Method for evaluating lithium-ion battery positive electrode active material and lithium-ion battery positive electrode active material

The method uses XRD diffraction patterns to calculate crystallite size and correlate it with cycle characteristics, efficiently evaluating lithium-ion battery active materials without lengthy charge-discharge testing.

JP2025152756APending Publication Date: 2025-10-10JX NIPPON MINING & METALS CORP
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Patent Information

Application Number
JP2024054811
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-03-28
Publication Date
2025-10-10

AI Technical Summary

Technical Problem

Evaluating the cycle characteristics of lithium-ion battery positive electrode active materials requires fabricating precise cell electrodes and repeatedly charging and discharging them, which is time-consuming.

Method used

A method for evaluating positive electrode active materials using XRD diffraction patterns to calculate the crystallite size of the (003) plane and correlating it with cycle characteristics, allowing for efficient evaluation without fabricating a battery.

Benefits of technology

Enables efficient evaluation of cycle characteristics by deriving a correlation between crystallite size and battery performance, eliminating the need for lengthy charge-discharge testing.

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Abstract

To provide a method for evaluating a lithium-ion battery positive electrode active material, capable of efficiently evaluating cycle characteristics without producing a battery.SOLUTION: A method for evaluating a lithium-ion battery positive electrode active material includes steps of: measuring XRD diffraction patterns of lithium-ion battery positive electrode active materials which are each represented by the compositional formula: LiaNi(1-b-c-d)CobMncO2; calculating the crystallite sizes of the (003) plane from the XRD diffraction patterns using the Scherrer equation; evaluating cycle characteristics of each battery produced using, as an electrode material for the battery, a positive electrode active material having different crystallite size of the (003) plane among the positive electrode active materials, and deriving a correlation between the obtained cycle characteristic evaluation results and the crystallite sizes of the positive electrode active materials; and measuring the crystallite size of a positive electrode active material for evaluation corresponding to the crystallite sizes of a group of positive electrode active materials based on the correlation and evaluating cycle characteristics of the positive electrode active material for evaluation from the crystallite size of the positive electrode active material for evaluation.SELECTED DRAWING: Figure 2
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Description

[Technical Field]

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

[0002] In recent years, with the rapid expansion of small electronic devices such as mobile phones and laptops, the demand for non-aqueous electrolyte secondary batteries as rechargeable power sources has grown dramatically. Widely used positive electrode active materials for non-aqueous electrolyte secondary batteries include lithium-cobalt composite oxides, such as lithium cobalt oxide (LiCoO2), as well as lithium-nickel composite oxides, such as lithium nickel oxide (LiNiO2), and lithium-manganese composite oxides, such as lithium manganese oxide (LiMnO2). Research and development into positive electrode active materials for lithium-ion batteries using these materials is underway.

[0003] Patent Document 1 describes a compound having the following formula: Li a Ni b Co c Mn d The document discloses a positive electrode active material for lithium ion batteries, which comprises positive electrode active material particles represented by the formula: O2 (wherein 1.00≦a≦1.02, 0.8≦b≦0.9, and b+c+d=1), and a coating layer containing lithium niobate that partially coats the surfaces of the positive electrode active material particles, wherein the ratio of Nb to the total amount of Ni, Co, and Mn is 0.4 to 1.2 mol %. It also states that such a configuration can provide a positive electrode active material for lithium ion batteries that has good battery characteristics. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Japanese Patent Application Publication No. 2019-139862 Summary of the Invention [Problem to be solved by the invention]

[0005] In the development of positive electrode active materials for lithium-ion batteries, it is important to evaluate the cycle characteristics of the battery. However, evaluating battery characteristics requires fabricating precise cell electrodes and repeatedly charging and discharging them for several days using a charge-discharge tester, which takes a long time to obtain the results.

[0006] The present invention has been made to solve the above-mentioned problems, and an object of the present invention is to provide a method for evaluating a positive electrode active material for a lithium ion battery, which allows for efficient evaluation of cycle characteristics without fabricating a battery, and a positive electrode active material for a lithium ion battery. [Means for solving the problem]

[0007] The present invention, which was completed based on the above findings, is defined below. (1) Each has the formula: Li a Ni (1-b-c-d) Co b Mn c M d O2 (In the formula, M is one or more selected from Mg, Al, Ca, and Ta, and 0.98≦a≦1.10, 0.13≦b≦0.22, 0.02≦c≦0.32, and 0≦d≦0.007.) Measuring the XRD diffraction patterns of a group of positive electrode active materials for lithium ion batteries represented by: calculating the crystallite size of the (003) plane from the XRD diffraction pattern of the positive electrode active material using Scherrer's equation; a step of evaluating cycle characteristics of batteries fabricated using, as electrode materials for the batteries, cathode active materials having different crystallite sizes in the (003) plane among the cathode active materials, and deriving a correlation between the obtained cycle characteristic evaluation results and the crystallite size of the cathode active material; measuring the crystallite size of a test cathode active material corresponding to the crystallite size of the group of test cathode active materials based on the correlation, and evaluating the cycle characteristics of the test cathode active material from the crystallite size of the test cathode active material; A method for evaluating a positive electrode active material for a lithium ion battery, comprising: (2) The positive electrode active material has the composition formula: Li a Ni (1-b-c-d) Co b Mn c M d O2 (In the formula, M is one or more selected from Mg, Al, and Ca, and 1.03≦a≦1.10, 0.18≦b≦0.22, 0.28≦c≦0.32, and 0≦d≦0.007.) The method for evaluating a positive electrode active material for a lithium ion battery according to (1) above, (3) The method for evaluating a positive electrode active material for a lithium ion battery according to (2), wherein the cycle characteristics of the positive electrode active material for evaluation are evaluated as good if the crystallite size of the positive electrode active material for evaluation is 580 to 840 Å. (4) The positive electrode active material has the composition formula: Li a Ni (1-b-c-d) Co b Mn c M d O2 (In the formula, M is Ta, and 0.98≦a≦1.09, 0.13≦b≦0.16, 0.02≦c≦0.05, and 0≦d≦0.007.) The method for evaluating a positive electrode active material for a lithium ion battery according to (1) above, (5) The method for evaluating a positive electrode active material for a lithium ion battery according to (4), wherein the cycle characteristics of the positive electrode active material for evaluation are evaluated as good if the crystallite size of the positive electrode active material for evaluation is 400 to 650 Å. (6) Composition formula: Li a Ni (1-b-c-d) Co b Mn c M d O2 (In the formula, M is one or more selected from Mg, Al, and Ca, and 1.03≦a≦1.10, 0.18≦b≦0.22, 0.28≦c≦0.32, and 0≦d≦0.007.) wherein, when an XRD diffraction pattern of the positive electrode active material is measured and the crystallite size of the (003) plane is calculated from the XRD diffraction pattern of the positive electrode active material using Scherrer's equation, the crystallite size is 580 to 840 Å. (7) Composition formula: Li a Ni (1-b-c-d) Co b Mn c M d O2 (In the formula, M is Ta, and 0.98≦a≦1.09, 0.13≦b≦0.16, 0.02≦c≦0.05, and 0≦d≦0.007.) wherein, when an XRD diffraction pattern of the positive electrode active material is measured and the crystallite size of the (003) plane is calculated from the XRD diffraction pattern of the positive electrode active material using Scherrer's equation, the crystallite size is 400 to 650 Å. [Effects of the Invention]

