Method for producing positive electrode active material for lithium ion secondary battery

By using metallic nickel powder and a simplified production process involving mixing and firing, the method addresses the high costs and environmental impact of nickel sulfate-based production, achieving efficient and environmentally friendly production of high-capacity positive electrode materials for lithium-ion batteries.

JP7790484B2Active Publication Date: 2025-12-23PROTERIAL LTD
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Patent Information

Application Number
JP2024111674
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-03-30
Filing Date
2024-07-11
Publication Date
2025-12-23
Estimated Expiration
2042-03-17

AI Technical Summary

Technical Problem

The production of positive electrode active materials for lithium-ion secondary batteries using nickel sulfate as a raw material is costly, complex, and environmentally impactful due to high transportation and manufacturing energy consumption, leading to high greenhouse gas emissions.

Method used

A method involving the use of metallic nickel powder, which is produced without acid dissolution, and a process that includes mixing, oxidation, and firing steps to create a layered positive electrode active material, reducing the volume handled and simplifying the manufacturing process.

Benefits of technology

This method reduces energy consumption, manufacturing complexity, and greenhouse gas emissions while maintaining high capacity and efficiency in producing positive electrode active materials.

✦ Generated by Eureka AI based on patent content.

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Abstract

To solve a problem in which, since nickel sulfate is a hexahydrate, the mass percentage of Ni is approximately 20 to 25%, giving it a low bulk density, which posed an issue of large volumes to be handled during transportation and a manufacturing process of a positive electrode material.SOLUTION: A method for manufacturing a positive electrode active material for a lithium ion secondary battery includes a mixing step of mixing metallic nickel powder with a compound containing lithium to obtain a mixed powder, an oxidation step of oxidizing the metallic nickel powder in the mixed powder to an oxidation rate of 50% or more to obtain an oxidized powder, a grinding and mixing step of mixing the oxidized powder with a compound containing a metal element M other than lithium and nickel, and grinding the mixture to obtain a ground mixed powder, and a firing step of firing the ground mixed powder.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to a method for producing a positive electrode active material for a lithium ion secondary battery. [Background technology]

[0002] Lithium-ion batteries are widely used in various fields, including electronics, automobiles, and infrastructure. In particular, lithium-ion batteries are used as the power source for electric vehicles (EVs) and are an important core component in the automotive industry. To extend driving range, the energy density of lithium-ion batteries has been improving year by year, and high-capacity ternary layered materials are being used as the positive electrode active material for these batteries. These ternary layered materials are composite oxides of lithium with metal elements such as Ni, Co, Mn, or Al (hereafter referred to as lithium metal composite oxides). The higher the atomic ratio of Ni in the metal elements, the higher the capacity. Therefore, high-Ni materials are expected as positive electrode active materials for EV batteries. Furthermore, from the perspectives of maintaining a sustainable global environment and taking measures to reduce costs and conserve resources, materials with reduced Co, which is expensive and has limited reserves, are desired. The trend toward increasing the Ni ratio as a substitute for Co will further promote the use of high-Ni materials in the future.

[0003] Patent Document 1 describes a method for producing a positive electrode active material using a metal hydroxide as a precursor. The process of producing a positive electrode active material by reacting a metal hydroxide with a Li source is widely adopted. Patent Document 2 also describes a production method in which a nickel source is melted, nickel particles obtained by atomization are dissolved in a sulfuric acid aqueous solution to obtain nickel sulfate, and then a hydroxide containing Ni is obtained by crystallization, and this hydroxide is used to obtain a positive electrode active material for a secondary battery by coprecipitation. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2015-002120 [Patent Document 2] International Publication No. 2020 / 066262 Summary of the Invention [Problem to be solved by the invention]

[0005] As described in Patent Documents 1 and 2, positive electrode active materials are produced by a coprecipitation reaction, in which synthesized transition metal hydroxide particles are reacted with a Li source. In the coprecipitation reaction, aqueous solutions such as nickel sulfate are used as raw materials, which are produced by dissolving nickel bullion that has been highly refined to avoid impurities in acid. Nickel sulfate is produced by purifying nickel from nickel ore extracted from mines and then processing it through processes such as acid dissolution, which results in high processing costs. Furthermore, because nickel sulfate is a hexahydrate, its Ni content is approximately 20-25% by mass, making it low in bulk density. To compensate for this, the volume handled in the positive electrode material manufacturing process must be large. At the same time, transportation costs are also high. This increases the energy required for transportation and manufacturing, and the manufacturing process is complicated and lengthy. Consequently, greenhouse gas (GHG) emissions are also high.

[0006] Therefore, the present invention aims to provide a method for producing a positive electrode active material for lithium-ion secondary batteries that uses highly refined nickel metal to avoid impurities, while reducing the volume handled in the transportation and manufacturing process of the positive electrode material, thereby reducing the energy used for transportation and manufacturing and eliminating the complexity of the manufacturing process, thereby reducing GHG emissions. [Means for solving the problem]

[0007] The method for producing a positive electrode active material for a lithium ion secondary battery of the present invention includes a mixing step of mixing metallic nickel powder with a compound containing lithium to obtain a mixed powder, an oxidation step of oxidizing the metallic nickel powder in the mixed powder to an oxidation rate of 50% or more, and after the oxidation step, mixing a compound containing a metal element M other than lithium and nickel with the oxidized powder containing the oxidized metallic nickel powder, By attritor or media mill Crushed and ground mixed powder ofand a firing step of firing the pulverized and mixed powder.

[0008] In the method for producing a positive electrode active material for a lithium ion secondary battery of the present invention, it is preferable that a layered structure positive electrode active material for a lithium ion secondary battery is obtained by the firing step.

