Positive electrode for non-aqueous electrolyte secondary battery, and non-aqueous electrolyte secondary battery
By using a high-Ni lithium transition metal composite oxide with Ca or Sr and a phosphate in the positive electrode mixture layer, the discharge capacity of non-aqueous electrolyte secondary batteries is improved through structural stabilization and reduced side reactions.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-12-01
- Publication Date
- 2026-04-10
AI Technical Summary
Existing lithium transition metal composite oxides with high Ni content in positive electrodes of non-aqueous electrolyte secondary batteries face issues with discharge capacity improvement, despite increased charging capacity, due to structural instability and side reactions with the electrolyte.
Incorporating a lithium transition metal composite oxide with a layered rock salt structure containing at least 75 mol% Ni, along with additives like Ca or Sr, and a phosphate such as lithium phosphate in the positive electrode mixture layer, enhances particle strength and forms a protective film to suppress side reactions.
This configuration improves the discharge capacity of the battery by stabilizing the structure and reducing surface deterioration, thereby enhancing the overall performance.
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Abstract
Description
[Technical Field]
[0001] This disclosure relates to a positive electrode for a non-aqueous electrolyte secondary battery and to a non-aqueous electrolyte secondary battery. [Background technology]
[0002] In recent years, non-aqueous electrolyte secondary batteries, which comprise a positive electrode, a negative electrode, and a non-aqueous electrolyte, and perform charging and discharging by moving lithium ions between the positive and negative electrodes, have been widely used as high-power, high-capacity secondary batteries. Patent Document 1 discloses a lithium-ion secondary battery comprising an electrolyte containing a lithium-imide compound and a positive electrode containing Ni and other elements such as Al and Co. Patent Document 1 also describes increasing the density of the mixture by adjusting the rolling conditions of the positive electrode. [Prior art documents] [Patent Documents]
[0003] [Patent Document 1] Japanese Patent Publication No. 2008-210767 [Overview of the Initiative] [Problems that the invention aims to solve]
[0004] Incidentally, in lithium transition metal composite oxides contained in positive electrode active materials, one design approach is to increase the Ni content to obtain a high discharge capacity. However, in batteries containing high Ni-containing lithium transition metal composite oxides, even if the charging capacity improves, the discharge capacity may not. The technology described in Patent Document 1 does not take into account the improvement of the discharge capacity of batteries containing high Ni-containing lithium transition metal composite oxides, and there is still room for improvement.
[0005] Therefore, the purpose of this disclosure is to provide a positive electrode active material that improves the discharge capacity of a battery. [Means for solving the problem]
[0006] The positive electrode for a non-aqueous electrolyte secondary battery according to one aspect of the present disclosure includes a positive electrode current collector and a positive electrode mixture layer formed on the surface of the positive electrode current collector. The positive electrode mixture layer contains a positive electrode active material including a lithium transition metal composite oxide having a layered rock salt structure and a phosphate. The lithium transition metal composite oxide contains at least one of at least Ni, Al, and at least one of Ca or Sr. The content of Ni in the lithium transition metal composite oxide is 75 mol% or more with respect to the total amount of metal elements excluding Li. In the positive electrode mixture layer, when the content of the positive electrode active material is 100 parts by mass, the content of the phosphate is 0.1 part by mass to 5 parts by mass.
[0007] A non-aqueous electrolyte secondary battery according to one aspect of the present disclosure includes the positive electrode for a non-aqueous electrolyte secondary battery described above, a negative electrode, and a non-aqueous electrolyte.
Effects of the Invention
[0008] According to the positive electrode active material for a non-aqueous electrolyte secondary battery according to one aspect of the present disclosure, the discharge capacity of the battery can be improved.
Brief Description of the Drawings
[0009] [Figure 1] It is a longitudinal cross-sectional view of a non-aqueous electrolyte secondary battery which is an example of an embodiment.
Modes for Carrying Out the Invention
[0010] A lithium transition metal composite oxide with a Ni content of 75 mol% or more based on the total amount of metal elements excluding Li has high activity near the particle surface and is likely to have an unstable structure. Therefore, surface deterioration layer formation and erosion are likely to occur due to reactions with the electrolyte, etc., and the discharge capacity may decrease. In addition, cracks may occur during rolling of the lithium transition metal composite oxide, resulting in a part inside the lithium transition metal composite oxide where a conductive path cannot be formed and which cannot contribute to charge and discharge, and the discharge capacity may decrease. As a result of intensive studies on such problems, the inventors of the present invention have found that by adding at least one of Ca or Sr to a high-Ni-containing positive electrode active material and including a phosphate such as lithium phosphate (Li3PO4) together with the positive electrode active material in the positive electrode mixture layer, the discharge capacity can be specifically improved. By adding Ca or Sr, the particle strength of the lithium transition metal composite oxide is improved and the generation of cracks is suppressed, and at the same time, when charging, the phosphate is decomposed to form a film of a phosphorus compound on the surface of the positive electrode active material, suppressing side reactions with the electrolyte, so it is considered that the discharge capacity is improved.
