Additive for lithium battery electrolyte, organic electrolyte solution containing the additive, and lithium battery using the electrolyte
The introduction of a specific additive combination in lithium battery electrolytes addresses the challenge of high-temperature instability in SEI and protective layers, resulting in improved battery life and reduced gas generation.
Patent Information
- Application Number
- JP2023544132
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-01-21
- Filing Date
- 2021-12-30
- Publication Date
- 2025-05-16
- Estimated Expiration
- 2041-12-30
AI Technical Summary
Conventional lithium battery electrolytes face challenges in forming stable Solid Electrolyte Interface (SEI) and protective layers at high temperatures, leading to reduced battery life and increased gas generation.
The use of a specific additive combination in the lithium battery electrolyte, comprising compounds represented by certain chemical formulas, enhances the stability and barrier properties of the SEI and protective layers, improving high-temperature performance and reducing gas generation.
The proposed additive combination significantly improves the life characteristics of lithium batteries at high temperatures, maintains resistance stability, and reduces gas generation, thereby enhancing overall battery performance.
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Abstract
Description
[Technical field]
[0001] The present invention relates to an additive for a lithium battery electrolyte, an organic electrolyte solution containing the additive, and a lithium battery employing the electrolyte solution. [Background technology]
[0002] Lithium batteries are used as power sources for portable electronic devices such as video cameras, mobile phones, laptops, etc. Rechargeable lithium secondary batteries have more than three times the energy density per unit weight and can be charged quickly compared to existing lead-acid batteries, nickel-cadmium batteries, nickel-metal hydride batteries, and nickel-zinc batteries.
[0003] Lithium batteries operate at high drive voltages, and therefore cannot use aqueous electrolytes that are highly reactive with lithium. Organic electrolytes are generally used in lithium batteries. The organic electrolytes are prepared by dissolving lithium salts in organic solvents. The organic solvents are preferably stable at high voltages, have high ionic conductivity and dielectric constant, and have low viscosity.
[0004] If a carbonate-based polar non-aqueous solvent is used in a lithium battery, an irreversible reaction occurs during initial charging, in which an excessive amount of charge is consumed due to a side reaction between the negative electrode / positive electrode and the electrolyte.
[0005] Due to the irreversible reaction, a passivation layer such as a solid electrolyte interface layer (SEI layer) is formed on the surface of the negative electrode. The SEI layer prevents decomposition of the electrolyte during charging and discharging and acts as an ion tunnel. The higher the stability and lower the resistance of the SEI layer, the longer the life of the lithium battery can be.
[0006] In addition, a protection layer is formed on the surface of the positive electrode due to the irreversible reaction. The protection layer prevents decomposition of the electrolyte during charging and discharging and acts as an ion tunnel. The higher the stability of the protection layer at high temperatures, the longer the life of the lithium battery can be.
[0007] Various additives have been used to stabilize the SEI layer and / or the protective layer. However, the SEI layer formed using conventional additives is easily deteriorated at high temperatures. That is, the stability of the SEI layer and / or the protective layer is reduced at high temperatures.
[0008] Therefore, there is a need for an organic electrolyte capable of forming an SEI layer and / or a protective layer with improved high temperature stability. Summary of the Invention [Problem to be solved by the invention]
[0009] One aspect is to provide a new additive for lithium battery electrolytes. Another aspect is to provide an organic electrolyte comprising the additive. Yet another aspect is to provide a lithium battery comprising the organic electrolyte. [Means for solving the problem]
[0010] According to one aspect, An additive for a lithium battery electrolyte is provided, comprising a compound represented by the following Chemical Formula 1 and a compound represented by the following Chemical Formula 2:
[0011] [ka] In the above Chemical Formulas 1 and 2, A1 to A4, A 11 and A 12 are each independently a substituted or unsubstituted alkylene group having 1 to 5 carbon atoms, a carbonyl group, or a sulfinyl group. According to another aspect, A lithium salt; An organic solvent; An organic electrolyte solution is provided, comprising the additive described above. According to yet another aspect, A positive electrode and A negative electrode; and an organic electrolyte according to the above. Effect of the Invention
[0012] According to one embodiment, by using an additive for a lithium battery electrolyte containing two compounds each satisfying a specific structure, the life characteristics of a lithium battery using an organic electrolyte solution containing the additive can be improved. [Brief description of the drawings]
[0013] [Figure 1] 1 is a schematic diagram of a lithium battery according to an illustrative embodiment; FIG. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0014] The present inventive concept described below can be modified in various ways and can have various embodiments, and specific embodiments are illustrated in the drawings and described in detail in the detailed description. However, they do not limit the present inventive concept to specific embodiments, and should be understood to include all modifications, equivalents, or alternatives included in the technical scope of the present inventive concept.
[0015] The terms used below are merely used to describe specific embodiments and are not intended to limit the present invention. A singular expression includes a plural expression unless the context clearly indicates otherwise. In the following, the terms "include" or "have" indicate the presence of a feature, number, step, operation, component, part, ingredient, material, or combination thereof described in the specification, and should be understood not to preclude the presence or addition of one or more other features, numbers, steps, operations, components, parts, ingredients, materials, or combinations thereof. In the following, " / " can be interpreted as "and" or "or" depending on the context.
[0016] In the drawings, thicknesses may be exaggerated or reduced to clearly depict multiple layers and regions. Similar parts are designated by the same reference numerals throughout the specification. Throughout the specification, when a part, such as a layer, film, region, or plate, is referred to as being "on" or "above" another part, this includes not only when it is directly on top of the other part, but also when there is another part between them.
[0017] Hereinafter, the additive for a lithium battery electrolyte, an organic electrolyte including the same, and a lithium battery using the electrolyte according to example embodiments will be described in more detail. According to an embodiment, an additive for a lithium secondary battery electrolyte includes a compound represented by the following Formula 1 and a compound represented by the following Formula 2:
[0018] [ka] In the above Chemical Formulas 1 and 2, A1 to A4, A 11 and A 12 are each independently a substituted or unsubstituted alkylene group having 1 to 5 carbon atoms, a carbonyl group, or a sulfinyl group.
[0019] The additive including the compound represented by Formula 1 or Formula 2 can be added to a lithium battery electrolyte to improve battery performance such as the life characteristics of the lithium battery and reduce the resistance change rate and gas generation amount at high temperatures.
[0020] The compound represented by Formula 1 also includes a structure in which two sulfate rings are linked in a spiro form, and the compound represented by Formula 2 also includes a ring structure containing two sulfonate groups.
[0021] The reason why the compound represented by Chemical Formula 1 and the compound represented by Chemical Formula 2 are added to the electrolyte to improve the performance of the lithium battery will be explained in more detail below. However, this is for the purpose of aiding in the understanding of the present invention, and the scope of the present invention is not limited to the following explanation.
[0022] The sulfate ester group contained in the compound represented by Formula 1 and the compound represented by Formula 2 accepts electrons from the negative electrode surface during charging and is reduced or reacts with already reduced polar solvent molecules, which may affect the properties of the solid electrolyte interface (SEI) film formed on the negative electrode surface. For example, the compound represented by Formula 1 and the compound represented by Formula 2, which contain the sulfate ester group, can accept electrons from the negative electrode more easily than a polar solvent. That is, the compound represented by Formula 1 and the compound represented by Formula 2 can be reduced at a lower voltage than a polar solvent and can be reduced before the polar solvent is reduced.
[0023] For example, the compound represented by Formula 1 and the compound represented by Formula 2 contain a sulfate ester group, and thus can be more easily reduced and / or decomposed into radicals and / or ions during charging. Thus, the radicals and / or ions bond with lithium ions to form an SEI layer suitable for the negative electrode, and further formation of decomposition products of the solvent can be suppressed.
