Lithium-ion secondary battery

The lithium-ion secondary battery design with a surface-modified positive electrode and segregated electrolytes addresses capacity loss and safety issues by stabilizing proton reactions and improving ionic conductivity.

JP7780734B2Active Publication Date: 2025-12-05PANASONIC INTELLECTUAL PROPERTY MANAGEMENT CO LTD
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Patent Information

Application Number
JP2022553533
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-09-30
Filing Date
2021-08-18
Publication Date
2025-12-05
Estimated Expiration
2041-08-18

AI Technical Summary

Technical Problem

Conventional lithium-ion secondary batteries with aqueous electrolytes face capacity reduction due to charge/discharge cycles, and organic solvent-based electrolytes pose safety risks and have low ionic conductivity.

Method used

A lithium-ion secondary battery design featuring a positive electrode with a lithium transition metal composite oxide coated by a surface modification layer containing alkaline earth or rare earth elements, and a nonaqueous electrolyte in contact with the negative electrode, while the aqueous electrolyte is limited to the positive electrode, mitigating proton reactions.

Benefits of technology

This configuration suppresses capacity loss during charge/discharge cycles and enhances safety by minimizing side reactions, leveraging the modified positive electrode to stabilize the battery performance.

✦ Generated by Eureka AI based on patent content.

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Abstract

This lithium ion secondary battery comprises a negative electrode, a positive electrode, a non-aqueous electrolyte including a lithium salt, and an aqueous electrolyte including a lithium salt, wherein: among the negative electrode and the positive electrode, the aqueous electrolyte contacts only the positive electrode; among the negative electrode and the positive electrode, the non-aqueous electrolyte contacts at least the negative electrode; the positive electrode contains a positive electrode active material; the positive electrode active material contains a lithium transition metal composite oxide and a surface modification layer formed on the surface of primary particles of the lithium transition metal composite oxide; and the surface modification layer contains an alkali earth metal element.
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Description

[Technical Field]

[0001] The present disclosure relates to lithium-ion secondary batteries. [Background technology]

[0002] Lithium-ion secondary batteries, which have a positive electrode, a negative electrode, and an electrolyte, are widely used as high-power, high-energy-density secondary batteries. Conventional secondary batteries use organic solvent-based electrolytes to achieve high energy density.

[0003] However, organic solvents are generally flammable, making safety an important issue, and the ionic conductivity of organic solvents is lower than that of aqueous solutions, making rapid charge / discharge characteristics insufficient.

[0004] In view of these problems, research has been conducted into secondary batteries that use aqueous electrolytes containing water. For example, Patent Document 1 proposes a lithium ion secondary battery that uses an aqueous solution containing a high concentration of alkaline salt as the aqueous liquid electrolyte. Furthermore, Patent Document 2 proposes a lithium ion secondary battery that includes a negative electrode filled with a nonaqueous solid electrolyte, a positive electrode, a separator disposed between the negative electrode and the positive electrode and filled with the nonaqueous solid electrolyte, and an aqueous liquid electrolyte. [Prior art documents] [Patent documents]

[0005] [Patent Document 1] Patent No. 6423453 [Patent Document 2] Japanese Patent Application Publication No. 2018-198131 Summary of the Invention

[0006] Conventional lithium ion secondary batteries with aqueous electrolytes have a problem of capacity reduction due to charge / discharge cycles.

[0007] One aspect of the present disclosure is a lithium ion secondary battery comprising: a negative electrode; a positive electrode; a nonaqueous electrolyte containing a lithium salt; and an aqueous electrolyte containing a lithium salt, wherein the aqueous electrolyte is in contact with only the positive electrode of the negative electrode and the positive electrode; and the nonaqueous electrolyte is in contact with at least the negative electrode of the negative electrode and the positive electrode; the positive electrode comprises a positive electrode active material, and the positive electrode active material comprises a lithium transition metal composite oxide and a surface modification layer formed on surfaces of primary particles of the lithium transition metal composite oxide, and the surface modification layer comprises at least one element selected from the group consisting of alkaline earth metal elements, rare earth elements, and Group IIIb elements, IVb elements, and Vb elements of the periodic table.

[0008] According to the present disclosure, it is possible to provide a lithium ion secondary battery capable of suppressing a decrease in capacity due to charge / discharge cycles. [Brief explanation of the drawings]

[0009] [Figure 1] FIG. 1 is a schematic cross-sectional view showing an example of the lithium ion secondary battery of this embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0010] A lithium-ion secondary battery according to one embodiment of the present disclosure includes a negative electrode, a positive electrode, a nonaqueous electrolyte containing a lithium salt, and an aqueous electrolyte containing a lithium salt. The aqueous electrolyte is in contact with only the positive electrode of the negative electrode and the positive electrode, and the nonaqueous electrolyte is in contact with at least the negative electrode of the negative electrode and the positive electrode. The positive electrode includes a positive electrode active material. The positive electrode active material includes a lithium transition metal composite oxide and a surface modification layer formed on the surface of primary particles of the lithium transition metal composite oxide. The surface modification layer includes at least one element selected from the group consisting of alkaline earth metal elements, rare earth elements, and elements of Groups IIIb, IVb, and Vb of the periodic table. Use of a lithium-ion secondary battery according to one embodiment of the present disclosure can suppress capacity loss due to charge / discharge cycles. While the mechanism behind this effect is not fully understood, the following is presumed.

[0011] By contacting only the positive electrode with an aqueous electrolyte, side reactions of water at the negative electrode are suppressed, allowing the charge-discharge reaction to proceed, but on the other hand, side reactions between the positive electrode active material and protons occur, making the capacity more likely to decrease with charge-discharge cycles. However, as disclosed herein, by using a positive electrode active material in which a surface modification layer containing at least one element selected from the group consisting of alkaline earth metal elements, rare earth elements, and elements from Groups IIIb, IVb, and Vb of the periodic table is disposed on the surfaces of primary particles of a lithium transition metal composite oxide, the reaction with protons on the surface of the positive electrode active material is suppressed, and it is believed that this can suppress the capacity decrease with charge-discharge cycles.

[0012] An example of an embodiment of a lithium ion secondary battery according to the present disclosure will be described in detail below.

