Secondary battery and method for manufacturing the secondary battery
A multilayer structured positive electrode active material with transition metals and conductive additives enhances secondary battery performance, addressing capacity, voltage, safety, and reliability issues, enabling longer vehicle ranges with lighter batteries.
Patent Information
- Application Number
- JP2022508605
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-03-20
- Filing Date
- 2021-03-09
- Publication Date
- 2026-01-28
- Estimated Expiration
- 2041-03-09
AI Technical Summary
Existing secondary batteries face challenges in achieving high charge/discharge capacity, voltage, safety, reliability, and longevity, particularly in applications requiring high energy density, such as next-generation clean-energy vehicles.
A positive electrode active material with a multilayer structure, comprising regions with varying concentrations of transition metals like nickel, cobalt, and manganese, and an impurity region to suppress interdiffusion, combined with conductive additives like graphene and particulate carbon to enhance conductivity and stability.
The solution provides a secondary battery with high energy density, large capacity, high voltage, improved safety, and reduced deterioration, enabling vehicles to achieve extended cruising distances with reduced battery weight.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a secondary battery using a positive electrode active material and a method for manufacturing the same, or to an electronic device, a vehicle, etc. having a secondary battery.
[0002] One embodiment of the present invention relates to an object, a method, or a manufacturing method. Alternatively, the present invention relates to a process, a machine, a manufacture, or a composition of matter. One embodiment of the present invention relates to a semiconductor device, a display device, a light-emitting device, a power storage device, a lighting device, an electronic device, or a manufacturing method thereof.
[0003] In this specification, the term "electronic device" refers to any device having a power storage device, and includes electro-optical devices having a power storage device, information terminal devices having a power storage device, and the like.
[0004] In this specification, the term "power storage device" refers to all elements and devices having a power storage function, including, for example, power storage devices such as lithium ion secondary batteries (also called secondary batteries), lithium ion capacitors, and electric double layer capacitors. [Background technology]
[0005] In recent years, there has been active development of various types of electricity storage devices, such as lithium-ion secondary batteries, lithium-ion capacitors, and air batteries. Demand for high-power, high-energy-density lithium-ion secondary batteries, in particular, has rapidly expanded alongside the development of the semiconductor industry, as they are used in portable information terminals such as mobile phones, smartphones, and notebook computers, portable music players, digital cameras, medical devices, and next-generation clean-energy vehicles such as hybrid vehicles (HVs), electric vehicles (EVs), and plug-in hybrid vehicles (PHVs), making them indispensable in today's information society as a rechargeable energy source.
[0006] Therefore, improvements in the positive electrode active material have been investigated in order to improve the cycle characteristics and capacity of lithium ion secondary batteries (for example, Patent Document 1, Non-Patent Document 1).
[0007] Furthermore, the characteristics required of the power storage device include safety in various operating environments and improved long-term reliability. [Prior art documents] [Patent documents]
[0008] [Patent Document 1] Japanese Patent Application Publication No. 2019-21456 [Non-Patent Document 1]
[0009] Yang-Kook Sun et.al.,High-energy cathode material for long-life and safe lithium batteries,NATURE MATERIALS VOL 8 APRIL 2009 Summary of the Invention [Problem to be solved by the invention]
[0010] An object of one embodiment of the present invention is to provide a positive electrode active material having a large charge / discharge capacity. Another object is to provide a positive electrode active material having a high charge / discharge voltage. Another object is to provide a positive electrode active material that is less prone to deterioration. Another object is to provide a novel positive electrode active material. Another object is to provide a secondary battery having a large charge / discharge capacity. Another object is to provide a secondary battery having a high charge / discharge voltage. Another object is to provide a secondary battery that is safe or highly reliable. Another object is to provide a secondary battery that is less prone to deterioration. Another object is to provide a secondary battery with a long life. Another object is to provide a novel secondary battery.
[0011] Another object of one embodiment of the present invention is to provide a novel substance, an active material, a power storage device, or a manufacturing method thereof.
[0012] Note that the description of these problems does not preclude the existence of other problems. Note that one embodiment of the present invention does not necessarily solve all of these problems. Note that problems other than these can be extracted from the description of the specification, drawings, and claims.
[0013] Another object of the present invention is to provide a vehicle equipped with a secondary battery according to one embodiment of the present invention and having a long cruising range, specifically, a cruising distance per charge (charging cruising distance) of 300 km or more, preferably 500 km or more. Note that the cruising distance per charge refers to the actual cruising distance of a vehicle from when the on-board secondary battery is charged by an external power source such as a charging station until it is charged again using the external power source. In other words, the cruising distance per charge corresponds to the longest distance that the vehicle can travel from a state in which the secondary battery is fully charged once using an external power source, and can be said to be the cruising distance per charge.
[0014] Another object is to provide a vehicle that includes a secondary battery of one embodiment of the present invention and has a battery module weight of 300 kg or less by increasing the density, preferably a vehicle that has a battery module weight of 300 kg or less and a running distance of 300 km or more, preferably 500 km or more per charge. [Means for solving the problem]
[0015] One embodiment of the present invention is a secondary battery having a positive electrode active material. The positive electrode active material has a first region and a second region provided more inward than the first region. Each of the first region and the second region contains lithium, oxygen, and one or more elements selected from a first transition metal, a second transition metal, and a third transition metal. The first transition metal is nickel, the second transition metal is cobalt, and the third transition metal is manganese. The first region has a higher concentration of nickel than the second region.
[0016] In the above, the concentration of manganese is preferably higher in the first region than in the second region.
[0017] In the above, the positive electrode active material preferably has an impurity region containing an impurity element, and the impurity region is preferably provided between the first region and the second region.
[0018] In the above, the impurity region preferably has a function of suppressing interdiffusion of elements contained in the first region and the second region, and may function as a separation layer to prevent materials from mixing with each other.
[0019] In the above, the impurity element is preferably at least one of titanium, fluorine, magnesium, aluminum, zirconium, calcium, gallium, niobium, phosphorus, boron, and silicon.
[0020] In the above, the impurity region preferably has a function of suppressing interdiffusion of elements contained in the first region and the second region.
[0021] Furthermore, the present invention is not limited to a double structure, but may also have a triple or more multilayer structure. For example, in the case of a triple structure, the regions can be referred to as a region including a central portion, an intermediate layer surrounding the region, and a surface layer surrounding the intermediate layer. In the case of a multilayer structure (n or more layers), the number of intermediate layers can be said to be (n-2) times greater. Another embodiment of the present invention is a secondary battery having a positive electrode active material, wherein the positive electrode active material has a multilayer structure, including a first region, a second region disposed inside the first region, and a third region disposed inside the second region, the first region, the second region, and the third region each containing lithium, oxygen, and one or more elements selected from a first transition metal, a second transition metal, and a third transition metal, the first transition metal being nickel, the second transition metal being cobalt, and the third transition metal being manganese, and the nickel concentration is higher in the second region than in the third region.
[0022] In the above, the concentration of nickel is preferably higher in the second region than in the first region.
[0023] In the triple structure, the positive electrode active material preferably has an impurity region containing an impurity element, and the impurity region is preferably provided between the second region and the third region.
[0024] In the above triple structure, the impurity region preferably has a function of suppressing interdiffusion of elements contained in the second region and the third region.
[0025] Furthermore, the triple structure may further include a second impurity region between the first and second regions, which may function as a separation layer to prevent materials from mixing with each other.
[0026] Since cobalt is a limited resource, reducing the amount of cobalt used can reduce the material price of the active material. Nickel is more abundant than cobalt and can be said to be an environmentally friendly transition metal, so when producing low-cost secondary batteries, it is preferable to use more nickel than cobalt.
[0027] In each of the above configurations, the first region preferably promotes lithium diffusion during charge and discharge and contributes to stabilization of the positive electrode active material. Whether the structure is a double or triple layer, the first region is a region that is at least partially in contact with one or more of the electrolyte, the conductive additive, or the binder. The second region may be exposed due to a portion of the first region being thinner than the other regions or for some other reason.
