Positive electrode active material particle, lithium-ion secondary battery, and method of manufacturing positive electrode active material particle

JP2025039625A5Pending Publication Date: 2025-06-23TOYOTA JIDOSHA KK
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Application Number
JP2024232676
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-12-27
Publication Date
2025-06-23

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Abstract

To improve the rate characteristic of an O2-type positive electrode active material particle.SOLUTION: A positive electrode active material particle according to a first form is spherical, has an O2-type structure and contains at least as configuration elements at least one transition metal element of Mn, Ni, and Co, Li, and O. A positive electrode active material particle according to a second form has a shell and a void in a cross-section structure. The shell has an O2-type structure. The shell contains at least as configuration elements at least one transition metal element of Mn, Ni, and Co, Li, and O. The shell has a plurality of crystallites, and the void exists along an inner wall of the shell.SELECTED DRAWING: Figure 1B
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Description

[Technical field]

[0001] The present application discloses positive electrode active material particles, a lithium ion secondary battery, and a method for producing positive electrode active material particles. [Background technology]

[0002] A positive electrode active material having an O2 type structure is known. As disclosed in Patent Document 1, a positive electrode active material having an O2 type structure is obtained by ion-exchanging at least a part of Na in a Na-containing transition metal oxide having a P2 type structure with Li. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] JP 2014-186937 A Summary of the Invention [Problem to be solved by the invention]

[0004] Positive electrode active materials having an O2 type structure have poor rate characteristics, and the capacity during high-rate charge / discharge is more likely to decrease than the capacity during low-rate charge / discharge. [Means for solving the problem]

[0005] The present application discloses the following aspects as means for solving the above problems. (Aspect 1) Positive electrode active material particles, It has an O2 structure. Constituent elements include at least one transition metal element selected from Mn, Ni, and Co, Li, and O; It is spherical, Positive electrode active material particles. (Aspect 2) A positive electrode active material particle having a cross-sectional structure including a shell and a void, the shell has an O2 structure, The shell contains, as constituent elements, at least one transition metal element among Mn, Ni, and Co, Li, and O. The surface of the shell is composed of a plurality of crystallites. The voids are present along the inner wall of the shell. Positive electrode active material particles. (Aspect 3) The positive electrode active material particles of Aspect 2, having multiple shells, and the voids are present between at least one of the shells and the other shells. (Aspect 4) The positive electrode active material particles of Aspect 2 or 3, wherein the outer shape of the shell is spherical. (Aspect 5) The positive electrode active material particles of any one of Aspects 1 to 4, wherein the particle surface is composed of a plurality of crystallites. (Aspect 6) The positive electrode active material particles of any one of Aspects 2 to 5, wherein the diameter of the crystallites is less than 1 μm. (Aspect 7) The positive electrode active material particles of any one of Aspects 2 to 6, wherein the crystallites have a first surface exposed on the particle surface, and the first surface is planar. (Aspect 8) The positive electrode active material particles of any one of Aspects 1 to 7, containing Li, Mn, Ni, Co, and O as constituent elements. (Aspect 9) Li a Na b Mn x-p Ni y-q Co z-r M p+q+r The positive electrode active material particles of any one of Aspects 1 to 8, having a chemical composition represented by Li (Aspect 10) A lithium-ion secondary battery having a positive electrode, an electrolyte layer, and a negative electrode. The positive electrode contains the positive electrode active material particles of any one of Aspects 1 to 9. Lithium-ion secondary battery. (Aspect 11) 11. The lithium ion secondary battery of embodiment 10, wherein the positive electrode comprises an electrolyte. (Aspect 12) A method for producing positive electrode active material particles, comprising: Obtaining precursor particles; coating the surface of the precursor particles with a Na salt to obtain coated particles; calcining the coated particles to obtain Na-containing transition metal oxide particles having a P2 type structure; and replacing at least a portion of the Na in the Na-containing transition metal oxide particles with Li by ion exchange to obtain positive electrode active material particles; Including, the precursor particles are a salt containing at least one transition metal element selected from the group consisting of Mn, Ni, and Co; The precursor particles are spherical; The coated particles are obtained by coating 40% by area or more of the surface of the precursor particles with the Na salt, The Na-containing transition metal oxide particles are spherical. Manufacturing method. Effect of the Invention

[0006] The positive electrode active material particles of the present disclosure have excellent rate characteristics. [Brief description of the drawings]

[0007] [Figure 1A] FIG. 2 is a SEM photograph showing an example of the external shape of a positive electrode active material particle according to the first embodiment. [Figure 1B] FIG. 2 is a SEM photograph showing an example of the external shape of a positive electrode active material particle according to the first embodiment. [Diagram 2] FIG. 1 is a SEM photograph showing the morphology of conventional O2 type positive electrode active material particles. [Diagram 3] FIG. 4 is a SEM photograph showing an example of a cross-sectional structure of a positive electrode active material particle according to a second embodiment. [Figure 4] 1 shows a schematic configuration of a lithium ion secondary battery. [Diagram 5] 1 shows an example of a flow of a method for producing positive electrode active material particles. [Figure 6] FIG. 2 is a SEM photograph of a P2 type particle according to an embodiment. [Figure 7] 1 is an X-ray diffraction pattern of O2 type positive electrode active material particles according to an embodiment. [Figure 8] 1 is a graph comparing the rate characteristics of coin cells according to an embodiment and a comparative example. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0008] 1. Positive electrode active material particles according to the first embodiment 1A and 1B show an example of the positive electrode active material particle according to the first embodiment. The positive electrode active material particle according to the first embodiment is It has an O2 structure. Constituent elements include at least one transition metal element selected from Mn, Ni, and Co, Li, and O, and It is spherical.

[0009] 1.1 Crystal structure of particles The positive electrode active material particles according to the first embodiment include at least an O2 type structure (belonging to space group P63mc) as a crystal structure. The positive electrode active material particles according to the first embodiment have an O2 type structure and may have a crystal structure other than the O2 type structure. Examples of crystal structures other than the O2 type structure include a T♯2 type structure (belonging to space group Cmca) formed when Li is deintercalated from the O2 type structure and an O6 type structure (belonging to space group R-3m, with a c-axis length of 2.5 nm to 3.5 nm, typically 2.9 nm to 3.0 nm, and different from the O3 type structure also belonging to space group R-3m). The positive electrode active material particles according to the first embodiment may have an O2 type structure as a main phase, or may have a crystal structure other than the O2 type structure as a main phase. The positive electrode active material particles according to the first embodiment may have a crystal structure as a main phase that changes depending on the charge / discharge state.

[0010] The positive electrode active material particles according to the first embodiment may be a single crystal consisting of one crystallite, or may be a polycrystal having a plurality of crystallites. For example, as shown in FIG. 1B, the positive electrode active material particles according to the first embodiment may have a surface consisting of a plurality of crystallites. In other words, the particle surface may have a structure in which a plurality of crystallites are connected to each other.

[0011] When the surface of the positive electrode active material particle is composed of a plurality of crystallites, the grain boundary is present on the surface of the particle. Here, the grain boundary may be the entrance and exit of intercalation. That is, when the positive electrode active material particle has a plurality of crystallites, the effect of increasing the number of entrances and exits of intercalation and reducing the reaction resistance, the effect of shortening the movement distance of lithium ions and reducing the diffusion resistance, the absolute amount of expansion and contraction during charging and discharging is reduced, and the effect of cracking is less likely to occur, etc. can be expected.

[0012] The size of the crystallites constituting the positive electrode active material particles may be large or small, but the smaller the crystallite size, the more grain boundaries there are, and the more likely the above-mentioned advantageous effects are to be exhibited. For example, if the diameter of the crystallites constituting the positive electrode active material particles is less than 1 μm, higher performance is likely to be obtained. The "crystallite" and "diameter of the crystallite" can be determined by observing the surface of the positive electrode active material particles with a scanning electron microscope (SEM) or a transmission electron microscope (TEM). That is, when the surface of the positive electrode active material particles is observed and a closed region surrounded by grain boundaries is observed, the region is regarded as a "crystallite". The maximum Feret diameter of the crystallite is determined and regarded as the "diameter of the crystallite". If the particle is composed of a single crystal, the particle itself can be said to be a single crystallite, and the maximum Feret diameter of the particle is the "diameter of the crystallite". Alternatively, the diameter of the crystallite can be determined by EBSD or XRD. For example, the diameter of the crystallite can be determined based on the Scherrer formula from the half-width of the diffraction line of the XRD pattern. When the positive electrode active material particles of the present disclosure have a crystallite diameter of less than 1 μm as determined by any method, higher performance is likely to be obtained.