[0024] For example, the compound represented by Chemical Formula 1 and the compound represented by Chemical Formula 2 form a covalent bond with various functional groups present on the surface of a carbon-based negative electrode or a carbon-based negative electrode, or are adsorbed on the electrode surface. In this case, the compound represented by Chemical Formula 2, which has a relatively small molecular weight, forms a covalent bond with various functional groups present on the surface of a carbon-based negative electrode or a carbon-based negative electrode, or is adsorbed on the electrode surface, prior to the compound represented by Chemical Formula 1, and can promote the bond between Chemical Formula 1 and various functional groups present on the surface of a carbon-based negative electrode or a carbon-based negative electrode. Due to the interaction between the compound represented by Chemical Formula 1 and the compound represented by Chemical Formula 2, a modified SEI layer that maintains a firm state even after long-term charging and discharging can be formed, compared to an SEI layer formed using them alone. In addition, such a firm modified SEI layer can more effectively block the organic solvent that solvates the lithium ions from entering the inside of the electrode during lithium ion intercalation. Therefore, since the modified SEI layer more effectively blocks direct contact between the organic solvent and the negative electrode, the reversibility of lithium ion absorption / release is further improved, and as a result, the discharge capacity of the battery is increased and the life characteristics are improved.
[0025] In addition, the compound represented by Chemical Formula 1 and the compound represented by Chemical Formula 2 may be coordinated to the positive electrode surface by including a sulfate ester group, and thus may affect the properties of the protective layer formed on the positive electrode surface. For example, the sulfate ester group contained in the compound represented by Chemical Formula 1 and the compound represented by Chemical Formula 2 may be coordinated to the transition metal ion of the positive electrode active material to form a complex. In this case, the compound represented by Chemical Formula 1 having a relatively large molecular size and the compound represented by Chemical Formula 2 having a relatively small molecular size may be coordinated to the transition metal ion of the positive electrode active material to form a complex. Due to such a robust complex, a modified protective layer may be formed that maintains a robust state even after a long period of charging and discharging, and has improved stability, compared to a protective layer formed only from an organic solvent. In addition, such a robust modified protective layer may more effectively block the organic solvent that solvates the lithium ions from entering the inside of the electrode during lithium ion intercalation. Therefore, since the modified protective layer more effectively blocks direct contact between the organic solvent and the positive electrode, the reversibility of lithium ion absorption / release is further improved, and as a result, the stability of the battery is increased and the life characteristics are improved.
[0026] In addition, the compound represented by Chemical Formula 1 has a relatively large molecular weight because multiple rings are bonded in a spiro form compared to general sulfate compounds, and is therefore thermally stable. In addition, the compound represented by Chemical Formula 2 has a relatively smaller size than the compound represented by Chemical Formula 2, and is disposed between the compounds represented by Chemical Formula 1, and thus the modified SEI layer and the modified protective layer formed by the compounds represented by Chemical Formula 1 and the compounds represented by Chemical Formula 2 can be more firmly formed, thereby improving the barrier property.
[0027] In addition, the compound represented by the formula 2 contains two sulfonate groups in one ring, and therefore can have relatively excellent electrical conductivity.
[0028] As a result, the compound represented by Formula 1 and the compound represented by Formula 2 can form an SEI layer on the surface of the negative electrode or a protective layer on the surface of the positive electrode, and have improved thermal stability and barrier properties, thereby improving the life characteristics of the lithium battery at high temperatures and preventing gas generation at high temperatures. In addition, the compound represented by Formula 2 can reduce the resistance change rate at high temperatures.
[0029] In the compound represented by the above formula 1 and the compound represented by the above formula 2, A1 to A4, A 11 and A 12 at least one of the groups is an unsubstituted alkylene group having 1 to 5 carbon atoms or a substituted alkylene group having 1 to 5 carbon atoms, and the substituent of the substituted alkylene group having 1 to 5 carbon atoms is a halogen-substituted or unsubstituted alkyl group having 1 to 20 carbon atoms, a halogen-substituted or unsubstituted alkenyl group having 2 to 20 carbon atoms, a halogen-substituted or unsubstituted alkynyl group having 2 to 20 carbon atoms, a halogen-substituted or unsubstituted cycloalkenyl group having 3 to 20 carbon atoms, a halogen-substituted or unsubstituted heterocyclic group having 3 to 20 carbon atoms, a halogen-substituted or unsubstituted aryl group having 6 to 40 carbon atoms, a halogen-substituted or unsubstituted heteroaryl group having 2 to 40 carbon atoms, or a polar functional group containing a heteroatom.
[0030] For example, the substituent may be one or more selected from the group consisting of a halogen, a methyl group, an ethyl group, a propyl group, an isopropyl group, a butyl group, a tert-butyl group, a trifluoromethyl group, a tetrafluoroethyl group, a phenyl group, a naphthyl group, a tetrafluorophenyl group, a pyrrolyl group, and a pyridinyl group.
[0031] For example, in the compound represented by Chemical Formula 1 and the compound represented by Chemical Formula 2, the substituent of the alkylene group is a polar functional group containing a heteroatom, and the heteroatom of the polar functional group is one or more selected from the group consisting of oxygen, nitrogen, phosphorus, sulfur, silicon, and boron.
[0032] For example, the substituted C1-C5 alkylene group is substituted with one or more heteroatom-containing polar functional groups, and the heteroatom-containing polar functional groups are selected from the group consisting of -F, -Cl, -Br, -I, -C(=O)OR ... 16 , -OC(=O)R 16 , -OR 16 , -OC(=O)OR 16 , -R 15 OC(=O)OR 16 , -C(=O)R 16 , -R 15 C(=O)R 16 , -OC(=O)R 16 , -R 15 OC(=O)R 16 , -(R 15 O) k- OR 16 , -(OR 15 ) k- OR 16 , -C(=O)-OC(=O)R 16 , -R 15 C(=O)-OC(=O)R 16 , -SR 16 , -R 15 S.R. 16 , -SSR 16 , -R 15 SSR 16 , -S(=O)R 16 , -R 15 S(=O)R 16 , -R 15 C(=S)R 16 , -R 15 C(=S)SR 16 , -R 15 SO3R 16 , -SO3R 16 , -NNC(=S)R 16 , -R 15 NNC(=S)R 16 , -R 15 N=C=S, -NCO, -R 15- NCO, -NO2, -R 15 NO2, -R 15 SO2R 16 , -SO2R 16 , [ka] [ka] The present invention includes one or more selected from the group consisting of
[0033] R 11 and R 15 are each independently a halogen-substituted or unsubstituted alkylene group having 1 to 20 carbon atoms, a halogen-substituted or unsubstituted alkenylene group having 2 to 20 carbon atoms, a halogen-substituted or unsubstituted alkynylene group having 2 to 20 carbon atoms, a halogen-substituted or unsubstituted cycloalkylene group having 3 to 12 carbon atoms, a halogen-substituted or unsubstituted arylene group having 6 to 40 carbon atoms, a halogen-substituted or unsubstituted heteroarylene group having 2 to 40 carbon atoms, a halogen-substituted or unsubstituted alkylarylene group having 7 to 15 carbon atoms, or a halogen-substituted or unsubstituted aralkylene group having 7 to 15 carbon atoms,
[0034] R 12 , R 13 , R 14 and R 16 are each independently hydrogen, a halogen, a halogen-substituted or unsubstituted alkyl group having 1 to 20 carbon atoms, a halogen-substituted or unsubstituted alkenyl group having 2 to 20 carbon atoms, a halogen-substituted or unsubstituted alkynyl group having 2 to 20 carbon atoms, a halogen-substituted or unsubstituted cycloalkyl group having 3 to 12 carbon atoms, a halogen-substituted or unsubstituted aryl group having 6 to 40 carbon atoms, a halogen-substituted or unsubstituted heteroaryl group having 2 to 40 carbon atoms, a halogen-substituted or unsubstituted alkylaryl group having 7 to 15 carbon atoms, a halogen-substituted or unsubstituted trialkylsilyl group having 7 to 15 carbon atoms, or a halogen-substituted or unsubstituted aralkyl group having 7 to 15 carbon atoms, k is also an integer from 1 to 20.