[0028] Furthermore, in the above-described secondary battery, the carbon material is preferably at least one of fibrous carbon, graphene, and particulate carbon. These carbon materials are used as conductive additives (also called conductivity-imparting agents or conductive materials). By attaching a conductive additive between multiple active materials, the active materials are electrically connected to each other, thereby increasing their conductivity. Note that "attachment" does not only refer to physical adhesion between the active material and the conductive additive, but also encompasses cases where covalent bonds are formed, bonding through van der Waals forces, the conductive additive covering part of the active material surface, the conductive additive fitting into the surface irregularities of the active material, and electrical connection even without mutual contact. Note that fibrous carbon refers to carbon nanotubes (also called CNTs) and the like. Because graphene has a thin, planar shape, it can form efficient conductive paths with less graphene than other carbon materials, allowing for a higher proportion of active material, thereby improving the capacity per volume of the electrode. This enables secondary batteries to be made smaller and have a higher capacity. Furthermore, the use of graphene can suppress capacity loss during rapid charge and discharge. In this specification and the like, graphene includes not only single-layer graphene but also multi-graphene and multi-layer graphene. Multi-layer graphene refers to, for example, a material having 2 to 100 carbon sheets. Furthermore, particulate carbon refers to carbon black (furnace black, acetylene black (also known as AB), graphite, etc.). A conductive additive containing graphene is preferred. The use of graphene as a conductive additive may potentially suppress deterioration of the positive electrode active material associated with charge and discharge. For example, during charge and discharge, deterioration may occur starting from the surface layer of the positive electrode active material due to the influence of cation mixing. In this case, the use of graphene as a conductive additive may potentially suppress such deterioration. Various combinations of conductive additives can be used. Typical combinations of conductive additives include a combination of graphene and particulate carbon (e.g., acetylene black) and a combination of fibrous carbon (e.g., carbon nanotubes) and particulate carbon (e.g., acetylene black). Furthermore, a material used in forming graphene may be mixed with the graphene.For example, particles used as a catalyst when forming graphene may be mixed together. Examples of catalysts when forming graphene include silicon oxide (SiO2, SiO. x (x<2)), aluminum oxide, iron, nickel, ruthenium, iridium, platinum, copper, germanium, etc. The particles preferably have an average particle size (D50) of 1 μm or less, more preferably 100 nm or less.
[0029] Another embodiment of the present invention is an electronic device including any of the above secondary batteries.
[0030] Another embodiment of the present invention is a vehicle including the above-described secondary battery. Use of the above-described positive electrode active material enables realization of a secondary battery having high energy density and high safety or reliability, which is preferable for next-generation clean energy vehicles equipped with a large battery containing multiple secondary batteries, such as hybrid vehicles, electric vehicles, and plug-in hybrid vehicles. [Effects of the Invention]
[0031] According to one embodiment of the present invention, a positive electrode active material having a high energy density and a large charge / discharge capacity can be provided. Alternatively, a positive electrode active material having a high energy density and a high charge / discharge voltage can be provided. Alternatively, a positive electrode active material with little deterioration can be provided. Alternatively, a novel positive electrode active material can be provided. Alternatively, a secondary battery with a large charge / discharge capacity can be provided. Alternatively, a secondary battery with a high charge / discharge voltage can be provided. Alternatively, a secondary battery with high safety or reliability can be provided. Alternatively, a secondary battery with little deterioration can be provided. Alternatively, a secondary battery with a long life can be provided. Alternatively, a novel secondary battery can be provided.
[0032] Increasing the number of secondary batteries and increasing their capacity in order to extend the driving distance per charge increases the total weight of the vehicle, which in turn increases the energy required to move the vehicle, potentially shortening the driving distance per charge. By using the high-energy density secondary battery disclosed in one embodiment of the present invention, it is possible to extend the driving distance per charge with almost no change in the total weight of a vehicle equipped with the same weight of secondary batteries.
[0033] Therefore, according to one embodiment of the present invention, a vehicle equipped with a novel power storage device can be provided.
[0034] According to one embodiment of the present invention, a novel substance, an active material, a power storage device, or a manufacturing method thereof can be provided.
[0035] Note that the description of these effects does not preclude the existence of other effects. Note that one embodiment of the present invention does not necessarily have all of these effects. Note that effects other than these will become apparent from the description in the specification, drawings, claims, etc., and it is possible to extract other effects from the description in the specification, drawings, claims, etc. [Brief explanation of the drawings]
[0036] 1A to 1C are cross-sectional views of examples of positive electrode active materials. 2A to 2C are cross-sectional views of examples of positive electrode active materials. 3A and 3B are cross-sectional views of examples of positive electrode active materials. Figures 4A1, 4B1, 4C1, 4D1, and 4E1 are examples of perspective views of positive electrode active materials, and Figures 4A2, 4B2, 4C2, 4D2, and 4E2 are examples of cross-sectional views of positive electrode active materials. 5A and 5B are diagrams illustrating an example of a method for producing a positive electrode active material. FIG. 6 is a diagram illustrating the depth of charge and the crystal structure of the positive electrode active material. FIG. 7 is a diagram illustrating the depth of charge and the crystal structure of the positive electrode active material. 8A, 8B, 8C, and 8D are cross-sectional views illustrating examples of the positive electrode of a secondary battery. 9A and 9B are diagrams illustrating an example of a secondary battery. 10A, 10B, and 10C are diagrams illustrating examples of secondary batteries. 11A and 11B are diagrams illustrating an example of a secondary battery. 12A, 12B, and 12C are diagrams illustrating a coin-type secondary battery. FIG. 13A is a top view illustrating the secondary battery, and FIG. 13B is a cross-sectional view illustrating the secondary battery. 14A to 14C are diagrams illustrating a secondary battery. 15A to 15C are diagrams illustrating a secondary battery. FIG. 16A is a perspective view of a battery pack showing one embodiment of the present invention, FIG. 16B is a block diagram of the battery pack, and FIG. 16C is a block diagram of a vehicle having a motor. 17A and 17B illustrate a power storage device according to one embodiment of the present invention. 18A and 18B are diagrams illustrating an example of an electronic device, and FIGS. 18C to 18F are diagrams illustrating an example of a transportation vehicle. FIG. 19A is a diagram showing an electric bicycle, FIG. 19B is a diagram showing a secondary battery of the electric bicycle, and FIG. 19C is a diagram explaining an electric motorcycle. FIG. 20A shows an example of a wearable device, FIG. 20B shows a perspective view of a wristwatch-type device, FIG. 20C is a diagram illustrating a side view of the wristwatch-type device, and FIG. 20D is a perspective view illustrating a head-mounted display. FIG. 21A is a diagram showing a calculation model, and FIG. 21B is a graph showing the radius of region 191 and the discharge capacity per weight when LiCoO2 is used in region 191 and NCM811 is used in region 193. DETAILED DESCRIPTION OF THE INVENTION
[0037] Hereinafter, embodiments of the present invention will be described in detail with reference to the drawings. However, the present invention is not limited to the following description, and it will be readily understood by those skilled in the art that various modifications can be made to the embodiments and details. Furthermore, the present invention should not be interpreted as being limited to the description of the embodiments shown below.
[0038] In this specification, Miller indices are used to denote crystal planes and crystal directions. Crystal planes, crystal directions, and space groups are typically denoted by a superscript bar. However, due to formatting constraints, in this specification, instead of a bar, a minus sign (-) is sometimes used before the number. Individual orientations within a crystal are expressed as [ ], collective orientations indicating all equivalent directions are expressed as < >, individual planes indicating crystal faces are expressed as ( ), and collective planes with equivalent symmetry are expressed as {}. Trigonal crystals, represented by the space group R-3m, are generally represented as a hexagonal composite hexagonal lattice for ease of understanding the structure, and Miller indices such as (hkl) and (hkil) are sometimes used. Here, i is -(h+k).