[0013] As shown in FIG. 1B, the crystallite may have a first surface exposed on the particle surface, and the first surface may be planar. As shown in FIG. 1B, the surface of the positive electrode active material particles may have a structure in which a plurality of planes are connected. As will be described later, when manufacturing the positive electrode active material particles, by growing the crystallites on the particle surface until one crystallite is connected to another crystallite, it is easy to obtain crystallites having a planar first surface.

[0014] 1.2 Chemical Composition of Particles The positive electrode active material particles according to the first form contain, as constituent elements, at least one transition metal element of at least Mn, Ni, and Co, Li, and O. In particular, when the constituent elements include at least Li, Mn, at least one of Ni and Co, and O, among others, when the constituent elements include at least Li, Mn, Ni, Co, and O, the performance of the positive electrode active material particles according to the first form is more likely to be higher. However, in the positive electrode active material particles according to the first form, for example, Li may be released by charging and the abundance of Li may approach 0.

[0015] The positive electrode active material particles according to the first form are Li a Na b Mn x-p Ni y-q Co z-r M p+q+r It may have a chemical composition represented by O2. Here, 0 < a ≤ 1.00, 0 ≤ b ≤ 0.20, x + y + z = 1, and 0 ≤ p + q + r ≤ 0.15. Also, M is at least one element selected from B, Mg, Al, K, Ca, Ti, V, Cr, Fe, Cu, Zn, Ga, Ge, Sr, Y, Zr, Nb, Mo, and W. When the positive electrode active material particles have such a chemical composition, the O2 type structure is more likely to be maintained.

[0016] In the above chemical composition, a may be greater than 0, 0.10 or more, 0.20 or more, 0.30 or more, 0.40 or more, 0.50 or more, or 0.60 or more, and may be 1.00 or less, 0.90 or less, 0.80 or less, or 0.70 or less. In the above chemical composition, b may be 0 or more, 0.01 or more, 0.02 or more, or 0.03 or more, and may be 0.20 or less, 0.15 or less, or 0.10 or less. In the above chemical composition, x may be 0 or more, 0.10 or more, 0.20 or more, 0.30 or more, 0.40 or more, or 0.50 or more, and may be 1.00 or less, 0.90 or less, 0.80 or less, 0.70 or less, 0.60 or less, or 0.50 or less. In the above chemical composition, y may be 0 or more, 0.10 or more, or 0.20 or more, and may be 1.00 or less, 0.90 or less, 0.80 or less, 0.70 or less, 0.60 or less, 0.50 or less, 0.40 or less, 0.30 or less, or 0.20 or less. In the above chemical composition, z may be 0 or more, 0.10 or more, 0.20 or more, or 0.30 or more, and may be 1.00 or less, 0.90 or less, 0.80 or less, 0.70 or less, 0.60 or less, 0.50 or less, 0.40 or less, or 0.30 or less. Many M do not contribute to charge and discharge. In this respect, by having p+q+r be 0.15 or less, a high charge and discharge capacity is easily ensured. p+q+r may be 0.10 or less, or may be 0. The composition of O is approximately 2, but is not necessarily exactly 2.0 and is indefinite.

[0017] 1.3 Particle shape 1A and 1B, the positive electrode active material particles according to the first embodiment are spherical. In the present application, "the particles are spherical" means that the circularity of the particles is 0.80 or more. The circularity of the positive electrode active material particles may be 0.81 or more, 0.82 or more, 0.83 or more, 0.84 or more, 0.85 or more, 0.86 or more, 0.87 or more, 0.88 or more, 0.89 or more, or 0.90 or more. The circularity of the particles is 4πS / L 2Here, S is the orthogonal projection area of ​​the particle, and L is the perimeter of the orthogonal projection image of the particle. The circularity of the positive electrode active material particles can be determined by observing the appearance of the particles with a scanning electron microscope (SEM), a transmission electron microscope (TEM), or an optical microscope. When the positive electrode active material particles are composed of multiple particles, the circularity is measured as an average value as follows.

[0018] (1) First, the particle size distribution of the positive electrode active material particles is measured. Specifically, the particle size at 10% cumulative value (D10) and the particle size at 90% cumulative value (D90) in the volume-based particle size distribution are determined by a laser diffraction / scattering method. (2) Regarding the appearance of the positive electrode active material particles whose particle size distribution has been measured, images are observed using a SEM, TEM, or optical microscope, and from the particles contained in the images, 100 particles having a circle equivalent diameter (the diameter of a circle having the same area as the orthogonal projected area of ​​the particle) of not less than D10 and not more than D90 determined in (1) are randomly selected. (3) The circularity of each of the 100 extracted particles is determined by image processing, and the average value is regarded as the "circularity of the positive electrode active material particles."

[0019] The positive electrode active material particles according to the first embodiment may be solid particles, hollow particles, or particles having voids. When the positive electrode active material particles are hollow particles or particles having voids, it is considered possible to fill the hollow or void parts with a liquid. For example, the electrolyte solution permeates not only the outer surface of the positive electrode active material particles but also the inside, and the contact area between the particles and the electrolyte solution is likely to increase.

[0020] 1.4 Particle size The size of the positive electrode active material particles according to the first embodiment is not particularly limited, but a smaller size is more advantageous. For example, the average particle diameter (D50) of the positive electrode active material particles according to the first embodiment may be 0.1 μm to 10 μm, 0.5 μm to 8.0 μm, or 1.0 μm to 6.0 μm. The average particle diameter (D50) of the positive electrode active material particles is the particle diameter (D50, median diameter) at an integrated value of 50% in a volume-based particle size distribution by a laser diffraction / scattering method.

[0021] 1.5 Effects (comparison with conventional O2-type positive electrode active material particles) FIG. 2 shows the morphology of conventional O2-type positive electrode active material particles. Positive electrode active material particles having an O2-type structure are obtained by ion-exchanging at least a part of Na in Na-containing transition metal oxide particles having a P2-type structure with Li. Here, the P2-type structure is a hexagonal crystal system, has a large diffusion coefficient of Na ions, and is prone to crystal growth in a specific direction. In particular, when at least one of Mn, Ni, and Co is included as a transition metal element constituting the P2-type structure, the crystal is prone to plate-like growth in a specific direction. Therefore, in the past, only plate-like particles with a large aspect ratio in which the crystal growth direction is biased in a specific direction could be produced as Na-containing transition metal oxide particles having a P2-type structure, and as a result, only plate-like particles as shown in FIG. 2 could be produced for positive electrode active material particles having an O2-type structure. In addition, the plate-like growth of the P2-type structure was considered to be a fundamental principle and unavoidable. Therefore, for conventional O2-type positive electrode active material particles, the performance as an active material was improved by controlling the chemical composition and crystal structure on the premise that they were plate-shaped.

[0022] In contrast, the positive electrode active material particles according to the first embodiment have an O2 type structure, contain at least one transition metal element selected from Mn, Ni, and Co, and are spherical. When spherical positive electrode active material particles are included in the positive electrode of a lithium ion secondary battery, the growth of crystallites is more easily suppressed and the crystallites are more easily made small than when non-spherical positive electrode active material particles (for example, plate-like particles as described above) are included. That is, when the positive electrode active material particles are spherical, the reaction resistance is reduced by reducing the crystallite size, and the diffusion resistance inside the active material is more likely to be reduced. Furthermore, it is considered that the degree of bending is reduced by spheroidization, and the lithium ion conduction resistance in the layer constituting the positive electrode is reduced. As a result, the spherical positive electrode active material particles are more likely to have excellent rate characteristics compared to non-spherical positive electrode active material particles. Such spherical positive electrode active material particles can be manufactured by a new method by the present inventor. A manufacturing method for positive electrode active material particles will be described later.

[0023] 2. Positive electrode active material particles according to the second embodiment FIG. 3 shows an example of a cross-sectional structure of a positive electrode active material particle according to the second embodiment. As shown in FIG. 3, the positive electrode active material particle according to the second embodiment has a shell and a void in the cross-sectional structure. The shell has an O2 type structure. The shell contains at least one transition metal element selected from Mn, Ni, and Co, Li, and O as constituent elements. The surface of the shell is composed of a plurality of crystallites. The void exists along the inner wall of the shell.

[0024] 2.1 Shell As shown in Fig. 3, the positive electrode active material particle according to the second embodiment has a shell in its cross-sectional structure. The surface of the shell is composed of a plurality of crystallites. In the positive electrode active material particle according to the second embodiment, the shell may be composed of a plurality of crystallites connected along the periphery of the particle.