[0035] For example, the halogen substituted with an alkyl group, an alkenyl group, an alkynyl group, a cycloalkyl group, an aryl group, a heteroaryl group, an alkylaryl group, a trialkylsilyl group, or an aralkyl group contained in the polar functional group containing a heteroatom is also fluorine (F). For example, the compound represented by Chemical Formula 1 can be represented by the following Chemical Formula 1-1, and the compound represented by Chemical Formula 2 can be represented by the following Chemical Formula 2-1.
[0036] [ka]
[0037] In the above Chemical Formula 1-1 and Chemical Formula 2-1, B1 to B4, B 11 and B12 are each independently -C(E1)(E2)-, a carbonyl group or a sulfinyl group; E1 and E2 are each independently a hydrogen atom, a halogen atom, a halogen-substituted or unsubstituted alkyl group having 1 to 20 carbon atoms, a halogen-substituted or unsubstituted alkenyl group having 2 to 20 carbon atoms, a halogen-substituted or unsubstituted alkynyl group having 2 to 20 carbon atoms, a halogen-substituted or unsubstituted cycloalkenyl group having 3 to 20 carbon atoms, a halogen-substituted or unsubstituted heterocyclic group having 3 to 20 carbon atoms, a halogen-substituted or unsubstituted aryl group having 6 to 40 carbon atoms, or a halogen-substituted or unsubstituted heteroaryl group having 2 to 40 carbon atoms.
[0038] For example, E1 and E2 are each independently hydrogen, halogen, a halogen-substituted or unsubstituted alkyl group having 1 to 10 carbon atoms, a halogen-substituted or unsubstituted aryl group having 6 to 40 carbon atoms, or a halogen-substituted or unsubstituted heteroaryl group having 2 to 40 carbon atoms.
[0039] For example, E1 and E2 are each independently selected from the group consisting of hydrogen, F, Cl, Br, I, a methyl group, an ethyl group, a propyl group, an isopropyl group, a butyl group, a tert-butyl group, a trifluoromethyl group, a tetrafluoroethyl group, a phenyl group, a naphthyl group, a tetrafluorophenyl group, a pyrrolyl group, and a pyridinyl group.
[0040] For example, E1 and E2 may each independently be hydrogen, fluorine (F), a methyl group, an ethyl group, a trifluoromethyl group, a tetrafluoroethyl group, or a phenyl group. For example, the compound represented by Chemical Formula 1 can be represented by the following Chemical Formula 1-2, and the compound represented by Chemical Formula 2 can be represented by the following Chemical Formula 2-2.
[0041] [ka] [ka]
[0042] In the above Chemical Formula 1-2 and Chemical Formula 2-2, R1 to R8, and R 11 Or R 14 are each independently hydrogen, halogen, a halogen-substituted or unsubstituted alkyl group having 1 to 20 carbon atoms, a halogen-substituted or unsubstituted aryl group having 6 to 40 carbon atoms, or a halogen-substituted or unsubstituted heteroaryl group having 2 to 40 carbon atoms.
[0043] For example, the above-mentioned R1 to R8 and R 11 Or R 14 are each independently selected from the group consisting of hydrogen, F, Cl, Br, I, a methyl group, an ethyl group, a propyl group, an isopropyl group, a butyl group, a tert-butyl group, a trifluoromethyl group, a tetrafluoroethyl group, a phenyl group, a naphthyl group, a tetrafluorophenyl group, a pyrrolyl group and a pyridinyl group.
[0044] For example, the above-mentioned R1 to R8 and R 11 Or R 14 are each independently hydrogen, F, a methyl group, an ethyl group, a propyl group, a trifluoromethyl group, a tetrafluoroethyl group or a phenyl group.
[0045] Specifically, the compound represented by Formula 1 may be represented by any one selected from the following Formulas 1-3 to 1-11.
[0046] [ka] [ka] [ka]
[0047] Specifically, the compound represented by Formula 2 may be represented by any one selected from the following Formulas 2-3 to 2-12.
[0048] [ka] [ka]
[0049] In the present specification, a and b in "a to b carbon atoms" refer to the carbon numbers of a specific functional group. That is, the functional group may include carbon atoms from a to b. For example, "an alkyl group having 1 to 4 carbon atoms" refers to an alkyl group having 1 to 4 carbons, i.e., CH 3- , CH3CH 2- , CH3CH2CH 2- , (CH3)2CH-, CH3CH2CH2CH 2- , CH3CH2CH(CH3)- or (CH3)3C-.
[0050] Nomenclature for certain radicals may include mono-radical or di-radical, depending on the context. For example, if a substituent requires two points of attachment to the rest of the molecule, the substituent must be understood as a diradical. For example, a substituent specified as an alkyl group requiring two points of attachment includes diradicals such as -CH2-, -CH2CH2-, -CH2CH(CH3)CH2-. Other radical nomenclature, such as "alkylene," clearly indicates that the radical is a diradical.
[0051] As used herein, the term "alkyl group" or "alkylene group" refers to a branched or unbranched aliphatic hydrocarbon group. In one embodiment, the alkyl group can be substituted or unsubstituted. The alkyl group can include, but is not necessarily limited to, methyl, ethyl, propyl, isopropyl, butyl, isobutyl, tert-butyl, pentyl, hexyl, cyclopropyl, cyclopentyl, cyclohexyl, cycloheptyl, and the like, each of which can be optionally substituted or unsubstituted. In one embodiment, the alkyl group can have 1 to 6 carbon atoms. For example, the alkyl group having 1 to 6 carbon atoms can include, but is not necessarily limited to, methyl, ethyl, propyl, isopropyl, butyl, isobutyl, sec-butyl, pentyl, 3-pentyl, hexyl, and the like.
[0052] As used herein, the term "cycloalkyl group" means a fully saturated carbocyclic ring or carbocyclic ring system, such as cyclopropyl, cyclobutyl, cyclopentyl, cyclohexyl.
[0053] As used herein, the term "alkenyl group" refers to a hydrocarbon group containing 2 to 20 carbon atoms including at least one carbon-carbon double bond, including, but not limited to, ethenyl, 1-propenyl, 2-propenyl, 2-methyl-1-propenyl, 1-butenyl, 2-butenyl, cyclopropenyl, cyclopentenyl, cyclohexenyl, cycloheptenyl, and the like. In one embodiment, an alkenyl group may be substituted or unsubstituted. In one embodiment, an alkenyl group may have 2 to 40 carbon atoms.
[0054] As used herein, the term "alkynyl group" refers to a hydrocarbon group containing at least one carbon-carbon triple bond and having 2 to 20 carbon atoms, including, but not limited to, ethynyl, 1-propynyl, 1-butynyl, 2-butynyl, and the like. In one embodiment, an alkynyl group may be substituted or unsubstituted. In one embodiment, an alkynyl group may have 2 to 40 carbon atoms.
[0055] As used herein, the term "aromatic" refers to a ring or ring system having a conjugated π (pi) electron system, and includes carbocyclic aromatic (e.g., phenyl) and heterocyclic aromatic (e.g., pyridine) groups. The term includes monocyclic rings, or fused polycyclic rings (i.e., rings which share adjacent pairs of atoms), where the entire ring system is aromatic.
[0056] As used herein, the term "aryl group" refers to an aromatic ring or ring system (i.e., two or more fused rings sharing two adjacent carbon atoms) whose ring backbone contains only carbon. When the aryl group is a ring system, each ring in the system is aromatic. For example, aryl groups include, but are not limited to, phenyl, biphenyl, naphthyl, phenanthrenyl, naphthacenyl, and the like. The aryl group may be substituted or unsubstituted.