[0039] In this specification and the like, uneven distribution refers to a phenomenon in which a certain element (for example, B) is spatially distributed non-uniformly in a solid composed of multiple elements (for example, A, B, and C).
[0040] In this specification, the surface layer of particles of active material or the like refers to, for example, a region within 50 nm from the surface, more preferably within 35 nm, even more preferably within 20 nm, and most preferably within 10 nm. Surfaces formed by cracks or fissures may also be referred to as the surface. The region deeper than the surface layer is referred to as the interior. Furthermore, in this specification, particles are not limited to spherical shapes (circular in cross section), and examples of the cross-sectional shape of individual particles include ellipsoids, rectangles, trapezoids, cones, squares with rounded corners, and asymmetric shapes. Furthermore, individual particles may also have irregular shapes.
[0041] In this specification, the layered rock-salt type crystal structure of a composite oxide containing lithium and a transition metal refers to a crystal structure having a rock-salt type ion arrangement in which cations and anions are alternately arranged, and in which the transition metal and lithium are regularly arranged to form a two-dimensional plane, allowing two-dimensional diffusion of lithium. Defects such as cation or anion deficiencies may also be present. Furthermore, strictly speaking, the layered rock-salt type crystal structure may have a distorted rock-salt type crystal lattice structure.
[0042] In this specification and the like, the rock salt type crystal structure refers to a structure in which cations and anions are arranged alternately, and it is also possible for there to be a deficiency of cations or anions.
[0043] In this specification, the O3'-type (also called pseudospinel-type) crystal structure of a composite oxide containing lithium and a transition metal belongs to the space group R-3m, and ions such as cobalt and magnesium ions occupy six oxygen coordination positions. The symmetry of the CoO2 layers in this structure is the same as that of the O3-type. Therefore, this structure is referred to as the O3'-type crystal structure in this specification. In both the O3-type and O3'-type crystal structures, magnesium is preferably present in a dilute form between the CoO2 layers, i.e., at the lithium sites. Fluorine is also preferably present in a random and dilute form at the oxygen sites.
[0044] It can also be said that the O3' type crystal structure is similar to the CdCl2 type crystal structure, although it has random Li between the layers. This CdCl2 type-like crystal structure was observed when lithium nickel oxide was charged to a charge depth of 0.94 (Li 0.06 The crystal structure is similar to that of lithium cobaltate (NiO2), but it is known that pure lithium cobaltate or layered rock salt-type positive electrode active materials containing a large amount of cobalt do not usually adopt this crystal structure.
[0045] The anions in layered rock salt crystals and rock salt crystals have a cubic close-packed structure (face-centered cubic lattice structure). It is estimated that the anions in O3' crystals also have a cubic close-packed structure.
[0046] In this specification, if the anions have a structure in which three layers are stacked with a skew, such as ABCABC, it is called cubic close-packed. Therefore, the anions do not need to be strictly cubic lattices. At the same time, since real crystals always have defects, the analysis results do not necessarily have to be theoretical. For example, in electron diffraction or FFT (fast Fourier transform) of TEM images, spots may appear at positions slightly different from the theoretical positions. For example, if the orientation from the theoretical positions is 5 degrees or less, or 2.5 degrees or less, it can be said to have a cubic close-packed structure.
[0047] When layered rock salt crystals come into contact with each other, there are crystal faces where the cubic close-packed structures formed by anions are oriented in the same direction.
[0048] Alternatively, the above phenomenon can be explained as follows: Anions on the (111) plane of the cubic crystal structure have a triangular arrangement. Layered rocksalt has a space group of R-3m and a rhombohedral structure, but to make the structure easier to understand, it is generally expressed as a compound hexagonal lattice, and the (000l) plane of the layered rocksalt has a hexagonal lattice. The triangular lattice on the cubic (111) plane has the same atomic arrangement as the hexagonal lattice on the (000l) plane of the layered rocksalt. The compatibility of the two lattices can be said to be the alignment of the cubic close-packed structure.
[0049] However, the space group of the layered rock salt type crystal and the O3' type crystal is R-3m, which is different from the space group of the rock salt type crystal, Fm-3m (the space group of a general rock salt type crystal) and Fd-3m, and therefore the Miller indices of the crystal planes that satisfy the above conditions are different between the layered rock salt type crystal and the O3' type crystal and the rock salt type crystal. In this specification, when the orientations of the cubic close-packed structures formed by anions in the layered rock salt type crystal, the O3' type crystal, and the rock salt type crystal are aligned, it may be said that the crystal orientations are approximately the same.
[0050] The fact that the crystal orientations of the two regions roughly match can be determined from TEM (Transmission Electron Microscope) images, STEM (Scanning Transmission Electron Microscope) images, HAADF-STEM (High-Angle Annular Dark Field Scanning TEM) images, ABF-STEM (Annular Bright-Field Scanning Transmission Electron Microscopy) images, electron diffraction, FFT of TEM images, etc. XRD (X-ray Diffraction), neutron diffraction, etc. can also be used as materials for determination.
[0051] In this specification, the theoretical capacity of a positive electrode active material refers to the amount of electricity when all of the intercalable lithium contained in the positive electrode active material is deintercalated. For example, the theoretical capacity of LiCoO2 is 274 mAh / g, the theoretical capacity of LiNiO2 is 274 mAh / g, and the theoretical capacity of LiMn2O4 is 148 mAh / g.
[0052] In this specification and the like, the depth of charge when all intercalable and deintercalable lithium is intercalated is defined as 0, and the depth of charge when all intercalable and deintercalable lithium contained in the positive electrode active material is deintercalated is defined as 1.
[0053] In this specification, charging refers to the transfer of lithium ions from the positive electrode to the negative electrode within a battery and the transfer of electrons from the positive electrode to the negative electrode in an external circuit. Regarding a positive electrode active material, charging refers to the removal of lithium ions. A positive electrode active material with a charge depth of 0.7 to 0.9 is sometimes referred to as a positive electrode active material charged at a high voltage.
[0054] Similarly, discharging refers to the transfer of lithium ions from the negative electrode to the positive electrode within the battery and the transfer of electrons from the negative electrode to the positive electrode in an external circuit. For positive electrode active materials, discharging refers to the insertion of lithium ions. A fully discharged positive electrode active material is defined as a positive electrode active material with a charge depth of 0.06 or less, or a positive electrode active material that has been discharged to 90% or more of its charge capacity from a high-voltage charged state.
[0055] In this specification, a non-equilibrium phase change refers to a phenomenon that causes a non-linear change in a physical quantity. For example, a non-equilibrium phase change occurs around the peak in the dQ / dV curve obtained by differentiating capacitance (Q) with voltage (V), and it is believed that the crystal structure changes significantly.
[0056] A secondary battery has, for example, a positive electrode and a negative electrode. A material constituting the positive electrode is a positive electrode active material. The positive electrode active material is, for example, a substance that undergoes a reaction that contributes to the charge / discharge capacity. Note that the positive electrode active material may partially contain a substance that does not contribute to the charge / discharge capacity.
[0057] In this specification and the like, the positive electrode active material of one embodiment of the present invention may be referred to as a positive electrode material, a positive electrode material for a secondary battery, or the like. Also, in this specification and the like, the positive electrode active material of one embodiment of the present invention preferably includes a compound. Also, in this specification and the like, the positive electrode active material of one embodiment of the present invention preferably includes a composition. Also, in this specification and the like, the positive electrode active material of one embodiment of the present invention preferably includes a composite.
[0058] Discharge rate is the relative ratio of the current during discharge to the battery capacity, and is expressed in units of C. For a battery with a rated capacity of X (Ah), the current equivalent to 1C is X (A). When discharging at a current of 2X (A), it is said to have been discharged at 2C, and when discharging at a current of X / 5 (A), it is said to have been discharged at 0.2C. The same is true for charge rate; when charging at a current of 2X (A), it is said to have been charged at 2C, and when charging at a current of X / 5 (A), it is said to have been charged at 0.2C.