[0025] 2.1.1 Crystal structure of the shell The shell includes at least an O2 type structure (belonging to space group P63mc) as a crystal structure. In the positive electrode active material particle according to the second embodiment, the shell has an O2 type structure and may have a crystal structure other than the O2 type structure. Examples of the crystal structure other than the O2 type structure include a T♯2 type structure (belonging to space group Cmca) formed when Li is deintercalated from the O2 type structure and an O6 type structure (belonging to space group R-3m, with a c-axis length of 2.5 nm to 3.5 nm, typically 2.9 nm to 3.0 nm, different from the O3 type structure also belonging to space group R-3m). In the positive electrode active material particle according to the second embodiment, the shell may have an O2 type structure as a main phase, or may have a crystal structure other than the O2 type structure as a main phase. In the positive electrode active material particle according to the second embodiment, the shell may have a crystal structure as a main phase that changes depending on the charge / discharge state.

[0026] The surface of the shell is composed of multiple crystallites. The size of the crystallites constituting the shell may be large or small, but the smaller the crystallite size, the more grain boundaries there are on the surface, and the more likely the above-mentioned advantageous effects are to be exhibited. For example, if the diameter of the crystallites constituting the shell is less than 1 μm, higher performance is likely to be obtained. The "crystallite" and "diameter of the crystallite" can be determined by observing the surface of the shell with a scanning electron microscope (SEM). That is, when the surface of the shell of the positive electrode active material particle is observed and a closed region surrounded by grain boundaries is observed, the region is regarded as a "crystallite". The circle equivalent diameter of the crystallite is determined and this is regarded as the "diameter of the crystallite".

[0027] In the positive electrode active material particle according to the second embodiment, as in the first embodiment, the crystallites constituting the shell may have a first surface exposed on the particle surface, and the first surface may be planar. That is, the surface of the positive electrode active material particle according to the second embodiment may have a structure as shown in FIG. 1B, specifically, a structure in which a plurality of planes are connected. As described later, when producing the positive electrode active material particle, crystal growth is performed along the surface of the particle until one crystallite and another crystallite are connected to each other, so that a crystallite having a planar first surface is easily obtained.

[0028] When the surface of the shell is composed of a plurality of crystallites, a grain boundary is present on the surface of the shell. As described above, the grain boundary may be an inlet and an outlet of intercalation. That is, when the surface of the shell of the positive electrode active material particle is composed of a plurality of crystallites, the ion conductivity may be improved and the diffusion resistance may be reduced.

[0029] The shell has a plurality of crystallites, which may cause gaps at the grain boundaries. Therefore, the shell may have liquid permeability. This allows, for example, liquid to pass from the outside of the positive electrode active material particles to the inside through the shell, and the liquid can be filled into the voids inside the positive electrode active material particles. That is, the positive electrode active material particles having a shell can contact both the outer surface and the inner surface of the shell with the liquid, so that the contact area between the positive electrode active material particles and the liquid is easily increased. For example, the electrolyte spreads not only to the outer surface of the positive electrode active material particles but also to the inside, and the contact area between the particles and the electrolyte is easily increased.

[0030] 2.1.2 Chemical composition of the shell In the positive electrode active material particle according to the second embodiment, the shell contains, as constituent elements, at least one transition metal element selected from Mn, Ni, and Co, Li, and O. In particular, when the shell contains, as constituent elements, at least Li, Mn, at least one of Ni and Co, and O, the performance of the positive electrode active material particle according to the second embodiment is more likely to be improved when the shell contains, as constituent elements, at least Li, Mn, Ni, Co, and O. However, in the positive electrode active material particle according to the second embodiment, for example, Li may be released by charging, and the amount of Li present may become close to 0.

[0031] In the positive electrode active material particles according to the second embodiment, the shell is Li a Na b Mn x-p Ni y-q Co z-r M p+q+rIt may have a chemical composition represented by O2. Here, 0 < a ≤ 1.00, 0 ≤ b ≤ 0.20, x + y + z = 1, and 0 ≤ p + q + r ≤ 0.15. Also, M is at least one element selected from B, Mg, Al, K, Ca, Ti, V, Cr, Fe, Cu, Zn, Ga, Ge, Sr, Y, Zr, Nb, Mo, and W. When the shell of the positive electrode active material particles has such a chemical composition, the O2-type structure is more likely to be maintained.

[0032] In the above chemical composition, a may be greater than 0, 0.10 or more, 0.20 or more, 0.30 or more, 0.40 or more, 0.50 or more, or 0.60 or more, and may also be 1.00 or less, 0.90 or less, 0.80 or less, or 0.70 or less. In the above chemical composition, b may be 0 or more, 0.01 or more, 0.02 or more, or 0.03 or more, and may also be 0.20 or less, 0.15 or less, or 0.10 or less. In the above chemical composition, x may be 0 or more, 0.10 or more, 0.20 or more, 0.30 or more, 0.40 or more, or 0.50 or more, and may also be 1.00 or less, 0.90 or less, 0.80 or less, 0.70 or less, 0.60 or less, or 0.50 or less. In the above chemical composition, y may be 0 or more, 0.10 or more, or 0.20 or more, and may also be 1.00 or less, 0.90 or less, 0.80 or less, 0.70 or less, 0.60 or less, 0.50 or less, 0.40 or less, 0.30 or less, or 0.20 or less. In the above chemical composition, z may be 0 or more, 0.10 or more, 0.20 or more, or 0.30 or more, and may also be 1.00 or less, 0.90 or less, 0.80 or less, 0.70 or less, 0.60 or less, 0.50 or less, 0.40 or less, or 0.30 or less. Many of M do not contribute to charge and discharge. In this regard, when p + q + r is 0.15 or less, it is easy to ensure a high charge and discharge capacity. p + q + r may be 0.10 or less, or may be 0. The composition of O is approximately 2, but is not necessarily exactly 2.0 and is indeterminate.

[0033] 2.1.3 Shape of the shell The outer shape of the shell is not particularly limited. For example, as shown in FIG. 3, when the outer shape (outer peripheral shape) of the shell is spherical, the degree of curvature is reduced and the rate characteristics are likely to be improved as described in the first embodiment. The definition of "spherical" is as described above. The inner shape (inner peripheral shape) of the shell is also not particularly limited and may be a shape corresponding to the outer shape. However, the outer shape and the inner shape of the shell do not need to be parallel to each other. Both the outer shape and the inner shape of the shell may have irregularities. In addition, the shell may have voids or gaps. That is, the crystallites constituting the shell may have defects such as voids or gaps. Furthermore, the shell may have a thickness. The thickness of the shell may be, for example, 5% or more and less than 50% of the diameter (circle equivalent diameter) of the positive electrode active material particle, or 5% or more and 45% or less.

[0034] 2.1.4 Number of shells In the positive electrode active material particle according to the second embodiment, the number of shells may be one or more. As shown in FIG. 3, the positive electrode active material particle according to the second embodiment may have multiple shells, and in this case, a gap may exist between at least one shell and another shell. When the positive electrode active material particle has multiple shells, the outside and inside of each shell may come into contact with a liquid, so that the contact area between the positive electrode active material particle and the liquid is likely to be further increased. For example, when the electrolyte solution is spread inside the positive electrode active material particle, the contact area between the particle and the electrolyte solution is likely to be increased. Incidentally, "having multiple shells" means that another shell exists inside one shell. Here, the one shell and the other shell may be partially in contact with each other or may be partially bonded to each other. The bond between the one shell and the other shell may be physical or chemical.

[0035] 2.2 Voids As shown in FIG. 3, in the positive electrode active material particle according to the second embodiment, in the cross-sectional structure, voids exist along the inner wall of the shell. The voids may exist continuously around the entire circumference of the inner wall of the shell, or may exist continuously or intermittently along a part of the inner wall of the shell. For example, the voids may exist over 20% or more, 30% or more, 40% or more, or 50% or more of the entire inner circumference of the shell. The size of the voids is not particularly limited. As described above, the shell may have liquid permeability, so that the liquid that has permeated from the outside of the particle to the inside of the particle through the shell can be filled into the voids existing along the inner wall of the shell and come into contact with the inner wall of the shell. That is, when voids exist along the inner wall of the shell, the contact area between the particle and the liquid is more likely to increase than when there are no voids. For example, when the electrolyte solution is distributed inside the positive electrode active material particle, the contact area between the particle and the electrolyte solution is more likely to increase.

[0036] 2.3 Core-shell structure As shown in FIG. 3, the positive electrode active material particles according to the second embodiment can be said to have a core-shell structure. That is, the positive electrode active material particles according to the second embodiment can have a shell and a core disposed inside the shell. The "shell" is as described above. As shown in FIG. 3, voids can exist along the inner wall of the shell. On the other hand, the "core" can be entirely void, or a part of it can be void, or it can have a second shell, or it can be a solid part. When the core has a part other than the void, the crystal structure and chemical composition of the part other than the void can be substantially similar to the crystal structure and chemical composition of the shell.