[0013] Fig. 1 is a schematic cross-sectional view showing an example of a lithium-ion secondary battery according to the present embodiment. The lithium-ion secondary battery 1 shown in Fig. 1 includes a positive electrode 10, a negative electrode 12, a separator 14, an aqueous electrolyte 16, a non-aqueous electrolyte 18, a positive electrode lead 20, a negative electrode lead 22, and a battery case 24 that houses these components.

[0014] The positive electrode 10 has a positive electrode current collector 26 and a positive electrode composite layer 28 disposed on the positive electrode current collector 26. A positive electrode lead 20 is connected to the positive electrode current collector 26. The positive electrode lead 20 is housed in the battery case 24 such that the tip of the positive electrode lead 20 protrudes outside the battery case 24.

[0015] The negative electrode 12 has a negative electrode current collector 30 and a negative electrode composite layer 32 disposed on the negative electrode current collector 30. A negative electrode lead 22 is connected to the negative electrode current collector 30. The negative electrode lead 22 is housed in the battery case 24 such that the tip of the negative electrode lead 22 protrudes outside the battery case 24.

[0016] The aqueous electrolyte 16 is, for example, impregnated into the positive electrode mixture layer 28 and is in contact with only the positive electrode 10 out of the positive electrode 10 and the negative electrode 12. The nonaqueous electrolyte 18 is, for example, impregnated into the negative electrode mixture layer 32 and is in contact with the negative electrode 12. Of the positive electrode 10 and the negative electrode 12, the nonaqueous electrolyte 18 may be in contact with only the negative electrode 12 or may be in contact with both the positive electrode 10 and the negative electrode 12. The separator 14 is disposed between the positive electrode 11 and the negative electrode 12. The separator 14 may be wrapped around the negative electrode 12.

[0017] The positive electrode current collector 26 constituting the positive electrode 10 may be, for example, a foil of a metal that is electrochemically and chemically stable within the potential range of the positive electrode 10, or a film having such a metal disposed on its surface. The form of the positive electrode current collector 26 is not particularly limited, and may be, for example, a porous body such as a mesh body, punched sheet, or expanded metal of the metal. Examples of materials for the positive electrode current collector 26 include stainless steel, Al, aluminum alloy, and Ti. From the viewpoints of current collection performance, mechanical strength, and the like, the thickness of the positive electrode current collector 26 is preferably, for example, 3 μm or more and 50 μm or less.

[0018] Positive electrode mixture layer 28 constituting positive electrode 10 includes positive electrode active material 34. Positive electrode mixture layer 28 may also include a binder, a conductive material, etc. Positive electrode 10 can be manufactured, for example, by applying a positive electrode mixture slurry containing positive electrode active material 34, a binder, a conductive material, etc. to positive electrode current collector 26, drying and rolling the coating, and forming positive electrode mixture layer 28 on positive electrode current collector 26.

[0019] The positive electrode active material 34 includes a lithium transition metal composite oxide and a surface modification layer formed on the surface of primary particles of the lithium transition metal composite oxide and containing at least one element selected from the group consisting of alkaline earth metal elements, rare earth elements, and elements from Groups IIIb, IVb, and Vb of the periodic table. The positive electrode active material 34 may also include transition metal sulfides, metal oxides, lithium-containing polyanion compounds containing one or more transition metals such as lithium iron phosphate (LiFePO) and lithium iron pyrophosphate (LiFePO), sulfur-based compounds (LiS), oxygen, and oxygen-containing metal salts such as lithium oxide.

[0020] From the viewpoint of, for example, charge / discharge efficiency, the lithium transition metal composite oxide preferably contains at least one element selected from the group consisting of Ni, Co, Mn, and aluminum (Al). Among these elements, it is preferable to contain at least Ni, at least Co, at least two elements of Ni and Mn, at least three elements of Ni, Co, and Mn, or at least three elements of Ni, Co, and Al. The lithium transition metal composite oxide may contain additional elements other than these elements, such as zirconium (Zr), boron (B), magnesium (Mg), scandium (Sc), yttrium (Y), titanium (Ti), iron (Fe), copper (Cu), zinc (Zn), chromium (Cr), lead (Pb), tin (Sn), sodium (Na), potassium (K), barium (Ba), strontium (Sr), calcium (Ca), tungsten (W), molybdenum (Mo), niobium (Nb), and silicon (Si).

[0021] Specific examples of lithium transition metal composite oxides include Li xCoO2, Li x NiO2, Li x MnO2, Li x Co y Ni 1-y O2, Li x Co y M 1-y O z , Li x Ni 1-y M y O z , Li x Mn2O4, Li x Mn 2-y M y O4, LiMPO4, Li2MPO4F (in each chemical formula, M is at least one of Na, Mg, Sc, Y, Mn, Fe, Co, Ni, Cu, Zn, Al, Cr, Pb, Sb, and B, 0 < x ≤ 1.2, 0 < y ≤ 0.9, 2.0 ≤ z ≤ 2.3). The lithium transition metal composite oxide may be used alone or in combination of multiple types. From the perspective of high capacity, it is preferable that the lithium transition metal composite oxide contains 80 mol% or more of Ni with respect to the total amount of transition metals other than lithium. Also, from the perspective of the stability of the crystal structure, it is more preferable that the lithium transition metal composite oxide is Li a Ni b Co c Al d O2 (0 < a ≤ 1.2, 0.8 ≤ b < 1, 0 < c < 0.2, 0 < d ≤ 0.1, b + c + d = 1).

[0022] Also, the lithium transition metal oxide may be a Li-excess transition metal oxide, a lithium transition metal halide, etc. The Li-excess transition metal oxide is represented by, for example, the general formula Li 1+x Me 1-x O2 (0 < x). The lithium transition metal halide is not particularly limited as long as it is a lithium transition metal oxide containing a halogen atom, but preferably includes a lithium transition metal oxide containing a fluorine atom from the perspective of the structural stability of the lithium transition metal oxide, etc.

[0023] The lithium transition metal composite oxide is, for example, a secondary particle formed by agglomeration of a plurality of primary particles. The particle size of the primary particles constituting the secondary particle is, for example, 0.05 μm to 1 μm. The particle size of the primary particle is measured as the diameter of the circumscribed circle in a particle image observed with a scanning electron microscope (SEM). The surface modification layer exists on the surface of the primary particle. In other words, the surface modification layer exists on the surface of the secondary particle of the lithium transition metal composite oxide or at the interface where the primary particles contact each other.

