Positive electrode active material, lithium ion secondary battery, and method for manufacturing positive electrode active material
A nickel-containing positive electrode active material with specific doping elements addresses resistance issues in lithium ion secondary batteries by optimizing lithium layer width for enhanced mobility and reduced resistance.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-12-15
- Publication Date
- 2026-03-10
AI Technical Summary
Lithium ion secondary batteries using nickel-containing positive electrode active materials face issues with increased resistance, particularly in large-capacity applications like electric vehicles.
A positive electrode active material with a layered crystal structure, containing nickel and doping elements M1 and M2 with an ionic radius ratio of 1.03 to 2.2, is developed to facilitate lithium ion desorption and insertion, thereby reducing resistance.
The use of doping elements with specific ionic radius ratios widens the lithium layer, enhancing lithium ion mobility and reducing battery resistance, resulting in improved performance.
Smart Images

Figure 0007827052000001
Abstract
Description
[Technical Field]
[0001] The present disclosure relates to a positive electrode active material, a lithium ion secondary battery, and a method for producing a positive electrode active material. [Background technology]
[0002] Lithium transition metal composite oxides, which have a layered crystal structure in which lithium layers and transition metal layers, each having an octahedral structure composed of a transition metal and oxygen, are alternately arranged, are widely used as positive electrode active materials for lithium ion secondary batteries. Known lithium transition metal composite oxides having a layered crystal structure include those containing at least one transition metal selected from nickel, cobalt, and manganese (see, for example, Patent Document 1). [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2019-23149 Summary of the Invention [Problem to be solved by the invention]
[0004] Among lithium transition metal composite oxides with layered crystal structures, those containing nickel as a transition metal are suitable as positive electrode active materials for large-capacity lithium ion secondary batteries such as those used in electric vehicles. However, lithium ion secondary batteries using positive electrode active materials containing nickel as a transition metal have a problem in reducing resistance. An object of the present disclosure is to provide a positive electrode active material containing nickel as a transition metal and reducing the resistance of a lithium ion secondary battery, a lithium ion secondary battery including a positive electrode containing this positive electrode active material, and a method for producing this positive electrode active material. [Means for solving the problem]
[0005] The means for solving the above problems include the following embodiments. <1> A positive electrode active material having a crystal structure in which nickel-containing transition metal layers and lithium layers are alternately arranged, and containing doping elements M1 and M2 whose ionic radius ratio represented by M1 / M2 is 1.03 or more and 2.2 or less. <2> The ionic radius ratios of the doping element M1 and the doping element M2 to nickel are each 0.7 or more and 2.3 or less; <1> The positive electrode active material according to claim 1. <3> The doping element M1 and the doping element M2 are each selected from the group consisting of Sn, Y, Pr, La, Sr, Ta, W, Fe and Nb; <1> or <2> The positive electrode active material according to claim 1. <4> <1> ~ <3> 10. A lithium ion secondary battery comprising a positive electrode containing the positive electrode active material according to claim 1. <5> A method for producing a positive electrode active material having a crystal structure in which nickel-containing transition metal layers and lithium layers are alternately arranged, comprising: A method for producing a positive electrode active material, comprising adding a doping element M1 and a doping element M2, the ionic radius ratio of which, represented by M1 / M2, is 1.03 or more and 2.2 or less, to the positive electrode active material. [Effects of the Invention]
[0006] According to one embodiment of the present disclosure, there are provided a positive electrode active material containing nickel as a transition metal and reducing the resistance of a lithium ion secondary battery, a lithium ion secondary battery including a positive electrode containing this positive electrode active material, and a method for producing this positive electrode active material. DETAILED DESCRIPTION OF THE INVENTION
[0007] In the present disclosure, a numerical range indicated using "to" means a range that includes the numerical values before and after "to" as the minimum and maximum values, respectively. In the numerical ranges described in stages in this disclosure, the upper or lower limit value described in a certain numerical range may be replaced with the upper or lower limit value of another numerical range described in stages. In the numerical ranges described in this disclosure, the upper or lower limit value described in a certain numerical range may be replaced with the value shown in the examples. In the present disclosure, the term "process" includes not only an independent process but also a process that cannot be clearly distinguished from other processes, as long as the intended purpose of the process is achieved. In the present disclosure, a combination of two or more preferred embodiments is a more preferred embodiment. In the present disclosure, when there are multiple substances corresponding to each component, the amount of each component means the total amount of the multiple substances unless otherwise specified.
[0008] <Cathode active material> The positive electrode active material of the present disclosure is The material has a crystal structure in which nickel-containing transition metal layers and lithium layers are alternately arranged, The dopant element M1 and the dopant element M2 have an ionic radius ratio represented by M1 / M2 of 1.03 or more and 2.2 or less.