[0059] Constant current charging, for example, refers to a method of charging at a constant charge rate. Constant voltage charging, for example, refers to a method of charging at a constant voltage once the upper voltage limit is reached. Constant current discharging, for example, refers to a method of discharging at a constant discharge rate.
[0060] In this specification, a value close to a certain value A refers to a value between 0.9 A and 1.1 A.
[0061] (Embodiment 1) The particles of one embodiment of the present invention can be used as a material for an electrode of a secondary battery. The particles of one embodiment of the present invention also function as an active material. The active material is, for example, a substance that undergoes a reaction that contributes to the charge / discharge capacity. Note that the active material may contain a substance that does not contribute to the charge / discharge capacity.
[0062] Furthermore, the particles of one embodiment of the present invention can be particularly used as a positive electrode material for a secondary battery. Furthermore, the particles of one embodiment of the present invention particularly function as a positive electrode active material. The positive electrode active material is, for example, a substance that undergoes a reaction that contributes to charge / discharge capacity and is used as a positive electrode material. Note that the positive electrode active material may partially contain a substance that does not contribute to charge / discharge capacity. A particle, active material, positive electrode material, or positive electrode active material that contains at least lithium, a transition metal, and oxygen may be called a composite oxide.
[0063] 1A is an example of a cross section of a particle 190 according to one embodiment of the present invention. Particle 190 shown in FIG. 1A has regions 191, 192, and 193.
[0064] The region 191 is provided inside the region 193 .
[0065] Region 193 is a region that includes the surface layer of particle 190. Region 192 is a region located inside region 193. Region 191 is a region that is located inside region 192. Region 191 is inside particle 190, and is, for example, a region that includes the center of the particle (it can also be called the central part). The center of a particle refers to the center of gravity of the particle, and its position can be identified using an electron microscope or the like. For example, when a particle is cut and the cross section is observed, this refers to the cross section with the largest cross section area, or the center of the smallest circumscribed circle drawn for a cross section with a cross section area that is 90% or more of that.
[0066] Region 192 is, for example, a region located between region 191 and region 193 .
[0067] Region 191 may be called the "core" and region 193 the "shell." The "shell" can also be called the surrounding tissue or outer shell. Note that "core" does not mean the core of the entire particle, but is used to indicate the positional relationship between the center of the particle and the outer shell. The "core" can also be called the core material.
[0068] Alternatively, regions 191 and 192 may be collectively referred to as the "core," and region 193 as the "shell." In such cases, region 192 may be expressed as the surface layer of the "core." Region 192 may also be expressed as an impurity region.
[0069] Particle 190 may be said to have a core-shell structure (also called a core-shell type structure).
[0070] The average particle size (median diameter, also called D50) of the particles 190 is preferably 0.1 μm or more and 50 μm or less, and more preferably 1 μm or more and 30 μm or less.
[0071] The region 191 has a particle-like shape. The region 191 occupies an area ratio S 191 / S 190is preferably 0.04% or more and 96.0% or less, more preferably 30% or more and 90% or less, and even more preferably 64% or more and 90% or less. 191 , the area of region 192 is S 192 , the area of region 193 is S 193 , the cross section of particle 190 is S 190 (S 190 =S 191 +S 192 +S 193 )
[0072] Region 192 is preferably in contact with at least a portion of the particulate surface of region 191. Alternatively, region 192 is preferably provided so as to cover at least a portion of the particulate surface of region 191. Region 192 is preferably at least partially disposed at a position farther from the center of particle 190 than region 191.
[0073] It is preferable that the layer covers at least a portion of the surface of the particulate shape of region 191. Region 192 is preferably a layer having a thickness of, for example, 0.5 nm to 100 nm, and more preferably 1 nm to 30 nm. The thickness of region 192 does not necessarily have to be uniform.
[0074] Region 192 preferably has a function of suppressing interdiffusion during synthesis of elements contained in regions 191 and 193. It also preferably has a function of not inhibiting interdiffusion of lithium during charge and discharge or of promoting interdiffusion of lithium.
[0075] It is preferable that at least a portion of region 193 is disposed at a position farther from the center of particle 190 than regions 191 and 192. It is preferable that region 193 overlaps with at least one of regions 191 and 192. It is preferable that region 193 is layered. Alternatively, the area ratio of region 193 to the cross section of particle 190 is preferably 4% or more and 99.96% or less, more preferably 10% or more and 70% or less, and even more preferably 10% or more and 36% or less. The thickness of region 193 does not necessarily have to be uniform.
[0076] Region 193 preferably has the function of promoting lithium diffusion during charge and discharge and contributing to stabilization of the positive electrode active material. Region 193 also preferably has the function of suppressing deterioration of the positive electrode active material during charge and discharge. For example, during charge and discharge, deterioration may occur starting from the surface layer of the positive electrode active material due to the influence of cation mixing. In this case, region 193 may be configured to be less susceptible to the influence of cation mixing. Region 193 is not limited to one region, and may have two or more regions. For example, as shown in FIG. 1C, region 193 may have two regions, with region 193b provided on the inside and region 193a provided outside region 193b.
[0077] 1B, the particle 190 may have a region 194. The region 194 is provided outside the region 193. In this case, the region 193 and the region 194 may be collectively referred to as a "shell." The region 194 may also be expressed as including the surface layer of the "shell," the surface layer of the particle 190, or the surface of the particle 190. The region 194 may also be expressed as an impurity region. As shown in FIG. 2B, the area of the region 194 is S 194 The area of the particle 190 having the region 194 is S 190 (S 190 =S 191 +S 192 +S 193 +S 194 )
[0078] Furthermore, it is preferable that at least a portion of region 194 is disposed at a position farther from the center of particle 190 than region 193. It is preferable that region 194 overlaps with at least one of region 191, region 192, and region 193. Furthermore, region 194 at least partially overlaps with region 193. Region 194 is preferably a layer having a thickness of 0.5 nm or more and 100 nm or less, and more preferably a layer having a thickness of 1 nm or more and 30 nm or less. The thickness of region 194 does not necessarily have to be uniform.
[0079] Region 194 is also preferably configured to be less susceptible to the effects of cation mixing. When region 194 is present, this is the outermost region of particle 190, and therefore, if cation mixing in region 194 is suppressed and collapse of the crystal structure is suppressed, there is a possibility that this will be highly effective in suppressing deterioration of charge / discharge characteristics and the like.
[0080] The particle size of the particles can be evaluated, for example, using a particle size distribution analyzer. The area ratio in a cross section of region 191 or region 193, etc., can be evaluated by exposing the cross section by processing particle 190, observing the cross section, and by various line analyses, area analyses, etc. When evaluating the area ratio, it is preferable to use a cross section that fully reflects the internal structure of particle 190. For example, it is preferable to use a cross section whose maximum width is 80% or more of the average particle size (D50).
[0081] Similarly, the thickness of each region can be evaluated by exposing the cross section through processing, observing the cross section, and by various line analyses, area analyses, and the like.
[0082] <Complex oxide> Regions 191 and 193 can be made of a material capable of inserting and extracting lithium ions. When the carrier ions are alkali metal ions other than lithium ions or alkaline earth metal ions, alkali metals (e.g., sodium, potassium, etc.) or alkaline earth metals (e.g., calcium, strontium, barium, beryllium, magnesium, etc.) may be used instead of lithium. When regions 191 and 193 are made of a material that functions as a positive electrode active material, it is preferable to use a compound having an olivine-type crystal structure, a layered rock-salt-type crystal structure, a spinel-type crystal structure, or the like. Compounds having a layered rock-salt-type crystal structure include so-called lithium-excess compounds, in which the atomic ratio of lithium to transition metal is greater than 1. In particular, it is preferable to use a composite oxide having a layered rock-salt-type crystal structure and belonging to the space group R-3m. However, this may not be the case depending on the desired function of regions 191 and 193.
[0083] Each of the regions 191 and 193 preferably contains a transition metal, specifically, one or more of cobalt, nickel, and manganese.
[0084] Furthermore, it is preferable that the concentration of at least one of the transition metals contained in the region 191 and the region 193 differs between the region 191 and the region 193 .