[0024] The lithium transition metal composite oxide is a particle having a volume-based median diameter (D50) of, for example, 3 μm to 30 μm, preferably 5 μm to 25 μm, and particularly preferably 7 μm to 15 μm. D50 refers to the particle size at which the cumulative frequency of particles in the volume-based particle size distribution is 50% from the smallest particle size, and is also called the median diameter. The particle size distribution of the lithium transition metal composite oxide can be measured using a laser diffraction particle size distribution analyzer (e.g., MT3000II manufactured by Microtrack Bell Corporation) using water as the dispersion medium.

[0025] The thickness of the surface modification layer formed on the surface of the primary particles of the lithium transition metal composite oxide is preferably in the range of 0.1 nm to 5 nm, for example, in order to effectively suppress reaction with protons on the surface of the lithium transition metal composite oxide.

[0026] The surface modification layer contains at least one element (hereinafter sometimes referred to as a surface modification element) selected from the group consisting of alkaline earth metal elements, rare earth elements, and elements from Groups IIIb, IVb, and Vb of the periodic table. Alkaline earth metal elements include Be, Mg, Ca, Sr, Ba, and Ra. Rare earth elements include Sc, Y, La, and Ce. Elements from Group IIIb of the periodic table include B, Al, Ga, In, and Tl; elements from Group IVb include C, Si, Ge, Sn, and Pb; and elements from Group Vb include N, P, As, Sb, and Bi.

[0027] The surface modification layer may contain, for example, a compound containing a surface modifying element. The compound containing the surface modifying element may be in the form of, for example, an oxide, hydroxide, or carbonate. Among alkaline earth metal elements, rare earth elements, and elements from Groups IIIb, IVb, and Vb of the periodic table, Sr and Ca are preferred because they can effectively suppress reaction with protons on the surface of the lithium transition metal composite oxide. In other words, the surface modification layer preferably contains at least one of Sr and Ca.

[0028] The content of the surface modifying element relative to the total number of moles of metal elements excluding Li in the positive electrode active material 34 is preferably in the range of 0.05 mol % to 20 mol %, for example, in order to suppress a decrease in capacity due to charge / discharge cycles. Here, the composition of the surface modifying layer in the positive electrode active material 34 and the composition of the lithium transition metal composite oxide can be measured by analyzing each location on the cross section of a primary particle of the positive electrode active material 34 using TEM-EDX.

[0029] The surface modification layer may further contain a transition metal element. As the transition metal element, for example, a transition metal element other than Ni and Co is preferable. Transition metal elements other than Ni and Co tend to have a higher effect of suppressing reaction with protons than Ni and Co.

[0030] The method for producing the positive electrode active material 34 includes, for example, a first step of obtaining a transition metal oxide containing a transition metal element such as Ni or Co, a second step of mixing the transition metal oxide obtained in the first step with a lithium compound and a compound containing a surface modifying element to obtain a mixture, and a third step of firing the mixture.

[0031] In the first step, for example, an alkaline solution such as sodium hydroxide is added dropwise to a stirred solution of metal salts containing Ni, Co, etc., to adjust the pH to the alkaline side (e.g., 8.5 to 12.5), thereby precipitating (co-precipitating) a transition metal hydroxide containing a transition metal element such as Ni or Co. The transition metal hydroxide is then calcined to obtain a transition metal oxide. The calcination temperature is not particularly limited, but is, for example, 300°C to 600°C.

[0032] In the second step, a mixture is obtained by mixing the transition metal oxide obtained in the first step, a lithium compound, and a compound containing a surface modifying element. Examples of lithium compounds include Li2CO3, LiOH, Li2O2, Li2O, LiNO3, LiNO2, Li2SO4, LiOH·H2O, LiH, and LiF. Examples of compounds containing a surface modifying element include oxides, hydroxides, carbonates, sulfates, and nitrates of the surface modifying element. The mixing ratio of the transition metal oxide obtained in the first step and the lithium compound is preferably adjusted so that the molar ratio of metal elements excluding Li to Li is in the range of 1:0.98 to 1:1.1.

[0033] In the third step, the mixture obtained in the second step is fired at a predetermined temperature for a predetermined time to obtain a positive electrode active material 34 having a lithium transition metal composite oxide and a surface modification layer. The third step is preferably a multi-stage firing step including, for example, a first firing step in which firing is performed in an oxygen stream to a first set temperature of 450°C to 680°C at a first heating rate, and a second firing step in which the fired product obtained in the first firing step is fired in an oxygen stream to a second set temperature of more than 680°C but not more than 800°C at a second heating rate. The firing is performed, for example, in an oxygen stream with an oxygen concentration of 60% or more, with the flow rate of the oxygen stream set to 10 cm / s. 3 The flow rate shall be 0.2 mL / min to 4 mL / min per kg of the mixture, and 0.3 L / min or more per kg of the mixture.

[0034] Here, the first heating rate is set in one or more patterns within a range of, for example, 1.5°C / min to 5.5°C / min, and the second heating rate is slower than the first heating rate and is set in one or more patterns within a range of 0.1°C / min to 3.5°C / min.

[0035] The holding time of the first set temperature in the first firing step is preferably 5 hours or less, more preferably 3 hours or less. The holding time of the first set temperature is the time for which the first set temperature is maintained after the first set temperature is reached. The holding time of the second set temperature in the second firing step is preferably 1 to 10 hours, more preferably 1 to 5 hours. The holding time of the second set temperature is the time for which the second set temperature is maintained after the second set temperature is reached.

[0036] The conductive material contained in the positive electrode mixture layer 28 may be a known conductive material that enhances the electrical conductivity of the positive electrode mixture layer 28, and examples of such materials include carbon materials such as carbon black, acetylene black, ketjen black, graphite, carbon nanofibers, carbon nanotubes, and graphene. The binder contained in the positive electrode mixture layer 28 may be a known binder that maintains good contact between the positive electrode active material 34 and the conductive material and enhances the binding of the positive electrode active material 34 to the surface of the positive electrode current collector 26, and examples of such binders include fluororesins such as polytetrafluoroethylene (PTFE) and polyvinylidene fluoride (PVDF), polyacrylonitrile (PAN), polyimide, acrylic resin, polyolefin, carboxymethyl cellulose (CMC) or a salt thereof, styrene-butadiene rubber (SBR), polyethylene oxide (PEO), polyvinyl alcohol (PVA), and polyvinylpyrrolidone (PVP).