[0057] As used herein, the term "heteroaryl group" refers to an aromatic ring system having one ring or multiple fused rings, in which one or more ring atoms are not carbon, i.e., heteroatoms. In a fused ring system, one or more heteroatoms may only be present in one ring. For example, heteroatoms include, but are not necessarily limited to, oxygen, sulfur, and nitrogen. For example, heteroaryl groups may also be, but are not limited to, furanyl, thienyl, imidazolyl, quinazolinyl, quinolinyl, isoquinolinyl, quinoxalinyl, pyridinyl, pyrrolyl, oxazolyl, indolyl, and the like.
[0058] As used herein, the terms "aralkyl group" and "alkylaryl group" refer to an aryl group linked as a substituent via an alkylene group, such as an aralkyl group having 7 to 14 carbon atoms, and include, but are not limited to, a benzyl group, a 2-phenylethyl group, a 3-phenylpropyl group, and a naphthylalkyl group. In one embodiment, the alkylene group is a lower alkylene group (i.e., an alkylene group having 1 to 4 carbon atoms).
[0059] As used herein, a "cycloalkenyl group" is a carboxy ring or ring system that has one or more double bonds and does not have an aromatic ring, such as a cyclohexenyl group.
[0060] As used herein, a "heterocyclic group" is a non-aromatic ring or ring system that contains one or more heteroatoms in the ring backbone.
[0061] As used herein, a "halogen" is a stable element belonging to group 17 of the periodic table of the elements, such as fluorine, chlorine, bromine or iodine, in particular fluorine and / or chlorine.
[0062] In this specification, a substituent is derived from an unsubstituted mother group by replacing one or more hydrogens with other atoms or functional groups. Unless otherwise stated, when a functional group is considered to be "substituted", it means that the functional group is substituted with one or more substituents selected from an alkyl group having 1 to 40 carbon atoms, an alkenyl group having 2 to 40 carbon atoms, a cycloalkyl group having 3 to 40 carbon atoms, a cycloalkenyl group having 3 to 40 carbon atoms, an alkyl group having 1 to 40 carbon atoms, and an aryl group having 7 to 40 carbon atoms. When a functional group is described as being "optionally substituted", it means that the functional group can be substituted with the aforementioned substituents.
[0063] According to another embodiment, the organic electrolyte solution includes a first lithium salt, an organic solvent, and an additive including the compound represented by Chemical Formula 1 and the compound represented by Chemical Formula 2.
[0064] The content of the compound represented by Chemical Formula 1 in the organic electrolyte solution is 0.1% to 5.0%, 0.2% to 5.0%, 0.1% to 4.0%, 0.1% to 3.0%, 0.2% to 3.0%, or 0.2% to 2.0% based on the total weight of the organic electrolyte solution. When the range is satisfied, the lithium battery including the organic electrolyte solution can reduce the high temperature resistance change rate.
[0065] The content of the compound represented by Chemical Formula 2 in the organic electrolyte solution is 0.1% to 5.0%, 0.2% to 5.0%, 0.1% to 4.0%, 0.1% to 3.0%, 0.2% to 3.0%, or 0.2% to 2.0% based on the total weight of the organic electrolyte solution. When the above ranges are satisfied, the lithium battery including the organic electrolyte solution can reduce the amount of high-temperature gas generation.
[0066] The content ratio of the compound represented by Chemical Formula 2 to the content of the compound represented by Chemical Formula 1 in the organic electrolyte solution may be 1:10 to 10:1, 2:10 to 10:1, 2.5:10 to 10:1, 5:10 to 10:1, 1:10 to 10:2, 1:10 to 10:2.5, 1:10 to 10:5, or 2:10 to 10:5.
[0067] The lithium salt used in the organic electrolyte is not particularly limited, and any lithium salt that can be used in the art can be used. For example, LiPF6, LiBF4, LiSbF6, LiAsF6, LiClO4, LiCF3SO3, Li(CF3SO2)2N, LiC4F9SO3, LiAlO2, LiAlCl4, LiN(C x F 2x+1 SO2)(C y F 2y+1 It also contains one or more selected from the group consisting of SO2) (2≦x≦20, 2≦y≦20), LiCl, and LiI.
[0068] The concentration of the lithium salt in the organic electrolyte is, but is not limited to, 0.01 to 2.0 M. An appropriate concentration may be used as necessary. Within this concentration range, further improved battery characteristics can be obtained.
[0069] In the organic electrolyte, the organic solvent also includes a low-boiling point solvent, which means a solvent having a boiling point of 200° C. or lower at 25° C. and 1 atmospheric pressure.
[0070] For example, the organic solvent may include one or more selected from the group consisting of dialkyl carbonates, cyclic carbonates, linear or cyclic esters, linear or cyclic amides, aliphatic nitriles, linear or cyclic ethers, and derivatives thereof.
[0071] More specifically, the organic solvent may include at least one selected from the group consisting of dimethyl carbonate (DMC), ethyl methyl carbonate (EMC), methyl propyl carbonate, ethyl propyl carbonate, diethyl carbonate (DEC), dipropyl carbonate, propylene carbonate (PC), ethylene carbonate (EC), fluoroethylene carbonate (FEC), butylene carbonate, ethyl propionate, ethyl butyrate, acetonitrile, succinonitrile (SN), dimethyl sulfoxide, dimethylformamide, dimethylacetamide, γ-valerolactone, γ-butyrolactone, and tetrahydrofuran, but is not necessarily limited thereto, and any low-boiling point solvent that can be used in the technical field may be used.
[0072] The organic electrolyte may be in the form of a liquid or a gel, and may be prepared by adding a lithium salt and the additive to the organic solvent.
[0073] In addition, the organic electrolyte solution may further include other additives in addition to the compound represented by Chemical Formula 1 and the compound represented by Chemical Formula 2. By including other additives, the performance of the lithium battery may be further improved. The organic electrolyte further contains additives such as a cyclic carbonate compound, a second lithium salt, and the like.
[0074] For example, the organic electrolyte solution may further include a cyclic carbonate compound as an additive. The cyclic carbonate compound used as the additive may be selected from vinylene carbonate (VC); vinylene carbonate substituted with one or more substituents selected from halogen, cyano group (CN) and nitro group (NO2); vinylethylene carbonate (VEC); vinylethylene carbonate substituted with one or more substituents selected from halogen, cyano group (CN) and nitro group (NO2); fluoroethylene carbonate (FEC); and fluoroethylene carbonate substituted with one or more substituents selected from halogen, cyano group (CN) and nitro group (NO2). The organic electrolyte solution may further include a cyclic carbonate compound as an additive, thereby further improving the charge and discharge characteristics of a lithium battery using the organic electrolyte solution.
[0075] The content of the cyclic carbonate compound in the organic electrolyte is 0.01 to 10 wt % based on the total weight of the organic electrolyte, but is not necessarily limited to this range, and an appropriate amount can be used as necessary. For example, the content of the cyclic carbonate compound in the organic electrolyte is 0.1 to 10 wt %, 1 to 10 wt %, 3 to 10 wt %, 1 to 7 wt %, or 3 to 7 wt % based on the total weight of the organic electrolyte. Within the above content range, further improved battery characteristics can be obtained.
[0076] For example, the organic electrolyte may further include a second lithium salt as an additive. The second lithium salt is a lithium salt distinct from the first lithium salt, and the anion may be oxalate, PO2F2-, N(SO2F)2-, etc. For example, the second lithium salt may be a compound represented by the following chemical formulas 3 to 10:
[0077] [ka] [ka]
[0078] The content of the second lithium salt in the organic electrolyte is 0.1 to 5 wt % based on the weight of the organic electrolyte, but is not necessarily limited to this range, and an appropriate amount can be used as necessary. For example, the content of the second lithium salt in the organic electrolyte is 0.1 to 5 wt % based on the total weight of the organic electrolyte. For example, the content of the second lithium salt in the organic electrolyte is 0.1 to 4 wt % based on the total weight of the organic electrolyte. For example, the content of the second lithium salt in the organic electrolyte is 0.1 to 3 wt % based on the total weight of the organic electrolyte. For example, the content of the second lithium salt in the organic electrolyte is 0.1 to 2 wt % based on the total weight of the organic electrolyte. For example, the content of the second lithium salt in the organic electrolyte is 0.2 to 2 wt % based on the total weight of the organic electrolyte. For example, the content of the second lithium salt in the organic electrolyte is 0.2 to 1.5 wt % based on the total weight of the organic electrolyte. Within the above content range, further improved battery characteristics can be obtained.