[0085] When two or more transition metals are used, two types of transition metals, cobalt and manganese, or two types of transition metals, cobalt and nickel, or two types of transition metals, nickel and manganese, may be used. Alternatively, three types of transition metals, cobalt, manganese, and nickel, may be used. That is, region 191 and region 193 may each have a composite oxide containing lithium and a transition metal, such as lithium cobalt oxide, lithium nickel oxide, lithium cobalt oxide in which some of the cobalt is substituted with manganese, lithium cobalt oxide in which some of the cobalt is substituted with nickel, or nickel-manganese-lithium cobalt oxide.
[0086] <Particle example 1> As a specific example of the particle 190, an example of using LCO for the core and NCM for the shell, that is, an example of using lithium cobalt oxide as the region 191, cobalt as the first transition metal in the region 193, nickel as the second transition metal, and manganese as the third transition metal for the lithium composite oxide is shown. In the case of the configuration using LCO for the core and NCM for the shell, since the configuration can reduce the cobalt content in the entire cathode active material, the price of the entire cathode active material can be lower than that of the cathode active material of LCO alone. Also, in the case of the configuration using LCO for the core and NCM for the shell, a sufficient discharge capacity can be ensured for the charging voltage in the range of 4.5 V or more and less than 4.8 V (vs. Li / Li + ).
[0087] As the lithium composite oxide using cobalt, nickel and manganese, for example, LiNi x Co y Mn z O2 (x > 0, y > 0, 0.8 < x + y + z < 1.2) (also referred to as NCM) can be used. Specifically, for example, it is preferable to satisfy 0.1x < y < 8x andRegion 193 may further include multiple regions. For example, as shown in Fig. 1C, region 193 may include region 193a and region 193b. In this case, it is preferable that the concentration of at least one of the transition metals differ between region 193a and region 193b.
[0090] For example, it is preferable that x, y, and z satisfy x:y:z=1:1:1 or values close thereto for region 193a, and that x, y, and z satisfy x:y:z=8:1:1 or values close thereto for region 193b. Alternatively, it is preferable that x, y, and z satisfy x:y:z=1:1:1 or values close thereto for region 193a, and that x, y, and z satisfy x:y:z=9:0.5:0.5 or values close thereto for region 193b.
[0091] Alternatively, x, y, and z may satisfy x:y:z=8:1:1 or a value close thereto as region 193a, and x, y, and z may satisfy x:y:z=1:1:1 or a value close thereto as region 193b. Alternatively, x, y, and z may satisfy x:y:z=9:0.5:0.5 or a value close thereto as region 193a, and x, y, and z may satisfy x:y:z=1:1:1 or a value close thereto as region 193b.
[0092] At this time, as shown in FIG. 2C, the area of the region 193a is S 193a The area of the region 193b is S 193b Then, S 193 =S 193a +S 193b Let's say.
[0093] <Particle example 2> As a specific example of particle 190, an example using LCO for the core and LFP for the shell, that is, an example using Li-Co oxide for region 191 and Li-iron phosphate (LiFePO4) for region 193, is shown.
[0094] Furthermore, other positive electrode materials having an olivine-type crystal structure, not limited to LiFePO4, may be used for region 193. Even when all lithium has been released, the olivine-type crystal structure is resistant to collapse because the polyanion framework consisting of phosphorus and oxygen is stable. Therefore, a composite oxide having an olivine-type crystal structure is suitable for region 193, which is the shell. However, when composite oxides with different crystal structures are used for regions 191 and 193, it is preferable that region 192 function as a buffer layer and promote the grain boundary diffusion of lithium. Alternatively, it is preferable that region 192 function to strengthen the physical bond between regions 191 and 193.
[0095] <Particle example 3> As a specific example of particle 190, an example is shown in which a first NCM is used in the core and a second NCM is used in the shell, that is, an example in which region 191 uses a lithium composite oxide using three transition metals: cobalt as the first transition metal, nickel as the second transition metal, and manganese as the third transition metal, and region 193 uses a lithium composite oxide using three transition metals: cobalt as the first transition metal, nickel as the second transition metal, and manganese as the third transition metal.
[0096] The first NCM is LiNi, expressed as x:y:z=8:1:1 or x:y:z=9:0.5:0.5. x Co y Mn z The second NCM was prepared using a LiNiO2 composite oxide with a x:y:z=1:1:1 structure. x Co y Mn z O2 composite oxides can be used. The atomic ratio of the second NCM is not limited to the above. For example, by making the ratio of nickel smaller than that of the first NCM, the same effect as that achieved by the above atomic ratio may be achieved.
[0097] The materials constituting the regions 192 and 194 can be referenced above.
[0098] Furthermore, it is preferable that the crystal orientations of regions 191 and 192 roughly match. Similarly, it is preferable that the crystal orientations of regions 192 and 193 roughly match. Similarly, if region 194 is included, it is preferable that the crystal orientations of regions 193 and 194 roughly match. Similarly, if region 193a and region 193b are included, it is preferable that the crystal orientations of regions 193a and 193b roughly match.
[0099] If the crystal orientation is roughly the same, a lithium diffusion path is secured well, and a secondary battery with good rate characteristics or charge / discharge characteristics can be obtained, which is preferable. If there is a slight difference in ionic radius between the composite oxides of region 191 and region 193, it is preferable that region 192 function as a buffer layer.
[0100] Here, charging refers to the transfer of lithium ions from the positive electrode to the negative electrode within a battery and the transfer of electrons from the positive electrode to the negative electrode in an external circuit. In other words, during charging, lithium ions are released from the positive electrode active material. Positive electrode active materials with a layered crystalline structure, such as composite oxides containing lithium and transition metals, can sometimes realize secondary batteries with high lithium content per volume and high capacity per volume. However, such positive electrode active materials also exhibit a large amount of lithium released per volume during charging, and stabilization of the crystalline structure after release is required for stable charging and discharging. Furthermore, breakdown of the crystalline structure during charging and discharging can impede high-speed charging and discharging. Furthermore, breakdown of the crystalline structure can reduce the area where lithium can be inserted and extracted normally, resulting in reduced charge and discharge capacities.
[0101] When nickel is contained in addition to cobalt as a transition metal, as in the particles of Example 3 of Particles, the deviation of the layered structure consisting of octahedra of cobalt and oxygen may be suppressed, which is preferable because the crystal structure may become more stable, particularly in a charged state at high temperatures.
[0102] In the case where nickel is contained in addition to cobalt as a transition metal, increasing the concentration of nickel may suppress the shift in the layer structure caused by the desorption of lithium. Therefore, even if a large amount of lithium is desorbed, repeated charge and discharge may be performed stably. In other words, the capacity can be increased.
[0103] On the other hand, when nickel is included in addition to cobalt as a transition metal, increasing the nickel concentration may cause the crystal structure to collapse at high charging voltages. This is because the ionic radii of lithium ions and nickel ions are similar, which makes it easy for cation mixing to occur, in which nickel moves to lithium sites. In other words, in order to charge at high voltages, it is preferable that the nickel concentration not be too high.
[0104] <Area containing element X and halogen> Regions 192 and 194 are preferably regions containing element X and a halogen. Element X and a halogen may be referred to as impurity elements. Element X is one or more elements selected from titanium, magnesium, aluminum, zirconium, vanadium, iron, chromium, niobium, cobalt, arsenic, zinc, silicon, sulfur, phosphorus, boron, calcium, gallium, and silicon. Element X is preferably one or more elements containing magnesium. The halogen is preferably one or more of fluorine and chlorine, with fluorine being particularly preferred.
[0105] As the region having the element X and the halogen, a region in which the element X and the halogen are added to a composite oxide represented by LiMO2 is used. Here, the composite oxide may have the crystal structure of a region in which the element X and the halogen are added to a composite oxide represented by LiMO2, and the composition is not strictly limited to Li:M:O=1:1:2.
[0106] The complex oxide represented by LiMO2 may have a more stable crystal structure due to the presence of element X and a halogen.