[0009] The positive electrode active material of the present disclosure is a compound belonging to the lithium transition metal composite oxides having a crystal structure (also referred to as a layered laminate structure or an R-3m type crystal structure) in which transition metal layers each having an octahedral structure composed of a transition metal and oxygen and lithium layers are arranged alternately. In the present disclosure, the lithium transition metal composite oxide refers to a composite oxide containing lithium and one or more transition metals. In the present disclosure, the ionic radius ratio represented by M1 / M2 means the value obtained by dividing the ionic radius of the doping element M1 by the ionic radius of the doping element M2.
[0010] As shown in the examples described later, a lithium ion secondary battery using a positive electrode active material containing doping elements M1 and M2, in which the ionic radius ratio represented by M1 / M2 is 1.03 or more and 2.2 or less, has a reduced resistance compared to a lithium ion secondary battery using a positive electrode active material that does not satisfy the above conditions. The reason for this is presumed to be, for example, as follows. However, the present disclosure is not limited by the following presumption.
[0011] In a lithium-ion secondary battery that uses a lithium transition metal composite oxide having a layered crystal structure as a positive electrode active material, lithium ions are desorbed from the lithium layers disposed between the transition metal layers during charging, and lithium ions are inserted into the lithium layers during discharging. When the transition metal layer contains the doping element M1 and the doping element M2, whose ionic radius ratio is 1.03 to 2.2, the oxygen position in the transition metal layer changes, the octahedral structure contracts, and the width of the lithium layer expands, which is thought to facilitate the desorption or insertion of lithium ions into the lithium layer and reduce the resistance of the battery.
[0012] From the viewpoint of effectively reducing the resistance of the battery, the ionic radius ratio represented by M1 / M2 is preferably 1.1 or more, more preferably 1.3 or more, and even more preferably 1.5 or more. From the viewpoint of effectively reducing the resistance of the battery, the ionic radius ratio represented by M1 / M2 is preferably 2.0 or less, more preferably 1.8 or less, and even more preferably 1.7 or less.
[0013] The type of doping element contained in the transition metal layer is not particularly limited, and examples include Au, Bi, Hf, La, Mo, Nb, Pd, Pr, Rh, Pt, Sr, Ta, Tc, Ti, W, Y, and Zr. Preferred examples of doping elements include Y (ionic radius: 0.69 Å), La (ionic radius: 1.03 Å), Nb (ionic radius: 0.72 Å), W (ionic radius: 0.62 Å), Sr (ionic radius: 1.18 Å), Pr (ionic radius: 0.99 Å), and Fe (ionic radius: 0.55 Å). The positive electrode active material may contain only two or three or more kinds of doping elements.
[0014] From the viewpoint of effectively reducing the resistance of the battery, it is preferable that the ionic radius ratio (M1 or M2 / Ni) of each of the doping elements M1 and M2 to the ionic radius of Ni (0.56 Å) is 0.7 or more and 2.3 or less.
[0015] The total content of the dopant element M1 and the dopant element M2 contained in the transition metal layer is not particularly limited. From the viewpoint of sufficiently obtaining the effect of reducing the resistance of the battery, the total content of the doping element M1 and the doping element M2 contained in the transition metal layer may be 0.005 mol% or more relative to the total of the transition metal and the doping element contained in the positive electrode active material. From the viewpoint of the balance of the properties of the positive electrode active material, the total content of the doping element M1 and the doping element M2 contained in the transition metal layer may be 1 mol % or less, 0.1 mol % or less, or 0.05 mol % or less with respect to the total of the transition metal and the doping element contained in the positive electrode active material. The molar ratio of the dopant element M1 to the dopant element M2 contained in the transition metal layer is not particularly limited. From the viewpoint of obtaining a sufficient effect of reducing the resistance of the battery, the molar ratio of the dopant element M1 to the dopant element M2 (M1 / M2) is preferably within the range of 0.5 to 2.0.
[0016] The positive electrode active material of the present disclosure contains at least nickel as a transition metal. From the viewpoint of the balance of the properties of the positive electrode active material, the positive electrode active material more preferably contains nickel and at least one selected from cobalt and manganese as transition metals, and even more preferably contains nickel, cobalt, and manganese (NCM, nickel-cobalt-manganese oxide).
[0017] The NCM may contain a high proportion of Ni (for example, 50 mol % or more, 60 mol % or more, or 70 mol % or more of the total transition metals).