[0009] Further, in the method for producing a positive electrode active material for a lithium ion secondary battery of the present invention, and the firing step, a granulation step for obtaining granules of the pulverized mixed powder is provided between the firing step and the firing step. The granulated body of the pulverized mixed powder is fired to produce the layered lithium ion secondary battery. Cathode active material for It is preferable to obtain

[0010] Furthermore, it is preferable that the D50 of the primary particles of the pulverized mixed powder is 0.17 μm or less. [Effects of the Invention]

[0011] According to the present invention, by using metallic nickel powder for production, it is possible to reduce the energy used for transportation and production and to eliminate the complexity of the production process, thereby providing a method for producing a positive electrode active material for a lithium-ion secondary battery with reduced GHG emissions. [Brief explanation of the drawings]

[0012] [Figure 1] 1 is a flowchart showing an example of a method for producing a positive electrode active material for a lithium ion secondary battery according to the present invention. [Figure 2] FIG. 1 is a schematic diagram showing an example of manufacturing a metallic nickel powder by a water atomization method. [Figure 3] 3 is a flowchart showing another example of the method for producing a positive electrode active material for a lithium ion secondary battery according to the present invention. [Figure 4] 3 is a flowchart showing another example of the method for producing a positive electrode active material for a lithium ion secondary battery according to the present invention. [Figure 5]1 is a scanning electron microscope (SEM) image of the positive electrode active material of Example 2. [Figure 6] 1 is an SEM image of the positive electrode active material of Example 3. [Figure 7] 1 is an SEM image of the positive electrode active material of Example 4. [Figure 8] 1 is an X-ray diffraction (XRD) pattern of Example 2. [Figure 9] 1 is an XRD pattern of Example 3. [Figure 10] 1 is an XRD pattern of Example 4. DETAILED DESCRIPTION OF THE INVENTION

[0013] <Method of manufacturing a positive electrode active material for lithium-ion secondary batteries> Hereinafter, a method for producing a positive electrode active material for a lithium ion secondary battery according to this embodiment (hereinafter referred to as a method for producing a positive electrode active material) will be described.

[0014] [Method of manufacturing metallic nickel powder] Before explaining the method for producing the positive electrode active material, an example of a method for producing metallic nickel powder will be described. In this embodiment, metallic nickel powder produced by, for example, the atomization method or the carbonyl method can be used. The atomization method and the carbonyl method are preferable because they allow the production of metallic nickel powder with a low content of impurity elements. High-purity raw materials are used for battery components to prevent short circuits in the battery. In particular, iron (Fe) is an impurity element that easily causes short circuits, so the Fe content of the metallic nickel powder is preferably 100 ppm or less, more preferably 30 ppm or less, and even more preferably 10 ppm or less. Furthermore, high-purity briquettes or cathodes with a grade of Class I are suitable as high-purity nickel sources. In this embodiment, high-purity metallic nickel powder with a low content of impurities is obtained without dissolving these briquettes or cathodes in acid.

[0015] Figure 2 is a schematic diagram of the production of metallic nickel powder by water atomization. In this embodiment, the method is not limited to water atomization, but is shown as an example of a production method. This method includes a first step in which nickel briquettes or cathodes are melted in a melting furnace 1 to obtain molten nickel 2, and a second step in which high-pressure water 3 is sprayed onto the molten nickel 2 by atomization to obtain metallic nickel powder 4. Gas can also be used as the medium sprayed onto the molten nickel instead of high-pressure water. In this case, it is called gas atomization. High-purity metallic nickel powder can be obtained by using these atomization methods.

[0016] This embodiment is characterized in that metallic nickel powder is used as a raw material for the positive electrode active material without being dissolved in acid. When produced by the atomization method, the metallic nickel powder is already partially oxidized. To promote oxidation, an acidic solution can be used instead of water for the high-pressure water 3 in FIG. 2. When gas is injected, an oxygen-containing gas can be used in addition to an inert gas such as argon or nitrogen. When the metallic nickel powder is partially oxidized by the atomization method, for example, an oxygen content of 300 ppm or more is preferable. Furthermore, when an oxidation step is performed separately, a mixed powder with a higher oxidation rate can be obtained. In this case, the oxygen concentration in the metallic nickel powder is preferably 3,000 ppm or more, more preferably 5,000 ppm or more, and even more preferably 10,000 ppm or more.

[0017] Another method for obtaining metallic nickel powder is the carbonyl process. In the carbonyl process, nickel briquettes or the like are reacted with carbon monoxide gas to obtain gaseous nickel carbonyl, which is then thermally decomposed under reduced pressure and low temperature to obtain metallic nickel powder. High-purity metallic nickel powder can also be obtained using the carbonyl process.

[0018] The particle size of the metallic nickel powder is preferably in the range of several μm to several tens of μm. When the pulverization step is omitted during the production of the positive electrode active material, the average particle size D50 of the metallic nickel powder is preferably in the range of 5 to 30 μm, more preferably 5 to 20 μm, and even more preferably 5 to 15 μm. The particle size of the metallic nickel powder can be controlled by the injection pressure of the injected water or gas in the atomization method, and by the thermal decomposition conditions in the carbonyl method. Powder exceeding 100 μm can be removed by sieve classification and returned to the melt (recycled).

[0019] [Method of manufacturing positive electrode active material I] Hereinafter, a method for manufacturing a cathode active material using the metallic nickel powder will be described. As shown in the flowchart of FIG. 1, this method includes a step of calcining a mixed powder of metallic nickel powder, a compound containing Li, and a compound containing a metal element M other than Li and Ni, to obtain a layered cathode active material. In this embodiment, as described above, metallic nickel powder is used as the nickel raw material, eliminating the need for the acid dissolution and coprecipitation steps. Furthermore, because metallic nickel powder is used as the nickel raw material, the volume handled during transportation and the manufacturing process of the cathode active material can be reduced compared to compounds such as nickel sulfate and nickel hydroxide. Specifically, when the Ni content per unit volume of each compound is expressed in mass %, nickel sulfate (Ni(SO)4·6H2O) is 5% and nickel hydroxide (Ni(OH)2) is 29%, while the Ni content of metallic nickel is 100%, resulting in a higher Ni content per unit volume. As a result, in this embodiment, the volume handled during transportation and the manufacturing process of the positive electrode active material is about 1 / 20 of that of nickel sulfate and about 1 / 3 of that of nickel hydroxide, which reduces fuel consumption during transportation and improves production efficiency by saving space during manufacturing and reducing driving force. These factors lead to a reduction in GHG emissions, and as a result, positive electrode active materials can be manufactured while suppressing GHG. The Ni content per unit volume is preferably close to 100%. For example, as metallic nickel powder, a nickel powder with a specific gravity of 8 g / cm 3It is preferable that the metal nickel powder contains metallic nickel and the remainder is in an oxidized state, and that it does not contain elements other than unavoidable impurities. In this case, the oxygen content of the metal nickel powder is 7.3 mass % or less.