[0037] 2.4 Particle size The size of the positive electrode active material particles according to the second embodiment is not particularly limited, but a smaller size is more advantageous. For example, the average particle diameter (D50) of the positive electrode active material particles according to the second embodiment may be 0.1 μm to 10 μm, 0.5 μm to 8.0 μm, or 1.0 μm to 6.0 μm. The average particle diameter (D50) of the positive electrode active material particles is the particle diameter (D50, median diameter) at an integrated value of 50% in the volume-based particle size distribution by a laser diffraction / scattering method.

[0038] 2.5 Effects (comparison with conventional O2-type positive electrode active material particles) As described above, conventionally, only plate-shaped particles with a large aspect ratio, in which the crystal growth direction is biased to a specific direction, could be produced as Na-containing transition metal oxide particles having a P2 type structure, and as a result, only plate-shaped particles could be produced for positive electrode active material particles having an O2 type structure. In addition, the plate-shaped growth of the P2 type structure was considered to be a fundamental principle and unavoidable. Therefore, for conventional O2 type positive electrode active material particles, the performance as an active material was improved by controlling the chemical composition and crystal structure on the premise that the particles were plate-shaped. In addition, a general method for increasing the reaction area (specific surface area) of particles is to make the particles finer or more porous, but for O2 type positive electrode active material particles, the particles are assumed to be plate-shaped as described above, and there has been no sufficient consideration given to making the particles finer or more porous.

[0039] In contrast, the positive electrode active material particles according to the second embodiment have a shell and voids, the shell has an O2 type structure, the shell contains at least one transition metal element selected from Mn, Ni, and Co, the surface of the shell is composed of a plurality of crystallites, and the voids are present along the inner wall of the shell. When the positive electrode of a lithium ion secondary battery contains positive electrode active material particles having such a shell, the electrolyte spreads to the inside of the shell, and the contact area between the positive electrode active material particles and the electrolyte is likely to increase. That is, the positive electrode active material particles having a shell and voids tend to have a larger reaction area and a smaller charge transfer resistance than positive electrode active material particles not having a shell and voids (for example, the above-mentioned plate-like particles). Such positive electrode active material particles having a shell and voids can be manufactured by a new method by the present inventor. A manufacturing method of the positive electrode active material particles will be described later.

[0040] 3. Positive electrode The technology of the present disclosure also has an aspect of a positive electrode containing the above-mentioned positive electrode active material. That is, the positive electrode of the present disclosure has at least one of the positive electrode active material particles according to the first embodiment and the positive electrode active material particles according to the second embodiment as the positive electrode active material particles. As shown in FIG. 4, a positive electrode 10 according to one embodiment may include a positive electrode active material layer 11 and a positive electrode current collector 12. In this case, the positive electrode active material layer 11 may contain the above-mentioned positive electrode active material particles.

[0041] 3.1 Cathode active material layer The positive electrode active material layer 11 contains at least the positive electrode active material particles as the positive electrode active material, and may further contain an electrolyte, a conductive assistant, a binder, and the like. Furthermore, the positive electrode active material layer 11 may contain various other additives. The content of each of the positive electrode active material particles, the electrolyte, the conductive assistant, the binder, and the like in the positive electrode active material layer 11 may be appropriately determined according to the intended battery performance. For example, the content of the positive electrode active material particles may be 40 mass% or more, 50 mass% or more, or 60 mass% or more, and may be 100 mass% or less, or 90 mass% or less, assuming that the entire positive electrode active material layer 11 (total solid content) is 100 mass%. The shape of the positive electrode active material layer 11 is not particularly limited, and may be, for example, a sheet-like positive electrode active material layer 11 having a substantially flat surface. The thickness of the positive electrode active material layer 11 is not particularly limited, and may be, for example, 0.1 μm or more or 1 μm or more, and may be 2 mm or less or 1 mm or less.

[0042] 3.1.1 Cathode active material The positive electrode active material layer 11 may contain only the positive electrode active material particles of the present disclosure as the positive electrode active material particles. Alternatively, the positive electrode active material layer 11 may contain, in addition to the positive electrode active material particles of the present disclosure, a different type of positive electrode active material (another positive electrode active material). From the viewpoint of further enhancing the effect of the technology of the present disclosure, the content of the other positive electrode active material in the positive electrode active material layer 11 may be small. For example, the content of the positive electrode active material particles of the present disclosure may be 50% by mass or more, 60% by mass or more, 70% by mass or more, 80% by mass or more, 90% by mass or more, 95% by mass or more, or 99% by mass or more, where the total positive electrode active material contained in the positive electrode active material layer 11 is 100% by mass.

[0043] The surface of the positive electrode active material may be covered with a protective layer containing a lithium ion conductive oxide. That is, the positive electrode active material layer 11 may include a composite having the above-mentioned positive electrode active material and a protective layer provided on the surface thereof. This makes it easier to suppress the reaction between the positive electrode active material and a sulfide (for example, a sulfide solid electrolyte described later). Examples of lithium ion conductive oxides include Li3BO3, LiBO2, Li2CO3, LiAlO2, Li4SiO4, Li2SiO3, Li3PO4, Li2SO4, Li2TiO3, Li4Ti5O 12 , Li2Ti2O5, Li2ZrO3, LiNbO3, Li2MoO4, and Li2WO4. The coverage (area ratio) of the protective layer may be, for example, 70% or more, 80% or more, or 90% or more. The thickness of the protective layer may be, for example, 0.1 nm or more or 1 nm or more, and may be 100 nm or less, or 20 nm or less.

[0044] 3.1.2 Electrolytes The electrolyte that can be contained in the positive electrode active material layer 11 may be a solid electrolyte, a liquid electrolyte (electrolytic solution), or a combination thereof. In particular, when the positive electrode 10 contains a liquid electrolyte (electrolytic solution), the contact area between the electrolytic solution and the positive electrode active material particles of the present disclosure is large, and high performance is likely to be obtained.

[0045] The solid electrolyte may be any known solid electrolyte for lithium ion secondary batteries. The solid electrolyte may be an inorganic solid electrolyte or an organic polymer electrolyte. In particular, inorganic solid electrolytes are excellent in ion conductivity and heat resistance. Examples of inorganic solid electrolytes include lithium lanthanum zirconate, LiPON, Li 1+X Al X Ge 2-X Examples of the oxide solid electrolyte include (PO4)3, Li-SiO-based glass, and Li-Al-SO-based glass; and sulfide solid electrolytes such as Li2S-P2S5, Li2S-SiS2, LiI-Li2S-SiS2, LiI-Si2S-P2S5, Li2S-P2S5-LiI-LiBr, LiI-Li2S-P2S5, LiI-Li2S-P2O5, LiI-Li3PO4-P2S5, and Li2S-P2S5-GeS2. In particular, sulfide solid electrolytes, particularly sulfide solid electrolytes containing at least Li, S, and P as constituent elements, have high performance. The solid electrolyte may be amorphous or crystalline. The solid electrolyte may be, for example, particulate. Only one type of solid electrolyte may be used alone, or two or more types may be used in combination.

[0046] The electrolyte may contain, for example, lithium ions as carrier ions. The electrolyte may be an aqueous electrolyte or a non-aqueous electrolyte. The composition of the electrolyte may be the same as that of the electrolyte of a lithium ion secondary battery. For example, the electrolyte may be a carbonate-based solvent in which a lithium salt is dissolved at a predetermined concentration. Examples of the carbonate-based solvent include fluoroethylene carbonate (FEC), ethylene carbonate (EC), and dimethyl carbonate (DMC). Examples of the lithium salt include LiPF6.

[0047] 3.1.3 Conductive additives Examples of the conductive assistant that may be included in the positive electrode active material layer 11 include carbon materials such as vapor grown carbon fiber (VGCF), acetylene black (AB), ketjen black (KB), carbon nanotubes (CNT), and carbon nanofibers (CNF); and metal materials such as nickel, aluminum, and stainless steel. The conductive assistant may be, for example, particulate or fibrous, and the size is not particularly limited. Only one type of conductive assistant may be used alone, or two or more types may be used in combination.

[0048] 3.1.4 Binders Examples of binders that can be included in the positive electrode active material layer 11 include butadiene rubber (BR)-based binders, butylene rubber (IIR)-based binders, acrylate butadiene rubber (ABR)-based binders, styrene butadiene rubber (SBR)-based binders, polyvinylidene fluoride (PVdF)-based binders, polytetrafluoroethylene (PTFE)-based binders, polyimide (PI)-based binders, etc. Only one type of binder may be used alone, or two or more types may be used in combination.