[0037] The negative electrode current collector 30 constituting the negative electrode 12 may be a foil of a metal that is electrochemically and chemically stable within the potential range of the negative electrode 12, or a film having such a metal disposed on its surface. The form of the negative electrode current collector 30 is not particularly limited, and may be, for example, a porous body such as a mesh, punched sheet, or expanded metal. Examples of materials for the negative electrode current collector 30 include Al, Ti, Mg, Zn, Pb, Sn, Zr, and In. These may be used alone or as an alloy of two or more elements, as long as the material contains at least one of them as a main component. Furthermore, when two or more elements are contained, the elements do not necessarily need to be alloyed. The thickness of the negative electrode current collector 30 is preferably, for example, 3 μm to 50 μm inclusive, from the viewpoints of current collection performance, mechanical strength, and the like.

[0038] The negative electrode mixture layer 32 constituting the negative electrode 12 contains a negative electrode active material 36. The negative electrode mixture layer 32 may also contain a binder, a conductive material, and the like. The conductive material and binder may be the same as those used for the positive electrode 10. The negative electrode 12 can be manufactured, for example, by applying a negative electrode mixture slurry containing the negative electrode active material 36, the binder, the conductive material, and the like onto the negative electrode current collector 30, drying and rolling the coating, and forming the negative electrode mixture layer 32 on the negative electrode current collector 30.

[0039] The negative electrode active material 36 is not particularly limited as long as it is a material that can be used as a negative electrode active material in conventional lithium-ion secondary batteries. Examples of the negative electrode active material 36 include carbon materials such as artificial graphite, natural graphite, hard carbon, soft carbon, carbon nanotubes, and activated carbon, metals such as Li, Si, and Sn, alloys, and metal compounds such as metal oxides, metal sulfides, and metal nitrides. Examples of alloys include Li-containing alloys such as lithium aluminum alloys, lithium tin alloys, lithium lead alloys, and lithium silicon alloys. Examples of metal oxides include lithium titanate (Li4Ti5O 12Examples of the metal nitride include lithium-containing nitrides such as lithium cobalt nitride, lithium iron nitride, and lithium manganese nitride. Further examples include sulfur-based compounds. Among these, the negative electrode active material 36 preferably contains a carbon material, for example, in terms of improving the energy density of the battery. The negative electrode active material 36 preferably contains a Li-containing alloy or a metal oxide, for example, in terms of improving the capacity of the battery. That is, the negative electrode active material 36 preferably contains at least one of a carbon material, a Li-containing alloy, and a metal oxide.

[0040] The aqueous electrolyte 16 containing a lithium salt is, for example, an aqueous liquid electrolyte containing a lithium salt and an aqueous solvent, or an aqueous solid electrolyte in which a lithium salt, an aqueous solvent, and a matrix polymer are combined. The aqueous solid electrolyte can be obtained, for example, by dissolving a lithium salt in an aqueous solvent, and then drying a precursor solution in which a matrix polymer is further mixed or dissolved. The aqueous electrolyte 16 is preferably an aqueous liquid electrolyte, for example, in terms of improving battery characteristics.

[0041] The aqueous solvent is a solvent containing water, and may be water alone or may contain water and a solvent other than water. The water content relative to the total amount of the aqueous solvent is preferably 50% or more by volume, for example, from the viewpoint of improving the safety of the lithium-ion secondary battery 1.

[0042] Furthermore, the amount of water relative to the lithium salt contained in the aqueous electrolyte 16 is preferably 1:4 or less, more preferably in the range of 1:0.5 to 1:4, and even more preferably in the range of 1:0.5 to 1:3, in terms of the molar ratio of lithium salt to water. When the amount of water relative to the lithium salt contained in the aqueous electrolyte 16 is within the above range, the potential window of the aqueous electrolyte 16 may be expanded, for example, compared to when the amount is outside the above range, and the voltage applied to the lithium-ion secondary battery 1 may be increased.

[0043] Examples of solvents other than water contained in the aqueous solvent include organic solvents such as esters, ethers, nitriles, alcohols, ketones, amines, amides, sulfur compounds, and hydrocarbons. Furthermore, halogen-substituted solvents in which at least a portion of the hydrogen atoms in these solvents are substituted with halogen atoms such as fluorine may also be used. Specifically, from the viewpoint of improving the battery characteristics of the lithium-ion secondary battery 1, preferred are, for example, cyclic carbonates such as ethylene carbonate, propylene carbonate, vinylidene carbonate, and butylene carbonate; linear carbonates such as dimethyl carbonate, methyl ethyl carbonate, and diethyl carbonate; and fluorinated carbonates containing fluorine as a constituent element such as fluoroethylene carbonate, fluorodimethyl carbonate, and methyl fluoropropionate. Among the above-listed solvents, cyclic carbonates and fluorinated carbonates containing fluorine as a constituent element are particularly preferred, for example, from the viewpoint of suppressing self-discharge of the battery. Furthermore, among the above-listed fluorinated carbonates, fluoroethylene carbonate is preferred. These organic solvents may be used alone or in combination of two or more.

[0044] The amount of organic solvent relative to the lithium salt contained in the aqueous electrolyte 16, expressed as a molar ratio of lithium salt:organic solvent, is preferably in the range of 1:0 to 1:2.5, and more preferably in the range of 1:0 to 1:2. When the amount of organic solvent relative to the lithium salt is within this range, the battery characteristics of the lithium ion secondary battery may be improved compared to when the amount is outside this range.

[0045] Any lithium salt can be used as long as it dissolves in an aqueous solvent and dissociates, causing lithium ions to exist in the aqueous electrolyte 16. Examples of such lithium salts include salts with inorganic acids such as perchloric acid, sulfuric acid, and nitric acid, salts with halide ions such as chloride ions and bromide ions, and salts with organic anions containing carbon atoms in the structure.