[0079] The organic electrolyte solution may be in the form of a liquid or gel, and may be prepared by adding the first lithium salt and the additive to the organic solvent.
[0080] A lithium battery according to another embodiment includes a positive electrode, a negative electrode, and the organic electrolyte solution described above. The lithium battery is not particularly limited in type, and may be a lithium secondary battery such as a lithium ion battery, a lithium ion polymer battery, or a lithium sulfur battery, as well as a lithium primary battery.
[0081] For example, in the lithium battery, the negative electrode may include graphite. For example, in the lithium battery, the positive electrode may include lithium transition metal oxide with nickel-containing layered structure. For example, the lithium battery may have a high voltage of 3.80V or more. For example, the lithium battery may have a high voltage of 4.0V or more. For example, the lithium battery may have a high voltage of 4.35V or more.
[0082] For example, a lithium battery can be manufactured by the following method. First, the positive electrode is prepared. For example, a positive electrode active material composition is prepared by mixing a positive electrode active material, a paint, a binder, and a solvent. The positive electrode active material composition is directly coated on a metal current collector to manufacture a positive electrode plate. Alternatively, the positive electrode active material composition is cast on a separate support, and the film is peeled off from the support and laminated on a metal current collector to manufacture a positive electrode plate. The positive electrode is not limited to the forms listed above, and may be in a form other than the forms listed above.
[0083] The positive electrode active material is a lithium-containing metal oxide, and any of those commonly used in the art may be used without limitation. For example, one or more of composite oxides of lithium and a metal selected from cobalt, manganese, nickel, and combinations thereof may be used. Specific examples thereof include Li a A 1-b B b D2 (wherein, 0.90≦a≦1.8 and 0≦b≦0.5); Li a E 1-b B b O 2-c D c (wherein, 0.90≦a≦1.8, 0≦b≦0.5, and 0≦c≦0.05); LiE 2-b B b O 4-c D c (wherein, 0≦b≦0.5 and 0≦c≦0.05); Li a Ni 1-b-c Co b B c D α (wherein, 0.90≦a≦1.8, 0≦b≦0.5, 0≦c≦0.05, and 0<α≦2); Li a Ni 1-b-c Co b B c O 2-α F α (wherein, 0.90≦a≦1.8, 0≦b≦0.5, 0≦c≦0.05, and 0<α<2); Lia Ni 1-b-c Co b B c O 2-α F2 (wherein, 0.90≦a≦1.8, 0≦b≦0.5, 0≦c≦0.05, and 0<α<2); Li a Ni 1-b-c Mn b B c D α (wherein, 0.90≦a≦1.8, 0≦b≦0.5, 0≦c≦0.05, and 0<α≦2); Li a Ni 1-b-c Mn b B c O 2-α F α (wherein, 0.90≦a≦1.8, 0≦b≦0.5, 0≦c≦0.05, and 0<α<2); Li a Ni 1-b-c Mn b B c O 2-α F2 (wherein, 0.90≦a≦1.8, 0≦b≦0.5, 0≦c≦0.05, and 0<α<2); Li a Ni b E c G d O2 (wherein, 0.90≦a≦1.8, 0≦b≦0.9, 0≦c≦0.5, and 0.001≦d≦0.1); Li a Ni b Co c Mn d GeO2 (wherein, in the formula, 0.90≦a≦1.8, 0≦b≦0.9, 0≦c≦0.5, 0≦d≦0.5, and 0.001≦e≦0.1); Li a NiG b O2 (wherein, in the formula, 0.90≦a≦1.8, 0.001≦b≦0.1); Li a CoG b O2 (wherein, in the formula, 0.90≦a≦1.8, 0.001≦b≦0.1); Li a MnG b O2 (wherein, in the formula, 0.90≦a≦1.8, 0.001≦b≦0.1); Li a Mn2G bO4 (in the above formula, 0.90 ≦ a ≦ 1.8, 0.001 ≦ b ≦ 0.1); QO2; QS2; LiQS2; V2O5; LiV2O5; LiIO2; LiNiVO4; Li (3-f) J2(PO4)3 (0 ≦ f ≦ 2); Li (3-f) Any one of the chemical formulas of Fe2(PO4)3 (0 ≦ f ≦ 2); LiFePO4 can be used.
[0084] In the above chemical formula, A is Ni, Co, Mn, or a combination thereof; B is Al, Ni, Co, Mn, Cr, Fe, Fe, Mg, Mg, Sr, V, a rare earth element, or a combination thereof; D is O, F, S, P, or a combination thereof; E is Co, Mn, or a combination thereof; F is F, S, P, or a combination thereof; G is Al, Cr, Mn, Fe, Mg, La, Ce, Sr, V, or a combination thereof; Q is Ti, Mo, Mn, or a combination thereof; I is Cr, V, Fe, Sc, Y, or a combination thereof; J is V, Cr, Mn, Co, Ni, Cu, or a combination thereof.
[0085] The positive electrode active material is also, for example, a lithium transition metal oxide represented by the following chemical formulas 11 to 14. [Chemical formula 11] Li a Ni x Co y M z O 2-b A b In the above chemical formula 11, 1.0 ≦ a ≦ 1.2, 0 ≦ b ≦ 0.2, 0.6 ≦ x < 1, 0 < y ≦ 0.3, 0 < z ≦ 0.3 and x + y + z = 1, M is one or more selected from the group consisting of manganese (Mn), vanadium (V), magnesium (Mg), gallium (Mg), gallium (Ga), silicon (Si), tungsten (W), molybdenum (Mo), iron (Fe), chromium (Cr), copper (Cu), zinc (Zn), titanium (Ti), aluminum (Al) and boron (B), and A is F, S, Cl, Br, or a combination thereof. [Chemical formula 12] LiNi x Co y Mn z O2 [Chemical formula 13] LiNi x Co y AlzO2 In the chemical formulas 12 and 13, 0.6 ≦ x ≦ 0.95, 0 < y ≦ 0.2, 0 < z ≦ 0.2 and x + y + z = 1. [Chemical formula 14] LiNixCoyMnxAlwO2 In the chemical formula 14, 0.6 ≦ x ≦ 0.95, 0 < y ≦ 0.2, 0 < z ≦ 0.2, 0 < w ≦ 0.2 and x + y + z + w = 1.
[0086] For example, LiCoO 2、 LiMn x O 2x (x = 1, 2), LiNi 1-x Mn x O 2x (0 < x < 1), LiNi 1-x-y Co x Mn y O2(0 ≦ x ≦ 0.5, 0 ≦ y ≦ 0.5), LiNi 1-x-y Co x Al yO2 (0≦x≦0.5, 0≦y≦0.5), LiFePO4, etc. Here, it goes without saying that a lithium-containing metal oxide having a coating layer on its surface can be used as the positive electrode active material, or a lithium-containing metal oxide and a compound having a coating layer on its surface can be mixed and used. The coating layer also includes a coating element compound such as an oxide of the coating element, a hydroxide of the coating element, an oxyhydroxide of the coating element, an oxycarbonate of the coating element, or a hydroxycarbonate of the coating element. The compounds constituting these coating layers are amorphous or crystalline. The coating element contained in the coating layer can be Mg, Al, Co, K, Na, Ca, Si, Ti, V, Sn, Ge, Ga, B, As, Zr, or a mixture thereof. The coating layer forming step may use any coating method as long as it is possible to coat the compound using those elements in a manner that does not adversely affect the physical properties of the positive electrode active material (e.g., a spray coating method, a dipping method, etc.); however, since such a method is well known to those skilled in the art, detailed explanations will be omitted.