[0107] Furthermore, it is particularly preferable to use magnesium as the element X. Furthermore, it is particularly preferable to use fluorine as the halogen. The region having the element X and a halogen may include lithium cobalt oxide doped with magnesium and fluorine, lithium cobalt oxide doped with magnesium, fluorine, and titanium, lithium nickel-cobalt oxide doped with magnesium and fluorine, lithium cobalt-aluminate doped with magnesium and fluorine, nickel-cobalt-lithium aluminum oxide doped with magnesium and fluorine, nickel-cobalt-lithium aluminum oxide, nickel-cobalt-lithium aluminum oxide doped with magnesium and fluorine, and nickel-manganese-cobalt oxide doped with magnesium and fluorine. In this specification and the like, the term "additive" may be replaced with the term "mixture," "part of the raw material," "impurity," or the like.
[0108] Furthermore, the region having the element X and the halogen may be, for example, a region having a bond between oxygen and the element X. The bond between oxygen and the element X can be analyzed by, for example, XPS analysis. Furthermore, the region having the element X and the halogen may contain magnesium oxide.
[0109] The region having the element X and the halogen may have different elements, different crystal structures, different bonds, and the like.
[0110] In particle 190, even if the metal that becomes the carrier ion is removed from the complex oxide due to charging, the layered structure of the complex oxide is reinforced by the region having element X and halogen, i.e., region 194 which is the outer periphery of the particle, or region 192 which is arranged between region 191 having the complex oxide and region 193 having the complex oxide.
[0111] Hereinafter, a case will be considered in which a region in which the element X and a halogen are added to a composite oxide represented by LiMO2 is used as the region having the element X and a halogen.
[0112] Magnesium, one of the elements X, is divalent and is more stable at the lithium site than at the transition metal site in the layered rock-salt crystal structure, so it is more likely to occupy the lithium site. The presence of magnesium at an appropriate concentration at the lithium site in the region containing element X and halogens makes it easier to maintain the layered rock-salt crystal structure. At an appropriate concentration, magnesium is preferable because it does not adversely affect the intercalation and deintercalation of lithium during charge and discharge. However, excessive magnesium may adversely affect the intercalation and deintercalation of lithium.
[0113] Aluminum, one of the elements X, is trivalent and has a strong bond with oxygen. Therefore, when aluminum is added, changes in the crystal structure can be suppressed when it enters the lithium site. This allows for the creation of particles 190 whose crystal structure is resistant to collapse even after repeated charge and discharge.
[0114] Titanium oxide is known to have superhydrophilic properties. Therefore, by including titanium oxide in the region containing element X and a halogen, it is possible that wettability with highly polar solvents may be improved. When used in a secondary battery, this may improve the contact at the interface between the particles 190 and the highly polar electrolyte, potentially suppressing an increase in internal resistance. Furthermore, titanium oxide allows lithium to easily diffuse and does not easily release oxygen during charging and discharging. For these reasons, titanium is particularly suitable as element X.
[0115] As the charging voltage of a secondary battery increases, the voltage of the positive electrode generally increases. The positive electrode active material of one embodiment of the present invention has a stable crystal structure even at high voltages. The stable crystal structure of the positive electrode active material in a charged state can suppress a decrease in charge / discharge capacity due to repeated charge / discharge.
[0116] Furthermore, a short circuit in a secondary battery not only causes problems in the charging and discharging operations of the secondary battery, but may also lead to heat generation and fire. To achieve a safe secondary battery, it is preferable that the short circuit current be suppressed even at a high charging voltage. The positive electrode active material 100 of one embodiment of the present invention suppresses the short circuit current even at a high charging voltage. Therefore, a secondary battery that achieves both high charge / discharge capacity and safety can be obtained.
[0117] A secondary battery using the positive electrode active material 100 of one embodiment of the present invention can preferably simultaneously satisfy high charge / discharge capacity, excellent charge / discharge cycle characteristics, and safety.
[0118] <Grain boundaries, etc.> In particle 190 (region 191, region 192, and region 193) according to one embodiment of the present invention, each or one of regions 191, 192, and 193 may be polycrystalline. Element X or halogen contained in particle 190 (region 191, region 192, and region 193) according to one embodiment of the present invention may be present randomly and dilutely in the internal region. In this case, element X is preferably magnesium or titanium.
[0119] 3, when the concentrations of element X and halogen are high at and near grain boundary 197, even if cracks occur along the grain boundaries of particle 190 of one embodiment of the present invention, the concentrations of element X and halogen become high near the surface formed by the cracks. Therefore, the corrosion resistance to hydrofluoric acid of the positive electrode active material after cracks occur can be improved.
[0120] In this specification and the like, the vicinity of the grain boundary refers to the region up to about 10 nm from the grain boundary.
[0121] Furthermore, particle 190 may have defects, cracks, irregularities, fissures, etc. in addition to grain boundaries. It may also have portions lacking regions 192, 193, and 194. Figures 3A and 3B show modified examples of particle 190 shown in Figures 1 and 2. For example, as shown in region 196a in Figures 3A and 3B, it may have a portion where region 193 is absent and region 192 appears on the surface, or a portion where region 194 and region 192 are in contact with each other.
[0122] Furthermore, as shown in region 196b in FIGS. 3A and 3B, there may be a portion where region 191 and region 193 are in contact with each other, without region 192.
[0123] Furthermore, as shown in region 196c in FIGS. 3A and 3B, region 194, region 193, and region 192 may be absent, and region 191 may appear on the surface.
[0124] 3A and 3B, a region 195 having a different composition from the others may be present at defects, cracks, irregularities, fissures, grain boundaries (grain boundaries between regions 195 and 193), etc. Region 195 is a region having an element different from regions 191 to 194, a region having a different composition, or a region having a different crystal structure.
[0125] By including the region 195, excess impurity elements may be unevenly distributed in the region 195, and the impurity elements contained in the regions 191 to 194 may be maintained within a preferred range. Therefore, by including the region 195, a secondary battery with good rate characteristics or charge / discharge characteristics may be obtained.
[0126] The above-mentioned regions can be determined to be different regions by various analyses or combinations thereof. Examples of such analyses include electron microscope images such as TEM, STEM, HAADF-STEM, and ABF-STEM, diffraction images such as SIMS, ToF-SIMS, X-ray diffraction (XRD), electron diffraction, and neutron diffraction, electron probe microanalyzer (EPMA), and energy dispersive X-ray analysis (EDX). For example, in cross-sectional TEM and STEM images of particle 190, differences in the constituent elements may be observed as differences in image brightness.
[0127] The boundaries between the above-mentioned regions may not be clear. The concentration of an element may have a gradient between adjacent regions. The concentration of an element may change continuously. The concentration of an element may change stepwise. Or the concentration of an element may have a gradation. In this case, the boundary between the regions may be, for example, the point where the concentration of an element specific to one of the regions becomes 50%.
[0128] <Particle shape> The shape of particle 190 is not limited to the shapes shown in Figures 1 to 3. For example, Figure 4A1 is a perspective view of particle 190, and Figure 4A2 is a cross-sectional view of Figure 4A1. In this way, it may be a cube (dice shape).
[0129] 4B1 is a perspective view of particle 190, and FIG. 4B2 is a cross-sectional view of FIG. 4B1. In this way, particle 190 may be a rectangular parallelepiped.
[0130] 4C1 is a perspective view of particle 190, and FIG. 4C2 is a cross-sectional view of FIG. 4C1. Particle 190 may be in the shape of a hexagonal pillar.
[0131] 4D1 is a perspective view of particle 190, and FIG. 4D2 is a cross-sectional view of FIG. 4D1. In this manner, particle 190 may be octahedral.
[0132] 4E1 is a perspective view of particle 190, and FIG. 4E2 is a cross-sectional view of FIG. 4E1. In this manner, the outer shape of particle 190 may differ from the shapes of region 191 and region 192.
[0133] <Production method> Next, an example of a method for producing a particle 190 having regions 191 to 193 will be described with reference to FIG. 5A.