[0046] Examples of organic anions constituting the lithium salt include anions represented by the following general formulas (i) to (vi). (R 1 SO2)(R 2 SO2)N - (i) (R 1 , R 2 are each independently selected from an alkyl group or a halogen-substituted alkyl group. 1 and R 2 may be bonded to each other to form a ring. R 3 SO3 - (ii) (R 3 is selected from alkyl groups or halogen-substituted alkyl groups. R 4 CO2 - (iii) (R 4 is selected from alkyl groups or halogen-substituted alkyl groups. (R 5 SO2)3C - (iv) (R 5 is selected from alkyl groups or halogen-substituted alkyl groups. [(R 6 SO2)N(SO2)N(R 7 SO2)] 2- (v) (R 6 , R 7 is selected from alkyl groups or halogen-substituted alkyl groups. [(R 8 SO2)N(CO)N(R 9 SO2)] 2- (vi) (R 8 , R 9 is selected from alkyl groups or halogen-substituted alkyl groups. In the above general formulas (i) to (vi), the number of carbon atoms in the alkyl group or halogen-substituted alkyl group is preferably 1 to 6, more preferably 1 to 3, and even more preferably 1 or 2. The halogen in the halogen-substituted alkyl group is preferably fluorine. The number of halogen substitutions in the halogen-substituted alkyl group is equal to or less than the number of hydrogen atoms in the original alkyl group.

[0047] R1 ~R 9 Each of the groups is, for example, a group represented by the following general formula (vii):

[0048] C n H a F b Cl c Br d I e (vii) (n is an integer greater than or equal to 1, and a, b, c, d, and e are integers greater than or equal to 0, and satisfy 2n+1=a+b+c+d+e.) Specific examples of the organic anion represented by the general formula (i) include bis(trifluoromethanesulfonyl)imide (TFSI; [N(CF3SO2)2] - ), bis(perfluoroethanesulfonyl)imide (BETI; [N(C2F5SO2)2] - ), (perfluoroethanesulfonyl)(trifluoromethanesulfonyl)imide ([N(C2F5SO2)(CF3SO2)] - ) and the like. Specific examples of the organic anion represented by the general formula (ii) include, for example, CF3SO3 - , C2F5SO3 - Specific examples of the organic anion represented by the general formula (iii) include CF3CO2 - , C2F5CO2 - Specific examples of the organic anion represented by the general formula (iv) include tris(trifluoromethanesulfonyl)carbonate ([(CF3SO2)3C] - ), tris(perfluoroethanesulfonyl)carbonate ([(C2F5SO2)3C] - ) and the like. Specific examples of the organic anion represented by the general formula (V) include sulfonylbis(trifluoromethanesulfonyl)imide ([(CF3SO2)N(SO2)N(CF3SO2)] 2- ), sulfonylbis(perfluoroethanesulfonyl)imide ([(C2F5SO2)N(SO2)N(C2F5SO2)] 2-), sulfonyl(perfluoroethanesulfonyl)(trifluoromethanesulfonyl)imide ([(C2F5SO2)N(SO2)N(CF3SO2)] 2- ) and the like. Specific examples of the organic anion represented by the general formula (vi) include carbonylbis(trifluoromethanesulfonyl)imide ([(CF3SO2)N(CO)N(CF3SO2)] 2- ), carbonylbis(perfluoroethanesulfonyl)imide ([(C2F5SO2)N(CO)N(C2F5SO2)] 2- ), carbonyl(perfluoroethanesulfonyl)(trifluoromethanesulfonyl)imide ([(C2F5SO2)N(CO)N(CF3SO2)] 2- ) etc.

[0049] Examples of organic anions other than those represented by the general formulae (i) to (vi) above include anions such as bis(1,2-benzenediolate(2-)-O,O')borate, bis(2,3-naphthalenediolate(2-)-O,O')borate, bis(2,2'-biphenyldiolate(2-)-O,O')borate, and bis(5-fluoro-2-oleate-1-benzenesulfonic acid-O,O')borate.

[0050] The anion constituting the lithium salt is preferably an imide anion. Specific examples of suitable imide anions include the imide anions exemplified as the organic anions represented by the general formula (i) above, as well as bis(fluorosulfonyl)imide (FSI; [N(FSO2)2] - ), (fluorosulfonyl)(trifluoromethanesulfonyl)imide (FTI; [N(FSO2)(CF3SO2)] - ) etc.

[0051] As the lithium salt having a lithium ion and an imide anion, for example, lithium bis(trifluoromethanesulfonyl)imide (LiTFSI), lithium bis(perfluoroethanesulfonyl)imide (LiBETI), lithium (perfluoroethanesulfonyl)(trifluoromethanesulfonyl)imide, lithium bis(fluorosulfonyl)imide (LiFSI), and lithium (fluorosulfonyl)(trifluoromethanesulfonyl)imide (LiFTI) are preferred, with lithium bis(trifluoromethanesulfonyl)imide (LiTFSI) being more preferred, in terms of being able to effectively suppress self-discharge of the battery. These may be used alone or in combination of two or more.

[0052] Specific examples of other lithium salts include CF3SO3Li, C2F5SO3Li, CF3CO2Li, C2F5CO2Li, (CF3SO2)3CLi, (C2F5SO2)3CLi, (C2F5SO2)2(CF3SO2)CLi, (C2F5SO2)(CF3SO2)2CLi, [(CF3SO2)N(SO2)N(CF3SO2)]Li2, [(C2F5SO2)N(SO2)N(C2F5SO2)]Li2, [(C2F5SO2)N(SO2)N(CF3SO2)]Li2, [(CF3SO2)N(CO)N(CF3SO2)]Li2, [(C2F5SO2)N (CO)N(CFSO)]Li, lithium bis(1,2-benzenediolate(2-)-O,O')borate, lithium bis(2,3-naphthalenediolate(2-)-O,O')borate, lithium bis(2,2'-biphenyldiolate(2-)-O,O')borate, lithium bis(5-fluoro-2-oleate-1-benzenesulfonic acid-O,O')borate, lithium perchlorate (LiClO), lithium chloride (LiCl), lithium bromide (LiBr), lithium hydroxide (LiOH), lithium nitrate (LiNO), lithium sulfate (LiSO), lithium sulfide (LiS), lithium hydroxide (LiOH), etc. These may be used alone or in combination of two or more.

[0053] The lithium salt contained in the aqueous electrolyte 16 preferably contains lithium ions and imide anions, for example, in order to improve the battery characteristics of the lithium ion secondary battery, and the concentration of the lithium salt in the aqueous electrolyte is preferably 4.5 mol / L to 6 mol / L.