[0011] Hereinafter, an example of an embodiment of a non-aqueous electrolyte secondary battery according to the present disclosure will be described in detail. Hereinafter, a cylindrical battery in which a wound electrode body is housed in a cylindrical battery case will be exemplified, but the electrode body is not limited to a wound type, and may be a laminated type in which a plurality of positive electrodes and a plurality of negative electrodes are alternately laminated one by one via a separator. Further, the battery case is not limited to a cylindrical shape, and may be, for example, a rectangular shape, a coin shape, etc., or may be a battery case composed of a laminate sheet including a metal layer and a resin layer.
[0012] FIG. 1 is a cross-sectional view of a non-aqueous electrolyte secondary battery 10 which is an example of an embodiment. As illustrated in FIG. 1, the non-aqueous electrolyte secondary battery 10 includes an electrode body 14, a non-aqueous electrolyte (not shown), and a battery case 15 that houses the electrode body 14 and the non-aqueous electrolyte. The electrode body 14 has a wound structure in which a positive electrode 11 and a negative electrode 12 are wound via a separator 13. The battery case 15 is composed of a bottomed cylindrical outer can 16 and a sealing body 17 that closes the opening of the outer can 16.
[0013] The electrode body 14 consists of a long positive electrode 11, a long negative electrode 12, two long separators 13, a positive electrode tab 20 joined to the positive electrode 11, and a negative electrode tab 21 joined to the negative electrode 12. The negative electrode 12 is formed to be slightly larger than the positive electrode 11 in order to prevent lithium deposition. That is, the negative electrode 12 is formed to be longer than the positive electrode 11 in both the longitudinal and width (short-side) directions. The two separators 13 are formed to be at least slightly larger than the positive electrode 11 and are arranged, for example, to sandwich the positive electrode 11.
[0014] The non-aqueous electrolyte secondary battery 10 includes insulating plates 18 and 19 positioned above and below the electrode body 14, respectively. In the example shown in Figure 1, a positive electrode tab 20 attached to the positive electrode 11 extends towards the sealing body 17 through a through-hole in the insulating plate 18, and a negative electrode tab 21 attached to the negative electrode 12 extends towards the bottom of the outer casing 16 through the outside of the insulating plate 19. The positive electrode tab 20 is connected to the lower surface of the bottom plate 23 of the sealing body 17 by welding or the like, and the cap 27 of the sealing body 17, which is electrically connected to the bottom plate 23, becomes the positive electrode terminal. The negative electrode tab 21 is connected to the inner surface of the bottom of the outer casing 16 by welding or the like, and the outer casing 16 becomes the negative electrode terminal.
[0015] The outer container 16 is, for example, a metal container with a bottomed cylindrical shape. A gasket 28 is provided between the outer container 16 and the sealing body 17, sealing the internal space of the battery case 15. The outer container 16 has a grooved portion 22 that supports the sealing body 17, which is formed, for example, by pressing the side portion from the outside. The grooved portion 22 is preferably formed in an annular shape along the circumferential direction of the outer container 16, and its upper surface supports the sealing body 17.
[0016] The sealing body 17 has a structure in which a bottom plate 23, a lower valve body 24, an insulating member 25, an upper valve body 26, and a cap 27 are stacked in order from the electrode body 14 side. Each component constituting the sealing body 17 has, for example, a disc shape or a ring shape, and each component except the insulating member 25 is electrically connected to one another. The lower valve body 24 and the upper valve body 26 are connected to each other at their respective centers, with the insulating member 25 interposed between their respective peripheries. When the internal pressure of the battery rises due to abnormal heat generation, the lower valve body 24 deforms and ruptures, pushing the upper valve body 26 towards the cap 27, thereby interrupting the current path between the lower valve body 24 and the upper valve body 26. If the internal pressure rises further, the upper valve body 26 ruptures, and gas is discharged from the opening of the cap 27.
[0017] The following provides a detailed explanation of the positive electrode 11, negative electrode 12, separator 13, and non-aqueous electrolyte that constitute the non-aqueous electrolyte secondary battery 10, with particular emphasis on the positive electrode active material contained in the positive electrode mixture layer 31 that constitutes the positive electrode 11.
[0018] [Positive electrode] The positive electrode 11 comprises a positive electrode current collector 30 and a positive electrode mixture layer 31 formed on the surface of the positive electrode current collector 30. The positive electrode current collector 30 can be made of a metal foil that is stable within the potential range of the positive electrode 11, such as aluminum or an aluminum alloy, or a film with the metal arranged on its surface.
[0019] The positive electrode mixture layer 31 contains a positive electrode active material and a phosphate. The positive electrode mixture layer 31 may further contain a conductive agent, a binder, etc. The positive electrode 11 can be manufactured, for example, by applying a positive electrode mixture slurry containing a positive electrode active material, a phosphate, a conductive agent, and a binder, etc., to the surface of the positive electrode current collector 30, drying the coating film, and then compressing it to form the positive electrode mixture layer 31 on both sides of the positive electrode current collector 30.
[0020] Examples of conductive agents included in the positive electrode mixture layer 31 include carbon-based materials such as carbon black (CB), carbon nanotubes (CNT), graphene, acetylene black (AB), Ketjenblack, and graphite. Examples of binders included in the positive electrode mixture layer 31 include fluororesins such as polytetrafluoroethylene (PTFE) and polyvinylidene fluoride (PVdF), polyacrylonitrile (PAN), polyimide, acrylic resin, and polyolefin. These resins may also be used in combination with carboxymethylcellulose (CMC) or its salts, polyethylene oxide (PEO), etc.