[0018] The molar ratios of Ni, Co, and Mn contained in the NCM may be selected, for example, from the range of 1:0.1 to 1:1 for the molar ratio of Ni to Co (Ni:Co), and from the range of 1:0.1 to 1:1 for the molar ratio of Ni to Mn (Ni:Mn).
[0019] The molar ratio of Ni to Co (Ni:Co) may be selected from the range of 1:0.1 to 1:0.5, 1:0.1 to 1:0.3, or 1:0.1 to 1:0.2. The molar ratio of Ni to Mn (Ni:Mn) may be selected from the range of 1:0.1 to 1:0.5, 1:0.1 to 1:0.3, or 1:0.1 to 1:0.2.
[0020] The positive electrode active material may be in a particulate form. The volume average particle diameter of the particulate positive electrode active material is not particularly limited and can be selected, for example, from the range of 5 μm to 30 μm. When the positive electrode active material is in the form of secondary particles that are an aggregate of multiple primary particles, the volume average particle diameter is the volume average particle diameter of the secondary particles. The volume average particle size of the positive electrode active material particles is not particularly limited and can be selected, for example, from the range of 5 μm to 30 μm.
[0021] In the present disclosure, the volume average particle size of particles is the particle size (D50) at which the cumulative volume reaches 50% in the volume-based particle size distribution. The volume-based particle size distribution can be obtained, for example, by a laser diffraction / scattering method.
[0022] <Lithium-ion secondary battery> The lithium ion secondary battery of the present disclosure includes a positive electrode containing the above-described positive electrode active material. The positive electrode includes, for example, a current collector and a positive electrode layer disposed on the current collector, and the positive electrode layer includes the positive electrode active material of the present disclosure. The positive electrode layer may be disposed on one or both sides of the current collector.
[0023] Examples of materials constituting the current collector of the positive electrode include aluminum, aluminum alloy, nickel, titanium, stainless steel, etc. Examples of the shape of the current collector include foil, mesh, etc.
[0024] The positive electrode layer is disposed on the current collector by, for example, applying a slurry of the positive electrode material to one or both sides of the current collector. If necessary, a pressure treatment may be performed to adjust the density of the positive electrode layer. The thickness of the positive electrode layer is not particularly limited and can be selected, for example, from the range of 10 μm to 100 μm.
[0025] The positive electrode material may be in the form of a mixture containing components other than the positive electrode active material, such as a conductive additive, a binder, etc. If necessary, a solvent may be added to the mixture to adjust the viscosity of the mixture.
[0026] Specific examples of the conductive aid include carbon materials such as carbon black (acetylene black, thermal black, furnace black, etc.), carbon nanotubes, and graphite. The conductive material contained in the positive electrode material may be one type alone or two or more types.
[0027] Specific examples of binders include polyvinylidene fluoride (PVDF), polyethylene, polypropylene, polyethylene terephthalate, cellulose, nitrocellulose, carboxymethyl cellulose, polyethylene oxide, polyepichlorohydrin, polyacrylonitrile, styrene-butadiene rubber (SBR), acrylonitrile-butadiene rubber (NBR), polyacrylate, and polymethacrylate. The binder contained in the positive electrode material may be one type alone or two or more types.
[0028] The lithium ion secondary battery of the present disclosure includes, for example, a positive electrode, a negative electrode, and an electrolyte. The negative electrode includes, for example, a current collector and a negative electrode layer that is disposed on the current collector and contains a negative electrode active material. Examples of types of negative electrode active materials include carbon materials such as graphite, hard carbon, soft carbon, and activated carbon, silicon, metallic lithium, lithium alloys, and lithium titanate (LTO). Examples of materials constituting the negative electrode current collector include copper, copper alloy, nickel, titanium, stainless steel, etc. Examples of shapes of the negative electrode current collector include foil, mesh, etc.
[0029] The electrolyte may be either liquid or solid. As a liquid electrolyte (electrolytic solution), a known electrolyte such as LiPF6 dissolved in an organic solvent can be used without any particular limitation. Specific examples of the organic solvent include cyclic or chain carbonates such as ethylene carbonate (EC), dimethyl carbonate (DMC), diethyl carbonate (DEC), ethyl methyl carbonate (EMC), etc. The solvent may be a mixture of two or more solvents, or may be a mixture containing a cyclic carbonate and a chain carbonate. The solvent may contain an additive such as vinylene carbonate (VC). As the solid electrolyte, known solid electrolytes such as sulfide solid electrolytes, oxide solid electrolytes, and halide solid electrolytes can be used without any particular limitation.
[0030] The lithium ion secondary battery may include a separator disposed between the positive electrode and the negative electrode. Examples of the separator include nonwoven fabric, cloth, and microporous film mainly composed of polyolefin such as polyethylene or polypropylene.