[0054] When the aqueous electrolyte 16 is an aqueous solid electrolyte, examples of the matrix polymer contained therein include polyvinylidene fluoride-hexafluoropropylene (PVDF-HFP), polyacrylonitrile (PAN), polyvinyl alcohol (PVA), polytetrafluoroethylene (PTFE), polyethylene oxide (PEO), polymethyl methacrylate (PMMA), etc. Alternatively, a polymer obtained by mixing monomers, acrylonitrile and acrylic acid, and thermally polymerizing them may be used.

[0055] The content of the matrix polymer is, for example, preferably 1% by mass or more and 15.0% by mass or less, and more preferably 3% by mass or more and 10% by mass or less, relative to the total amount of the aqueous electrolyte 16. By setting the content within this range, for example, gelation or solidification of the aqueous electrolyte 16 becomes easier.

[0056] When the aqueous electrolyte 16 is an aqueous solid electrolyte, the entire cathode 10 may be coated with the aqueous electrolyte, or at least the cathode mixture layer 28 may be coated with the aqueous electrolyte. The aqueous solid electrolyte can be obtained, for example, by dissolving a lithium salt in an aqueous solvent and further mixing or dissolving a matrix polymer in a precursor solution, applying the precursor solution to the cathode 10, or by immersing the cathode 10 in the precursor solution, coating the precursor solution on the cathode 10, and then drying the precursor solution. When the aqueous electrolyte 16 is an aqueous liquid electrolyte, the entire cathode 10 may be immersed in the aqueous liquid electrolyte, or the aqueous liquid electrolyte may simply be impregnated into the cathode mixture layer 28.

[0057] The non-aqueous electrolyte 18 containing a lithium salt is a non-aqueous liquid electrolyte containing a lithium salt and an organic solvent, or a non-aqueous solid electrolyte in which a lithium salt, an organic solvent, and a matrix polymer are combined. The non-aqueous solid electrolyte is prepared, for example, by dissolving a lithium salt in an organic solvent, and then heating and drying the resulting precursor solution in which a matrix polymer is further mixed or dissolved. The non-aqueous electrolyte 18 is preferably a non-aqueous liquid electrolyte, for example, in terms of improving battery characteristics.

[0058] Examples of the organic solvent include known organic solvents used in conventional non-aqueous secondary batteries, such as the above-mentioned esters, ethers, nitriles, alcohols, ketones, amines, amides, sulfur compounds, and hydrocarbons. Among these, it is preferable to use esters, ethers, nitriles, amides, and mixed solvents of two or more of these, in terms of improving battery characteristics.

[0059] Examples of esters include cyclic carbonates such as ethylene carbonate, propylene carbonate, and butylene carbonate; chain carbonates such as dimethyl carbonate, methyl ethyl carbonate, diethyl carbonate, methyl propyl carbonate, ethyl propyl carbonate, and methyl isopropyl carbonate; and carboxylic acid esters such as methyl acetate, ethyl acetate, propyl acetate, methyl propionate, ethyl propionate, and γ-butyrolactone.

[0060] Examples of ethers include 1,3-dioxolane, 4-methyl-1,3-dioxolane, tetrahydrofuran, 2-methyltetrahydrofuran, propylene oxide, 1,2-butylene oxide, 1,3-dioxane, 1,4-dioxane, 1,3,5-trioxane, furan, 2-methylfuran, 1,8-cineole, cyclic ethers such as crown ethers, 1,2-dimethoxyethane, diethyl ether, dipropyl ether, diisopropyl ether, dibutyl ether, dihexyl ether, ethyl vinyl ether, butyl vinyl ether, methylphenyl and chain ethers such as ether, ethyl phenyl ether, butyl phenyl ether, pentyl phenyl ether, methoxytoluene, benzyl ethyl ether, diphenyl ether, dibenzyl ether, o-dimethoxybenzene, 1,2-diethoxyethane, 1,2-dibutoxyethane, diethylene glycol dimethyl ether, diethylene glycol diethyl ether, diethylene glycol dibutyl ether, 1,1-dimethoxymethane, 1,1-diethoxyethane, triethylene glycol dimethyl ether, and tetraethylene glycol dimethyl.

[0061] The organic solvent preferably contains a halogen-substituted product in which hydrogen atoms of the above-mentioned various solvents are substituted with halogen atoms such as fluorine. Particularly preferred is at least one of fluorinated cyclic carbonates, fluorinated chain carbonates, and fluorinated ethers. Suitable examples of fluorinated cyclic carbonates include 4-fluoroethylene carbonate, 4,5-difluoroethylene carbonate, 4,4-difluoroethylene carbonate, 4,4,5-trifluoroethylene carbonate, and 4,4,5,5-tetrafluoroethylene carbonate. Suitable examples of fluorinated chain carbonates include 2,2,2-ethyl trifluoroacetate, methyl 3,3,3-trifluoropropionate, and methyl pentafluoropropionate. Suitable examples of fluorinated ethers include 1,1,2,2-tetrafluoroethyl 2,2,2-trifluoroethyl ether and 1,1,2,2-tetrafluoroethyl 2,2,3,3-tetrafluoropropyl ether.

[0062] The organic solvent preferably contains a cyclic organic solvent such as a cyclic carbonate, for example, in order to prevent a decrease in the lithium ion conductivity of the nonaqueous electrolyte 18, and more preferably contains 10% by volume or more of the cyclic organic solvent relative to the total volume of the organic solvent. When a matrix polymer is included, it is more preferably contains 80% by volume or more of the cyclic organic solvent relative to the total volume of the organic solvent.

[0063] Examples of the lithium salt include known lithium salts used in conventional non-aqueous secondary batteries, such as LiPF, LiBF, LiAsF, LiClO, LiCF, SO, LiN(FSO), and LiN(ClF 2l+1 SO2)(C m F 2m+1 SO2) (l and m are integers of 1 or greater), LiC(C p F 2p+1 SO2)(C q F 2q+1 SO2)(C r F 2r+1 SO2) (p, q, and r are integers of 1 or greater), Li[B(C2O4)2] (lithium bis(oxalato)borate (LiBOB)), Li[B(C2O4)F2], Li[P(C2O4)F4], Li[P(C2O4)2F2], LiPO2F2, and the like. The lithium salt may be, for example, the lithium salt used in the aqueous electrolyte 16, as exemplified above.