[0021] The positive electrode active material includes a lithium transition metal composite oxide. The lithium transition metal composite oxide has a layered rock salt structure. Examples of the layered rock salt structure of the lithium transition metal composite oxide include a layered rock salt structure belonging to space group R-3m and a layered rock salt structure belonging to space group C2 / m. From the viewpoint of increasing capacity and ensuring stability of the crystal structure, it is preferable that the lithium transition metal composite oxide has a layered rock salt structure belonging to space group R-3m.
[0022] Lithium transition metal composite oxides include, for example, secondary particles formed by the aggregation of primary particles. The particle size of the primary particles constituting the secondary particles is, for example, 0.02 μm to 2 μm. The particle size of the primary particles is measured as the diameter of the circumscribed circle in the particle image observed by a scanning electron microscope (SEM).
[0023] The secondary particles of the lithium transition metal composite oxide may have an average particle size of, for example, 2 μm to 30 μm, preferably 2 μm to 20 μm, and more preferably 6 μm to 15 μm. In this specification, the average particle size means the volume-based median diameter (D50). D50 is the particle size at which the cumulative frequency of the smallest particle size accounts for 50% in the volume-based particle size distribution, and is also called the median diameter. The particle size distribution of the secondary particles of the lithium transition metal composite oxide can be measured using a laser diffraction particle size distribution analyzer (e.g., Microtrac-Bell MT3000II) with water as the dispersion medium.
[0024] The lithium transition metal composite oxide contains at least Ni, Al, and at least one of Ca or Sr.
[0025] The Ni content in the lithium transition metal composite oxide is 75 mol% or more relative to the total amount of metal elements excluding Li. This allows for a higher battery capacity. The Ni content in the lithium transition metal composite oxide may be 80 mol% or more, preferably 85 mol% or more, and more preferably 90 mol% or more. Furthermore, the Ni content in the lithium transition metal composite oxide is preferably 95 mol% or less.
[0026] The Al content in the lithium transition metal composite oxide is preferably 10 mol% or less, and more preferably 7 mol% or less, relative to the total amount of metal elements excluding Li. Since Al does not undergo oxidation state changes during charging and discharging, it is thought that its inclusion in the transition metal layer within the layered rock salt structure stabilizes the structure of the transition metal layer. When the Al content in the lithium transition metal composite oxide is 10 mol% or less, the structure of the lithium transition metal composite oxide tends to become unstable, and the effects of improving discharge capacity by adding Sr or Ca to the lithium transition metal composite oxide and adding phosphate to the positive electrode composite layer are more readily apparent. Furthermore, the Al content in the lithium transition metal composite oxide is preferably 1 mol% or more, and more preferably 3 mol% or more.
[0027] The Co content in lithium transition metal composite oxides is preferably 5 mol% or less relative to the total amount of metal elements excluding Li. Since Co is expensive, lowering the Co content can reduce manufacturing costs. Furthermore, it is even more preferable that lithium transition metal composite oxides are substantially free of Co. Here, substantially free of Co means that the Co content in the lithium transition metal composite oxide is 0.01 mol% or less.
[0028] The Ca content in the lithium transition metal composite oxide is preferably 1.0 mol% or less, more preferably 0.7 mol% or less, and particularly preferably 0.5 mol% or less, relative to the total amount of metal elements excluding Li. Furthermore, the Ca content in the lithium transition metal composite oxide is preferably 0.01 mol% or more.
[0029] The Sr content in the lithium transition metal composite oxide is preferably 0.3 mol% or less, more preferably 0.2 mol% or less, and particularly preferably 0.1 mol% or less, relative to the total amount of metal elements excluding Li. Furthermore, the Sr content in the lithium transition metal composite oxide is preferably 0.01 mol% or more.
[0030] The combined content of Ca and Sr in the lithium transition metal composite oxide may be 1.3 mol% or less relative to the total amount of metal elements excluding Li. Alternatively, the combined content of Ca and Sr in the lithium transition metal composite oxide may be 0.11 mol% or more. By including a predetermined amount of Ca or Sr in the lithium transition metal composite oxide, the particle strength can be further increased. By increasing the particle strength, the occurrence of cracks in the lithium transition metal composite oxide during charging and discharging can be suppressed.
[0031] From the viewpoint of improving the particle strength of lithium transition metal composite oxides, it is preferable that Ca or Sr exist on the surface of the secondary particles of the lithium transition metal composite oxide, or at the interface where the primary particles of the lithium transition metal composite oxide come into contact with each other. Here, the presence of Ca or Sr at the interface where the primary particles of the lithium transition metal composite oxide come into contact means that Ca or Sr is in contact with the grain boundary of the primary particles, or is within a range of 10 nm or less from the grain boundary of the primary particles. A portion of Ca and Sr may be solid-dissolved in the lithium transition metal composite oxide. For example, a portion of Sr and Nb may be solid-dissolved in the lithium transition metal composite oxide, and the other portion may exist on the surface of the primary particles of the lithium transition metal composite oxide.