[0049] 3.2 Positive electrode current collector As shown in FIG. 4, the positive electrode 10 may include a positive electrode collector 12 in contact with the positive electrode active material layer 11. The positive electrode collector 12 may be any of those commonly used as a positive electrode collector for a battery. The positive electrode collector 12 may be in the form of a foil, a plate, a mesh, a punched metal, a foam, or the like. The positive electrode collector 12 may be made of a metal foil or a metal mesh. In particular, a metal foil is excellent in terms of ease of handling. The positive electrode collector 12 may be made of a plurality of foils. Examples of metals constituting the positive electrode collector 12 include Cu, Ni, Cr, Au, Pt, Ag, Al, Fe, Ti, Zn, Co, stainless steel, and the like. In particular, from the viewpoint of ensuring oxidation resistance, the positive electrode collector 12 may contain Al. The positive electrode collector 12 may have some kind of coating layer on its surface for the purpose of adjusting resistance, or the like. The positive electrode current collector 12 may be a metal foil or a substrate plated or vapor-deposited with the above metal. When the positive electrode current collector 12 is made of a plurality of metal foils, some layer may be present between the plurality of metal foils. The thickness of the positive electrode current collector 12 is not particularly limited. For example, it may be 0.1 μm or more or 1 μm or more, and may be 1 mm or less or 100 μm or less.

[0050] 3.3 Other In addition to the above configuration, the positive electrode 10 may have a general configuration as a positive electrode of a secondary battery. For example, a tab, a terminal, etc. The positive electrode 10 can be manufactured by a known method except that the positive electrode active material particles having the above-mentioned O2 type structure are used. For example, the positive electrode active material layer 11 can be easily formed by forming a positive electrode mixture containing the above-mentioned various components in a dry or wet manner. The positive electrode active material layer 11 may be formed together with the positive electrode current collector 12 or may be formed separately from the positive electrode current collector 12.

[0051] 4. Lithium-ion secondary battery As shown in FIG. 4, a lithium ion secondary battery 100 according to an embodiment has a positive electrode 10, an electrolyte layer 20, and a negative electrode 30. Here, the positive electrode 10 contains the positive electrode active material particles of the present disclosure. As described above, the positive electrode active material particles of the present disclosure have excellent rate characteristics. In this regard, when the positive electrode of the lithium ion secondary battery 100 contains the positive electrode active material particles of the present disclosure, the performance of the secondary battery 100 is likely to be improved. The configuration of the positive electrode 10 of the lithium ion secondary battery 100 is as described above.

[0052] 4.1 Electrolyte layer The electrolyte layer 20 contains at least an electrolyte. When the lithium ion secondary battery 100 is a solid-state battery (a battery containing a solid electrolyte, which may be a battery partially using a liquid electrolyte in combination, or an all-solid-state battery not containing a liquid electrolyte), the electrolyte layer 20 contains a solid electrolyte and may further contain a binder or the like. In this case, the content of the solid electrolyte and the binder or the like in the electrolyte layer 20 is not particularly limited. On the other hand, when the lithium ion secondary battery 100 is an electrolyte battery, the electrolyte layer 20 contains an electrolyte solution and may further have a separator or the like for holding the electrolyte solution and preventing contact between the positive electrode active material layer 11 and the negative electrode active material layer 31. The thickness of the electrolyte layer 20 is not particularly limited, and may be, for example, 0.1 μm or more or 1 μm or more, and may be 2 mm or less or 1 mm or less.

[0053] The electrolyte contained in the electrolyte layer 20 may be appropriately selected from those exemplified as electrolytes that may be contained in the positive electrode active material layer described above. The binder that may be contained in the electrolyte layer 20 may also be appropriately selected from those exemplified as binders that may be contained in the positive electrode active material layer described above. The electrolyte and the binder may each be used alone or in combination of two or more. The separator may be any separator that is normally used in lithium ion secondary batteries, and examples of the separator include those made of resins such as polyethylene (PE), polypropylene (PP), polyester, and polyamide. The separator may have a single layer structure or a multi-layer structure. Examples of the multi-layer separator include a separator with a two-layer structure of PE / PP, or a separator with a three-layer structure of PP / PE / PP or PE / PP / PE. The separator may be made of a nonwoven fabric such as a cellulose nonwoven fabric, a resin nonwoven fabric, or a glass fiber nonwoven fabric.

[0054] 4.2 Negative electrode As shown in FIG. 4, the negative electrode 30 may include a negative electrode active material layer 31 and a negative electrode current collector 32.

[0055] 4.2.1 Negative electrode active material layer The negative electrode active material layer 31 includes at least a negative electrode active material, and may further include an electrolyte, a conductive assistant, a binder, and the like. Furthermore, the negative electrode active material layer 31 may further include various additives. The contents of the negative electrode active material, electrolyte, conductive assistant, binder, and the like in the negative electrode active material layer 31 may be appropriately determined according to the intended battery performance. For example, the content of the negative electrode active material may be 40 mass% or more, 50 mass% or more, or 60 mass% or more, and may be 100 mass% or less, or 90 mass% or less, with the entire negative electrode active material layer 31 (total solid content) being 100 mass%. The shape of the negative electrode active material layer 31 is not particularly limited, and may be, for example, a sheet-like negative electrode active material layer having a substantially flat surface. The thickness of the negative electrode active material layer 31 is not particularly limited, and may be, for example, 0.1 μm or more or 1 μm or more, and may be 2 mm or less or 1 mm or less.

[0056] As the negative electrode active material, various materials having a potential (charge / discharge potential) for absorbing and releasing lithium ions that is lower than that of the positive electrode active material of the present disclosure can be used. For example, silicon-based active materials such as Si, Si alloys, and silicon oxide; carbon-based active materials such as graphite and hard carbon; various oxide-based active materials such as lithium titanate; metallic lithium, lithium alloys, and the like can be used. Only one type of negative electrode active material may be used alone, or two or more types may be used in combination.

[0057] The shape of the negative electrode active material may be any shape that is common for a negative electrode active material of a battery. For example, the negative electrode active material may be in a particulate form. The negative electrode active material particles may be primary particles or secondary particles formed by agglomeration of a plurality of primary particles. The average particle diameter (D50) of the negative electrode active material particles may be, for example, 1 nm or more, 5 nm or more, or 10 nm or more, and may be 500 μm or less, 100 μm or less, 50 μm or less, or 30 μm or less. Alternatively, the negative electrode active material may be in a sheet form (foil form, film form) such as lithium foil. That is, the negative electrode active material layer 31 may be made of a sheet of the negative electrode active material.

[0058] Examples of the electrolyte that can be contained in the negative electrode active material layer 31 include the above-mentioned solid electrolyte, electrolytic solution, or a combination thereof. Examples of the conductive assistant that can be contained in the negative electrode active material layer 31 include the above-mentioned carbon material and metal material. The binder that can be contained in the negative electrode active material layer 31 may be appropriately selected from, for example, those exemplified as the binder that can be contained in the above-mentioned positive electrode active material layer 11. Only one type of electrolyte or binder may be used alone, or two or more types may be used in combination.

[0059] 4.2.2 Negative electrode current collector As shown in FIG. 4, the negative electrode 30 may include a negative electrode current collector 32 in contact with the negative electrode active material layer 31. The negative electrode current collector 32 may be any of those commonly used as a negative electrode current collector for a battery. The negative electrode current collector 32 may be in the form of a foil, a plate, a mesh, a punched metal, a foam, or the like. The negative electrode current collector 32 may be a metal foil or a metal mesh, or may be a carbon sheet. In particular, a metal foil is excellent in terms of ease of handling. The negative electrode current collector 32 may be made of a plurality of foils or sheets. Examples of metals constituting the negative electrode current collector 32 include Cu, Ni, Cr, Au, Pt, Ag, Al, Fe, Ti, Zn, Co, stainless steel, and the like. In particular, from the viewpoint of ensuring reduction resistance and being difficult to alloy with lithium, the negative electrode current collector 32 may contain at least one metal selected from Cu, Ni, and stainless steel. The negative electrode current collector 32 may have some kind of coating layer on its surface for the purpose of adjusting the resistance or the like. The negative electrode current collector 32 may be a metal foil or a base material on which the above metal is plated or vapor-deposited. When the negative electrode current collector 32 is made of a plurality of metal foils, some kind of layer may be present between the plurality of metal foils. The thickness of the negative electrode current collector 32 is not particularly limited. For example, it may be 0.1 μm or more or 1 μm or more, and may be 1 mm or less or 100 μm or less.

[0060] 4.3 Other matters The lithium ion secondary battery 100 may have the above-mentioned components housed inside an exterior body. Any known exterior body for a battery can be used as the exterior body. A plurality of batteries 100 may be electrically connected and stacked in any manner to form an assembled battery. In this case, the assembled battery may be housed inside a known battery case. The lithium ion secondary battery 100 may also have other obvious components such as necessary terminals. The shape of the lithium ion secondary battery 100 may be, for example, a coin type, a laminate type, a cylindrical type, a square type, or the like.