[0008] According to the present invention, it is possible to provide a method for evaluating a positive electrode active material for a lithium ion battery, which enables efficient evaluation of cycle characteristics without fabricating a battery, and a positive electrode active material for a lithium ion battery. [Brief explanation of the drawings]

[0009] [Figure 1] 1 is an example of an XRD diffraction pattern of a positive electrode active material for a lithium ion battery. [Figure 2] 1 is a graph in which the crystallite size of the positive electrode active materials of Test Examples 1A to 11A is plotted on the X axis and the cycle characteristics are plotted on the Y axis. [Figure 3] 1 is a graph in which the crystallite size of the positive electrode active materials of Test Examples 1B to 10B is plotted on the X axis and the cycle characteristics are plotted on the Y axis. DETAILED DESCRIPTION OF THE INVENTION

[0010] Next, the embodiments for carrying out the present invention will be described in detail. It should be understood that the present invention is not limited to the following embodiments, and that appropriate design changes, improvements, etc. may be made based on the ordinary knowledge of those skilled in the art without departing from the spirit of the present invention.

[0011] (Positive electrode active material for lithium-ion batteries) The positive electrode active material for a lithium ion battery according to an embodiment of the present invention has the composition formula: Li a Ni (1-b-c-d) Co b Mn c M d O2 (wherein M is one or more selected from Mg, Al, Ca, and Ta, and 0.98≦a≦1.10, 0.13≦b≦0.22, 0.02≦c≦0.32, and 0≦d≦0.007). In the composition formula of this positive electrode active material, the value a, which indicates the lithium composition, satisfies 0.98≦a≦1.10. Because the value a, which indicates the lithium composition, is 0.98 or more, it is possible to suppress the reduction of nickel due to lithium deficiency. Furthermore, because the value a, which indicates the lithium composition, is 1.10 or less, it is possible to suppress residual alkaline components, such as lithium carbonate and lithium hydroxide, present on the surface of the positive electrode active material particles, which may become resistance components when the material is made into a battery.

[0012] In the positive electrode active material for a lithium-ion battery according to an embodiment of the present invention, the nickel composition in the composition formula is controlled to 1-bcd (0.453≦1-bcd≦0.85), and since the nickel composition is 0.453 or more, good battery capacity can be obtained for the lithium-ion battery. Furthermore, since the nickel composition is 0.85 or less, the crystal structure is stable, and the expansion and contraction behavior of the crystal lattice due to lithium insertion and extraction during charge and discharge is reduced, thereby improving cycle characteristics.

[0013] In the positive electrode active material for a lithium-ion battery according to an embodiment of the present invention, the sum of b representing a Co composition, c representing a Mn composition, and d representing one or more selected from Mg, Al, Ca, and Ta in the composition formula satisfies 0.15≦b+c+d≦0.547, thereby improving cycle characteristics and reducing the expansion and contraction behavior of the crystal lattice due to lithium insertion and extraction during charge and discharge. If the sum of b representing a Co composition, c representing a Mn composition, and d representing one or more selected from Mg, Al, Ca, and Ta exceeds 0.547, the amounts of Co, Mn, Mg, Al, Ca, and Ta added may be too large, resulting in a significant decrease in initial discharge capacity or being disadvantageous in terms of cost.

[0014] In the positive electrode active material for a lithium ion battery according to an embodiment of the present invention, d, which represents one or more selected from Mg, Al, Ca, and Ta, satisfies 0≦d≦0.007. Since d, which represents one or more selected from Mg, Al, Ca, and Ta, is 0.007 or less, it is possible to prevent a significant decrease in initial discharge capacity due to excessive addition of Mg, Al, Ca, and Ta.

[0015] The positive electrode active material for a lithium ion battery according to an embodiment of the present invention has the composition formula: Li a Ni (1-b-c-d) Co b Mn c M d O2 (wherein M is one or more selected from Mg, Al, and Ca, and 1.03≦a≦1.10, 0.18≦b≦0.22, 0.28≦c≦0.32, and 0≦d≦0.007). Furthermore, as will be described in detail later, when the XRD diffraction pattern of the positive electrode active material represented by this composition formula is measured and the crystallite size of the (003) plane is calculated from the XRD diffraction pattern of the positive electrode active material using the Scherrer equation, the crystallite size is preferably 580 to 840 Å.