[0032] On the surface of the secondary particles of the lithium transition metal composite oxide or at the interface where the primary particles of the lithium transition metal composite oxide contact each other, Ca or Sr may form a Ca compound or a Sr compound. Examples of the Ca compound include CaO, Ca(OH)2, and CaCO3. Examples of the Sr compound include SrO, Sr(OH)2, and SrCO3.
[0033] The lithium transition metal composite oxide may further contain M1 (M1 is at least one element selected from Mn, Zr, W, Mo, Ti, and Nb). The content rate of M1 in the lithium transition metal composite oxide is preferably 20 mol% or less, more preferably 15 mol% or less, and particularly preferably 10 mol% or less with respect to the total amount of metal elements excluding Li.
[0034] The lithium transition metal composite oxide has the general formula Li a Ni x Al y Co z M1 w M2 v O 2-b (0.8 ≤ a ≤ 1.2, 0.75 ≤ x ≤ 0.95, 0 < y ≤ 0.10, 0 ≤ z ≤ 0.05, 0 ≤ w ≤ 0.20, 0 < v ≤ 0.013, 0 ≤ b < 0.05, x + y + z + w = 1, M1 is at least one element selected from Mn, Zr, W, Mo, Ti, and Nb, and M2 is at least one of Ca or Sr) may be a composite oxide represented by. The molar fraction of the metal elements contained in the entire particles of the lithium transition metal composite oxide is measured by an inductively coupled plasma optical emission spectrometer (ICP-AES).
[0035] The content rate of the lithium transition metal composite oxide in the positive electrode active material is preferably 90 mass% or more, and more preferably 99 mass% or more with respect to the total mass of the positive electrode active material in terms of, for example, improving the capacity of the battery and effectively suppressing the deterioration of the charge-discharge cycle characteristics.
[0036] Furthermore, the positive electrode active material of this embodiment may contain other lithium transition metal composite oxides in addition to the lithium transition metal composite oxide of this embodiment. Examples of other lithium transition metal composite oxides include lithium transition metal composite oxides with a Ni content of 0 mol% or more and less than 75 mol%.
[0037] Next, we will describe an example of a method for producing lithium transition metal composite oxides.
[0038] A method for producing a positive electrode active material may include, for example, a first step of obtaining a composite oxide containing Ni, Al, and any metal element; a second step of mixing the composite oxide obtained in the first step with a Li compound to obtain a mixture; and a third step of calcining the mixture.
[0039] In the first step, for example, while stirring a solution of a metal salt containing Ni, Al, and any metal element such as Mn and Co, an alkaline solution such as sodium hydroxide is added dropwise to adjust the pH to the alkaline side (for example, 8.5 to 12.5), thereby precipitating (coprecipitation) a composite hydroxide containing Ni, Al, and the arbitrary metal element. By calcining the composite hydroxide, a composite oxide containing Ni, Al, and the arbitrary metal element can be obtained. The calcination temperature is not particularly limited, but may be in the range of 300°C to 600°C, for example.
[0040] In the second step, the composite oxide obtained in the first step, the Li raw material, and the Ca or Sr raw material are mixed to obtain a mixture. Examples of Li raw materials include Li2CO3, LiOH, Li2O2, Li2O, LiNO3, LiNO2, Li2SO4, LiOH·H2O, LiH, and LiF. Examples of Ca raw materials include Ca(OH)2, CaO, CaCO3, CaSO4, and Ca(NO3)2, with a particle size of 0.1 to 20 μm being desirable. Examples of Sr raw materials include Sr(OH)2, Sr(OH)2·8H2O, SrO, SrCO3, SrSO4, and Sr(NO3)2, with a particle size of 0.1 to 20 μm being desirable. The mixing ratio of the above composite oxide, Li raw material, and Ca or Sr raw material should be appropriately determined so that the proportion of each element in the final lithium transition metal composite oxide is as desired. The molar ratio of Li to the metal elements excluding Li is preferably such that the molar ratio of the metal elements excluding Li to Li is in the range of 1:0.9 to 1:1.3. Furthermore, the amount of Ca added relative to the total amount of metal elements excluding Li is, for example, 1.0 mol% or less. The amount of Sr added relative to the total amount of metal elements excluding Li is, for example, 0.3 mol% or less. In the second step, when mixing the composite oxide obtained in the first step with the Li compound, other metal raw materials may be added as needed. These other metal raw materials include oxides containing metal elements other than those constituting the composite oxide obtained in the first step.
[0041] In the third step, the mixture obtained in the second step is calcined under an oxygen atmosphere to obtain the lithium transition metal composite oxide according to this embodiment. In the third step, the heating rate between 450°C and 680°C may be in the range of more than 1.0°C / min and 5.5°C / min or less, and the maximum temperature reached may be in the range of 700°C to 850°C. The heating rate from above 680°C to the maximum temperature reached may be, for example, 0.1°C / min to 3.5°C / min. The holding time at the maximum temperature reached may be 1 hour or more and 10 hours or less. Furthermore, the third step may be a multi-stage calcination, and the first heating rate and the second heating rate may be set multiple times for each temperature range, as long as they are within the ranges specified above.