[0134] First, in step S11, a lithium source and a transition metal source (M 191 Prepare the source.
[0135] Next, in step S12, a lithium source and a transition metal source are mixed and synthesized. For example, a synthesis method may be a method in which the lithium source and the transition metal source contained in region 191 are mixed by a solid phase method and then heated. In this embodiment, cobalt is used as the transition metal source.
[0136] In this way, the composite oxide to be used in region 191 is prepared (step S13). Pre-synthesized lithium cobalt oxide may also be used. For example, lithium cobalt oxide particles (product name: Cellseed C-10N) manufactured by Nippon Chemical Industry Co., Ltd. are used. The average particle diameter (D50) of these particles is approximately 12 μm.
[0137] Next, in step S21, the X source (X 192 A fluoride source (LiF) and a halogen source are prepared. LiF is prepared as the halogen source. LiF is preferable because it has a cation common to LiCoO2. LiF is also preferable because it has a relatively low melting point of 848°C and is easily melted in the annealing step described below. In addition to LiF, MgF2 may be used. Fluorides that can be used in one embodiment of the present invention are not limited to LiF and MgF2.
[0138] Next, in step S31, a composite oxide, an X source, and a halogen source are mixed and synthesized. One synthesis method, for example, involves mixing these materials using a solid-state method followed by heating. The heating temperature must be below the decomposition temperature of LiCoO2 (1130°C). Although the decomposition temperature of LiCoO2 is 1130°C, there is a concern that a small amount of LiCoO2 may decompose at temperatures around that temperature. Therefore, the annealing temperature is preferably 1130°C or lower, more preferably 1000°C or lower. Specifically, the temperature can be lowered to between 735°C and 1000°C. When the average particle size (D50) of the particles in step S13 is approximately 12 μm, the heating time is preferably, for example, 3 hours or longer, more preferably 10 hours or longer. On the other hand, when the average particle size (D50) of the particles in step S13 is approximately 5 μm, the heating time is preferably, for example, 1 hour to 10 hours, more preferably approximately 2 hours. The temperature-lowering time after heating is preferably, for example, 10 hours or more and 50 hours or less.
[0139] In this manner, the composite oxide used in regions 191 and 192 is prepared (step S32). In this embodiment, region 192 contains fluorine and magnesium as impurities. The presence of magnesium in region 192 is inferred from the fact that, when a portion of the particles in step S32 is measured by EDX, a magnesium peak can be confirmed in the surface layer of the particles. The magnesium concentration in region 192 in step S32 can be regarded as a value obtained by elemental analysis of the entire particle using, for example, ICP-MS. Furthermore, when the particles in step S32 are subjected to XPS analysis, the relative value of the magnesium concentration, when the cobalt concentration is taken as 1, is preferably 0.4 to 1.5, more preferably 0.45 to 1.00. The relative value of the fluorine concentration is preferably 0.05 to 1.5, more preferably 0.3 to 1.00.
[0140] Next, in step S41, a lithium source and a transition metal source (M 193 In this embodiment, nickel and manganese are used as the transition metal source.
[0141] Next, in step S71, the composite oxide to be used in regions 191 and 192, the lithium source, and the transition metal source in region 193 are synthesized. For example, the synthesis method includes mixing these materials by a solid phase method and then heating them.
[0142] In this way, particles 190 are produced (step S72).
[0143] The composite oxide used in region 191 is preferably a material having a higher melting point than the composite oxide used in region 193. Alternatively, the composite oxide used in region 191 is preferably a material having higher thermal stability than the composite oxide contained in region 193. Due to this difference in melting point or thermal stability, for example, the heating in the synthesis of step S71 can be set to a temperature and time such that the composite oxide used in region 191 is stable while the composite oxide contained in region 193 sufficiently interdiffuses with each other.
[0144] Furthermore, the ionic radius of the cation of element X used in region 192 is preferably larger than the ionic radius of the cation of the metal used in region 191. Due to this difference in ionic radius, element X tends to be unevenly distributed in region 192. Furthermore, region 192 tends to exhibit the function of suppressing interdiffusion of elements in regions 191 and 193.
[0145] A particle 190 having regions 191 to 194 can be fabricated, for example, as shown in FIG. 5B.
[0146] Steps S11 to S41 can be fabricated in the same manner as in FIG. 5A.
[0147] Next, in step S51, a composite oxide, a lithium source, and a transition metal source are mixed and synthesized, for example, by a solid phase method in which these are mixed and then heated.
[0148] In this way, the composite oxide to be used in the regions 191 to 193 is prepared (step S52).
[0149] Next, in step S61, the X source (X 194 A source of halogen is provided.
[0150] Next, in step S71, a composite oxide, an X source, and a halogen source are mixed and synthesized. For example, the synthesis method may be a method in which these are mixed by a solid phase method and then heated.
[0151] In this way, particles 190 are produced (step S72).
[0152] Furthermore, the ionic radius of the cation of element X used in region 194 is preferably larger than the ionic radius of the cation of the metal used in region 193. Due to this difference in ionic radius, element X tends to be unevenly distributed in region 194.
[0153] This embodiment can be used in combination with other embodiments.
[0154] (Embodiment 2) In this embodiment, an example of a material used for region 191 (core) shown in Fig. 1A is shown. A material having a layered rock salt crystal structure, such as lithium cobalt oxide (LiCoO), for region 191 has a high discharge capacity and is excellent as a positive electrode active material for secondary batteries.
[0155] An example of a material having a layered rock-salt crystal structure is a composite oxide represented by LiMO2. In this specification and the like, the lithium composite oxide represented by LiMO2 may have any composition as long as it has a layered rock-salt crystal structure, and its composition is not strictly limited to Li:M:O=1:1:2. With reference to FIG. 6, a case where cobalt is used as the transition metal M in the positive electrode active material will be described.
[0156] It is known that the strength of the Jahn-Teller effect in transition metal compounds varies depending on the number of electrons in the d orbital of the transition metal.
[0157] In compounds containing nickel, distortion can easily occur due to the Jahn-Teller effect. Therefore, when LiNiO2 is charged and discharged at high voltages, there is a concern that the crystal structure may collapse due to distortion. In LiCoO2, the influence of the Jahn-Teller effect is suggested to be small, and it may be preferable because it may have better resistance to high-voltage charging.
[0158] The positive electrode active material having the crystal structure shown in Figure 6 is lithium cobalt oxide (LiCoO) that can be prepared by the method described below, i.e., lithium cobalt oxide (LiCoO) to which no halogen or magnesium is added. The crystal structure of this lithium cobalt oxide changes depending on the depth of charge.
[0159] As shown in Figure 6, lithium cobalt oxide at a depth of charge of 0 (discharged state) has a region with a crystal structure of space group R-3m, in which lithium occupies octahedral sites and there are three CoO2 layers in the unit cell. For this reason, this crystal structure is sometimes called an O3-type crystal structure. Note that a CoO2 layer is an octahedral structure in which cobalt is six-coordinated with oxygen, and the layers are connected in a plane with edge sharing.
[0160] At a charge depth of 1, the crystal structure is of the space group P-3m1, with one CoO2 layer in the unit cell. Therefore, this crystal structure is sometimes called the O1-type crystal structure.
[0161] Furthermore, lithium cobalt oxide at a charge depth of approximately 0.8 has a crystal structure of the space group R-3m. This structure can be described as a structure in which CoO2 structures such as P-3m1(O1) and LiCoO2 structures such as R-3m(O3) are alternately stacked. Therefore, this crystal structure is sometimes referred to as the H1-3 crystal structure. In reality, the H1-3 crystal structure has twice the number of cobalt atoms per unit cell as other structures. However, in Figure 6 and other parts of this specification, for ease of comparison with other crystal structures, the c-axis of the H1-3 crystal structure is shown as half the unit cell.