[0031] <Method of manufacturing positive electrode active material> The method for producing a positive electrode active material according to the present disclosure includes: A method for producing a positive electrode active material having a crystal structure in which nickel-containing transition metal layers and lithium layers are alternately arranged, comprising: The method includes adding a doping element M1 and a doping element M2, the ionic radius ratio of which is expressed as M1 / M2, from 1.03 to 2.2, to the positive electrode active material.
[0032] In the method of the present disclosure, doping elements M1 and M2 having an ionic radius ratio, M1 / M2, of 1.03 to 2.2 are added to a positive electrode active material. That is, the positive electrode active material produced by the method of the present disclosure contains doping elements M1 and M2 having an ionic radius ratio, M1 / M2, of 1.03 to 2.2. As will be shown in the examples described later, a lithium ion secondary battery using a positive electrode active material containing doping elements M1 and M2, in which the ionic radius ratio represented by M1 / M2 is 1.03 or more and 2.2 or less, has a reduced resistance compared to a lithium ion secondary battery using a positive electrode active material not containing doping elements M1 and M2, in which the ionic radius ratio represented by M1 / M2 is 1.03 or more and 2.2 or less.
[0033] The conditions for carrying out the method of the present disclosure are not particularly limited, and may be any known conditions, except that the doping element M1 and the doping element M2, whose ionic radius ratio represented by M1 / M2 is 1.03 or more and 2.2 or less, are added to the positive electrode active material. The method of the present disclosure may be, for example, a method including a step of firing a mixture including a compound containing a transition metal as a raw material for a positive electrode active material, a compound containing lithium, and a compound containing a doping element. The compound containing a transition metal, lithium or a doping element may be a hydroxide, a carbonate, an oxide, etc. The compound containing a transition metal may be a composite compound containing two or more kinds of transition metals.
[0034] The temperature at which the firing step is carried out is not particularly limited and can be selected from known firing conditions. The firing temperature may be selected, for example, from the range of 600°C to 850°C. The temperature at which the firing step is carried out may be constant from the start to the end of the firing step, or may be varied. The firing step can be carried out, for example, in an atmosphere with an oxygen content of 40% by volume to 100% by volume. The temperature or oxygen content during the firing step may be constant from the start to the end of the firing step, or may be varied. The firing step may be carried out in one step or in two or more steps.
[0035] The cathode active material produced by the method of the present disclosure may be the cathode active material of the present disclosure described above. That is, the details and preferred aspects of the cathode active material produced by the method of the present disclosure may be the same as the details and preferred aspects of the cathode active material of the present disclosure described above. [Example]
[0036] The present disclosure will be described in more detail below with reference to examples, but the invention of the present disclosure is not limited to these examples.
[0037] <Preparation of positive electrode active material> NiSO4, CoSO4, and MnSO4 were dissolved in ion-exchanged water to obtain a raw material solution with a concentration of 30 mass %. The molar ratios of Ni, Co, and Mn in the raw material solution were as shown in Table 1.
[0038] A NH3 aqueous solution was added to the reaction vessel, and nitrogen substitution was performed while stirring. Next, NaOH was added to the reaction vessel to adjust the aqueous solution to alkaline. While controlling the pH in the reaction vessel to maintain a constant value, the raw material solution and NH3 were added dropwise to precipitate hydroxides of Ni, Co, and Mn. The resulting precipitate was filtered and dispersed in ion-exchanged water. The precipitate dispersed in ion-exchanged water was filtered and dried at 120°C for 16 hours to remove moisture, yielding transition metal hydroxides as precursors of the positive electrode active material.
[0039] Lithium hydroxide and a compound containing a doping element shown in Table 1 were added to the obtained precursor and mixed to obtain a raw material for the positive electrode active material. The amount of lithium hydroxide was adjusted so that the amount of lithium was 1 mole per 1 mole of the total of the transition metals (Ni, Co, and Mn) in the precursor. The amount of the compound containing the doping element was adjusted so that the amount of each of the doping elements M1 and M2 was 0.01 mol % relative to the total amount of the transition metals (Ni, Co, and Mn) and the doping elements (M1 and M2) in the precursor.
[0040] The raw material for the positive electrode active material was fired at 700° C. for 3 hours. The fired material was then crushed and further fired at 850° C. for 10 hours. Through these steps, the positive electrode active material was obtained.