[0061] The lithium ion secondary battery 100 can be manufactured by applying a known method. For example, it can be manufactured as follows. However, the manufacturing method of the lithium ion secondary battery 100 is not limited to the following method, and each layer may be formed by, for example, dry molding or the like. (1) The positive electrode active material constituting the positive electrode active material layer is dispersed in a solvent to obtain a positive electrode layer slurry. The solvent used in this case is not particularly limited, and water or various organic solvents can be used. The positive electrode layer slurry is applied to the surface of a positive electrode current collector using a doctor blade or the like, and then dried to form a positive electrode active material layer on the surface of the positive electrode current collector, thereby forming a positive electrode. (2) The negative electrode active material constituting the negative electrode active material layer is dispersed in a solvent to obtain a negative electrode layer slurry. The solvent used in this case is not particularly limited, and water or various organic solvents can be used. The negative electrode layer slurry is applied to the surface of the negative electrode current collector using a doctor blade or the like, and then dried to form a negative electrode active material layer on the surface of the negative electrode current collector, thereby forming a negative electrode. (3) The layers are laminated so that the electrolyte layer (solid electrolyte layer or separator) is sandwiched between the negative electrode and the positive electrode to obtain a laminate having the negative electrode current collector, the negative electrode active material layer, the electrolyte layer, the positive electrode active material layer, and the positive electrode current collector in this order. Other members such as terminals are attached to the laminate as necessary. (4) The laminate is housed in a battery case, and in the case of an electrolyte battery, the battery case is filled with electrolyte, and the laminate is immersed in the electrolyte and sealed in the battery case to form a secondary battery. In the case of an electrolyte battery, the electrolyte may be impregnated in the negative electrode active material layer, the separator, and the positive electrode active material layer at the above step (3).

[0062] 5. Method for producing positive electrode active material particles The technology of the present disclosure also has an aspect of a method for producing positive electrode active material particles. As shown in FIG. 5, the method for producing positive electrode active material particles according to one embodiment includes the steps of: Obtaining precursor particles (step S1), Coating the surface of the precursor particles with a Na salt to obtain coated particles (step S2); The coated particles are calcined to obtain Na-containing transition metal oxide particles having a P2 type structure (step S3); and At least a portion of the Na in the Na-containing transition metal oxide particles is replaced with Li by ion exchange to obtain positive electrode active material particles having an O2 type structure (step S4); where: the precursor particles are a salt containing at least one transition metal element selected from the group consisting of Mn, Ni, and Co; The precursor particles are spherical; The coated particles are obtained by coating 70% or more by area of ​​the surface of the precursor particles with the Na salt, The Na-containing transition metal oxide particles are spherical.

[0063] 5.1 Process S1 In step S1, precursor particles are obtained. Here, the precursor particles are salts containing at least one transition metal element selected from Mn, Ni, and Co. The precursor particles may be, for example, at least one of carbonates, sulfates, nitrates, acetates, and hydroxides. Specifically, the precursor particles may be a salt represented by MeCO3 (Me is at least one transition metal element selected from Mn, Ni, and Co), a salt represented by MeSO4, a salt represented by Me(NO3)2, a salt represented by Me(CH3COO)2, or a compound represented by Me(OH)2. In addition, the precursor particles may contain at least one element M selected from B, Mg, Al, K, Ca, Ti, V, Cr, Fe, Cu, Zn, Ga, Ge, Sr, Y, Zr, Nb, Mo, and W in addition to the transition metal element Me.

[0064] Moreover, the precursor particles are spherical. The definition of "spherical" is as described above. When the precursor particles are spherical, the shape of the finally obtained positive electrode active material particles is also likely to be spherical. The size of the spherical precursor particles is not particularly limited. The spherical precursor particles can be obtained by a solution method such as a coprecipitation method or a sol-gel method. Specifically, in the case of the coprecipitation method, an aqueous solution of MeSO4 and an aqueous solution of Na2CO3 are prepared, and each aqueous solution is dropped and mixed to obtain a precipitate. The precipitate is a spherical precursor particle represented by MeCO3. A carbonate containing Me and M may be obtained as the precursor particle by dissolving a sulfate of M in the aqueous solution of MeSO4.

[0065] 5.2 Process S2 In step S2, the surface of the precursor particle is coated with a Na salt to obtain a coated particle. Here, the coated particle is obtained by coating 40% or more of the surface of the precursor particle with a Na salt. The coated particle may be obtained by coating 50% or more, 60% or more, or 70% or more of the surface of the precursor particle with a Na salt. Examples of the Na salt include carbonates and nitrates.

[0066] There are various methods for coating 40% or more of the surface of the precursor particles with Na salt. For example, there are rolling fluidized coating method and spray drying method. That is, a coating solution in which Na salt is dissolved is prepared, and the entire surface of the precursor particles is contacted with the coating solution, or the coating solution is dried after contact. By adjusting the coating conditions (temperature, time, number of times, etc.), 40% or more of the surface of the precursor particles can be coated with Na salt. According to the findings of the present inventor, if the coverage rate of Na salt is small, when the coated particles are fired, P2 type crystals tend to grow abnormally on the surface of the coated particles, and spherical Na-containing transition metal oxide particles cannot be obtained. If the coverage rate of Na salt is large, when the coated particles are fired, the crystallites of P2 type crystals can be made small, and the shape of the coated particles tends to be "spherical" corresponding to the shape of the precursor particles. The amount of Na salt coated on the coated particles may be sufficient to obtain a P2 type structure (such that a sufficient amount of Na is doped).

[0067] 5.3 Process S3 In step S3, the coated particles are fired to obtain Na-containing transition metal oxide particles having a P2 structure. Here, the Na-containing transition metal oxide particles are spherical. If the Na-containing transition metal oxide particles are not spherical, the positive electrode active material particles obtained thereafter will also not be spherical.

[0068] The Na-containing transition metal oxide particles contain, as constituent elements, at least one transition metal element selected from Mn, Ni, and Co, Na, and O. In particular, when the constituent elements contain at least Na, Mn, at least one of Ni and Co, and O, and especially when the constituent elements contain at least Na, Mn, Ni, Co, and O, the performance of the positive electrode active material particles is likely to be further improved. The Na-containing transition metal oxide particles contain Na c Mn x-p Ni y-q Co z-r M p+q+rIt may have a chemical composition represented by O2. Here, 0 < c ≤ 1.00, x + y + z = 1, and 0 ≤ p + q + r ≤ 0.15. Also, M is at least one element selected from B, Mg, Al, K, Ca, Ti, V, Cr, Fe, Cu, Zn, Ga, Ge, Sr, Y, Zr, Nb, Mo, and W. When the Na-containing transition metal oxide particles have such a chemical composition, the P2-type structure is more likely to be maintained. In the above chemical composition, c may be greater than 0, 0.10 or more, 0.20 or more, 0.30 or more, 0.40 or more, 0.50 or more, or 0.60 or more, and may be 1.00 or less, 0.90 or less, 0.80 or less, or 0.70 or less. In the above chemical composition, x may be 0 or more, 0.10 or more, 0.20 or more, 0.30 or more, 0.40 or more, or 0.50 or more, and may be 1.00 or less, 0.90 or less, 0.80 or less, 0.70 or less, 0.60 or less, or 0.50 or less. In the above chemical composition, y may be 0 or more, 0.10 or more, or 0.20 or more, and may be 1.00 or less, 0.90 or less, 0.80 or less, 0.70 or less, 0.60 or less, 0.50 or less, 0.40 or less, 0.30 or less, or 0.20 or less. In the above chemical composition, z may be 0 or more, 0.10 or more, 0.20 or more, or 0.30 or more, and may be 1.00 or less, 0.90 or less, 0.80 or less, 0.70 or less, 0.60 or less, 0.50 or less, 0.40 or less, or 0.30 or less. Many of M do not contribute to charge and discharge. In this regard, when p + q + r is 0.15 or less, it is easy to ensure a high charge and discharge capacity. p + q + r may be 0.10 or less, or may be 0. The composition of O is approximately 2, but is not necessarily exactly 2.0 and is indefinite.

[0069] The firing temperature may be a temperature at which the P2-type structure is formed and the Na-containing transition metal oxide particles become spherical. If the firing temperature is too low, Na doping is not performed and it is difficult to obtain the P2-type structure. On the other hand, if the firing temperature is too high, an O3-type structure is likely to be formed instead of the P2-type structure. The firing temperature may be, for example, 700 °C or higher and 1100 °C or lower, or may be 800 °C or higher and 1000 °C or lower.