[0087] Examples of coating materials that can be used include carbon black, graphite fine particles, etc., but are not limited thereto, and any material that can be used as a coating material in the relevant technical field can be used.
[0088] Examples of binders that can be used include vinylidene fluoride / hexafluoropropylene copolymers, polyvinylidene fluoride (PVDF), polyacrylonitrile, polymethyl methacrylate, polytetrafluoroethylene, and mixtures thereof, and styrene-butadiene rubber-based polymers, but are not limited thereto. Any binder that can be used in the art can be used.
[0089] As the solvent, N-methylpyrrolidone, acetone, water, or the like can be used, but the solvent is not limited thereto, and any solvent that can be used in the art can be used. The contents of the positive electrode active material, paint, binder and solvent are at the levels normally used in lithium batteries. Depending on the application and configuration of the lithium battery, one or more of the paint, binder and solvent may be omitted.
[0090] Next, the negative electrode is prepared. For example, a negative active material, a coating material, a binder, and a solvent are mixed to prepare a negative active material composition. The negative active material composition is directly coated on a metal current collector and dried to manufacture a negative plate. Alternatively, the negative active material composition may be cast on a separate support, and the film peeled off from the support may be laminated on a metal current collector to manufacture a negative plate.
[0091] The negative electrode active material may be any material known in the art that can be used as a negative electrode active material for lithium batteries, including at least one material selected from the group consisting of lithium metal, metals capable of forming an alloy with lithium, transition metal oxides, non-transition metal oxides, and carbonaceous materials.
[0092] For example, the metal capable of being alloyed with lithium may be Si, Sn, Al, Ge, Pb, Bi, Sb, a Si-Y alloy (wherein Y is an alkali metal, an alkaline earth metal, a Group 13 element, a Group 14 element, a transition metal, a rare earth element, or a combination thereof, and is not Si), or a Sn-Y alloy (wherein Y is an alkali metal, an alkaline earth metal, a Group 13 element, a Group 14 element, a transition metal, a rare earth element, or a combination thereof, and is not Sn). The element Y can be Mg, Ca, Sr, Sr, Ba, Ra, Ra, Sc, Y, Ti, Zr, Hf, Rf, V, Nb, Ta, Db, Cr, Mo, W, Sg, Tc, Re, Bh, Fe, Pb, Ru, Os, Hs, Rh, Ir, Pd, Pt, Cu, Ag, Au, Zn, Cd, B, Al, Ga, Sn, In, Ti, Ge, P, As, Sb, Bi, S, Se, Te, Po, or a combination thereof.
[0093] For example, the transition metal oxide can be lithium titanium oxide, vanadium oxide, lithium vanadium oxide, and the like. For example, non-transition metal oxides include SnO2, SiO x (0 <x<2)などでもある。
[0094] For example, the carbon-based material may be crystalline carbon, amorphous carbon, or a mixture thereof. The crystalline carbon may be graphite such as amorphous, plate-like, flake-like, spherical, or fibrous natural graphite or artificial graphite, and the amorphous carbon may be soft carbon (low-temperature calcined carbon) or hard carbon, mesophase pitch carbide, calcined coke, etc.
[0095] In the negative electrode active material composition, the conductive material and the binder can be the same as those in the positive electrode active material composition. The contents of the negative electrode active material, conductive material, binder and solvent are at the levels normally used in lithium batteries. Depending on the application and configuration of the lithium battery, one or more of the coating material, binder and solvent may be omitted.
[0096] Next, a separator to be inserted between the positive electrode and the negative electrode is prepared. The separator may be any separator that is normally used in lithium batteries. A separator that has low resistance to ion movement of the electrolyte and has excellent electrolyte moisture-absorbing ability may be used. For example, the separator may be selected from glass fiber, polyester, Teflon (registered trademark), polyethylene, polypropylene, polytetrafluoroethylene (PTFE), or a combination thereof, and may be in the form of a nonwoven fabric or a woven fabric. For example, a separator that can be wound up such as polyethylene or polypropylene may be used for a lithium ion battery, and a separator that has excellent organic electrolyte impregnation ability may be used for a lithium ion polymer battery. For example, the separator may be manufactured by the following method.
[0097] A separator composition is prepared by mixing a polymer resin, a filler, and a solvent. The separator composition can be directly coated on an electrode and dried to form a separator. Alternatively, the separator composition can be cast on a support and dried, and the separator film can be peeled off from the support and laminated on an electrode to form a separator.
[0098] The polymer resin used in the manufacture of the separator is not particularly limited, and any material that is used as a binder for electrode plates can be used, such as vinylidene fluoride / hexafluoropropylene copolymer, polyvinylidene fluoride (PVDF), polyacrylonitrile, polymethyl methacrylate, or a mixture thereof.
[0099] Next, the aforementioned organic electrolyte solution is prepared. As shown in Fig. 1, the lithium battery 1 includes a positive electrode 3, a negative electrode 2, and a separator 4. The positive electrode 3, the negative electrode 2, and the separator 4 are wound or folded and housed in a battery case 5. Then, an organic electrolyte is injected into the battery case 5, and the battery case 5 is sealed with a cap assembly 6 to complete the lithium battery 1. The battery case may be a cylindrical type, a square type, a thin film type, or the like.
[0100] A separator may be disposed between the positive and negative electrodes to form a battery structure, which may then be stacked in a bi-cell structure and then immersed in an organic electrolyte. The resulting structure may then be placed in a pouch and sealed to complete a lithium battery.
[0101] A plurality of the battery structures are stacked to form a battery pack, which can be used in any device that requires high capacity and high power output, such as notebook computers, smartphones, electric vehicles, etc.
[0102] In addition, the lithium battery is also used in electric vehicles (EVs) because of its excellent life characteristics and high rate characteristics, for example, in hybrid vehicles such as plug-in hybrid electric vehicles (PHEVs), and in fields requiring large amounts of power storage, for example, in electric bicycles and power tools.
[0103] The illustrative examples will be described in more detail through the following examples and comparative examples. However, the examples are intended to illustrate the technical idea, and are not intended to limit the scope of the technical idea.
[0104] (Production of organic electrolyte) Preparation Example 1: 1% by weight of Formula 1-3, 0.5% by weight of Formula 2-3, and 5% by weight of FEC An organic electrolyte solution was prepared by adding 1.0M LiPF6 as a lithium salt, 1% by weight of a compound represented by the following chemical formula 1-3, 0.5% by weight of a compound represented by the following chemical formula 2-3 (MMDS), and 5% by weight of fluoroethylene carbonate (FEC) to a mixed solvent of ethylene carbonate (EC), ethyl methyl carbonate (EMC), and dimethyl carbonate (DMC) in a volume ratio of 2:2:6.
[0105] [ka]
[0106] Preparation Examples 2 to 5 and Comparative Preparation Examples 1 to 4 An organic electrolyte solution was prepared in the same manner as in Preparation Example 1, except that the types and contents of additives were the same as those in Table 1.
[0107] [Table 1]
[0108] [ka]
[0109] (Lithium battery manufacturing) Example 1 (Anode manufacturing) 98% by weight of artificial graphite, 1.0% by weight of styrene-butadiene rubber (SBR) binder, and 1.0% by weight of carboxymethyl cellulose (CMC) were mixed, then added to distilled water and stirred for 60 minutes using a mechanical stirrer to produce anode active material slurry. The slurry was applied to a copper collector with a thickness of 10μm using a doctor blade to a thickness of about 60μm, dried in a hot air dryer at 100℃ for 0.5 hours, dried in a vacuum at 120℃ for 4 hours, and roll pressed to produce anode plates.