[0042] In the manufacturing method of this embodiment, the lithium transition metal composite oxide powder obtained in the third step may be washed with water in order to improve battery capacity and safety. This washing can be carried out by known methods and conditions, and should be done within a range that does not cause lithium to leach out from the lithium transition metal composite oxide and degrade the battery characteristics. In addition, a W raw material may be mixed before or after this washing. Examples of this W raw material include tungsten oxide (WO3), lithium tungstate (Li2WO4, Li4WO5, Li6W2O9), etc. If mixed after washing, it may be done by drying before mixing, or by solid-liquid separation only and mixing without drying.
[0043] In the positive electrode mixture layer, when the positive electrode active material content is 100 parts by mass, the phosphate content is 0.1 to 5 parts by mass. When the phosphate content is between 0.1 and 5 parts by mass, the film formed on the surface of the positive electrode active material suppresses side reactions between the positive electrode active material and the electrolyte. This effect, combined with the improved particle strength due to the Ca or Sr contained in the positive electrode active material, results in an improved battery discharge capacity.
[0044] Examples of phosphates included in the positive electrode mixture layer 31 include lithium phosphate (Li3PO4), Li2HPO4, LiH2PO4, Na3PO4, Mg3(PO4)2·8H2O, Ca3(PO4)2, Co3(PO4)2·8H2O, and Mn3(PO4)2. From the viewpoint of battery resistance after film formation on the positive electrode active material, lithium phosphate is preferred as the phosphate included in the positive electrode mixture layer 31. The average particle size (D50) of lithium phosphate may be 0.1 μm to 20 μm. Having the average particle size of lithium phosphate within this range allows for sufficient P to be supplied to form a film during charging without impairing the conductivity between the positive electrode active materials.
[0045] [Negative electrode] The negative electrode 12 has a negative electrode current collector 40 and a negative electrode mixture layer 41 formed on both surfaces of the negative electrode current collector 40. As the negative electrode current collector 40, a foil of a metal stable within the potential range of the negative electrode 12 such as copper or a copper alloy, a film having the metal disposed on the surface layer, or the like can be used. The negative electrode mixture layer 41 may contain a negative electrode active material and a binder. The negative electrode 12 can be produced, for example, by applying a negative electrode mixture slurry containing a negative electrode active material, a binder, etc. to the surface of the negative electrode current collector 40, drying the coating film, and then rolling to form the negative electrode mixture layer 41 on both surfaces of the negative electrode current collector 40.
[0046] The negative electrode active material contained in the negative electrode mixture layer 41 is not particularly limited as long as it can reversibly occlude and release lithium ions, and generally, a carbon material such as graphite is used. The graphite may be any of natural graphite such as flake graphite, massive graphite, and earthy graphite, artificial massive graphite, and artificial graphite such as graphitized mesophase carbon microbeads. Further, as the negative electrode active material, a metal that alloys with Li such as Si or Sn, a metal compound containing Si or Sn, a lithium titanium composite oxide, or the like may be used. Further, those provided with a carbon coating may be used. For example, a Si-containing compound represented by SiO x (0.5 ≦ x ≦ 1.6), or Li 2y SiO (2+y) A Si-containing compound in which fine particles of Si are dispersed in a lithium silicate phase represented by (0 < y < 2) may be used in combination with graphite.
[0047] As the binder contained in the negative electrode mixture layer 41, a fluorine-containing resin such as PTFE or PVdF, PAN, polyimide, acrylic resin, polyolefin, etc. may be used as in the case of the positive electrode 11, but preferably styrene-butadiene rubber (SBR) is used. Further, the negative electrode mixture layer 41 may contain CMC or its salt, polyacrylic acid (PAA) or its salt, polyvinyl alcohol (PVA), etc.
[0048] [Separator] For example, a porous sheet having ion permeability and insulating properties can be used for the separator 13. Specific examples of porous sheets include microporous thin films, woven fabrics, and nonwoven fabrics. Suitable materials for the separator include polyethylene, polyolefins such as polypropylene, and cellulose. The separator 13 may have a single-layer structure or a laminated structure. Furthermore, the surface of the separator 13 may be provided with a highly heat-resistant resin layer such as aramid resin, and a filler layer containing an inorganic compound filler.
[0049] [Non-aqueous electrolytes] Non-aqueous electrolytes include, for example, a non-aqueous solvent and an electrolyte salt dissolved in the non-aqueous solvent. Examples of non-aqueous solvents include esters, ethers, nitriles such as acetonitrile, amides such as dimethylformamide, and mixtures of two or more of these. The non-aqueous solvent may contain halogen-substituted solvents in which at least some of the hydrogen atoms in the solvent are replaced with halogen atoms such as fluorine. Examples of halogen-substituted solvents include fluorinated cyclic carbonate esters such as fluoroethylene carbonate (FEC), fluorinated linear carbonate esters, and fluorinated linear carboxylic acid esters such as methyl fluoropropionate (FMP).