[0070] The calcination time may be a time that allows the Na-containing transition metal oxide particles to become spherical. As described above, in the method of the present disclosure, since the coverage rate of the Na salt in the coated particles is large, when the coated particles are calcined, small P2-type crystals are easily formed on the surface of the particles. In the method of the present disclosure, one P2-type crystallite and another P2-type crystallite are connected to each other, and the P2-type crystals are grown along the surface of the particles, thereby obtaining spherical Na-containing transition metal oxide particles. If the calcination time is too short, Na doping is not performed, and the desired P2-type structure is not obtained. On the other hand, if the calcination time is too long, the P2-type structure grows excessively, resulting in plate-like particles rather than spherical ones. As far as the present inventors have confirmed, spherical Na-containing transition metal oxide particles are easily obtained when the calcination time is 30 minutes or more and 3 hours or less. In general, when synthesizing a positive electrode active material by calcination, the calcination time is often long (for example, 5 hours or more) in order to obtain the desired crystal phase. In contrast, in the method of the present disclosure, the calcination time is set to 3 hours or less, thereby suppressing excessive growth of the P2 type crystals and obtaining spherical Na-containing transition metal oxide particles. The Na-containing transition metal oxide particles obtained after calcination may have a structure in which a plurality of crystallites are present on the surface and the crystallites are connected to each other.

[0071] The firing atmosphere is not particularly limited, and may be, for example, an oxygen-containing atmosphere such as air atmosphere, or an inert gas atmosphere.

[0072] 5.4 Process S4 In step S4, at least a part of Na in the Na-containing transition metal oxide particles is replaced with Li by ion exchange to obtain positive electrode active material particles having an O2 type structure. For example, there are a method of using an aqueous solution containing lithium halide and a method of using a mixture of lithium halide and other lithium salts (for example, molten salt) for ion exchange. From the viewpoint that the P2 type structure is easily broken by the intrusion of water and from the viewpoint of crystallinity, the method of using molten salt is preferable among the above two methods. That is, by mixing the Na-containing transition metal oxide particles having the above P2 type structure with the molten salt and heating to a temperature equal to or higher than the melting point of the molten salt, at least a part of Na in the Na-containing transition metal oxide particles can be replaced with Li by ion exchange.

[0073] The lithium halide constituting the molten salt is preferably at least one of lithium chloride, lithium bromide, and lithium iodide. The other lithium salt constituting the molten salt is preferably lithium nitrate. By using the molten salt, the melting point becomes lower than when the lithium halide or other lithium salt is used alone, and ion exchange can be performed at a lower temperature.

[0074] The temperature in the ion exchange may be, for example, above the melting point of the molten salt and below 600°C, below 500°C, below 400°C, or below 300°C. If the temperature in the ion exchange is too high, the stable O3 structure is likely to be formed instead of the O2 structure. On the other hand, from the viewpoint of shortening the time required for the ion exchange, it is preferable that the temperature in the ion exchange is as high as possible.

[0075] 5.5 Supplementary Information As described above, according to the manufacturing method of the present disclosure, a part of Na in the spherical P2 type particles is ion-exchanged with Li to obtain spherical O2 type particles. That is, the manufacturing method of the present disclosure has an aspect as a method for manufacturing spherical positive electrode active material particles according to the first embodiment. In addition, according to the manufacturing method of the present disclosure, by ion-exchanging a part of Na in the spherical P2 type particles with Li, contraction during ion exchange (substituting Na with a large ionic radius with Li with a small ionic radius shortens the interlayer distance in the crystal structure and causes contraction) tends to occur uniformly inside the particles. This is thought to cause cracks in the circumferential direction inside the particles, resulting in the formation of a "shell". When the P2 type particles have a shape other than spherical, it is thought that uniform contraction does not occur inside the particles and a shell is not easily formed. In this respect, the manufacturing method of the present disclosure has an aspect as a method for manufacturing positive electrode active material particles having a shell according to the second embodiment.

[0076] 6. Method for charging and discharging a lithium-ion secondary battery, and method for improving the rate characteristics of a lithium-ion secondary battery The technology of the present disclosure also has an aspect of a method for charging and discharging a lithium ion secondary battery, and a method for improving the rate characteristics of a lithium ion secondary battery. That is, the method for charging and discharging a lithium ion secondary battery of the present disclosure includes charging or discharging the lithium ion secondary battery while using the positive electrode active material particles of the present disclosure in the positive electrode of the lithium ion secondary battery, and is characterized in that low-rate charging and discharging in which the charging or discharging rate is relatively low and high-rate charging and discharging in which the charging or discharging rate is relatively high are switchable. In addition, the method for improving the rate characteristics of a lithium ion secondary battery of the present disclosure is characterized in that the positive electrode active material particles of the present disclosure are used in the positive electrode of the lithium ion secondary battery.

[0077] 7. Vehicles equipped with lithium-ion secondary batteries As described above, when the positive electrode active material particles of the present disclosure are contained in the positive electrode of a lithium ion secondary battery, the rate characteristics of the lithium ion secondary battery can be expected to be improved. A lithium ion secondary battery having such excellent rate characteristics can be suitably used in at least one vehicle selected from, for example, a hybrid vehicle (HEV), a plug-in hybrid vehicle (PHEV), and an electric vehicle (BEV). That is, the technology of the present disclosure also has an aspect of a vehicle having a lithium ion secondary battery, the lithium ion secondary battery having a positive electrode, an electrolyte layer, and a negative electrode, and the positive electrode containing the positive electrode active material particles of the present disclosure. EXAMPLES

[0078] As described above, one embodiment of the positive electrode active material particle, the lithium ion secondary battery, and the method for producing the positive electrode active material particle of the present disclosure has been described, but the positive electrode active material particle, the lithium ion secondary battery, and the method for producing the positive electrode active material particle of the present disclosure can be modified in various ways other than the above embodiment without departing from the gist of the present disclosure. Below, the technology of the present disclosure will be described in more detail while showing examples, but the technology of the present disclosure is not limited to the following examples.

[0079] 1. Example 1.1 Preparation of precursor particles (1) MnSO4·5H2O, NiSO4·6H2O, and CoSO4·7H2O were weighed out to obtain the desired composition ratio, and dissolved in distilled water to obtain a concentration of 1.2 mol / L to obtain a first solution. In a separate container, Na2CO3 was dissolved in distilled water to obtain a concentration of 1.2 mol / L to obtain a second solution. (2) Into a reaction vessel (with a baffle) containing 1000 mL of pure water in advance, 500 mL of the first solution and 500 mL of the second solution were each dropped at a rate of about 4 mL / min. (3) After the dropwise addition was completed, the mixture was stirred at room temperature at a stirring speed of 150 rpm for 1 hour to obtain a product. (4) The product was washed with pure water and subjected to solid-liquid separation using a centrifuge to obtain a first precipitate. (5) The first precipitate was dried overnight at 120°C, crushed in a mortar, and then fine particles were removed by air classification to obtain precursor particles. The precursor particles were carbonates of transition metals (Mn, Ni, and Co), and were spherical particles with a circularity of 0.98.

[0080] 1.2 Preparation of coated particles (1) The sodium salt Na2CO3 and the above-mentioned precursor particles are mixed with Na 0.7 Mn 0.5 Ni 0.2 Co 0.3 It was weighed out so that the composition was O2. (2) The weighed Na salt and precursor were mixed by spray drying. Specifically, the weighed Na salt and precursor were added to a solvent (water), and the dispersion solution in which the Na salt was dissolved and the precursor was dispersed was spray dried. The spray drying temperature was 200°C, and the spray pressure was 0.3 MPa. By spray drying, coated particles in which 77 area % of the surface of the precursor particles was coated with the Na salt were obtained.

[0081] 1.3 Preparation of Na-containing transition metal oxide particles with P2-type structure (1) The coated particles were sintered in an alumina crucible under air atmosphere to obtain a first sintered product. The sintering temperature was 900° C. and the sintering time was 1 hour. (2) In a dry atmosphere, the first fired product is crushed using a mortar, and Na 0.7 Mn 0.5 Ni 0.2 Co 0.3 Na-containing transition metal oxide particles (P2 type particles) having a P2 type structure represented by O2 were obtained. An SEM image of the P2 type particles is shown in Figure 6. The P2 type particles according to the example were spherical particles having a circularity of 0.91.

[0082] 1.4 Preparation of positive electrode active material particles with O2-type structure (1) LiNO3 and LiCl were weighed out to have a molar ratio of 50:50, and mixed with P2 type particles in a molar ratio that was 10 times the minimum Li amount required for ion exchange to obtain a mixture. (2) Using an alumina crucible, the mixture was fired at 280°C for 1 hour in an air atmosphere to obtain a second fired product. (3) The salt remaining in the second fired product was washed with pure water, and solid-liquid separation was performed by vacuum filtration to obtain a second precipitate. (4) The second precipitate was dried overnight at 120° C. to obtain positive electrode active material particles according to the example.

[0083] 1.5 Evaluation and observation of the physical properties of positive electrode active material particles FIG. 7 shows the X-ray diffraction pattern of the positive electrode active material particles according to the example. As shown in FIG. 7, the positive electrode active material particles have an O2 type structure belonging to the space group P63mc. In addition, elemental analysis revealed that the positive electrode active material particles contain Li 0.63 Mn 0.5 Ni 0.2 Co 0.3 It was confirmed to have a chemical composition indicated by O2.