[0020] The composition of the positive electrode active material is not particularly limited, but the specific composition of this embodiment will be described later. Basically, if the proportion of Ni relative to all metal elements other than Li contained in the positive electrode active material is 60% or more in atomic ratio, the relatively low redox potential of Ni makes it easy to achieve high capacity at a given potential, thereby meeting the desired battery characteristics. A proportion of 80% or more is more preferable, as even higher capacity can be expected. Furthermore, since the proportion of nickel relative to all metal elements other than Li is 60% or more in atomic ratio, the firing reaction proceeds with lithium and the metal element M diffusing into the particles, with each particle of the metallic nickel powder acting as a nucleus. This is thought to make it easier to control the powder properties of the fired positive electrode active material by adjusting the particle size of the metallic nickel powder. Furthermore, metallic nickel powder that is at least partially oxidized is used. This is because at least a portion of the metallic nickel powder is oxidized before firing, which allows the firing reaction to form a layered structure to proceed rapidly when fired in an oxygen-containing atmosphere.

[0021] Since the positive electrode active material is calcined in an oxygen-containing atmosphere to obtain a layered positive electrode active material for lithium-ion secondary batteries, a step of oxidizing the metallic nickel powder may be actively introduced to expedite the calcination reaction. For example, a separate oxidation step may be provided in which the metallic nickel powder is exposed to an air atmosphere or thermally oxidized in the air or an oxidizing atmosphere. This will be explained with reference to Production Method II. Furthermore, when metallic nickel powder is produced by the water atomization method, heat drying is required, but this drying step can also serve as the oxidation step. In this case, the upper limit of the oxygen concentration in the metallic nickel powder is preferably determined in consideration of the amount of Ni per unit volume during transportation.

[0022] In FIG. 1, in the process of mixing metallic nickel powder, a lithium-containing compound, and a compound containing a metal element M other than lithium and nickel to obtain a mixed powder, the metallic nickel powder can be used as is as an atomized powder. The atomized powder may be pulverized to an appropriate particle size before use. Furthermore, lithium hydroxide or lithium carbonate can be used as the lithium-containing compound. Considering reactivity with metals, lithium hydroxide, which has a low melting point, is considered. However, lithium hydroxide is a deleterious substance, and lithium carbonate is preferable from an environmental and safety perspective. Examples of compounds containing a metal element M other than lithium and nickel include oxides, carbonates, hydroxides, and phosphates. For convenience, the term "compound" also includes pure metals. Because the positive electrode active material is a composite oxide of lithium and a metal, pure metals, oxides, carbonates, and hydroxides are preferred as raw materials. The metal element M is preferably an element containing at least one of Co, Mn, Al, Ti, Mg, Zr, Nb, and Mo. Furthermore, in consideration of the reactivity with the metallic nickel powder during the firing process, the average particle size of the compound containing the metal element M is preferably equal to or smaller than that of the metallic nickel powder.

[0023] The raw material powders are mixed using a V-type mixer, agitator mixer, attritor, media mill, etc. To achieve uniform mixing, it is preferable to be able to break down agglomerations of the raw material powders. The mixing method may be either a dry method in which only the raw material powders are mixed, or a wet method in which a liquid is used as a dispersion medium.

[0024] Next, the mixed powder is fired to obtain a layered positive electrode active material in a firing step. The mixed powder is fired using an electric furnace or a gas furnace. The firing atmosphere preferably contains 20% or more oxygen by volume, and when the Ni content is 80% or more of the total metal elements, the oxygen concentration is preferably 90% or more. The firing step preferably includes a pre-firing stage maintained at 450° C. or higher and 730° C. or lower, and a main firing stage maintained at 750° C. or higher and 900° C. The preferred firing temperature and holding time are adjusted depending on the composition blended during raw material mixing, and firing is performed so that the physical properties (specific surface area, etc.) of the target positive electrode active material after firing fall within preferred ranges.

[0025] This embodiment is characterized in that the metallic nickel powder is at least partially oxidized and the oxidized metallic nickel powder is used in the process of calcining the mixed powder to obtain a layered-structured positive electrode active material for lithium-ion secondary batteries. This may also be expressed as partially containing an oxide. This may be achieved by using an acidic solution or oxygen-containing gas as described in the process of obtaining the metallic nickel powder, or by using an oxidizing medium in the process of obtaining the mixed powder, or by exposing the metallic nickel powder to an oxidizing atmosphere or by providing an oxidation step in the calcination process. Furthermore, a step of exposing the metallic nickel powder to at least the air atmosphere may be added when transferring between each process.

[0026] [Method of manufacturing positive electrode active material II] Next, we will explain Manufacturing Method II of the cathode active material using the metallic nickel powder described above. As shown in the flowcharts of FIGS. 3 and 4, Manufacturing Method II is characterized by mixing metallic nickel powder with a compound containing at least lithium and then subjecting this mixed powder to an oxidation step. Specifically, the cathode active material is obtained by firing in an oxygen-containing atmosphere to obtain a layered structure cathode active material. However, Manufacturing Method II differs from Manufacturing Method I in that it includes an oxidation step in which the metallic nickel powder is actively oxidized in order to accelerate the firing reaction. Thermal oxidation in an oxidizing atmosphere is preferred because it shortens the time required for the oxidation treatment. Furthermore, in the case of thermal oxidation, the temperature should be approximately 100 to 700°C, preferably 400 to 680°C, and more preferably 600 to 680°C. A temperature of 600 to 680°C increases the oxidation rate. Furthermore, the oxidation rate in the oxidation step is preferably 50% or higher, more preferably 65% ​​or higher. If the oxidation rate is high and there is little residual metallic nickel component after oxidation, pulverization in the subsequent pulverization and mixing step becomes easier, and a pulverized mixed powder of a predetermined pulverized particle size can be obtained in the pulverization and mixing step described below.