[0016] The positive electrode active material for a lithium ion battery according to an embodiment of the present invention has the composition formula: Li a Ni (1-b-c-d) Co b Mn c M dO2 (wherein M is Ta, and 0.98≦a≦1.09, 0.13≦b≦0.16, 0.02≦c≦0.05, and 0≦d≦0.007). As will be described in detail later, when the XRD diffraction pattern of the positive electrode active material represented by this composition formula is measured and the crystallite size of the (003) plane is calculated from the XRD diffraction pattern of the positive electrode active material using the Scherrer equation, the crystallite size is preferably 400 to 650 Å.

[0017] The positive electrode active material for a lithium ion battery according to the embodiment of the present invention may be in the form of secondary particles formed by agglomeration of a plurality of primary particles, with some primary particles not agglomerated as secondary particles. The shapes of the primary particles constituting the secondary particles and the primary particles present alone are not particularly limited, and may be various shapes, such as substantially spherical, substantially elliptical, substantially plate-like, or substantially needle-like. The form in which the plurality of primary particles are agglomerated is also not particularly limited, and may be various forms, such as agglomeration in random directions or agglomeration approximately uniformly radially from the center to form substantially spherical or substantially elliptical secondary particles.

[0018] The positive electrode active material for a lithium ion battery according to an embodiment of the present invention may have a 50% cumulative volume particle size D50 of 3.0 to 11.0 μm. Here, the 50% cumulative volume particle size D50 is the volume particle size at 50% accumulation in a volume-based cumulative particle size distribution curve. If the 50% cumulative volume particle size D50 of the positive electrode active material for a lithium ion battery is 3.0 μm or less, the tap density decreases, and the energy density per volume decreases. If the 50% cumulative volume particle size D50 of the positive electrode active material for a lithium ion battery is 11.0 μm or more, the number of coarse particles increases, which deteriorates the coatability when the slurried positive electrode active material is applied to a current collector. The 50% cumulative volume particle size D50 of the positive electrode active material for a lithium ion battery is more preferably 7.0 to 10.0 μm. To measure the 50% cumulative volume particle size D50, first, a 100 mg sample (powder) of the positive electrode active material was dispersed using a Microtrac laser diffraction particle size analyzer "MT3300EXII" under 40 W ultrasonic irradiation for 60 seconds at 50% flow rate. The particle size distribution was then measured to obtain a volume-based cumulative particle size distribution curve. The volume particle size at 50% cumulative in the resulting cumulative particle size distribution curve can be used as the 50% cumulative volume particle size D50 of the positive electrode active material powder. The aqueous solvent used for the measurement was passed through a 0.02 μm filter, with a solvent refractive index of 1.333, particle permeability conditions of 1.81, aspherical particle shape, a measurement range of 0.021 to 2000 μm, and a measurement time of 30 seconds.

[0019] The positive electrode active material for a lithium-ion battery according to an embodiment of the present invention preferably has a tap density of 2.0 to 2.6 g / cc. A positive electrode active material with a tap density of 2.0 g / cc or higher can be used to construct a battery with a high energy density per volume. The tap density of the positive electrode active material is more preferably 2.1 to 2.6 g / cc, and even more preferably 2.3 to 2.6 g / cc. The tap density of the positive electrode active material can be determined, for example, by placing 5 g of the positive electrode active material (powder) in a 10 cc graduated cylinder, placing it in a powder density measuring instrument "KYT-4000K" manufactured by Seishin Enterprise Co., Ltd., and tapping 1,500 times with a stroke length of 55 mm, and then reading the graduations on the graduated cylinder. Next, the tap density (g / cc) is calculated by dividing the sample amount (5 g) by the graduated cylinder graduation reading (cc).

[0020] The positive electrode active material for a lithium ion battery according to an embodiment of the present invention has a BET specific surface area of ​​0.20 to 0.80 m 2 / g. The BET specific surface area is preferably 0.20 m 2 / g or more, the contact area of ​​the positive electrode active material becomes large, and the conductivity of Li ions becomes good. This makes it possible to manufacture high-capacity lithium-ion batteries. In addition, 2 If the specific surface area exceeds 0.3 to 0.70 m / g, the precipitation reaction of lithium ions from the residual alkali in the positive electrode active material is accelerated during repeated charge and discharge. The precipitated lithium compounds cause internal resistance in the battery, reducing the charge and discharge capacity. The BET specific surface area is 0.3 to 0.70 m / g. 2 / g is more preferable. The BET specific surface area can be measured by the following method. First, 1.0 g of the positive electrode active material (powder) is weighed into a glass cell, which is then placed in a degassing device. The glass cell is then filled with nitrogen gas, and the cell is then heat-treated in a nitrogen gas atmosphere at 40°C for 20 minutes to degas the sample. The glass cell containing the degassed sample (powder) is then placed in a Quantachrome specific surface area measuring device, "Monosorb Model MS-21," and the specific surface area X is measured by the BET method (single-point method) while a mixed gas of He: 70 at% and N2: 30 at% is passed through the cell as the adsorption gas.

[0021] (Evaluation method for positive electrode active materials for lithium-ion batteries) Next, a method for evaluating a positive electrode active material for a lithium ion battery according to an embodiment of the present invention will be described in detail below. First, the composition formula: Li a Ni (1-b-c-d) Co b Mn c M d The XRD diffraction patterns of a group of positive electrode active materials for lithium ion batteries represented by the formula: O2 (wherein M is one or more selected from Mg, Al, Ca, and Ta, and 0.98≦a≦1.10, 0.13≦b≦0.22, 0.02≦c≦0.32, and 0≦d≦0.007) are measured. The XRD diffraction pattern can be measured, for example, using the following XRD diffractometer under the following conditions. XRD diffractometer: SmartLab (Rigaku Corporation) ·Radiation source: CuKα (λ=1.5406Å) Apply the sample (positive electrode active material) to a glass sample holder (2 cm x 1.5 cm, 0.3 mm deep). Detector: D / tex Measurement range: 2θ=10°~80° Scan axis: 2θ / θ, Scan speed: 1 degree min -1 Step width: 0.01 degrees Slit width: IS(DS) 1 / 4°, RS1 10mm, RS2 10mm An example of the XRD diffraction pattern obtained here is shown in FIG.