[0064] The matrix polymer may be the same as that used for the aqueous electrolyte 16. The content of the matrix polymer is, for example, preferably 1% by mass or more and 15.0% by mass or less, and more preferably 3% by mass or more and 10% by mass or less, relative to the total amount of the nonaqueous electrolyte 18. By setting the content within this range, for example, solidification of the nonaqueous electrolyte 18 becomes easier.

[0065] The nonaqueous electrolyte 18 preferably has water repellency such that the solubility in 100 g of water at 25° C. is 2 g or less, for example, in order to effectively prevent contact between the negative electrode 12 and water. The water repellency of the nonaqueous electrolyte 18 can be increased, for example, by increasing the proportion of an organic solvent having a water-repellent substituent or a fluorinated organic solvent.

[0066] When the nonaqueous electrolyte 18 is a nonaqueous solid electrolyte, it may simply be coated on the surface of the negative electrode composite layer 32. However, because a side reaction with water also occurs on the negative electrode current collector 30 and the negative electrode lead 22, it is preferable that the entire negative electrode 12 be coated with the nonaqueous solid electrolyte. Furthermore, it is even more preferable that the negative electrode lead 22 (excluding the portion protruding from the battery case 24) be coated with the nonaqueous solid electrolyte. For example, a precursor solution in which a lithium salt is dissolved in an organic solvent and a matrix polymer is further mixed or dissolved therein is applied to the negative electrode 12, or the negative electrode 12 to which the negative electrode lead 22 is attached is immersed in the precursor solution, and the precursor solution is then coated on the negative electrode 12 or the like, followed by drying. When the nonaqueous electrolyte 18 is a nonaqueous liquid electrolyte, the nonaqueous liquid electrolyte may simply be impregnated into the negative electrode composite layer 32. However, it is preferable that the entire negative electrode 12 be immersed in the nonaqueous liquid electrolyte.

[0067] The separator 14 is not particularly limited as long as it is permeable to lithium ions and electrically separates the positive electrode 10 and the negative electrode 12. Examples of suitable separators include a lithium ion-conductive solid electrolyte, a porous sheet made of a resin or inorganic material, etc. A specific example of a solid electrolyte is a water-resistant solid electrolyte such as LATP. Specific examples of porous sheets include a microporous thin film, a woven fabric, a nonwoven fabric, etc. Materials for the separator 14 include olefin-based resins such as polyethylene and polypropylene, polyamide, polyamideimide, cellulose, etc. Inorganic materials for the separator 14 include glass and ceramics such as borosilicate glass, silica, alumina, and titania. The separator 14 may be a laminate having a cellulose fiber layer and a thermoplastic resin fiber layer such as an olefin-based resin. Alternatively, the separator 14 may be a multilayer separator including a polyethylene layer and a polypropylene layer, or a separator whose surface is coated with a material such as an aramid-based resin or ceramic.

[0068] The separator 14 is preferably coated with a water-repellent nonaqueous solid electrolyte in order to effectively prevent water from getting into the negative electrode 12 and to prevent side reactions of water at the negative electrode 12. The water-repellent nonaqueous solid electrolyte coated on the separator 14 may be the same as that described above for the nonaqueous electrolyte 18.

[0069] Examples of the battery case 24 include a metal case, a resin case, and a laminate film case. Examples of materials for the metal case include nickel, iron, and stainless steel. Examples of materials for the resin case include polyethylene and polypropylene. Examples of the laminate film include a multilayer film in which stainless steel foil is coated with a resin film. Examples of materials for the resin film include polypropylene, polyethylene, nylon, and polyethylene terephthalate.

[0070] The lithium ion secondary battery of this embodiment can be used in various forms such as a square type, a cylindrical type, a flat type, a thin type, a coin type, and a laminate type.

[0071] <Example> The present disclosure will be further described below with reference to examples, but the present disclosure is not limited to these examples.

[0072] Example 1 [Negative electrode] Graphite as the negative electrode active material and PVDF as the binder were mixed in N-methyl-2-pyrrolidone (NMP) at a solids mass ratio of 96:4 to prepare a negative electrode composite slurry. Next, the negative electrode composite slurry was applied to a negative electrode current collector made of copper foil, the coating was dried, and then rolled with a rolling roller. The negative electrode was then cut to a predetermined electrode size to obtain a negative electrode. The application amount of the negative electrode composite slurry and the packing density of the negative electrode composite layer were each 22.6 gm -2 , 1.0gcm -3 It was.

[0073] [Positive electrode] General formula Ni 0.90 Co 0.05 Al 0.05 The metal composite oxide and strontium hydroxide (Sr(OH)2) were mixed so that the Ca content was 0.1 mol% relative to the total amount of Ni, Co, and Al in the metal composite oxide (represented by O2). Lithium hydroxide monohydrate (LiOH·H2O) was then mixed so that the molar ratio of Li to the total amount of Ni, Co, Al, and Sr was 1:1.02. The mixture was then calcined under an oxygen stream with an oxygen concentration of 95% (flow rate of 10 L / min per kg of mixture) at a heating rate of 2°C / min from room temperature to 650°C, and then at a heating rate of 1°C / min from 650°C to 720°C. Impurities were removed by washing the calcined material, yielding a cathode active material in which a surface modification layer containing Sr was formed on the surface of the primary particles of the lithium transition metal composite oxide. Analysis of the composition of the cathode active material of Example 1 by ICP-AES revealed that Li 0.99 Ni 0.899 Co 0.05 Al 0.05 Sr 0.001 It was O2.

[0074] The positive electrode active material, carbon black as a conductive material, and PVDF as a binder were mixed in NMP at a mass ratio of 91:7:2 to prepare a positive electrode composite slurry. Next, the positive electrode composite slurry was applied to a positive electrode current collector made of Ti foil, the coating was dried, and then rolled with a rolling roller. The positive electrode was then cut to a predetermined electrode size to obtain a positive electrode. The application amount of the positive electrode composite slurry and the packing density of the positive electrode composite layer were each 35.0 gm -2 , 2.8gcm -3 It was.

[0075] [Non-aqueous liquid electrolyte] A non-aqueous liquid electrolyte was prepared by dissolving 1M LiTFSI in a mixed solution of ethylene carbonate (EC) and dimethyl carbonate (DMC) in a volume ratio of 20:80.