[0027] Furthermore, if the oxidation step is carried out after mixing the metallic nickel powder with a lithium-containing compound, the lithium-containing compound acts as an inclusion, preventing sintering of the metallic nickel powder particles and maintaining the powder state even after the oxidation step, which is preferable. Furthermore, the amount of the lithium-containing compound mixed with the metallic nickel powder is preferably 25% by mass or more of the lithium-containing compound used in the production. This is because mixing 25% by mass or more and then thermally oxidizing the mixture can prevent sintering of the metallic nickel powder particles.

[0028] The lithium-containing compound preferably has a melting point higher than the thermal oxidation temperature. If the melting point of the lithium-containing compound is higher than the thermal oxidation temperature, sintering of the metallic nickel powder particles during the oxidation step can be prevented. Therefore, the lithium-containing compound used in this manufacturing method is preferably lithium carbonate. This is because the melting point of lithium carbonate is 724°C, which allows the thermal oxidation temperature to be as high as 720°C, preventing sintering of the powder particles and shortening the oxidation step. The average particle size of the Li-containing compound is preferably several μm to several hundred μm, and more preferably several μm to several tens of μm.

[0029] As described above in the production of metallic nickel powder, the particle size of the metallic nickel powder is preferably in the range of several μm to several tens of μm. However, in this production method II, the metallic nickel powder preferably has an average particle size in the range of 5 to 30 μm, more preferably 5 to 20 μm, and even more preferably 5 to 15 μm, because this allows the metallic nickel powder and the lithium-containing compound to be uniformly mixed in the mixing step and allows the oxidation rate to be increased in the oxidation step.

[0030] Next, a compound containing lithium and a metal element M other than nickel is mixed in. When an oxidation step is introduced, after the oxidation step, as shown in FIG. 3, an oxide powder containing oxidized metallic nickel powder is mixed with the compound containing lithium and a metal element M other than nickel to form a mixed powder. Note that the oxidation step may also be performed on a mixed powder obtained by mixing a compound containing lithium with a mixture of metallic nickel powder and a compound containing lithium, as shown in FIG. 4. However, in terms of reducing the processing amount of the oxidation step, the step of mixing a compound containing lithium and a metal element M other than nickel after the oxidation step shown in FIG. 3 is preferable. The compound containing a metal element M other than Li and Ni is the same as in Production Method I, so a description thereof will be omitted, but the composition of the positive electrode active material will be exemplified below.

[0031] Next, a step of pulverizing and mixing the mixed powder containing the oxide powder (which may be called a mixing and pulverizing step) is introduced for the purpose of accelerating the firing reaction. This step corresponds to the step of obtaining the mixed powder in Production Method I. The pulverization and mixing can be carried out using an attritor, a media mill, etc. It is preferable to use a media mill, and it is more preferable to use a bead mill, since the mixed powder can be pulverized to submicron size.

[0032] The D50 of the primary particles of the mixed powder after pulverization and mixing (pulverized mixed powder) is preferably 0.17 μm or less. When the D50 of the primary particles is 0.17 μm or less, the firing reaction is promoted and voids in the positive electrode active material are suppressed. As a result, the particle strength of the positive electrode active material is high and the cycle characteristics are excellent. Furthermore, the D95 of the primary particles of the pulverized mixed powder is preferably 0.26 μm or less. When the D95 of the primary particles is 0.26 μm or less, the firing reaction is promoted and voids in the positive electrode active material are suppressed. As a result, the particle strength of the positive electrode active material is high and the cycle characteristics are excellent.

[0033] The specific surface area of ​​the pulverized mixed powder is 28m 2 The specific surface area of ​​the pulverized mixed powder is preferably 28 m / g or more. 2 / g or more, the firing reaction is promoted and voids in the positive electrode active material are suppressed, resulting in high particle strength of the positive electrode active material and good cycle characteristics.

[0034] Next, a firing step of firing the mixed powder or pulverized mixed powder to obtain a layered structure positive electrode active material for a lithium ion secondary battery will be described. The raw material mixed powder or pulverized mixed powder is fired in an electric furnace or gas furnace. The firing atmosphere preferably contains 20% or more oxygen by volume, and when the Ni content is 80% or more of the total metal elements, the oxygen concentration is preferably 90% or more. The firing process includes a pre-firing stage in which the temperature is maintained at 450° C. to 730° C., and a main firing stage in which the temperature is maintained at 750° C. to 900° C. The preferred firing temperature and holding time are adjusted depending on the composition of the raw materials mixed together, and firing is performed so that the physical properties (specific surface area, etc.) of the target positive electrode active material are within preferred ranges after firing.

[0035] After the firing step, the synthesized lithium transition metal composite oxide may be subjected to a washing step in which the oxide is washed with deionized water or the like, a drying step in which the washed lithium transition metal composite oxide is dried, etc., for the purpose of removing impurities, etc. Furthermore, the synthesized lithium transition metal composite oxide may be subjected to a crushing step in which the synthesized lithium transition metal composite oxide is crushed, a classification step in which the lithium transition metal composite oxide is classified into a predetermined particle size, etc.

[0036] Next, the composition of the positive electrode active material of this embodiment will be described. As described above, the composition of the positive electrode active material of this embodiment is not particularly limited, but a preferred composition will be described below. First, the positive electrode active material according to this embodiment is represented by the following formula (1). Li 1+a NiMO 2+α ···(1) (In the formula (1), M is a metal element other than Li and Ni, and the proportion of Ni in all metal elements is 60 atomic % or more, and a and α are numbers that satisfy −0.1≦a≦0.2 and −0.2≦α≦0.2.)

