potassium iodide starch test paper does not turn blue, separate the liquid and quench again, concentrate the organic layer, and acetonitrile crystallizes to obtain compound 3 (163.1 g, yield 82.8%).

[0092] Synthesis example 4: Compound 4 [ka] synthesis Step 1: Add 392.4 g (2 mol) of solid 1,2,3,4,5,6-heptanol to a 2 L three-necked flask and begin stirring. Add 784.5 g (6.6 mol) of thionyl chloride dropwise to the flask, controlling the temperature to approximately 15°C during the addition process. After the addition is complete, maintain the temperature at 45°C and allow the reaction to proceed for 4 hours. A large amount of paste-like solid precipitates from the reaction solution. After cooling, slowly add 1 L of deionized water dropwise, rapidly stir the reaction system to disperse, filter to obtain the solid, and repeatedly wash the resulting slurry with deionized water until the pH becomes neutral. Dry the filtered cake under reduced pressure at 60°C to obtain the intermediate product.

[0093] Step 2: Add 140 g (0.4 mol) of intermediate product 1 to a 4 L three-necked flask, add 1000 mL of acetonitrile, add 110 mg of ruthenium trichloride trihydrate catalyst, purge the reaction system with nitrogen gas, then lower the temperature of the reaction system to 20°C and begin stirring. Within 1 hour, add 1500 g of 20% sodium hypochlorite aqueous solution dropwise to control the reaction temperature to 10-20°C. After the dropwise addition is complete, stir at 10-20°C for 10 minutes, separate the liquid and quench the organic phase with sodium sulfite aqueous solution so that the potassium iodide starch test paper does not turn blue, separate the liquid and quench again, concentrate the organic layer, crystallize the acetonitrile, and obtain compound 4.

[0094] Synthesis example 5: Compound 5 [ka] synthesis Step 1: Add 484 g (2 mol) of solid octitol to a 2 L three-necked flask and begin stirring. Add 1046 g (8.8 mol) of thionyl chloride dropwise to the flask, controlling the temperature to approximately 15°C during the addition process. After the addition is complete, maintain the temperature at 45°C and allow the reaction to proceed for 4 hours. A large amount of paste-like solid precipitates from the reaction solution. After cooling, slowly add 1 L of deionized water dropwise, rapidly stir the reaction system to disperse the solid, filter the mixture, and wash the resulting solid by repeatedly slurring it with deionized water until the pH becomes neutral. Dry the filtered cake under reduced pressure at 60°C to obtain the intermediate product.

[0095] Step 2: Add 183.2 g (0.4 mol) of the intermediate product to a 4 L three-necked flask, add 1000 mL of acetonitrile, add 150 mg of ruthenium trichloride trihydrate catalyst, purge the reaction system with nitrogen gas, then lower the temperature of the reaction system to 20°C and begin stirring. Within 1 hour, add 2000 g of 20% sodium hypochlorite aqueous solution dropwise to control the reaction temperature to 10-20°C. After the dropwise addition is complete, stir at 10-20°C for 10 minutes, separate the liquid and quench the organic phase with sodium sulfite aqueous solution so that the potassium iodide starch test paper does not turn blue, separate the liquid and quench again, concentrate the organic layer, and acetonitrile crystallizes to obtain compound 5.

[0096] For the synthesis method of the compound, please refer to Synthesis Example 1, and use the corresponding substrate from Table 2 instead of 1,6-dideoxygalactitol. [Table 2]

[0097] Example 1 Electrolyte composition: Compound 1, present in a mass content of 2% in the electrolyte, was used as an additive, lithium hexafluoride phosphate (LiPF6), present in a mass content of 10% in the electrolyte, and a mixture of EC+EMC (ethylene carbonate + ethyl methyl carbonate) in a volume ratio of 3:7 was used as the solvent.

[0098] Manufacturing of positive electrode pieces: Lithium iron phosphate (LiFePO4), a positive electrode active material, acetylene black, a conductive agent, and polyvinylidene fluoride (PVDF), an adhesive, were dissolved in N-methylpyrrolidone (NMP), a solvent, in a weight ratio of 90:5:5. After thorough stirring and homogeneous mixing, a positive electrode slurry was obtained. The positive electrode slurry was then uniformly applied to a positive electrode current collector, and further drying, cold pressing, and cutting were performed to obtain a positive electrode piece.

[0099] Manufacturing of negative electrode pieces: A negative electrode slurry was prepared by dissolving graphite, a conductive agent (carbon black), an adhesive (styrene-butadiene rubber, SBR), and a thickener (carboxymethylcellulose sodium, CMC-Na) in deionized water as a solvent in a weight ratio of 90:4:4:2, and uniformly mixing them. The negative electrode slurry was then uniformly applied to copper foil, which served as the negative electrode current collector, one or more times, and the resulting negative electrode pieces were obtained by drying, cold pressing, and cutting.