[0076] [Aqueous liquid electrolyte] LiTFSI, LiBETI, and water were mixed in a molar ratio of 0.7:0.3:2.0 to prepare an aqueous liquid electrolyte in which LiTFSI and LiBETI were dissolved in water.

[0077] [Separator] An electrolyte solution was prepared by dissolving 1 M LiTFSI in a 9:1 volumetric mixture of fluoroethylene carbonate (FEC) and methyl 3,3,3-trifluoropropionate (FMP). Next, 4% by mass of polymethyl methacrylate (PMMA) and 8% by mass of polyvinylidene fluoride-hexafluoropropylene (PVDF-HFP) were prepared and dissolved in a solvent consisting of 10 times the amount of tetrahydrofuran (THF) and 10 times the amount of acetone. The electrolyte solution was then mixed with the resulting solution to prepare a precursor solution for a nonaqueous solid electrolyte. A porous sheet was then immersed in the precursor solution and dried at 60°C for 1 hour. The precursor solution coated on the porous sheet was converted into a water-repellent nonaqueous solid electrolyte. This porous sheet coated with the nonaqueous solid electrolyte was used as a separator.

[0078] [Test cell] The negative electrode with the negative electrode lead attached was immersed in a non-aqueous liquid electrolyte to obtain a negative electrode impregnated with the non-aqueous liquid electrolyte. The positive electrode with the positive electrode lead attached was immersed in an aqueous liquid electrolyte to obtain a positive electrode impregnated with the aqueous liquid electrolyte. The electrode assembly, with a separator disposed between the negative electrode and the positive electrode, was placed in a battery case as shown in Figure 1 to prepare a test cell.

[0079] <Example 2> A test cell was fabricated in the same manner as in Example 1, except that calcium hydroxide (Ca(OH)2) was used instead of strontium hydroxide (Sr(OH)2) in the preparation of the positive electrode active material.

[0080] <Comparative Example 1> A test cell was fabricated in the same manner as in Example 1, except that strontium hydroxide (Sr(OH)2) was not used in the preparation of the positive electrode active material.

[0081] The test cells of each Example and Comparative Example 1 were charged at a constant current of 0.2 C to 4.2 V, then charged at a constant voltage of 0.02 C from 4.2 V, and then rested for 20 minutes. They were then discharged at a constant current of 0.2 C to 2.9 V, and then rested for 20 minutes. This charge-discharge cycle was repeated 40 times, and the capacity retention rate was calculated using the following formula. The results are shown in Table 1. A higher capacity retention rate indicates that the capacity loss due to charge-discharge cycling was more suppressed. Capacity retention rate (%) = (discharge capacity at 40th cycle ÷ discharge capacity at 1st cycle) × 100

[0082] [Table 1]

[0083] Compared to the comparative example, Examples 1 and 2 showed higher capacity retention rates. This indicates that the use of a positive electrode active material in which a surface modification layer containing Ca and Sr is formed on the surface of primary particles of a lithium transition metal composite oxide can suppress the capacity decrease that occurs with charge-discharge cycles of a lithium ion secondary battery using an aqueous electrolyte.

[0084] Example 3 A test cell was prepared in the same manner as in Example 2, except that instead of immersing the positive electrode in the aqueous liquid electrolyte, an aqueous electrolyte precursor solution prepared by mixing 10 mass % of polyvinyl alcohol (PVA) with respect to the aqueous liquid electrolyte was coated on the surface of the positive electrode and dried at 25°C for 12 hours.

[0085] <Comparative Example 2> A test cell was prepared in the same manner as in Example 3, except that calcium hydroxide (Ca(OH)2) was not used in preparing the positive electrode active material.

[0086] [Table 2]

[0087] Example 3 exhibited a higher capacity retention rate than Comparative Example 2. This indicates that, even when an electrolyte containing a matrix polymer was used, the use of a positive electrode active material in which a surface modification layer was formed on the surfaces of primary particles of a lithium transition metal composite oxide made it possible to suppress the capacity decrease that occurs with charge-discharge cycles of a lithium ion secondary battery that uses an aqueous electrolyte. [Explanation of symbols]

[0088] 1. Lithium-ion secondary battery 10 positive electrode 12 Negative electrode 14 Separator 16 Water-based electrolytes 18 Nonaqueous electrolytes 20 Positive lead 22 Negative lead 24 Battery case 26 Positive electrode current collector 28 Positive electrode composite layer 30 Negative electrode current collector 32 Negative electrode composite layer 34 Cathode active material 36 Negative electrode active material

Claims

1. a negative electrode, a positive electrode, a non-aqueous electrolyte containing a lithium salt, and an aqueous electrolyte containing a lithium salt; the aqueous electrolyte is in contact with only the positive electrode of the negative electrode and the positive electrode; the nonaqueous electrolyte is in contact with at least the negative electrode of the negative electrode and the positive electrode; the positive electrode includes a positive electrode active material, the positive electrode active material comprises a lithium transition metal composite oxide and a surface modification layer formed on surfaces of primary particles of the lithium transition metal composite oxide, and the surface modification layer contains at least one element selected from the group consisting of alkaline earth metal elements, rare earth elements, and Group IIIb elements, Group IVb elements, and Group Vb elements of the periodic table.

2. The lithium ion secondary battery according to claim 1 , wherein the surface modification layer contains a transition metal.

3. The lithium ion secondary battery according to claim 1 , wherein the surface modification layer contains at least one element of Sr and Ca.

4. the negative electrode includes a negative electrode active material, 4. The lithium ion secondary battery according to claim 1, wherein the negative electrode active material includes at least one of a carbon material, a Li-containing alloy, and a metal oxide.

5. 5. The lithium ion secondary battery according to claim 1, wherein the aqueous electrolyte and the non-aqueous electrolyte are liquids.

6. 6. The lithium ion secondary battery according to claim 1, wherein the lithium salt of the aqueous electrolyte contains lithium ions and imide anions, and the concentration of the lithium salt in the aqueous electrolyte is 4.5 mol / L to 6 mol / L.

7. The lithium ion secondary battery according to any one of claims 1 to 6, wherein a porous separator coated with a water-repellent non-aqueous solid electrolyte is disposed between the positive electrode and the negative electrode.

Citation Information

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