[0050] Examples of the above esters include cyclic carbonate esters such as ethylene carbonate (EC), propylene carbonate (PC), and butylene carbonate; linear carbonate esters such as dimethyl carbonate (DMC), ethyl methyl carbonate (EMC), diethyl carbonate (DEC), methyl propyl carbonate, ethyl propyl carbonate, and methyl isopropyl carbonate; cyclic carboxylic acid esters such as γ-butyrolactone (GBL) and γ-valerolactone (GVL); and linear carboxylic acid esters such as methyl acetate, ethyl acetate, propyl acetate, methyl propionate (MP), and ethyl propionate (EP).
[0051] Examples of the above ethers include cyclic ethers such as 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, crown ether, etc., and chain ethers such as 1,2-dimethoxyethane, diethyl ether, dipropyl ether, diisopropyl ether, dibutyl ether, dihexyl ether, ethyl vinyl ether, butyl vinyl ether, methyl phenyl 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, tetraethylene glycol dimethyl ether, etc.
[0052] The electrolyte salt is preferably a lithium salt. Examples of the lithium salt include LiBF4, LiClO4, LiPF6, LiAsF6, LiSbF6, LiAlCl4, LiSCN, LiCF3SO3, LiCF3CO2, Li(P(C2O4)F4), LiPF 6-x (C n F 2n+1 ) x (1 < x < 6, n is 1 or 2), LiB 10 Cl 10 , LiCl, LiBr, LiI, lithium chloroborane, lithium lower aliphatic carboxylate, borate salts such as Li2B4O7, Li(B(C2O4)F2), etc., LiN(SO2CF3)2, LiN(C1F 2l+1 SO2)(C m F 2m+1Examples include imide salts such as SO2){l,m are integers greater than or equal to 0}. Lithium salts may be used individually or in mixtures of multiple types. Of these, LiPF6 is preferred from the viewpoint of ionic conductivity and electrochemical stability. The concentration of the lithium salt is, for example, 0.8 moles to 1.8 moles per liter of non-aqueous solvent. Furthermore, vinylene carbonate or propane-sultone additives may be added. [Examples]
[0053] The present disclosure will be further explained below with reference to examples and comparative examples, but the present disclosure is not limited to the following examples.
[0054] [Fabrication of positive electrode active material] <Example 1> [Ni obtained by coprecipitation method] 0.92 Al 0.06 Mn 0.02 The composite hydroxide represented by ](OH)2 is calcined at 500°C for 8 hours, and the composite oxide (Ni 0.92 Al 0.06 Mn 0.02 Step 1: Obtained O2. The composite oxide was mixed with Sr(OH)2 so that the Sr content was 0.1 mol% relative to the total amount of Ni, Al, and Mn in the composite oxide. Further, lithium hydroxide (LiOH) was mixed so that the molar ratio of Li to the total amount of Ni, Al, Mn, and Sr was 1:1.03. The mixture was heated in an oxygen stream from room temperature to 650°C at a heating rate of 2.0°C / min, and then calcined from 650°C to 750°C at a heating rate of 0.5°C / min to obtain a calcined product. Impurities were removed from this calcined product by washing with water to obtain the positive electrode active material of Example 1. Step 3: The results of the analysis of the positive electrode active material by ICP-AES are shown in Table 1.
[0055] [Fabrication of the positive electrode] The above-mentioned positive electrode active material, lithium phosphate (Li3PO4) with an average particle size of 0.9 μm, acetylene black (AB), and polyvinylidene fluoride (PVdF) were mixed in a solid content mass ratio of 100:0.6:3:2. An appropriate amount of N-methyl-2-pyrrolidone (NMP) was added, and the mixture was kneaded to prepare a positive electrode slurry. This positive electrode slurry was applied to both sides of a positive electrode core made of aluminum foil. After the coating film was dried, the coating film was rolled using a roller and cut to a predetermined electrode size to obtain a positive electrode in which a positive electrode slurry layer was formed on both sides of the positive electrode core. An exposed portion of the positive electrode was provided in which the surface of the positive electrode core was exposed.
[0056] [Fabrication of the negative electrode] Natural graphite was used as the negative electrode active material. The negative electrode active material, sodium carboxymethylcellulose (CMC-Na), and styrene-butadiene rubber (SBR) were mixed in an aqueous solution in a solid content mass ratio of 100:1:1 to prepare a negative electrode mixture slurry. This negative electrode mixture slurry was applied to both sides of a negative electrode core made of copper foil, and after the coating film was dried, the coating film was rolled using a roller and cut to a predetermined electrode size to obtain a negative electrode in which a negative electrode mixture layer was formed on both sides of the negative electrode core. An exposed portion was provided on a part of the negative electrode in which the surface of the negative electrode core was exposed.
[0057] [Preparation of non-aqueous electrolytes] A non-aqueous electrolyte was prepared by dissolving lithium hexafluoride phosphate (LiPF6) at a concentration of 1.2 mol / liter in a mixed solvent of ethylene carbonate (EC), methyl ethyl carbonate (MEC), and dimethyl carbonate (DMC) in a volume ratio of 3:3:4.
[0058] [Fabrication of test cells (non-aqueous electrolyte secondary batteries)] Aluminum leads were attached to the exposed portion of the positive electrode, and nickel leads were attached to the exposed portion of the negative electrode. The positive and negative electrodes were then wound in a spiral shape via a polyolefin separator, and then press-molded radially to produce a flat, wound electrode body. This electrode body was housed in an outer casing made of aluminum laminate sheet, the non-aqueous electrolyte was injected, and the opening of the outer casing was sealed to obtain a test cell.