[0037] The positive electrode active material according to this embodiment has a composition in which the proportion of Ni relative to all metal elements other than Li is 60 atomic % or more, thereby realizing high energy density and high charge / discharge capacity. The proportion of Ni relative to all metal elements other than Li can be set to an appropriate value within the range of 60 atomic % or more and 100 atomic % or less. Because this is a positive electrode active material containing a high proportion of nickel, Ni 2+ Ni 3+ It is important that the oxidation reaction to oxidize to HCl be carried out efficiently.

[0038] A more preferred specific composition of the positive electrode active material according to this embodiment is represented by formula (2). Li 1+a Ni b Co c M1 d X e O 2+α ···(2) [In formula (2), M1 represents at least one selected from Al and Mn, X represents one or more metal elements other than Li, Ni, Co, Al, and Mn, and a, b, c, d, e, and α are numbers that satisfy −0.1≦a≦0.2, 0.7≦b≦1.0, 0≦c≦0.20, 0≦d≦0.20, 0≦e≦0.1, b+c+d+e=1, and −0.2<α<0.2, respectively.]

[0039] The positive electrode active material represented by the formula (2) has a high Ni content and therefore can exhibit a higher charge / discharge capacity than LiCoO2 and the like in the range up to around 4.3 V. Furthermore, because of the high Ni content, the raw material cost is lower than LiCoO2 and the like, and the raw materials are more readily available.

[0040] Here, the meaning of the numerical ranges of a, b, c, d, e and α in the above formulas (1) and (2) will be explained.

[0041] In the formula, a is -0.1 or more and 0.2 or less. a represents the stoichiometric ratio of the lithium composite compound represented by the general formula: LiM'O2, i.e., the excess or deficiency of lithium relative to Li:M':O = 1:1:2. If the lithium content is too low, the charge / discharge capacity of the positive electrode active material will be low. On the other hand, if the lithium content is too high, the charge / discharge cycle characteristics will deteriorate. If a is within the above numerical range, it is possible to achieve both a high charge / discharge capacity and good charge / discharge cycle characteristics.

[0042] a may be -0.02 or more and 0.07 or less. When a is -0.02 or more, a sufficient amount of lithium contributing to charge and discharge is secured, thereby increasing the charge and discharge capacity of the positive electrode active material. Furthermore, when a is 0.07 or less, charge compensation due to a change in the valence of the transition metal is sufficiently achieved, thereby achieving both a high charge and discharge capacity and good charge and discharge cycle characteristics.

[0043] The coefficient b of nickel is set to 0.7 or more and 1.0 or less. When b is 0.7 or more, a sufficiently high charge / discharge capacity can be obtained compared to when other transition metals are used. Therefore, when b is within the above numerical range, a positive electrode active material exhibiting a high charge / discharge capacity can be produced at a lower cost than LiCoO2 or the like.

[0044] The value of b is preferably 0.8 or more and 0.95 or less, and more preferably 0.85 or more and 0.95 or less. The larger the value of b, which is 0.8 or more, the higher the charge / discharge capacity obtained. Furthermore, the smaller the value of b, which is 0.95 or less, the smaller the lattice distortion or crystal structure change associated with the insertion and desorption of lithium ions. This makes it less likely that cation mixing, in which nickel is mixed into the lithium sites, or a decrease in crystallinity occurs during firing, thereby suppressing deterioration of the charge / discharge capacity and charge / discharge cycle characteristics.

[0045] The cobalt coefficient c is set to be 0 or more and 0.20 or less. The addition of cobalt stabilizes the crystal structure and suppresses cation mixing, which involves the incorporation of nickel into lithium sites. This results in improved charge-discharge cycle characteristics without significantly impairing charge-discharge capacity. On the other hand, excessive cobalt increases raw material costs, thereby increasing the manufacturing cost of the positive electrode active material. When c is within the above-mentioned numerical range, high charge-discharge capacity and good charge-discharge cycle characteristics can be achieved with good productivity.

[0046] The value of c may be 0.01 or more and 0.20 or less, or 0.03 or more and 0.20 or less. The larger the value of c (0.01 or more), the more sufficient the effect of the elemental substitution of cobalt is obtained, and the more improved the charge-discharge cycle characteristics are. Furthermore, when c is 0.20 or less, the raw material cost is reduced, and the productivity of the positive electrode active material is improved.

[0047] The coefficient d of M1 is set to be equal to or greater than 0 and equal to or less than 0.20. When at least one element (M1) selected from the group consisting of manganese and aluminum is substituted, the layered structure is maintained more stably even when lithium is released during charging. On the other hand, if these elements (M1) are in excess, the proportion of other transition metals such as nickel decreases, resulting in a decrease in the charge / discharge capacity of the positive electrode active material. When d is within the above-mentioned numerical range, the crystalline structure of the positive electrode active material is maintained stable, and good charge / discharge cycle characteristics, thermal stability, and the like can be obtained in addition to a high charge / discharge capacity.

[0048] Manganese is particularly preferred as the element represented by M1. When manganese is substituted, a higher charge / discharge capacity can be obtained compared to when aluminum is substituted. Furthermore, when the lithium composite compound is fired, manganese also reacts with lithium carbonate as shown in the following formula (3). This reaction suppresses the coarsening of crystal grains and allows the oxidation reaction of nickel to proceed at high temperatures, making it possible to efficiently obtain a positive electrode active material that exhibits a high charge / discharge capacity.

[0049] Li2CO3+2M´O+0.5O2→2LiM´O2+CO2···(3) (In the formula (3), M' represents a metal element such as Ni, Co, or Mn.)