[0084] 1A and 1B show SEM photographs of the appearance of the positive electrode active material particles according to the embodiment. The positive electrode active material particles were spherical particles having a circularity of 0.85. As shown in FIG. 1B, the surface of the positive electrode active material particles was composed of a plurality of crystallites, and the diameter of the crystallites was less than 1 μm. As shown in FIG. 1B, the crystallites had a first surface exposed on the particle surface, and the first surface was planar. Furthermore, the average particle diameter (D50) of the positive electrode active material particles according to the embodiment was 2.6 μm.

[0085] FIG. 2 shows an SEM photograph of the cross-sectional structure of the positive electrode active material particle according to the embodiment. As shown in FIG. 2, the positive electrode active material particle had a shell and voids in the cross-sectional structure. From the results of the X-ray diffraction pattern and elemental analysis described above, the shell had an O2 type structure and Li 0.63 Mn 0.5 Ni 0.2 Co 0.3 The shell has a chemical composition represented by O2. As shown in Figure 1B, the shell surface is composed of multiple crystallites. As shown in Figure 2, voids exist along the inner wall of the shell.

[0086] 2. Comparative Example 2.1 Preparation of precursor particles Spherical precursor particles were prepared in the same manner as in the example.

[0087] 2.2 Preparation of coated particles (1) Na2CO3 as a Na salt and the above-mentioned precursor particles are mixed with Na 0.7 Mn 0.5 Ni 0.2 Co 0.3 It was weighed out so that the composition was O2. (2) The weighed Na salt and the precursor were mixed in a mortar to obtain coated particles in which 28% by area of ​​the surface of the precursor particles was coated with the Na salt.

[0088] 2.3 Preparation of Na-containing transition metal oxide particles with P2-type structure Except for using the coated particles with a coverage of 28% by area, the same procedure as in Example was used to obtain Na-containing transition metal oxide particles having a P2 type structure (P2 type particles). The P2 type particles according to the comparative example were plate-like particles with a circularity of 0.63.

[0089] 2.4 Preparation of positive electrode active material particles with O2-type structure Positive electrode active material particles having an O2 type structure were obtained in the same manner as in the Example, except that the plate-like P2 type particles were used.

[0090] 2.5 Evaluation and observation of the physical properties of positive electrode active material particles When the X-ray diffraction pattern of the positive electrode active material particles according to the comparative example was confirmed, it was found that the positive electrode active material particles according to the example had an O2 type structure belonging to the space group P63mc, similar to the positive electrode active material particles according to the example. In addition, when elemental analysis was performed, it was found that the positive electrode active material particles according to the comparative example contained Li 0.63 Mn 0.5 Ni 0.2 Co 0.3 It was confirmed to have a chemical composition indicated by O2.

[0091] Fig. 2 shows an SEM photograph of the appearance of the positive electrode active material particles according to the comparative example. The positive electrode active material particles according to the comparative example were plate-like particles having an aspect ratio of 2 or more, and the circularity was 0.64. As shown in Fig. 2, the positive electrode active material particles according to the comparative example were formed by growing one crystallite coarsely into a plate-like shape, and the diameter of one crystallite was several µm (more than 1 µm).

[0092] 3. Preparation of the cell for evaluation A coin cell was produced using each of the positive electrode active material particles of the examples and the comparative examples. The coin cell was produced as follows. (1) Positive electrode active material particles, acetylene black (AB) as a conductive additive, and polyvinylidene fluoride (PVdF) as a binder were weighed out so that the mass ratio of positive electrode active material particles:AB:PVdF=85:10:5, and dispersed and mixed in N-methyl-2-pyrrolidone to obtain a positive electrode mixture slurry. The positive electrode mixture slurry was applied onto an aluminum foil and vacuum dried overnight at 120°C to obtain a positive electrode, which is a laminate of a positive electrode active material layer and a positive electrode current collector. (2) TDDK-217 (manufactured by Daikin Industries, Ltd.) was prepared as the electrolyte. (3) Metallic lithium foil was prepared as the negative electrode. (4) A coin cell (CR2032) was prepared using the positive electrode, electrolyte, and negative electrode.

[0093] 4.Charge / Discharge Characteristics Evaluation The cells were charged at 0.1 C in a voltage range of 2.0 to 4.8 V in a thermostatic chamber maintained at 25° C., and then discharged at 0.5 C, 1 C, 3 C, or 5 C to measure the discharge capacity at each rate. The results are shown in FIG.

[0094] As shown in Fig. 8, the coin cell according to the embodiment has a larger discharge capacity than the coin cell according to the comparative example, and the difference between the capacity during low-rate discharge and the capacity during high-rate discharge is small, so that the coin cell according to the embodiment can maintain a large capacity even during high-rate discharge. Specifically, the discharge capacity of the coin cell according to the embodiment is 242mAh / g at 0.1C and 212mAh / g at 3C, whereas the discharge capacity of the coin cell according to the comparative example is 214mAh / g at 0.1C and 152mAh / g at 3C. In other words, it can be said that the positive electrode active material particles according to the embodiment have better rate characteristics than the positive electrode active material particles according to the comparative example.

[0095] As described above, the positive electrode active material particles according to the embodiment are spherical, and therefore, compared to the plate-like positive electrode active material particles according to the comparative example, the growth of the crystallites is suppressed, the crystallites are smaller, the reaction resistance is reduced, and the diffusion resistance inside the active material is reduced. Furthermore, it is considered that the degree of bending is reduced by the spheroidization, and the lithium ion conduction resistance in the layer constituting the positive electrode is reduced. As a result, it is considered that the rate characteristic is improved. In this respect, the effect of spheroidizing the O2 type positive electrode active material particles was confirmed.

[0096] In addition, as described above, the positive electrode active material according to the embodiment has a shell and voids in the cross-sectional structure, so that the contact area with the electrolyte is increased and the charge transfer resistance is reduced compared to the plate-shaped positive electrode active material particles according to the comparative example, which is considered to have improved the rate characteristics. In this regard, the effect of forming the shell and voids in the O2 type positive electrode active material particles was confirmed.

[0097] 5. Supplementary Information In the above examples, the positive electrode active material particles having a specific chemical composition are illustrated, but the chemical composition of the positive electrode active material particles of the present disclosure is not limited thereto. However, according to the knowledge of the present inventor, when the transition metal contains at least one of Mn, Ni, and Co, the P2 type structure crystal grows in a specific direction to become plate-like, and the O2 type particles finally obtained are also likely to become plate-like. It can be said that the problem solved by the technology of the present disclosure is particularly prominent when the transition metal contains at least one of Mn, Ni, and Co.

[0098] 6. Summary From the above examples, it can be said that positive electrode active material particles that satisfy at least one of the following aspects 1 and 2 have excellent rate characteristics. (Aspect 1) Positive electrode active material particles, It has an O2 structure. Constituent elements include at least one transition metal element selected from Mn, Ni, and Co, Li, and O; Something that is spherical. (Aspect 2) A positive electrode active material particle having a cross-sectional structure including a shell and a void, the shell has an O2 structure, The shell contains, as constituent elements, at least one transition metal element selected from Mn, Ni, and Co, Li, and O; The surface of the shell is composed of a plurality of crystallites, The voids are present along the inner wall of the shell. [Explanation of symbols]

[0099] 10 positive electrode 11 Cathode active material layer 12 Positive electrode current collector 20 Electrolyte layer 30 negative electrode 31 Negative electrode active material layer 32 Negative electrode current collector 100 Lithium-ion secondary battery

Claims

1. Positive electrode active material particles, It has an O2 structure, Constituent elements include Li, Mn, Ni, Co and O, Li a Na b Mn x-p Ni y-q Co z-r M p+q+r O 2 (wherein 0<a≦1.00, 0≦b≦0.20, x+y+z=1, and 0≦p+q+r≦0.15, and M is at least one element selected from B, Mg, Al, K, Ca, Ti, V, Cr, Fe, Cu, Zn, Ga, Ge, Sr, Y, Zr, Nb, Mo, and W), It is spherical, Positive electrode active material particles.

2. The particle surface is composed of multiple crystallites. The positive electrode active material particles according to claim 1 .

3. The crystallite diameter is less than 1 μm. The positive electrode active material particles according to claim 2 .

4. the crystallite has a first face exposed at a particle surface, The first surface is planar. The positive electrode active material particles according to claim 2 .

5. A lithium ion secondary battery having a positive electrode, an electrolyte layer, and a negative electrode, The positive electrode comprises the positive electrode active material particles according to any one of claims 1 to 4. Lithium-ion secondary battery.

6. The positive electrode contains an electrolyte. The lithium ion secondary battery according to claim 5 .