[0059] [Evaluation of charging and discharging capacity] For the above test cells, constant current charging was performed at a constant current of 0.3 It until the cell voltage reached 4.2V under a temperature environment of 25°C. Then, constant voltage charging was performed until the current value was 1 / 50 It at 4.2V, and the charging capacity was measured. Subsequently, constant current discharge was performed at a constant current of 0.1 It until the cell voltage reached 2.5V, and the discharge capacity was measured.
[0060] <Examples 2-3, Comparative Examples 1-3> In preparing the positive electrode, the test cell was prepared and evaluated in the same manner as in Example 1, except that the mixing ratio of Li3PO4 was changed as shown in Table 1.
[0061] <Example 4, Comparative Example 4> In the second step of preparing the positive electrode active material, Sr(OH)2 was mixed so that the Sr content was 0.3 mol% relative to the total amount of Ni, Al, and Mn in the composite oxide. In the preparation of the positive electrode, the mixing ratio of Li3PO4 was changed as shown in Table 1. Aside from these changes, a test cell was prepared and evaluated in the same manner as in Example 1.
[0062] <Example 5, Comparative Example 5> In the second step of preparing the positive electrode active material, Sr(OH)2 was mixed so that the Sr content was 0.01 mol% relative to the total amount of Ni, Al, and Mn in the composite oxide. In the preparation of the positive electrode, the mixing ratio of Li3PO4 was changed as shown in Table 1. Aside from these changes, a test cell was prepared and evaluated in the same manner as in Example 1.
[0063] <Examples 6-8, Comparative Examples 6-8> In the second step of preparing the positive electrode active material, Sr was not added, and Ca(OH)2 was mixed so that the Ca content was 0.5 mol% relative to the total amount of Ni, Al, and Mn in the composite oxide. In the preparation of the positive electrode, the mixing ratio of Li3PO4 was changed as shown in Table 1. Aside from these changes, a test cell was prepared and evaluated in the same manner as in Example 1.
[0064] <Example 9, Comparative Example 9> In the second step of preparing the positive electrode active material, Sr was not added, and Ca(OH)2 was mixed so that the Ca content was 1.0 mol% relative to the total amount of Ni, Al, and Mn in the composite oxide. In the preparation of the positive electrode, the mixing ratio of Li3PO4 was changed as shown in Table 1. Aside from these changes, a test cell was prepared and evaluated in the same manner as in Example 1.
[0065] <Example 10, Comparative Example 10> In the second step of preparing the positive electrode active material, Sr was not added, and Ca(OH)2 was mixed so that the Ca content was 0.01 mol% relative to the total amount of Ni, Al, and Mn in the composite oxide. In the preparation of the positive electrode, the mixing ratio of Li3PO4 was changed as shown in Table 1. Aside from these changes, a test cell was prepared and evaluated in the same manner as in Example 1.
[0066] <Example 11, Comparative Example 11> In the second step of preparing the positive electrode active material, Sr was not added, and Ca(OH)2 was mixed so that the Ca content was 0.5 mol% relative to the total amount of Ni, Al, and Mn in the composite oxide. In the preparation of the positive electrode, the mixing ratio of Li3PO4 was changed as shown in Table 1. Aside from these changes, a test cell was prepared and evaluated in the same manner as in Example 1.
[0067] <Example 12, Comparative Example 12> In the first step of preparing the positive electrode active material, the composition of the composite oxide to be prepared is Ni 0.84 Al 0.06 Mn 0.10 A test cell was prepared and evaluated in the same manner as in Example 1, except that O2 was changed and the mixing ratio of Li3PO4 in the preparation of the positive electrode was changed as shown in Table 2.
[0068] <Example 13, Comparative Example 13> In the first step of preparing the positive electrode active material, the composition of the composite oxide to be prepared is Ni 0.80 Al 0.01 Mn 0.19A test cell was prepared and evaluated in the same manner as in Example 1, except that O2 was changed and the mixing ratio of Li3PO4 in the preparation of the positive electrode was changed as shown in Table 3.
[0069] <Example 14, Comparative Example 14> In the first step of preparing the positive electrode active material, the composition of the composite oxide to be prepared is Ni 0.75 Al 0.10 Mn 0.15 A test cell was prepared and evaluated in the same manner as in Example 1, except that O2 was changed and the mixing ratio of Li3PO4 in the preparation of the positive electrode was changed as shown in Table 4.
[0070] <Example 15, Comparative Example 15> In the first step of preparing the positive electrode active material, the composition of the composite oxide to be prepared is Ni 0.75 Al 0.05 Mn 0.20 A test cell was prepared and evaluated in the same manner as in Example 1, except that O2 was changed and the mixing ratio of Li3PO4 in the preparation of the positive electrode was changed as shown in Table 5.
[0071] <Reference examples 1 and 2> In the first step of preparing the positive electrode active material, the composition of the composite oxide to be prepared is Ni 0.60 Al 0.10 Mn 0.30 A test cell was prepared and evaluated in the same manner as in Example 1, except that O2 was used instead and the mixing ratio of Li3PO4 in the preparation of the positive electrode was changed as shown in Table 6.