[0100] Separator film: A standard polypropylene film was used as the separator film.

[0101] Lithium-ion battery assembly: The positive electrode piece, separator film, and negative electrode piece were stacked in order so that the separator film is positioned between the positive electrode piece and the negative electrode piece to separate them, and the assembly was wound up to obtain an electrode assembly. The electrode assembly was placed in a battery casing, dried, and then the electrolyte was injected. A lithium-ion battery was then manufactured through further processes such as chemical conversion and standing.

[0102] Example 2 Compound 2 is used instead of Compound 1, and otherwise the procedure is the same as in Example 1.

[0103] Example 3 Compound 3 is used instead of Compound 1, and otherwise the procedure is the same as in Example 1.

[0104] Example 4 Compound 4 is used instead of Compound 1, and otherwise the procedure is the same as in Example 1.

[0105] Example 5 Compound 5 is used instead of Compound 1, and otherwise the procedure is the same as in Example 1.

[0106] Example 6 Compound 6 is used instead of Compound 1, and otherwise the procedure is the same as in Example 1.

[0107] Example 7 Compound 7 is used instead of Compound 1, and otherwise the procedure is the same as in Example 1.

[0108] Example 8 Compound 8 is used instead of Compound 1, and otherwise the procedure is the same as in Example 1.

[0109] Example 9 Compound 9 is used instead of Compound 1, and otherwise the procedure is the same as in Example 1.

[0110] Example 10 Compound 10 is used instead of Compound 1, and otherwise the procedure is the same as in Example 1.

[0111] Example 11 Compound 11 is used instead of Compound 1, and otherwise the procedure is the same as in Example 1.

[0112] Example 12 Compound 12 is used instead of Compound 1, and otherwise the procedure is the same as in Example 1.

[0113] Example 13 The mass content of compound 1 was adjusted to 0.005%, and the rest was the same as in Example 1.

[0114] Example 14 The mass content of compound 1 was adjusted to 0.01%, and the rest of the procedure was the same as in Example 1.

[0115] Example 15 The mass content of compound 1 was adjusted to 0.05%, and the rest of the procedure was the same as in Example 1.

[0116] Example 16 The mass content of compound 1 was adjusted to 0.1%, and the rest of the procedure was the same as in Example 1.

[0117] Example 17 The mass content of compound 1 was adjusted to 1%, and the rest of the procedure was the same as in Example 1.

[0118] Example 18 The mass content of compound 1 was adjusted to 5%, and the rest of the procedure was the same as in Example 1.

[0119] Example 19 The mass content of compound 1 was adjusted to 10%, and the rest of the procedure was the same as in Example 1.

[0120] Example 20 The mass content of compound 1 was adjusted to 15%, and the rest of the procedure was the same as in Example 1.

[0121] Example 21 The mass content of compound 1 was adjusted to 20%, and the rest was the same as in Example 1.

[0122] Example 22 The mass content of compound 1 was adjusted to 23%, and the rest of the procedure was the same as in Example 1.

[0123] Example 23 1,3-propanesultone (1,3-PS) is added as a second additive to the electrolyte, and its mass content in the electrolyte is 1%, with the rest being the same as in Example 1.

[0124] Example 24 In this example, lithium bis(fluorosulfonyl)imide (LiFSI) is used instead of lithium hexafluoride phosphate, and its mass content in the electrolyte is adjusted to 15.4%, with the rest being the same as in Example 1.

[0125] Example 25 Lithium bis(trifluoromethanesulfonyl)imide (LiTFSI) was used instead of lithium hexafluoride phosphate, and its mass content in the electrolyte was adjusted to 23.6%, with the rest being the same as in Example 1.

[0126] Example 26 Electrolyte: Sodium hexafluoride phosphate (NaPF6) was used instead of lithium hexafluoride phosphate, and its mass content in the electrolyte was adjusted to 13.8%, with the rest being the same as in Example 1.

[0127] Cathode piece manufacturing: NaFePO4, the positive electrode active material, acetylene black, the conductive agent, and polyvinylidene fluoride (PVDF), the adhesive, were thoroughly stirred and homogenized in an N-methylpyrrolidone solvent system in a mass ratio of 80:10:10. The mixture was then applied to an aluminum foil, dried, and cold-pressurized to obtain a cathode piece.

[0128] Manufacturing of anode pieces: Hard carbon, the anode active material, acetylene black, the conductive agent, and polyacrylic acid, the adhesive, were thoroughly stirred and homogeneously mixed in a deionized water solvent system in a mass ratio of 88:2:10. The mixture was then applied to copper foil, dried, and cold-pressurized to obtain anode pieces.