[0050] The coefficient d of M1 is preferably 0.02 or more, and more preferably 0.04 or more. The larger the coefficient d of M1, the more sufficient the effect of element substitution with at least one element selected from the group consisting of manganese and aluminum can be obtained. When M1 is manganese, the oxidation reaction of nickel can be promoted at a higher temperature, and a positive electrode active material exhibiting a high charge / discharge capacity can be obtained more efficiently. Furthermore, the coefficient d of M1 is preferably 0.18 or less. If the coefficient d of M1 is 0.18 or less, the charge / discharge capacity can be maintained high even after element substitution.

[0051] The coefficient e of X is 0 or more and 0.10 or less. X represents one or more metal elements other than Li, Ni, Co, Al, and Mn. When at least one element selected from the group consisting of magnesium, titanium, zirconium, molybdenum, and niobium is substituted, various performances such as charge-discharge cycle characteristics can be improved while maintaining the activity of the positive electrode active material. On the other hand, if these elements (X) are in excess, the proportion of other transition metals such as nickel decreases, and the charge-discharge capacity of the positive electrode active material decreases. When e is within the above numerical range, both a high charge-discharge capacity and good charge-discharge cycle characteristics can be achieved.

[0052] In the formulas (1) and (2), α is set to be not less than -0.2 and not more than 0.2. α represents the stoichiometric ratio of the lithium composite compound represented by the general formula: LiM'O2, i.e., the excess or deficiency of oxygen relative to Li:M':O = 1:1:2. When α is within the above-mentioned numerical range, the crystal structure has few defects, and a high charge / discharge capacity and good charge / discharge cycle characteristics can be obtained. [Example]

[0053] The present invention will be specifically described below with reference to examples, but the technical scope of the present invention is not limited thereto. Below, the measurement means for characteristic values ​​and preliminary experiments for the oxidation process will be described, followed by the examples.

[0054] (Average particle size, specific surface area) The D50 and D95 ​​of the primary particles of the pulverized mixed powder and the secondary particles of the fired powder of the positive electrode active material were measured using a laser diffraction particle size distribution analyzer. The specific surface area was measured using the BET method, which utilizes gas adsorption, with an automatic specific surface area analyzer.

[0055] (Oil absorption amount) The oil absorption of powder samples was measured in accordance with JIS K5101-13-1, using NMP (N-methylpyrrolidone) as the solvent. 5.0 g of powder sample was weighed out and placed in a mound on a flat tray. NMP was drawn up using a plastic dropper (2 mL capacity) and the mass was measured. Next, NMP was added dropwise to the powder sample while kneading with a spatula. The addition and kneading were continued until the powder sample became clay-like overall. When there was excess NMP, the droplets were not absorbed by the powder sample and remained on the surface, and the amount of NMP added up to this point was converted to the oil absorption per 100 g of powder sample.

[0056] (X-ray diffraction pattern) The X-ray diffraction (XRD) pattern in the X-ray powder diffraction measurement of the positive electrode active material was measured using an X-ray diffractometer "X'Pert PRO MPD" (manufactured by PANalyticalsei) under the following conditions: radiation source CuKα, tube voltage 45 kV, tube current 40 mA, sampling interval 0.02° / step, divergence slit 0.5°, scattering slit 0.5°, receiving slit 0.15 mm, and scanning range 15°≦2θ≦80°.

[0057] [Metallic nickel powder oxidation process] (Preliminary experiment 1) Metallic nickel powder (manufactured by Nippon Atomize Processing) produced by water atomization with a D50 of 8 μm and lithium carbonate were weighed so that the molar ratio of metal elements was Li:Ni = 1.03:0.85. A total of 5 kg of these raw material powders was placed in a 45 L V-type mixer and mixed for 90 minutes to obtain a raw material mixed powder. This raw material mixed powder was then heat-treated in an air-conditioned furnace at 650°C for 10 hours to obtain an oxidized powder. The resulting oxidized powder had an 18% weight increase compared to the raw material mixed powder. This weight increase confirmed that 70% of the metallic nickel powder had become nickel oxide. In other words, the oxidation rate was 70%. Furthermore, some of the oxidized powder was caked. The oxidized powder was crushed in a mortar to obtain an oxidized powder with a D50 of 8 μm.

[0058] (Preliminary experiment 2) Except for using metallic nickel powder (manufactured by Vale) with a D50 of 8 μm produced by the carbonyl method, the same oxidation process as in Preliminary Experiment 1 was carried out to obtain oxidized powder with a D50 of 8 μm. The oxidation rate of this metallic nickel powder was 70%.

[0059] (Preliminary experiment 3) Except for using metallic nickel powder with a D50 of 67 μm, the same oxidation step as in Preliminary Experiment 1 was carried out to obtain oxidized powder with a D50 of 32 μm. The oxidation rate of this metallic nickel powder was 10%.

[0060] Preliminary experiments 1, 2, and 3 showed that a smaller D50 of the metallic nickel powder results in a higher oxidation rate, and that if the D50 is at least 8 μm or less, an oxidized powder with a high oxidation rate of 70% or more can be obtained.

[0061] (Preliminary experiment 4) An oxidation process similar to that of Preliminary Experiment 1 was carried out, except that metallic nickel powder and lithium carbonate were weighed out so that the molar ratio of metal elements, Li:Ni, was 0.26:0.85. Although some of the oxidized powder was caked, oxidized powder with a D50 of 8 μm was obtained by crushing it in a mortar. Note that metallic nickel powder and lithium carbonate in a molar ratio of metal elements, Li:Ni, of 0.26:0.85, means that metallic nickel powder was mixed with 25 mass% of the lithium-containing compound used in the production.

[0062] (Preliminary experiment 5) Metallic nickel powder and lithium carbonate were weighed out so that the molar ratio of the metal elements, Li:Ni, was 0:0.85. In other words, only metallic nickel was oxidized. The oxidation process was otherwise the same as in Preliminary Experiment 1. The metallic nickel powder sintered and could not be crushed in a mortar.

[0063] Preliminary experiments 1, 4, and 5 confirmed that sintering of metallic nickel powder can be prevented by mixing metallic nickel powder with 25% by mass or more of the lithium-containing compounds used in production and then performing an oxidation treatment.