[0072] The charging and discharging capacities of the examples and comparative examples are shown in Tables 1 to 6. Tables 1 to 6 also show the cathode active material composition and Li3PO4 mixing ratio as analyzed by ICP-AES. The charging and discharging capacities of Examples 1 to 11 and Comparative Examples 2 to 11 shown in Table 1 are expressed relatively, with the reaction resistance and capacity retention rate of Comparative Example 1 set to 100.
[0073] The reaction resistance and capacity retention rates of the test cells in Example 12 shown in Table 2 are expressed relatively, with the reaction resistance and capacity retention rates of the test cells in Comparative Example 12 set to 100.
[0074] The reaction resistance and capacity retention rates of the test cells in Example 13 shown in Table 3 are expressed relatively, with the reaction resistance and capacity retention rates of the test cells in Comparative Example 13 set to 100.
[0075] The reaction resistance and capacity retention rates of the test cells in Example 14 shown in Table 4 are expressed relatively, with the reaction resistance and capacity retention rates of the test cells in Comparative Example 14 set to 100.
[0076] The reaction resistance and capacity retention rates of the test cells in Example 15 shown in Table 5 are expressed relatively, with the reaction resistance and capacity retention rates of the test cells in Comparative Example 15 set to 100.
[0077] The reaction resistance and capacity retention rates of the test cell in Reference Example 2 shown in Table 6 are expressed relatively, with the reaction resistance and capacity retention rates of the test cell in Reference Example 1 set to 100.
[0078] [Table 1]
[0079] [Table 2]
[0080] [Table 3]
[0081] [Table 4]
[0082] [Table 5]
[0083] [Table 6]
[0084] The example demonstrated a higher discharge capacity than the corresponding comparative example. This result indicates that including a high-Ni-containing lithium transition metal composite oxide containing Ca or Sr and a phosphate in the positive electrode mixture layer improves the battery's discharge capacity. [Explanation of Symbols]
[0085] 10 Non-aqueous electrolyte secondary battery, 11 Positive electrode, 12 Negative electrode, 13 Separator, 14 Electrode body, 15 Battery case, 16 Outer casing, 17 Sealing body, 18,19 Insulating plate, 20 Positive electrode tab, 21 Negative electrode tab, 22 Grooved section, 23 Bottom plate, 24 Lower valve body, 25 Insulating material, 26 Upper valve body, 27 Cap, 28 Gasket, 30 Positive electrode current collector, 31 Positive electrode mixture layer, 40 Negative electrode current collector, 41 Negative electrode mixture layer
Claims
1. The system comprises a positive electrode current collector and a positive electrode mixture layer formed on the surface of the positive electrode current collector. The positive electrode mixture layer contains a positive electrode active material comprising a lithium transition metal composite oxide having a layered rock salt structure, and lithium phosphate. The lithium transition metal composite oxide contains at least Ni, Al, and at least one of Ca or Sr. The Ni content in the lithium transition metal composite oxide is 75 mol% or more relative to the total amount of metal elements excluding Li. A positive electrode for a non-aqueous electrolyte secondary battery, wherein, when the content of the positive electrode active material in the positive electrode mixture layer is 100 parts by mass, the content of lithium phosphate is 0.1 parts by mass to 5 parts by mass.
2. The lithium phosphate has an average particle size of 0.1 μm to 20 μm, as described in claim 1, for a positive electrode for a non-aqueous electrolyte secondary battery.
3. The lithium transition metal composite oxide includes secondary particles formed by the aggregation of primary particles. The positive electrode for a non-aqueous electrolyte secondary battery according to claim 1 or 2, wherein at least one of Ca or Sr is present on the surface of the secondary particles or at the interface where the primary particles come into contact with each other.
4. The positive electrode for a non-aqueous electrolyte secondary battery according to any one of claims 1 to 3, wherein the Ca content in the lithium transition metal composite oxide is 1.0 mol% or less relative to the total amount of metal elements excluding Li.
5. The positive electrode for a non-aqueous electrolyte secondary battery according to any one of claims 1 to 4, wherein the Sr content in the lithium transition metal composite oxide is 0.3 mol% or less relative to the total amount of metal elements excluding Li.
6. The lithium transition metal composite oxide has the general formula Li a Ni x Al y Co z M1 w M2 v O 2-b A positive electrode for a non-aqueous electrolyte secondary battery according to any one of claims 1 to 5, represented by (0.8 ≤ a ≤ 1.2, 0.75 ≤ x ≤ 0.95, 0 < y ≤ 0.10, 0 ≤ z ≤ 0.05, 0 ≤ w ≤ 0.20, 0 < v ≤ 0.013, 0 ≤ b < 0.05, x + y + z + w = 1, M1 is at least one element selected from Mn, Zr, W, Mo, Ti, and Nb, and M2 is at least one of Ca or Sr).
7. A non-aqueous electrolyte secondary battery comprising a positive electrode for a non-aqueous electrolyte secondary battery according to any one of claims 1 to 6, a negative electrode, and a non-aqueous electrolyte.
Citation Information
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