[0110] (Cathode manufacturing) LiNi 0.88 Co 0.09 Al0.03 A mixture of 97.45 wt% O2, 0.5 wt% artificial graphite powder as a conductive material, 0.7 wt% carbon black, 0.25 wt% modified acrylonitrile rubber, and 1.1 wt% polyvinylidene fluoride (PVdF) was added to an N-methyl-2-pyrrolidone solvent and stirred for 30 minutes using a mechanical stirrer to produce a positive electrode active material slurry. The slurry was applied to a 20 μm thick aluminum collector using a doctor blade to a thickness of about 60 μm, dried in a hot air dryer at 100°C for 0.5 hours, dried in a vacuum at 120°C for 4 hours, and roll pressed to produce a positive electrode plate.
[0111] A lithium battery was manufactured using a 14 μm thick polyethylene separator coated with ceramic on the positive electrode side as a separator and the organic electrolyte solution manufactured in Manufacturing Example 1 as an electrolyte solution.
[0112] Examples 2 and 3, and Comparative Examples 1 to 3 Lithium batteries were manufactured in the same manner as in Example 1, except that the organic electrolyte solutions prepared in Preparation Examples 2, 3, and Comparative Preparation Examples 1 to 3 were used instead of the organic electrolyte solution prepared in Preparation Example 1.
[0113] Evaluation example 1: Evaluation of charge / discharge characteristics at room temperature (25°C) The lithium batteries prepared in Examples 1 to 5 and Comparative Examples 1 to 4 were charged at a constant current of 0.3 C rate at 25° C. until the voltage reached 4.2 V (vs. Li), and then cut off at a current of 0.05 C rate while maintaining 4.2 V in constant voltage mode. Next, a cycle of discharging at a constant current of 1.0 C rate until the voltage reached 2.5 V (vs. Li) was repeated up to 300 cycles. In the total charge-discharge cycles, a 10-minute rest time was provided after each charge-discharge cycle. Some of the results of the charge / discharge experiment are shown in Table 2. The capacity retention rate at the 300th cycle is defined by the following formula 1. [Number 1] Capacity retention rate = [discharge capacity at 300th cycle / discharge capacity at first cycle] x 100
[0114] Evaluation example 2: Evaluation of high temperature stability at 60℃ The lithium batteries prepared in Examples 1 to 5 and Comparative Examples 1 to 4 were charged at a constant current of 0.3° C. to 4.2 V in the first cycle at room temperature (25° C.), then charged at a constant voltage of 0.05° C. while maintaining the voltage at 4.2 V, and discharged at a constant current of 1.0° C. to 2.5 V. In the second cycle, the battery was charged at a constant current of 0.3C to 4.2V, then charged at a constant voltage of 0.05C while maintaining the voltage at 4.2V, and discharged at a constant current of 1.0C to 2.5V. In the third cycle, the battery was charged at a constant current of 0.5 C to 4.2 V, and then charged at a constant voltage of 0.02 C while maintaining the voltage at 4.2 V, and then discharged at a constant current of 0.2 C to 2.5 V. The discharge capacity in the third cycle was taken as the standard capacity. In the fourth cycle, the battery was charged to 4.2 V at a rate of 0.5 C, and then continuously charged at 4.2 V with a constant voltage until the current reached 0.02 C. The charged battery was then stored in an oven at 60° C. for 30 days, after which the battery was removed and discharged to 2.5 V at a rate of 0.2 C for the fourth cycle. [Number 2] Capacity retention rate after high temperature storage [%] = [discharge capacity after high temperature storage in the fourth cycle / standard capacity] x 100 (the standard capacity is the discharge capacity in the third cycle)
[0115] Evaluation example 3: DC-IR (direct current internal resistance) evaluation after high-temperature storage at 60℃ For the lithium batteries manufactured in Examples 1 to 5 and Comparative Examples 1 to 4, the direct current resistance (DC-IR) was measured at room temperature (25° C.) by the following method for the batteries that were not placed in a 60° C. oven and the batteries that were removed after being stored in a 60° C. oven for 30 days. In the first cycle, the battery was charged to 4.2V at 0.5C current, then cut off at 0.02C and rested for 10 minutes. The battery was discharged at a constant current of 4.0 A for 10 seconds, followed by a constant current discharge at 1.0 A for 10 seconds without pause, and then again at a constant current of 4.0 A for 4 seconds without pause. During the series of discharge processes in the first cycle, the direct current internal resistance (DC-IR) (R = ΔV / ΔI) was calculated from the ratio of the voltage change (ΔV) and current change (ΔI) between the time point at which 8 seconds had elapsed during the constant current discharge at 1.0 A and the time point at which 3 seconds had elapsed during the second constant current discharge at 4.0 A, and this was used as the measured value. Based on the measured DC resistance, the DC resistance change rate calculated from the current resistance after high-temperature storage is shown in Table 2 below. The resistance change rate is expressed by Equation 3 below. [Number 3] Resistance change rate [%] = [DC resistance after high temperature storage / initial DC resistance] x 100
[0116] Evaluation example 4: Evaluation of gas generation amount after high temperature storage at 60℃ The lithium secondary batteries prepared in Examples 1 to 5 and Comparative Examples 1 to 4 were left at 60° C. for 30 days, and the amount of gas generated was measured as follows. While maintaining the battery at 25°C, place it in a pressure measurement jig and create a vacuum inside the jig using a vacuum pump for 10 minutes, then lock the vacuum valve and measure the pressure, with the measured value being P0. A pin in the pressure measurement jig is used to impact the bottom of the circular cell so that the internal gas is released, and the internal pressure of the jig after 10 seconds has passed is measured and this is called P1. The number of moles of gas produced, n, is calculated using the following formula: n=[(P1-P0)*Vzig / (R*298K)] Since 1 mole of gas at 1 atmosphere has a volume of approximately 22,400 mL, the volume V of the gas produced can be calculated as n*22,400 mL, which is shown in Table 2 below as the measured amount of gas produced.
[0117] [Table 2]
[0118] As shown in Table 2, the lithium batteries of Examples 1 to 5 containing the additive of the present invention have improved room temperature capacity retention, high temperature capacity retention, high temperature resistance change rate, and high temperature gas generation rate, as compared to the lithium batteries of Comparative Examples 1 to 4 not containing the compound represented by Chemical Formula 1 or the compound represented by Chemical Formula 2.
Claims
1. A first lithium salt; An organic solvent; An organic electrolyte solution comprising a compound represented by the following formula 1 and an additive for a lithium battery electrolyte comprising a compound represented by the following formula 2: 【Chemistry 1】 [In the above formulas 1 and 2, A 1 Or A 4 , and A 11 Or A 12 are each independently a substituted or unsubstituted alkylene group having 1 to 5 carbon atoms, a carbonyl group, or a sulfinyl group. And, The content of the compound represented by Formula 1 is 0.1 wt % to 5.0 wt % based on the total weight of the organic electrolyte solution; The content of the compound represented by Formula 2 is 0.1 wt % to 5.0 wt % based on the total weight of the organic electrolyte solution; The organic electrolyte solution, wherein the concentration of the first lithium salt is within the range of 0.7 to 2.0M.
2. The aforementioned A 1 Or A 4 , and A 11 Or A 12 is an unsubstituted alkylene group having 1 to 5 carbon atoms or a substituted alkylene group having 1 to 5 carbon atoms, 2. The organic electrolyte according to claim 1, wherein the substituent of the substituted alkylene group having 1 to 5 carbon atoms is an alkyl group having 1 to 20 carbon atoms which is substituted or unsubstituted with a halogen, an alkenyl group having 2 to 20 carbon atoms which is substituted or unsubstituted with a halogen, an alkynyl group having 2 to 20 carbon atoms which is substituted or unsubstituted with a halogen, a cycloalkenyl group having 3 to 20 carbon atoms which is substituted or unsubstituted with a halogen, a heterocyclic group having 3 to 20 carbon atoms which is substituted or unsubstituted with a halogen, an aryl group having 6 to 40 carbon atoms which is substituted or unsubstituted with a halogen, a heteroaryl group having 2 to 40 carbon atoms which is substituted or unsubstituted with a halogen, or a polar functional group containing a heteroatom.