[0129] After manufacturing the battery core by winding together the positive electrode piece, negative electrode piece, and polypropylene separator film, the battery core was assembled into the outer casing of the battery pack, and then the prepared electrolyte was injected. A sodium-ion battery was then manufactured through further processes such as chemical conversion and settling.

[0130] Example 27 The solvent composition was adjusted to an EC+EMC mixture with a volume ratio of 5:5, and the rest was the same as in Example 1.

[0131] Example 28 Diethyl carbonate (DEC) is used instead of EMC in the solvent, and otherwise the procedure is the same as in Example 1.

[0132] Example 29 Ethyl propionate is used instead of EMC in the solvent, and otherwise the procedure is the same as in Example 1.

[0133] Example 30 Tetrahydrofuran (THF) is used instead of EMC in the solvent, and otherwise the procedure is the same as in Example 1.

[0134] Comparative Example 1 Compound 13 is used instead of Compound 1, and otherwise the procedure is the same as in Example 1.

[0135] Comparative Example 2 Compound 13 is used instead of compound 1, and its mass content in the electrolyte is adjusted to 0.5%, with the rest being the same as in Example 1.

[0136] Comparative Example 3 Compound 13 is used instead of compound 1, and its mass content in the electrolyte is adjusted to 10%, with the rest being the same as in Example 1.

[0137] Comparative Example 4 Compound 14 is used instead of Compound 1, and otherwise the procedure is the same as in Example 1.

[0138] Comparative Example 5 Compound 15 is used instead of Compound 1, and otherwise the procedure is the same as in Example 1.

[0139] Comparative Example 6 Compound 16 is used instead of Compound 1, and otherwise the procedure is the same as in Example 1.

[0140] Comparative Example 7 The procedure is the same as in Example 1, except that 1,3-propanesultone (1,3-PS) is used instead of compound 1.

[0141] Comparative Example 8 The procedure is the same as in Example 26, except that 1,3-PS is used instead of compound 1.

[0142] Performance testing: 1) Cycle performance test At 25°C, the lithium-ion battery was first fully discharged at 1C before being tested. The test procedure was as follows: The lithium-ion battery was charged to a voltage of 3.65V with a constant current of 0.5C, then charged to a current of 0.05C with a constant voltage of 3.65V, left to stand for 5 minutes, and then discharged to a voltage of 2.5V with a constant current of 0.5C. This constituted one charge-discharge cycle, and the discharge capacity recorded was that of the first cycle. The lithium-ion battery charge-discharge cycle test was performed several times according to the above method until the discharge capacity of the lithium-ion secondary battery decreased to 80%, and the number of cycles of the lithium-ion battery was recorded.

[0143] At 25°C, the sodium-ion battery was first fully discharged at 1C before being tested. The test procedure was as follows: The sodium-ion battery was charged to a voltage of 3.95V with a constant current of 0.5C, then charged to a current of 0.05C with a constant voltage of 3.95V, left to stand for 5 minutes, and then discharged to a voltage of 1.5V with a constant current of 0.5C. This constituted one charge-discharge cycle, and the discharge capacity recorded was that of the first cycle. The charge-discharge cycle test of the sodium-ion battery was performed several times according to the above method until the discharge capacity of the sodium-ion battery decreased to 80%, and the number of cycles of the sodium-ion battery was recorded.

[0144] Battery cycle capacity retention rate (%) = (Discharge capacity of the battery in the Nth cycle / Discharge capacity of the battery in the first cycle) × 100%.

[0145] 2) Room temperature DCR test Under room temperature conditions, a lithium-ion battery was charged to 3.65V with a constant current of 1C, and then charged to a current of 0.05C with a constant voltage of 3.65V. After the battery was fully charged, it was left to stand for 5 minutes, discharged at 1C for 30 minutes (the battery core charge was 50% SOC), and then left to stand for another 5 minutes. The temperature was adjusted to 25°C, and the battery was left to stand for 1 hour, during which the voltage V1 of the battery core was recorded. After discharging at 4C for 30 seconds and recording the voltage V2 after pulse discharge, the DCR = (V1-V2) / I, and I = 4C when the battery core was 50% SOC and discharged for 30 seconds.