[0064] [Example 1] In Example 1, Production Method I was carried out. Specifically, plate-shaped metallic nickel with an Fe content of 30 ppm was melted in a melting furnace, and then high-pressure water was sprayed onto the molten nickel that had flowed out and fallen, resulting in a metallic nickel powder with an average particle size of 8 μm, obtained by a water atomization method. The oxygen content of this metallic nickel powder was measured using an oxygen / nitrogen analyzer, and was found to be 3,000 ppm. In addition to the obtained metallic nickel powder, the following raw materials were prepared: lithium hydroxide as a lithium-containing compound, and cobalt oxide, manganese oxide, and titanium oxide as compounds containing a metal element M other than lithium and nickel. Each raw material was weighed so that the molar ratio of metal elements was Li:Ni:M = 1.03:0.85:0.15. A total of 5 kg of these raw material powders was charged into a 45 L V-type mixer and mixed for 90 minutes to obtain a raw material mixed powder. Next, this raw material mixed powder was pre-fired in an oxygen gas atmosphere in a firing furnace at 500°C for 10 hours in an oxygen stream, followed by final firing at 820°C for 10 hours. Between each step, the metallic nickel powder was transported in an environment exposed to the air, without being enclosed in a vacuum or non-oxidizing atmosphere. This resulted in a positive electrode active material made of a lithium metal composite oxide.

[0065] In Example 1, a nickel-based positive electrode active material was produced using metallic nickel powder, thereby reducing impurities. Furthermore, in conventional coprecipitation processes, nickel bullion is processed into a water-soluble compound such as nickel sulfate, which is then processed into an aqueous solution of nickel sulfate (acid dissolution process). This aqueous solution of nickel sulfate is then co-precipitated to produce nickel hydroxide powder (co-precipitation process), and this nickel hydroxide powder is used as a precursor. In this example, metallic nickel powder produced directly from nickel bullion without being processed into compounds such as nickel sulfate or nickel hydroxide is used as a precursor. This eliminates the need for the acid dissolution process and co-precipitation process, allowing for easy production of the positive electrode active material. Furthermore, the volume handled during transportation and the positive electrode material production process can be reduced.

[0066] [Example 2] In Example 2, Production Method II was carried out. Specifically, lithium carbonate, metallic nickel powder, cobalt carbonate, manganese carbonate, titanium oxide, and aluminum oxide were prepared as raw materials, and the raw materials were weighed out so that the molar ratio of the metal elements was Li:Ni:Co:Mn:Ti:Al was 1.03:0.85:0.03:0.09:0.03:0.01. Note that the metallic nickel powder used was metallic nickel powder with a D50 of 8 μm produced by the water atomization method described above. First, metallic nickel powder and lithium carbonate were placed in a V-type mixer and mixed for 90 minutes to obtain a raw material mixed powder. This raw material mixed powder was then oxidized in an air-conditioned furnace at 650°C for 10 hours (oxidation step) to obtain an oxidized powder containing oxidized metallic nickel powder. The resulting oxidized powder was mixed with a metal element M consisting of cobalt carbonate, manganese carbonate, titanium oxide, and aluminum oxide, and purified water was added to the mixture to obtain a solids ratio of 30% by mass. This mixture was then wet-pulverized (wet-mixed) in a pulverizer to prepare a raw material slurry with a primary particle size D50 of 0.30 μm (pulverization and mixing step). The resulting raw material slurry was then spray-dried using a nozzle-type spray dryer (Okawahara Chemical Engineering Co., Ltd., ODL-20 model) to obtain granules with a D50 of approximately 10 μm (granulation step). The dried granules were then calcined to obtain a lithium transition metal composite oxide (calcination step). Specifically, the mixture was pre-fired in an oxygen gas atmosphere at 700°C for 24 hours in an oxygen stream in a furnace replaced with an oxygen gas atmosphere. The mixture was then fired in an oxygen gas atmosphere at 840°C for 10 hours in an oxygen stream in a furnace replaced with an oxygen gas atmosphere to obtain a lithium transition metal composite oxide. The fired powder obtained in the firing process was classified using a sieve with 53 μm openings, and the powder that fell through the sieve was used as the positive electrode active material for the sample.

[0067] [Example 3] A positive electrode active material was produced in the same manner as in Example 2, except that a raw material slurry was prepared by wet pulverization (wet mixing) using a pulverizer so that the D50 of the primary particles was 0.17 μm.

[0068] [Example 4] A positive electrode active material was produced in the same manner as in Example 2, except that a raw material slurry was prepared by wet pulverization (wet mixing) using a pulverizer so that the D50 of the primary particles was 0.13 μm.

[0069] The specific surface areas of the granules of Examples 2 to 4 were measured. The results are shown in Table 1. The positive electrode active materials of Examples 2 to 4 were also subjected to SEM observation and X-ray diffraction measurement. The photographs are shown in Figs. 5 to 7. The X-ray diffraction patterns are shown in Figs. 8 to 10. Furthermore, the specific surface areas and oil absorptions of the positive electrode active materials of Examples 2 to 4 were measured. The results are also shown in Table 1.

[0070] (Preparation of positive electrode) Next, a lithium ion secondary battery was fabricated using the synthesized positive electrode active material as a positive electrode material, and the discharge capacity and capacity retention rate of the lithium ion secondary battery were measured. First, the fabricated positive electrode active material, a carbon-based conductive material, and a binder pre-dissolved in N-methyl-2-pyrrolidone (NMP) were mixed in a mass ratio of 94:4.5:1.5. Then, the uniformly mixed positive electrode mixture slurry was applied to a 15 μm thick aluminum foil positive electrode current collector in an amount of 13 mg / cm. 2 The positive electrode mixture slurry applied to the positive electrode current collector was then heat-treated at 120°C, and the solvent was distilled off to form a positive electrode mixture layer. The positive electrode mixture layer was then pressure-molded using a hot press and punched into a circular shape with a diameter of 15 mm to form a positive electrode.