3. The organic electrolyte solution according to claim 1, wherein the substituent is at least one selected from the group consisting of halogen, a methyl group, an ethyl group, a propyl group, an isopropyl group, a butyl group, a tert-butyl group, a trifluoromethyl group, a tetrafluoroethyl group, a phenyl group, a naphthyl group, a tetrafluorophenyl group, a pyrrolyl group, and a pyridinyl group.
4. The substituted C1-C5 alkylene group is substituted with a polar functional group containing one or more heteroatoms; The polar functional group containing the heteroatom is -F, -Cl, -Br, -I, -C(=O)OR 16 , -OC(=O)R 16 , -OR 16 , -OC(=O)OR 16 , -R 15 OC(=O)OR 16 , -C(=O)R 16 , -R 15 C(=O)R 16 , -OC(=O)R 16 , -R 15 OC(=O)R 16 , -(R 15 O) k- OR 16 , -(OR 15 ) k- OR 16 , -C(=O)-O-C(=O)R 16 , -R 15 C(=O)-O-C(=O)R 16 , -SR 16 , -R 15 SR 16 , -SSR 16 , -R 15 SSR 16 , -S(=O)R 16 , -R 15 S(=O)R 16 , -R 15 C(=S)R 16 , -R 15 C(=S)SR 16 , -R 15 SO 3 R 16 , -SO 3 R 16 , -NN-C(=S)R 16 , -R 15 NN-C(=S)R 16 , -R 15 N=C=S, -NCO, -R 15- NCO, -NO 2 , -R 15 NO 2 , -R 15 , -R 2 SO 16 , -SO 2 R 16 , 【Chemistry 2A】 【Chemistry 2B】 The present invention includes one or more selected from the group consisting of R 11 and R 15 are each independently a halogen-substituted or unsubstituted alkylene group having 1 to 20 carbon atoms, a halogen-substituted or unsubstituted alkenylene group having 2 to 20 carbon atoms, a halogen-substituted or unsubstituted alkynylene group having 2 to 20 carbon atoms, a halogen-substituted or unsubstituted cycloalkylene group having 3 to 12 carbon atoms, a halogen-substituted or unsubstituted arylene group having 6 to 40 carbon atoms, a halogen-substituted or unsubstituted heteroarylene group having 2 to 40 carbon atoms, a halogen-substituted or unsubstituted alkylarylene group having 7 to 15 carbon atoms, or a halogen-substituted or unsubstituted aralkylene group having 7 to 15 carbon atoms, R 12 , R 13 , R 14 and R 16 are each independently hydrogen, a halogen, a halogen-substituted or unsubstituted alkyl group having 1 to 20 carbon atoms, a halogen-substituted or unsubstituted alkenyl group having 2 to 20 carbon atoms, a halogen-substituted or unsubstituted alkynyl group having 2 to 20 carbon atoms, a halogen-substituted or unsubstituted cycloalkyl group having 3 to 12 carbon atoms, a halogen-substituted or unsubstituted aryl group having 6 to 40 carbon atoms, a halogen-substituted or unsubstituted heteroaryl group having 2 to 40 carbon atoms, a halogen-substituted or unsubstituted alkylaryl group having 7 to 15 carbon atoms, a halogen-substituted or unsubstituted trialkylsilyl group having 7 to 15 carbon atoms, or a halogen-substituted or unsubstituted aralkyl group having 7 to 15 carbon atoms, 2. The organic electrolyte according to claim 1, wherein k is an integer from 1 to 20.
5. The compound represented by Chemical Formula 1 is represented by the following Chemical Formula 1-1: The compound represented by the chemical formula 2 is represented by the following chemical formula 2-1: 【Chemistry 3】 In the above Chemical Formula 1-1 and Chemical Formula 2-1, B 1 , B 2 , B 3 , B 4 , B 11 and B 12 are each independently -C(E 1 ) (E 2 )-, a carbonyl group or a sulfinyl group; E 1 and E 2 are each independently hydrogen, a halogen, a halogen-substituted or unsubstituted alkyl group having 1 to 20 carbon atoms, a halogen-substituted or unsubstituted alkenyl group having 2 to 20 carbon atoms, a halogen-substituted or unsubstituted alkynyl group having 2 to 20 carbon atoms, a halogen-substituted or unsubstituted cycloalkenyl group having 3 to 20 carbon atoms, a halogen-substituted or unsubstituted heterocyclic group having 3 to 20 carbon atoms, a halogen-substituted or unsubstituted aryl group having 6 to 40 carbon atoms, or a halogen-substituted or unsubstituted heteroaryl group having 2 to 40 carbon atoms.
6. The above E 1 and the above E 2 are each independently a hydrogen atom, a halogen atom, an alkyl group having 1 to 10 carbon atoms which is substituted or unsubstituted with a halogen atom, an aryl group having 6 to 40 carbon atoms which is substituted or unsubstituted with a halogen atom, or a heteroaryl group having 2 to 40 carbon atoms which is substituted or unsubstituted with a halogen atom.
7. The above E 1 and the above E 2 are each independently selected from the group consisting of hydrogen, F, Cl, Br, I, a methyl group, an ethyl group, a propyl group, an isopropyl group, a butyl group, a tert-butyl group, a trifluoromethyl group, a tetrafluoroethyl group, a phenyl group, a naphthyl group, a tetrafluorophenyl group, a pyrrolyl group, and a pyridinyl group.
8. The compound represented by Chemical Formula 1 is represented by the following Chemical Formula 1-2: The compound represented by the chemical formula 2 is represented by the following chemical formula 2-2: 【Chemistry 4】 In the formula 1-2 and the formula 2-2, R 1 Or R 8 , and R 11 Or R 14 are each independently a hydrogen atom, a halogen atom, a halogen-substituted or unsubstituted alkyl group having 1 to 20 carbon atoms, a halogen-substituted or unsubstituted aryl group having 6 to 40 carbon atoms, or a halogen-substituted or unsubstituted heteroaryl group having 2 to 40 carbon atoms.
9. The aforementioned R 1 Or R 8 , and R 11 Or R 14 are each independently selected from the group consisting of hydrogen, F, Cl, Br, I, a methyl group, an ethyl group, a propyl group, an isopropyl group, a butyl group, a tert-butyl group, a trifluoromethyl group, a tetrafluoroethyl group, a phenyl group, a naphthyl group, a tetrafluorophenyl group, a pyrrolyl group, and a pyridinyl group.
10. The compound represented by the formula 1 is represented by one selected from the following formulas 1-3 to 1-11: 【Chemistry 5A】 【Chemistry 5B】 【Chemistry 5C】 。
11. The compound represented by the formula 2 is an organic electrolyte solution according to claim 1, which is represented by one selected from the following formulas 2-3 to 2-12: 【Chemistry 6A】 【Chemistry 6B】 。
12. 2. The organic electrolyte solution of claim 1, wherein a ratio of the content of the compound represented by Formula 2 to the content of the compound represented by Formula 1 is 1:10 to 10:
1.
13. A positive electrode and A negative electrode; A lithium battery comprising the organic electrolyte solution according to claim 1.
14. 14. The lithium battery of claim 13, wherein the positive electrode comprises a nickel-containing layered structure lithium transition metal oxide.
15. 15. The lithium battery of claim 14, wherein the lithium transition metal oxide includes at least one of oxides represented by the following Formulas 12 to 14: [Chemical formula 12] L)) x Co y Mn z O 2 [Chemical formula 13] L)) x Co y Al z O 2 In the formulas 12 and 13, 0.6≦x≦0.95, 0<y≦0.2, 0<z≦0.2, and x+y+z=1; [Chemical formula 14] L)) x Co y Mn x Al w O 2 In Formula 14, 0.6≦x≦0.95, 0<y≦0.2, 0<z≦0.2, 0<w≦0.2, and x+y+z+w=1.
Citation Information
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