[0146] Under room temperature conditions, a sodium-ion battery was charged to 4.2V with a constant current of 1C, and then charged to a current of 0.05C with a constant voltage of 4.2V. After the battery was fully charged, it was left to stand for 5 minutes, discharged at 1C for 30 minutes (the battery core charge was 50% SOC), and then left to stand for another 5 minutes. The temperature was adjusted to 25°C, and the battery was left to stand for 1 hour, during which the voltage V1 of the battery core was recorded. After discharging at 4C for 30 seconds and recording the voltage V2 after pulse discharge, the DCR = (V1-V2) / I, and I = 4C when the battery core was 50% SOC and discharged for 30 seconds.

[0147] The test results are recorded in Table 3.

[0148] [Table 3]

[0149] As can be seen from the results of Examples 1 to 12 and Comparative Example 7, the introduction of cyclic sulfate ester additives can effectively improve the DCR and cycle performance of the battery core. Compared to ordinary sultone additives, these additives have lower interfacial impedance and higher stability of SEI generated at the negative electrode. Comparing Example 1 with Comparative Examples 1, 4, 5, and 6, the introduction of compound 1 significantly improves the cycle performance of the battery core. This is because the introduction of substituents such as alkyl groups allows for the generation of longer elastic SEI with organic chains at the negative electrode, preventing SEI damage in response to volume changes at the negative electrode during the cycling process and improving the cycle performance of the battery core.

[0150] As can be seen from the results of Examples 16 to 22, if there is too much additive, a thick SEI is generated at the negative electrode, the conductivity of the electrolyte decreases, the polarization of the battery core increases, and the cycle performance and DCR decrease to some extent. The cyclic sulfonic acid ester additive according to the present invention, when its mass ratio in the electrolyte is within the above preferred range, can guarantee that the battery core has a relatively low DCR and can also guarantee good cycle performance.

[0151] While this application has been described with reference to preferred embodiments, various improvements can be made and some parts can be replaced with equivalents without departing from the scope of this application. In particular, each technical feature mentioned in each embodiment can be combined in any way, as long as it is not structurally contradictory. This application is not limited to the specific embodiments disclosed herein, but includes all technical ideas contained in the claims.

Claims

1. A non-aqueous electrolyte containing an additive, wherein the additive contains a cyclic sulfate ester compound having a structure represented by general formula (I-1), 【Chemistry 1】 R1, R2, R3, and R4 are each independently selected from a group having a structure represented by general formula (II-1), a hydrogen atom, a halogen atom, a C1-C6 alkyl group, a C1-C6 haloalkyl group, a C1-C6 alkoxy group, a C1-C6 haloalkoxy group, a C2-C6 alkenyl group, a C2-C6 ester group, a hydroxyl group, a cyano group, and a sulfonic acid group, and R1, R2, R3, and R4 are not hydrogen atoms at the same time, The general formula (II-1) is 【Chemistry 2】 and R5 and R6 are each independently selected from a group having the structure represented by general formula (II-1), a hydrogen atom, a halogen atom, a C1-C6 alkyl group, a C1-C6 haloalkyl group, a C1-C6 alkoxy group, a C1-C6 haloalkoxy group, a C2-C6 alkenyl group, a C2-C6 ester group, a cyano group, and a sulfonic acid group. Non-aqueous electrolyte.

2. R 1 , R 2 , R 3 , R 4 , R 5 and R 6 Each of these is independently selected from a group having a structure represented by general formula (II-1), a hydrogen atom, a halogen atom, a C1-C3 alkyl group, a C1-C3 haloalkyl group, a C1-C3 alkoxy group, a C1-C3 haloalkoxy group, a C2-C3 alkenyl group, a C1-C3 ester group, a hydroxyl group, a cyano group, and a sulfonic acid group. The base of the structure represented by the general formula (II-1) is, 【Transformation 3】 It is one of the following elements, where X is an F atom, a Cl atom, or a Br atom. The non-aqueous electrolyte according to claim 1.

3. The aforementioned cyclic sulfate ester compound is 【Chemistry 4】 It is one or more of the following compounds selected from: The non-aqueous electrolyte according to claim 1.

4. The mass content of the cyclic sulfate ester compound in the non-aqueous electrolyte is 0.001% to 20%. The non-aqueous electrolyte according to claim 1.

5. The non-aqueous electrolyte further comprises an electrolyte. The non-aqueous electrolyte according to claim 1 or 2.

6. The non-aqueous electrolyte further comprises a non-aqueous solvent. The non-aqueous electrolyte according to claim 1.

7. The aforementioned additive further comprises one or more sultone compounds. The non-aqueous electrolyte according to claim 1.

8. A secondary battery comprising a positive electrode piece, an electrolyte, a separator film, and a negative electrode piece, wherein the electrolyte is the non-aqueous electrolyte described in claim 1. Secondary battery.

9. An electrical device including a secondary battery, wherein the secondary battery includes the secondary battery described in claim 8. Electrical device.

Citation Information

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