[0022] Next, the crystallite size of the (003) plane is calculated from the XRD diffraction patterns of the group of lithium-ion battery positive electrode active materials measured using the Scherrer equation. Specifically, the crystallite size of the (003) plane is calculated from the half-width of the diffraction peak of the (003) plane in the XRD diffraction pattern of the lithium-ion battery positive electrode active material using the Scherrer equation expressed by the following formula (1). s=Kλ / Bcosθ (1)

[0023] In the above formula (1), s is the crystallite size of the (003) plane, λ is the wavelength of the X-ray, B is the half-width of the diffraction peak of the (003) plane, θ is the diffraction angle (rad), and K is the Scherrer constant. In this embodiment, K is set to 0.9.

[0024] Next, the cycle characteristics of each battery fabricated using, as the electrode material of the battery, a cathode active material having a different crystallite size in the (003) plane among the cathode active materials are evaluated. Specifically, first, a plurality of positive electrode active materials each having a different crystallite size of the (003) plane calculated by the Scherrer formula are selected. The number of crystallite sizes of the (003) plane of the selected positive electrode active materials is not particularly limited, and for example, 5 or more are preferably selected, 7 or more are more preferably selected, 10 or more are even more preferably selected, and 15 or more are even more preferably selected. Next, for each of the selected positive electrode active materials having different crystallite sizes in the (003) plane, a battery is fabricated using the selected positive electrode active material as the electrode material. The battery fabricated here is not particularly limited as long as it uses the selected positive electrode active material as the positive electrode material. The battery is fabricated, for example, as follows, and the discharge capacity and cycle characteristics (capacity retention rate) of the battery can be evaluated. First, the positive electrode active material, acetylene black as a conductive material, and polyvinylidene fluoride as a binder are weighed in a ratio of 90:5:5, the binder polyvinylidene fluoride is dissolved in an organic solvent (N-methylpyrrolidone), and mixed with the positive electrode active material and the conductive material to form a slurry, which is then applied to aluminum foil, dried, and press-molded to form a positive electrode. Next, a 2032-type coin cell for evaluation was fabricated as a battery structure, with Li as the cathode (counter electrode). 1M-LiPF6 dissolved in EC-DMC (3:7) was used as the electrolyte, and the discharge capacity (0.05C) and charge / discharge cycle (capacity retention rate) were measured under the following conditions. ·Discharge capacity (0.05C) Temperature 25℃, charging: 4.30V, 0.05C, 20h, discharging: 3.0V, 0.05C Charge / discharge cycle (capacity retention rate) Temperature 55℃, charging: 4.30V, 1C, 2.5h, discharging: 3.0V, 1C The ratio of the discharge capacity at the 20th cycle to the discharge capacity at the 1st cycle. Such evaluation of cycle characteristics is carried out for each battery fabricated using, as the electrode material of the battery, positive electrode active materials each having a different crystallite size in the (003) plane.

[0025] Next, the correlation between the obtained cycle performance evaluation results and the crystallite size of the positive electrode active material is derived. Specifically, a graph is created with the crystallite size on the X-axis and the cycle characteristics on the Y-axis. For example, cycle characteristics above a predetermined value, such as 95.0% or more or 96.0% or more, are determined to be good. The range of crystallite size corresponding to cycle characteristics above the predetermined value is then derived from the graph. The resulting relationship (i.e., if the crystallite size of the positive electrode active material is within a certain range, the resulting cycle characteristics will be above the predetermined value) represents the correlation between the cycle characteristics evaluation results obtained above and the crystallite size of the positive electrode active material.

[0026] Furthermore, it was found that good cycle characteristics were obtained when the crystallite size of the (003) plane was within a specified range. This is because if the crystallite size of the (003) plane is large, the expansion and contraction associated with the absorption and desorption of lithium becomes large, resulting in increased cycle deterioration due to structural distortion. Furthermore, if the crystallite size of the (003) plane is too small, the stability of the crystal itself decreases, and structural deterioration associated with charge and discharge easily progresses, resulting in increased cycle deterioration. As a result, for a positive electrode active material for a lithium ion battery having a predetermined composition, if the crystallite size of the (003) plane is within a predetermined range, it can be determined that the positive electrode active material for a lithium ion battery has good cycle characteristics. For example, the composition formula: Li a Ni (1-b-c-d) Co b Mn c M dA positive electrode active material for a lithium ion battery represented by the formula O2 (wherein M is one or more selected from Mg, Al, and Ca, and 1.03≦a≦1.10, 0.18≦b≦0.22, 0.28≦c≦0.32, and 0≦d≦0.007) can be determined to have good cycle characteristics if the crystallite size of the (003) plane is 580 to 840 Å. Also, for example, the composition formula: Li a Ni (1-b-c-d) Co b Mn c M d A positive electrode active material for a lithium ion battery represented by the formula O2 (wherein M is Ta, and 0.98≦a≦1.09, 0.13≦b≦0.16, 0.02≦c≦0.05, and 0≦d≦0.007) can be determined to have good cycle characteristics if the crystallite size of the (003) plane is 400 to 650 Å.

[0027] Next, based on the above correlation, the crystallite size of a positive electrode active material for evaluation corresponding to the crystallite size of the group of positive electrode active materials is measured, and the cycle characteristics of the positive electrode active material for evaluation are evaluated from the crystallite size of the positive electrode active material for evaluation. Specifically, first, a positive electrode active material for evaluation is prepared. As described above, the positive electrode active material for evaluation has the composition formula: Li a Ni (1-b-c-d) Co b Mn c M d O2 (wherein M is one or more selected from Mg, Al, Ca, and Ta, and 0.98≦a≦1.10, 0.13≦b≦0.22, 0.02≦c≦0.32, 0≦d≦0.007). Next, the crystallite size of the test positive electrode active material corresponding to the crystallite size of the group of positive electrode active materials is measured. More specifically, the crystallite size of the test positive electrode active material is measured by the same measurement method as that used to measure the crystallite size of the group of positive electrode active materials. Next, based on the correlation between the cycle performance evaluation results and the crystallite size of the positive electrode active material, the cycle performance of the test positive electrode active material is evaluated from the crystallite size of the test positive electrode active material. For example, if there is a correlation between the cycle performance evaluation results and the crystallite size of the positive electrode active material such that a positive electrode active material for a lithium ion battery having a predetermined composition can be determined to have good cycle performance if the crystallite size of the (003) plane is 400 to 650 Å, it can be determined that the test positive electrode active material has good cycle performance if the crystallite size of the test positive electrode active material is within the range of 400 to 650 Å.