[0041] <Evaluation of battery resistance> A positive electrode active material (88 parts by mass), acetylene black (10 parts by mass) as a conductive material, and polyvinylidene fluoride (2 parts by mass) as a binder were mixed, and the viscosity was adjusted with a solvent to obtain a positive electrode mixture. The positive electrode mixture was coated on aluminum foil and dried at 80°C for 5 minutes to obtain a positive electrode. A laminated test battery was fabricated using an electrode assembly formed by laminating the obtained positive electrode, a separator (a polyethylene microporous film), and a negative electrode containing graphite as an active material in this order, and an electrolyte solution. The electrolyte used was a mixed solvent of ethylene carbonate (EC), dimethyl carbonate (DMC) and ethyl methyl carbonate (EMC) (volume ratio of EC / DMC / EMC: 3 / 4 / 3) in which LiPF6 (concentration: 1M) was dissolved. The state of charge (SOC) of the test battery was adjusted to 50% and the temperature to -10°C. Next, the battery resistance was measured from the difference between the voltage and current during 0.2C discharge and the voltage and current 10 seconds after the start of 1C discharge. The obtained measurement values were converted into an index with the measurement value of the reference battery set to 100. The results are shown in Table 1. The reference battery was fabricated in the same manner as the above-described evaluation battery, except that no doping element was added to the raw material of the positive electrode active material, and the firing process was carried out in one step at 750° C. for 10 hours.
[0042] <Measuring the width of the lithium layer> The width of the lithium layer of the positive electrode active material was calculated by Rietveld analysis of synchrotron XRD. Synchrotron radiation XRD was performed using powder X-ray diffraction equipment BL5S2 at the Aichi Synchrotron Center under the conditions of measurement energy: 15 keV, threshold: 7.5 to 10 keV, and 2θ range: 10 to 90°. The results are shown in Table 1. The obtained synchrotron radiation XRD data was subjected to Rietveld analysis using the Rietveld analysis application Fullprof. Specifically, the c-axis length (C h ) and the z-coordinate of oxygen (Z oxy ) and calculate the width of the lithium layer (D Li ) was calculated. D TM =2{(1 / 3)-Z oxy}C h D Li =C h / 3-D TM The Chi2 value is a convergence index obtained by fitting diffraction data using the least-squares method. When the deviation between the diffraction data and the profile fitting is minimal, the Chi2 value is at its minimum.
[0043] [Table 1]
[0044] As shown in Table 1, the batteries of Examples 1 to 6, which were fabricated using positive electrode active materials to which doping elements M1 and M2, whose ionic radius ratios represented by M1 / M2 were added, were 1.03 or more and 2.2 or less, had reduced battery resistance compared to the batteries of Comparative Examples 1 and 2, in which the doping elements added to the positive electrode active materials did not satisfy the above conditions. Furthermore, as shown in Table 1, the positive electrode active materials obtained in Examples 1 to 5 have a wider lithium layer than the positive electrode active materials obtained in Comparative Examples 1 and 2. The above results suggest that the positive electrode active material contains doping elements M1 and M2 whose ionic radius ratios, represented by M1 / M2, are 1.03 or more and 2.2 or less, thereby widening the lithium layer and reducing the resistance of the battery.
Claims
1. The material has a crystal structure in which transition metal layers containing nickel, cobalt, and manganese and lithium layers are alternately arranged, A positive electrode active material comprising a doping element M1 and a doping element M2 having an ionic radius ratio represented by M1 / M2 of 1.03 or more and 2.2 or less, and satisfying the following condition 1 or 2: Condition 1: M1 is Pr and M2 is W Condition 2: M1 is Sr and M2 is Fe
2. A lithium ion secondary battery comprising a positive electrode containing the positive electrode active material according to claim 1.
3. A method for producing a positive electrode active material having a crystal structure in which transition metal layers containing nickel, cobalt, and manganese and lithium layers are alternately arranged, the method comprising: A method for producing a positive electrode active material, comprising adding a doping element M1 and a doping element M2, each having an ionic radius ratio represented by M1 / M2 of 1.03 to 2.2, to the positive electrode active material, and satisfying the following condition or condition 2: Condition 1: M1 is Pr and M2 is W Condition 2: M1 is Sr and M2 is Fe
Citation Information
Patent Citations
Preparation method of high-rate, high-compaction and high-voltage lithium cobalt oxide positive electrode material
CN113247964A
High-sphericity-degree single-crystal positive electrode material and preparation method thereof
CN117038962A
Nickel cobalt manganese composite hydroxide, production method thereof, positive electrode active material for non-aqueous electrolyte secondary battery and production method thereof
JP2019023149A
Cathode active material for non-aqueous-electrolyte secondary battery and non-aqueous-electrolyte secondary battery
WO2020262348A1