[0071] (Initial capacity, charge / discharge cycle characteristics (capacity retention rate)) Next, a lithium-ion secondary battery was fabricated using the fabricated positive electrode, negative electrode, and separator. Metallic lithium punched into a 16 mm diameter circle was used as the negative electrode. A 30 μm thick porous polypropylene separator was used as the separator. The positive electrode and negative electrode were placed opposite each other in a non-aqueous electrolyte solution via the separator, and the lithium-ion secondary battery was assembled. The non-aqueous electrolyte solution used was a solution prepared by dissolving LiPF6 at 1.0 mol / L in a solvent mixture of ethylene carbonate and dimethyl carbonate in a volume ratio of 3:7.

[0072] The fabricated lithium-ion secondary battery was charged at a constant current / constant voltage of 38 A / kg (based on the weight of the positive electrode mixture) and an upper potential limit of 4.3 V at 25°C. It was then discharged at a constant current of 40 A / kg (based on the weight of the positive electrode mixture) to a lower potential limit of 2.5 V, and the charge and discharge capacities were measured. It was then charged at a constant current / constant voltage of 190 A / kg (based on the weight of the positive electrode mixture) and an upper potential limit of 4.3 V. This cycle of discharging at a constant current of 190 A / kg (based on the weight of the positive electrode mixture) to a lower potential limit of 2.5 V was repeated for a total of 30 cycles, and the discharge capacity after 30 cycles was measured. The ratio of the discharge capacity after 10 cycles to the initial capacity was calculated as the capacity retention rate. The results are shown in Table 1.

[0073] [Table 1-1]

[0074] [Table 1-2]

[0075] 5 to 7, it was found that the secondary particle diameters of the positive electrode active materials of Examples 2 to 4 were about 10 μm and the primary particle diameters were about 400 nm. Furthermore, compared to the positive electrode active material of Example 2, in which the D50 of the primary particles of the mixed powder (pulverized mixed powder) after pulverization and mixing was 0.30 μm, the positive electrode active materials of Examples 3 and 4, in which the D50 of the primary particles of the mixed powder (pulverized mixed powder) after pulverization and mixing was 0.17 μm or less, had fewer voids, and it was confirmed that when the D50 of the primary particles of the mixed powder (pulverized mixed powder) after pulverization and mixing was 0.17 μm or less, the firing reaction was promoted and voids in the positive electrode active material could be suppressed.

[0076] From the XRD patterns in FIGS. 8 to 10, the positive electrode active materials of Examples 2 to 4 all exhibited peaks attributable to the 003 plane near 2θ=18°, the 101 plane near 2θ=36°, the 006 plane and the 012 plane near 2θ=38°, the 104 plane near 2θ=44°, the 015 plane near 2θ=48°, and the 107 plane near 2θ=58°. This confirmed that the positive electrode active materials belonged to the space group R3-m and were lithium metal composite oxides with a layered structure.

[0077] As can be seen from Table 1, the positive electrode active materials of Examples 2 to 4 have high capacities, with charge capacities of 222 Ah / kg and discharge capacities of 195 Ah / kg or more. Furthermore, the capacity retention rate is 81% or more, and the cycle characteristics are good. In other words, it was confirmed that the method for producing a positive electrode active material of the present invention can produce a positive electrode active material with high capacity and good cycle characteristics using metallic nickel powder as a raw material without processing it into compounds such as nickel sulfate or nickel hydroxide. Furthermore, the primary particles after pulverization and mixing had D50 of 0.17 μm or less, D95 of 0.26 μm or less, and a specific surface area of ​​28 m 2 It was confirmed that the positive electrode active materials of Examples 3 and 4, in which the capacity retention ratio was 84% ​​or more, were even better, with the capacity retention ratio being 84% or more.

[0078] As described above, this example also eliminates the need to process the nickel raw material into compounds such as nickel sulfate or nickel hydroxide, compared to conventional coprecipitation processes. This eliminates the need for acid dissolution and coprecipitation processes, simplifying production. Furthermore, because the positive electrode active material can be produced directly from metallic nickel powder or by oxidation treatment without going through compounds such as nickel sulfate or nickel hydroxide, the production process is shorter and transportation between production steps is reduced. Furthermore, metallic nickel powder has a higher nickel content and a larger specific gravity than nickel sulfate, nickel hydroxide, etc., so the volume required for transportation is smaller, reducing the energy required for transportation. These factors reduce greenhouse gas (GHG) emissions by approximately 30 to 40%, resulting in the production of positive electrode active materials with reduced GHG emissions. [Explanation of symbols]

[0079] 1: Melting furnace 2: Molten nickel 3: High-pressure water jet 4: Metallic nickel powder

Claims

1. a mixing step of mixing metallic nickel powder with a lithium-containing compound to obtain a mixed powder; an oxidation step of oxidizing the metallic nickel powder of the mixed powder to an oxidation rate of 50% or more; a grinding and mixing step in which, after the oxidation step, a compound containing a metal element M other than lithium and nickel is mixed with the oxidized powder containing the metallic nickel powder, and the mixture is ground using an attritor or a media mill to obtain a ground mixed powder; a firing step of firing the pulverized mixed powder; 1. A method for producing a positive electrode active material for a lithium ion secondary battery, comprising:

2. The firing step is characterized in that a layered structure positive electrode active material for a lithium ion secondary battery is obtained. The method for producing a positive electrode active material for a lithium ion secondary battery according to claim 1 .

3. a granulation step for obtaining granules of the pulverized mixed powder between the pulverization and mixing step and the firing step, 3. The method for producing a positive electrode active material for a lithium ion secondary battery according to claim 2, wherein the firing step comprises firing a granulated body of the pulverized mixed powder to obtain the layered structure positive electrode active material for a lithium ion secondary battery.

4. 2. The pulverized mixed powder according to claim 1, wherein the D50 of the primary particles is 0.17 μm or less.

4. A method for producing a positive electrode active material for a lithium ion secondary battery according to claim 3.

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