[0028] As described above, according to the method for evaluating a positive electrode active material for a lithium-ion battery according to an embodiment of the present invention, once a correlation between the results of the cycle performance evaluation and the crystallite size of the positive electrode active material is derived, the crystallite size of the lithium-ion battery positive electrode active material to be evaluated can be measured and applied to the correlation to evaluate the battery's characteristics, such as cycle performance. Therefore, there is no need to fabricate a precise cell electrode and repeatedly charge and discharge the cell electrode for several days using a charge-discharge tester to obtain data, eliminating the problem of the long time it takes to determine the results. Thus, according to the method for evaluating a positive electrode active material for a lithium-ion battery according to an embodiment of the present invention, it is possible to efficiently evaluate cycle performance without fabricating a battery.

[0029] (Lithium-ion battery cathode and lithium-ion battery) A lithium-ion battery positive electrode according to an embodiment of the present invention can be fabricated using a lithium-ion battery positive electrode active material that has been determined to have good cycle characteristics as described above. The lithium-ion battery positive electrode according to an embodiment of the present invention has a structure in which a positive electrode mixture prepared by mixing the lithium-ion battery positive electrode active material, a conductive additive, and a binder is provided on one or both sides of a current collector. Furthermore, the lithium-ion battery according to an embodiment of the present invention includes a lithium-ion battery positive electrode having such a configuration and a known lithium-ion battery negative electrode.

[0030] Examples of the conductive additive include metal-based conductive additives (aluminum, stainless steel (SUS), silver, gold, copper, titanium, etc.), carbon-based conductive additives (graphite and carbon black (acetylene black, ketjen black, furnace black, channel black, thermal lamp black), etc.), and mixtures thereof. These conductive additives may be used alone or in combination of two or more. They may also be used as alloys or metal oxides. Among these, from the viewpoint of electrical stability, aluminum, stainless steel, silver, gold, copper, titanium, carbon-based conductive additives, and mixtures thereof are more preferred, silver, gold, aluminum, stainless steel, and carbon-based conductive additives are even more preferred, and carbon-based conductive additives are particularly preferred. These conductive additives may also be particulate ceramic materials or resin materials coated with a conductive material (preferably a metal among the above-mentioned conductive additives) by plating or the like. The shape (form) of the conductive additive is not limited to particulate form and may be a form other than particulate form, such as carbon nanofibers or carbon nanotubes, which are so-called filler-based conductive additives in practical use.

[0031] Examples of binders include substances commonly used in positive electrode mixtures for lithium-ion batteries, but copolymers or homopolymers having a structure derived from vinylidene fluoride (PVDF), tetrafluoroethylene (TEF), and hexafluoropropylene (HFP) are preferred. Specific examples include PVDF-HFP, PVDF-HFP-TEF, PVDF-TEF, and TEF-HFP.

[0032] The positive electrode mixture is prepared by mixing a positive electrode active material for a lithium ion battery, a conductive additive, and a binder in a solvent to form a positive electrode mixture slurry, which is then applied to one or both sides of a current collector and, after drying or the like, provided on the current collector to form a positive electrode active material layer.

[0033] As the solvent for the positive electrode mixture slurry, known organic solvents such as hydrocarbon organic solvents, amide compounds, lactam compounds, urea compounds, organic sulfur compounds, and cyclic organic phosphorus compounds can be used alone or in combination. Examples of hydrocarbon organic solvents include saturated hydrocarbons, unsaturated hydrocarbons, and aromatic hydrocarbons. Examples of saturated hydrocarbons include hexane, pentane, 2-ethylhexane, heptane, decane, and cyclohexane. Examples of unsaturated hydrocarbons include hexene, heptene, and cyclohexene. Examples of aromatic hydrocarbons include toluene, xylene, decalin, and 1,2,3,4-tetrahydronaphthalene. Among these, toluene and xylene are particularly preferred.

[0034] Materials constituting the current collector include metal materials such as copper, aluminum, titanium, stainless steel, nickel, and alloys thereof, as well as baked carbon, conductive polymer materials, conductive glass, etc. Among these, aluminum is more preferable from the viewpoints of weight reduction, corrosion resistance, and high conductivity. Furthermore, the current collector is preferably a resin current collector made of a conductive polymer material. The shape of the current collector is not particularly limited, and may be a sheet-like current collector made of the above material, or a sediment layer made of fine particles composed of the above material. The thickness of the current collector is not particularly limited, but is preferably 1 to 30 μm. Examples of conductive polymer materials constituting the resin current collector include conductive polymers and resins to which a conductive material is added as needed.

[0035] From the viewpoint of battery performance, the thickness of the positive electrode for a lithium ion battery is preferably 10 to 100 μm, and more preferably 20 to 50 μm.

[0036] Lithium-ion batteries using a lithium-ion battery positive electrode are produced by combining a negative electrode as a counter electrode, placing them together with a separator in a cell container, injecting an electrolyte, and sealing the cell container. Alternatively, a bipolar electrode can be produced by forming a positive electrode on one side of a current collector and a negative electrode on the other, stacking the bipolar electrode with a separator, placing it in a cell container, injecting an electrolyte, and sealing the cell container.

[0037] The negative electrode may include a negative electrode active material, a conductive additive, a current collector, etc. As the negative electrode active material, known negative electrode active materials for lithium ion batteries can be used, and examples thereof include carbon-based materials (graphite, non-graphitizable carbon, amorphous carbon, burned resins (e.g., phenolic resins, furan resins, etc., which are burned and carbonized), cokes (e.g., pitch coke, needle coke, petroleum coke, etc.), and carbon fibers), silicon-based materials (silicon, silicon oxide (SiO x), silicon-carbon composites (carbon particles whose surfaces are coated with silicon and / or silicon carbide, silicon particles or silicon oxide particles whose surfaces are coated with carbon and / or silicon carbide, silicon carbide, etc.), silicon alloys (silicon-aluminum alloys, silicon-lithium alloys, silicon-nickel alloys, silicon-iron alloys, silicon-titanium alloys, silicon-manganese alloys, silicon-copper alloys, silicon-tin alloys, etc.), conductive polymers (e.g., polyacetylene and polypyrrole), metals (tin, aluminum, zirconium, titanium, etc.), metal oxides (titanium oxide, lithium-titanium oxide, etc.), metal alloys (e.g., lithium-tin alloys, lithium-aluminum alloys, lithium-aluminum-manganese alloys, etc.), and mixtures of these with carbon-based materials. The conductive additive may be the same as that used for the positive electrode.

[0038] The current collector may be the same as the current collector constituting the positive electrode described above, and is preferably copper from the viewpoints of weight reduction, corrosion resistance, and high conductivity. A resin current collector may also be used, and the same current collector as the current collector constituting the positive electrode described above can be suitably used. The thickness of the current collector is not particularly limited, but is preferably 10 to 60 μm.

[0039] Examples of the separator include known separators for lithium ion batteries, such as porous films made of polyethylene or polypropylene, laminated films of porous polyethylene film and porous polypropylene, nonwoven fabrics made of synthetic fibers (polyester fibers, aramid fibers, etc.) or glass fibers, and those having ceramic fine particles such as silica, alumina, or titania attached to the surface thereof. [Example]

[0040] The following examples are provided to provide a better understanding of the present invention and its advantages, but the present invention is not limited to these examples.

[0041] Example 1 First, the correlation between the cycle performance evaluation results and the crystallite size of the positive electrode active material was derived by the following method. Specifically, the composition formula is: Li a Ni (1-b-c-d) Co b Mn c M d A group of positive electrode active materials for lithium ion batteries represented by the formula O2 (wherein M is one or more selected from Mg, Al, and Ca, and 1.03≦a≦1.10, 0.18≦b≦0.22, 0.28≦c≦0.32, and 0≦d≦0.007) was prepared. Next, the XRD diffraction patterns of the group of positive electrode active materials for lithium ion batteries were measured. The XRD diffraction pattern was measured using the following XRD diffractometer under the following conditions. XRD diffractometer: SmartLab (Rigaku Corporation) ·Radiation source: CuKα (λ=1.5406Å) Apply the sample (positive electrode active material) to a glass sample holder (2 cm x 1.5 cm, 0.3 mm deep). Detector: D / tex Measurement range: 2θ=10°~80° Scan axis: 2θ / θ, Scan speed: 1 degree min -1 Step width: 0.01 degrees Slit width: IS(DS) 1 / 4°, RS1 10mm, RS2 10mm

[0042] Next, the crystallite size of the (003) plane was calculated from the half-width of the diffraction peak of the (003) plane in the XRD diffraction pattern of the measured group of positive electrode active materials for lithium ion batteries using the Scherrer equation represented by the following formula (1). s=Kλ / Bcosθ (1)

[0043] In the above formula (1), s is the crystallite size of the (003) plane, λ is the wavelength of the X-ray, B is the half-width of the diffraction peak of the (003) plane, θ is the diffraction angle (rad), and K is the Scherrer constant. In this embodiment, K is set to 0.9.

[0044] Next, among the positive electrode active materials, the positive electrode active materials having different crystallite sizes in the (003) plane were used as the electrode material of the battery, and cycle characteristics were evaluated for each battery. Specifically, 11 positive electrode active materials were selected, each with a different crystallite size of the (003) plane calculated by the Scherrer formula. These 11 positive electrode active materials were designated as Test Examples 1A to 11A, and their compositions, average particle diameters D50, BET specific surface areas, and tap densities are shown in Table 1.

[0045] (Average particle size D50) The average particle size D50 of the positive electrode active material in Test Examples 1A to 11A was measured as follows. First, 100 mg of the positive electrode active material (powder) was dispersed using a Microtrac laser diffraction particle size distribution analyzer "MT3300EXII" by irradiating it with 40 W ultrasonic waves for 60 seconds at a 50% flow rate. The particle size distribution was measured, and a volume-based cumulative particle size distribution curve was obtained. In the obtained cumulative particle size distribution curve, the volume particle size at 50% accumulation was taken as the 50% cumulative volume particle size D50 (average particle size D50) of the positive electrode active material powder. The aqueous solvent used in the measurement was passed through a 0.02 μm filter. The solvent refractive index was 1.333, the particle permeability conditions were permeable, the particle refractive index was 1.81, and the shape was aspherical. The measurement range was 0.021 to 2000 μm, and the measurement time was 30 seconds.

[0046] (tap density) The tap density of the positive electrode active materials of Test Examples 1A to 11A was measured as follows. First, 5 g of a sample (powder) of the positive electrode active material was placed in a 10 cc measuring cylinder and placed in a powder density measuring instrument "KYT-4000K" manufactured by Seishin Enterprise Co., Ltd. After tapping 1,500 times with a stroke length of 55 mm, the scale on the measuring cylinder was read. Next, "sample amount (5 g) / measuring cylinder scale reading (cc)" was calculated, and this was taken as the tap density (g / cc).

[0047] (BET specific surface area) The BET specific surface area of ​​the positive electrode active materials of Test Examples 1A to 11A was measured as follows. First, 1.0 g of a positive electrode active material sample (powder) was weighed into a glass cell, which was then placed in a degassing device. The glass cell was filled with nitrogen gas, and then heat-treated in a nitrogen gas atmosphere at 40°C for 20 minutes to degas the material. The glass cell containing the degassed sample (powder) was then placed in a Quantachrome specific surface area measuring device "Monosorb Model MS-21," and the specific surface area X was measured by the BET method (single-point method) while flowing a mixed gas of He: 70 at% and N2: 30 at% as the adsorption gas.

[0048] Next, for each of the positive electrode active materials of Test Examples 1A to 11A, batteries were fabricated as follows using the positive electrode active material as an electrode material. First, the positive electrode active material, acetylene black as a conductive material, and polyvinylidene fluoride as a binder were weighed in a ratio of 90:5:5. The binder polyvinylidene fluoride was dissolved in an organic solvent (N-methylpyrrolidone), and mixed with the positive electrode active material and the conductive material to form a slurry. The slurry was then applied to aluminum foil, dried, and press-molded to form a positive electrode. Next, a 2032-type coin cell for evaluation was fabricated as a battery structure, with Li as the counter cathode, and the discharge capacity (0.05C) and charge / discharge cycle (capacity retention rate) were measured under the following conditions using an electrolyte solution of 1M-LiPF6 dissolved in EC-DMC (3:7). ·Discharge capacity (0.05C) Temperature 25℃, charging: 4.30V, 0.05C, 20h, discharging: 3.0V, 0.05C Charge / discharge cycle (capacity retention rate) Temperature 55℃, charging: 4.30V, 1C, 2.5h, discharging: 3.0V, 1C The ratio of the discharge capacity at the 20th cycle to the discharge capacity at the 1st cycle. Such evaluation of cycle characteristics was carried out for each battery fabricated using the positive electrode active materials of Test Examples 1A to 11A as the electrode material of the battery. The evaluation results are shown in Table 1.

[0049] [Table 1]

[0050] Next, the correlation between the obtained cycle performance evaluation results and the crystallite size of the positive electrode active material was derived. Specifically, based on Table 1, a graph was created in which the crystallite size of the positive electrode active materials of Test Examples 1A to 11A was plotted on the X-axis and the cycle characteristics on the Y-axis. This graph is shown in Figure 2. In the graph of Figure 2, positive electrode active materials with cycle characteristics of 96.0% or higher were determined to have good cycle characteristics. The graph of Figure 2 shows that good cycle characteristics of 96.0% or higher were obtained when the crystallite size of the (003) plane was within the range of 580 to 840 Å. The relationship derived from this (i.e., if the crystallite size of the positive electrode active material was within the range of 580 to 840 Å, the obtained cycle characteristics would be 96.0% or higher) was used as the correlation between the cycle characteristic evaluation results obtained above and the crystallite size of the positive electrode active material.

[0051] Next, as the positive electrode active material for the lithium-ion battery to be evaluated, the composition formula: Li 1.06 Ni 49.9 Co 19.7 Mn 30.4 Ca 0.013 A positive electrode active material for a lithium ion battery represented by O2 was prepared, and the XRD diffraction pattern was measured under the same conditions as in Test Examples 1A to 11A. Next, the crystallite size of the positive electrode active material for evaluation was measured by the same measurement method as in Test Examples 1 A to 11 A. The obtained crystallite size was 824 Å. Next, based on the correlation between the above cycle characteristic evaluation results and the crystallite size of the positive electrode active material, the cycle characteristics of the positive electrode active material for evaluation were evaluated from the crystallite size of the positive electrode active material for evaluation. The obtained crystallite size was in the range of 580 to 840 Å, and it was found that the cycle characteristic obtained by the positive electrode active material for evaluation was 96.0% or more.

[0052] Example 2 First, the correlation between the cycle performance evaluation results and the crystallite size of the positive electrode active material was derived by the following method. Specifically, the composition formula is: Li a Ni (1-b-c-d) Co b Mn c M d A group of lithium-ion battery positive electrode active materials represented by the formula O2 (wherein M is Ta, and 0.98≦a≦1.09, 0.13≦b≦0.16, 0.02≦c≦0.05, and 0≦d≦0.007) was prepared. Next, the XRD diffraction patterns of the group of lithium-ion battery positive electrode active materials were measured under the same conditions as in Example 1.

[0053] Next, from the half-width of the diffraction peak of the (003) plane in the XRD diffraction pattern of the measured group of positive electrode active materials for lithium ion batteries, the crystallite size of the (003) plane was calculated by the Scherrer equation represented by the above formula (1), as in Example 1.

[0054] Next, among the positive electrode active materials, the positive electrode active materials having different crystallite sizes in the (003) plane were used as the electrode material of the battery, and cycle characteristics were evaluated for each battery. Specifically, ten positive electrode active materials were selected, each with a different crystallite size of the (003) plane calculated by the Scherrer formula. These ten positive electrode active materials were designated Test Examples 1B to 10B, and their compositions, average particle diameters D50, BET specific surface areas, and tap densities are shown in Table 2. The average particle diameters D50, BET specific surface areas, and tap densities were measured in the same manner as in Example 1.

[0055] Next, for each of the positive electrode active materials of Test Examples 1B to 10B, batteries were fabricated in the same manner as in Example 1 using the positive electrode active material as an electrode material, and the discharge capacity (0.05C) and charge / discharge cycle (capacity retention rate) were measured under the same conditions. Such evaluation of cycle characteristics was carried out for each battery fabricated using the positive electrode active materials of Test Examples 1B to 10B as the electrode material of the battery. The evaluation results are shown in Table 2.

[0056] [Table 2]

[0057] Next, the correlation between the obtained cycle performance evaluation results and the crystallite size of the positive electrode active material was derived. Specifically, based on Table 2, a graph was created in which the crystallite size of the positive electrode active materials of Test Examples 1B to 10B was plotted on the X-axis and the cycle characteristics on the Y-axis. This graph is shown in Figure 3. In the graph of Figure 3, positive electrode active materials with cycle characteristics of 95.0% or higher were determined to have good cycle characteristics. The graph of Figure 3 shows that good cycle characteristics of 95.0% or higher were obtained when the crystallite size of the (003) plane was within the range of 400 to 650 Å. The relationship derived from this (i.e., if the crystallite size of the positive electrode active material was within the range of 400 to 650 Å, the obtained cycle characteristics were 95.0% or higher) was used as the correlation between the cycle characteristic evaluation results obtained above and the crystallite size of the positive electrode active material.

[0058] Next, as the positive electrode active material for the lithium-ion battery to be evaluated, the composition formula: Li 1.04 Ni 82.1 Co 14.5 Mn 2.8 Ta 0.5 A positive electrode active material for a lithium ion battery represented by O2 was prepared, and the XRD diffraction pattern was measured under the same conditions as in Test Examples 1B to 10B. Next, the crystallite size of the positive electrode active material for evaluation was measured by the same measurement method as in Test Examples 1B to 10B, and the obtained crystallite size was 433 Å. Next, based on the correlation between the above cycle characteristic evaluation results and the crystallite size of the positive electrode active material, the cycle characteristics of the positive electrode active material for evaluation were evaluated from the crystallite size of the positive electrode active material for evaluation.The obtained crystallite size was in the range of 400 to 650 Å, and it was found that the cycle characteristic obtained by the positive electrode active material for evaluation was 95.0% or more.

[0059] According to one embodiment of the present invention, a method for evaluating positive electrode active materials for lithium-ion batteries can be provided, enabling efficient evaluation of cycle characteristics without the need for battery fabrication. This may lead to the widespread use of non-fossil fuels, reducing the use of fossil fuels such as oil and gas, which currently account for the majority of energy generation, and potentially contributing to the prevention of global warming. Furthermore, the main materials used are environmentally friendly materials such as lithium, carbon, manganese, nickel, and cobalt, and toxic substances such as cadmium, lead, and mercury are not used, potentially reducing the environmental impact. Therefore, one embodiment of the present invention may contribute to the achievement of Goal 7 of the United Nations-led Sustainable Development Goals (SDGs), "Ensure access to affordable, reliable, sustainable, and modern energy for all," Goal 9, "Build resilient infrastructure, promote inclusive and sustainable industrialization, and foster innovation," and Goal 12, "Ensure sustainable consumption and production patterns."

Claims

1. Each has the composition formula: Li a Ni (1-b-c-d) Co b Mn c M d O 2 (In the formula, M is one or more selected from Mg, Al, Ca, and Ta, and 0.98≦a≦1.10, 0.13≦b≦0.22, 0.02≦c≦0.32, and 0≦d≦0.007.) Measuring the XRD diffraction patterns of a group of positive electrode active materials for lithium ion batteries represented by: calculating the crystallite size of the (003) plane from the XRD diffraction pattern of the positive electrode active material using Scherrer's equation; a step of evaluating cycle characteristics of batteries fabricated using, as electrode materials for the batteries, cathode active materials having different crystallite sizes in the (003) plane among the cathode active materials, and deriving a correlation between the obtained cycle characteristic evaluation results and the crystallite sizes of the cathode active materials; measuring the crystallite size of a test cathode active material corresponding to the crystallite size of the group of test cathode active materials based on the correlation, and evaluating the cycle characteristics of the test cathode active material from the crystallite size of the test cathode active material; A method for evaluating a positive electrode active material for a lithium ion battery, comprising:

2. The positive electrode active material has the composition formula: Li a Ni (1-b-c-d) Co b Mn c M d O 2 (In the formula, M is one or more elements selected from Mg, Al, and Ca, and 1.03≦a≦1.10, 0.18≦b≦0.22, 0.28≦c≦0.32, and 0≦d≦0.007.) The method for evaluating a positive electrode active material for a lithium ion battery according to claim 1, wherein the positive electrode active material is represented by the formula:

3. 3. The method for evaluating a positive electrode active material for a lithium ion battery according to claim 2, wherein the cycle characteristics of the positive electrode active material for evaluation are evaluated as good if the crystallite size of the positive electrode active material for evaluation is 580 to 840 Å.

4. The positive electrode active material has the composition formula: Li a Ni (1-b-c-d) Co b Mn c M d O 2 (In the formula, M is Ta, and 0.98≦a≦1.09, 0.13≦b≦0.16, 0.02≦c≦0.05, and 0≦d≦0.007.) The method for evaluating a positive electrode active material for a lithium ion battery according to claim 1, wherein the positive electrode active material is represented by the formula:

5. 5. The method for evaluating a positive electrode active material for a lithium ion battery according to claim 4, wherein the cycle characteristics of the positive electrode active material for evaluation are evaluated as good if the crystallite size of the positive electrode active material for evaluation is 400 to 650 Å.

6. Composition formula: Li a Ni (1-b-c-d) Co b Mn c M d O 2 (In the formula, M is one or more elements selected from Mg, Al, and Ca, and 1.03≦a≦1.10, 0.18≦b≦0.22, 0.28≦c≦0.32, and 0≦d≦0.007.) wherein, when an XRD diffraction pattern of the positive electrode active material is measured and a crystallite size of a (003) plane is calculated from the XRD diffraction pattern of the positive electrode active material using Scherrer's equation, the crystallite size is 580 to 840 Å.

7. Composition formula: Li a Ni (1-b-c-d) Co b Mn c M d O 2 (In the formula, M is Ta, and 0.98≦a≦1.09, 0.13≦b≦0.16, 0.02≦c≦0.05, and 0≦d≦0.007.) wherein, when an XRD diffraction pattern of the positive electrode active material is measured and a crystallite size of a (003) plane is calculated from the XRD diffraction pattern of the positive electrode active material using Scherrer's equation, the crystallite size is 400 to 650 Å.

Citation Information

Patent Citations

  • Positive electrode active material for lithium ion battery, method for manufacturing the same, positive electrode for lithium ion battery and lithium ion battery

    JP2019139862A