[0162] As an example, the H1-3 type crystal structure can express the coordinates of cobalt and oxygen in the unit cell as Co(0, 0, 0.42150 ± 0.00016), O1(0, 0, 0.27671 ± 0.00045), O2(0, 0, 0.11535 ± 0.00045), as described in Non-Patent Document 2. O1 and O2 are oxygen atoms respectively. Thus, the H1-3 type crystal structure is represented by a unit cell using one cobalt and two oxygens.
[0163] Further, an example of the material used for the regions 193 and 194 shown in FIG. 1B is shown below. The material used for at least one of the regions 191 or 192 shown in FIG. 1B preferably has lithium, cobalt as the transition metal M, oxygen, and magnesium. Further, the impurities in the regions 192 and 194 preferably have halogens such as fluorine and chlorine.
[0164] When magnesium and fluorine are added to lithium cobaltate (LiCoO2), the crystal structure at a charge depth of 0 (discharge state) is R-3m (O3), but at a fully charged charge depth, it has a crystal structure different from the H1-3 type crystal structure. This structure belongs to the space group R-3m, and ions such as cobalt and magnesium occupy the oxygen six-coordination positions. Also, the symmetry of the CoO2 layer of this structure is the same as that of the O3 type. Therefore, this structure is referred to as the O3' type crystal structure in this specification and the like. Also, in both the case of the O3 type crystal structure and the O3' type crystal structure, it is preferable that magnesium is thinly present between the CoO2 layers, that is, in the lithium sites. Also, it is preferable that fluorine is randomly and thinly present in the oxygen sites.
[0165] The O3'-type crystal structure is preferably represented by a unit cell using one cobalt and one oxygen. This indicates that the symmetry between cobalt and oxygen differs between the O3'-type crystal structure and the H1-3-type crystal structure, and the O3'-type crystal structure exhibits a smaller change from the O3 structure than the H1-3-type crystal structure. The unit cell that is more preferably used to represent the crystal structure of the positive electrode active material can be selected, for example, so that the GOF (goodness of fitness) value is smaller in Rietveld analysis of XRD.
[0166] In addition, in the O3' type crystal structure, light elements such as lithium may occupy the oxygen tetracoordination position.
[0167] In addition, in Figure 7, which shows the crystal structure of the positive electrode active material, lithium is shown to exist at all lithium sites with equal probability, but the O3'-type crystal structure is not limited to this. It may exist unevenly at some lithium sites. For example, Li, which belongs to the space group P2 / m, 0.5 As with CoO2, lithium may be present in some aligned lithium sites. The distribution of lithium can be analyzed, for example, by neutron diffraction. The crystal structure in Figure 7 has a lattice constant of 2.871 Å along the a-axis and a lattice constant of 13.781 Å along the c-axis.
[0168] It can also be said that the O3' type crystal structure is similar to the CdCl2 type crystal structure, although it has random Li between the layers. This CdCl2 type-like crystal structure was observed when lithium nickel oxide was charged to a charge depth of 0.94 (Li 0.06 The crystal structure is similar to that of lithium cobaltate (NiO2), but it is known that pure lithium cobaltate or layered rock salt-type positive electrode active materials containing a large amount of cobalt do not usually adopt this crystal structure.
[0169] In positive electrode active materials with an O3'-type crystal structure, when a large amount of lithium is released during high-voltage charging, the change in crystal structure is more suppressed than in the crystal structure shown in Figure 6. For example, as shown by the dotted line in Figure 7, there is almost no displacement of the CoO2 layers in these crystal structures.
[0170] More specifically, a cathode active material having the crystal structure shown in FIG. 7 has a highly stable crystal structure even at high charge voltages. For example, in a cathode active material having the crystal structure shown in FIG. 7, there exists a charge voltage region where the R-3m(O3) crystal structure can be maintained even at a charge voltage where the H1-3 crystal structure is obtained, for example, a voltage of about 4.6 V relative to the potential of lithium metal. Furthermore, there exists a region where the O3' crystal structure can be obtained even at higher charge voltages, for example, at voltages of 4.65 V or higher and 4.7 V or lower relative to the potential of lithium metal. Furthermore, the H1-3 crystal may finally be observed when the charge voltage is increased. Furthermore, the O3' crystal structure may be obtained even at lower charge voltages (for example, at a charge voltage of 4.5 V or higher but lower than 4.6 V relative to the potential of lithium metal).
[0171] As described above, the positive electrode active material having the crystal structure shown in FIG. 7 is suitable for the core because the crystal structure is resistant to collapse even when repeatedly charged and discharged at high voltages.
[0172] Here, lithium cobalt oxide (LiCoO2) is shown as an example of the material used for the core, but this is just an example and is not particularly limited.
[0173] In addition, the O3' type crystal structure can be expressed by the coordinates of cobalt and oxygen in the unit cell being Co(0,0,0.5), O(0,0,x), with 0.20≦x≦0.25.
[0174] Additives such as magnesium, which are present randomly and dilutely between the CoO2 layers, i.e., at the lithium sites, have the effect of suppressing the displacement of the CoO2 layers during high-voltage charging. Therefore, the presence of magnesium between the CoO2 layers tends to result in an O3'-type crystal structure. Therefore, it is preferable that magnesium be distributed throughout the particles of a positive electrode active material having the crystal structure shown in Figure 7. In addition, to distribute magnesium throughout the particles, it is preferable to perform a heat treatment during the process of preparing a positive electrode active material having the crystal structure shown in Figure 7.
[0175] However, if the heat treatment temperature is too high, cation mixing occurs, increasing the possibility that additives, such as magnesium, will enter the cobalt site. Magnesium present in the cobalt site will not be effective in maintaining the R-3m structure during high-voltage charging. Furthermore, if the heat treatment temperature is too high, there are concerns that adverse effects such as cobalt being reduced to a divalent state and lithium evaporating may occur.
[0176] Therefore, it is preferable to add a material that functions as a flux to the lithium cobalt oxide before the heat treatment to distribute the magnesium throughout the particles. This causes a drop in the melting point. Lowering the melting point makes it easier to distribute the magnesium throughout the particles at a temperature where cation mixing is unlikely to occur. Furthermore, if the material that functions as a flux contains fluorine, it is expected that corrosion resistance to the hydrofluoric acid produced by decomposition of the electrolyte will be improved.
[0177] Note that increasing the magnesium concentration above a desired value may reduce the effect on stabilizing the crystal structure. This is thought to be because magnesium occupies not only the lithium site but also the cobalt site. The number of magnesium atoms in the positive electrode active material having the crystal structure shown in FIG. 7 is preferably 0.001 to 0.1 times the number of atoms of the transition metal M, more preferably greater than 0.01 and less than 0.04, and even more preferably approximately 0.02. Alternatively, it is preferably 0.001 to 0.04. Alternatively, it is preferably 0.01 to 0.1. The magnesium concentration shown here may be, for example, a value obtained by performing elemental analysis of the entire particles of the positive electrode active material using ICP-MS or the like, or may be based on the value of the raw material composition during the production process of the positive electrode active material.
[0178] Lithium cobalt oxide may contain one or more metals other than cobalt (hereinafter, metal Z), such as nickel, aluminum, manganese, titanium, vanadium, and chromium. Adding one or more of nickel and aluminum is particularly preferred. Manganese, titanium, vanadium, and chromium may be stable and easily tetravalent, which may contribute significantly to structural stability. Adding metal Z to a positive electrode active material having the crystal structure shown in FIG. 7 may result in a more stable crystal structure, for example, in a high-voltage charged state. In a positive electrode active material having the crystal structure shown in FIG. 7, metal Z is preferably added at a concentration that does not significantly alter the crystallinity of the lithium cobalt oxide. For example, the amount is preferably such that the aforementioned Jahn-Teller effect is not exhibited.
[0179] As shown in the legend in Figure 7, transition metals such as nickel and manganese, and aluminum are preferably present at the cobalt site, but some may be present at the lithium site. Magnesium is also preferably present at the lithium site. Oxygen may be partially substituted with fluorine.
[0180] As the magnesium concentration of a positive electrode active material having the crystal structure shown in Figure 7 increases, the charge / discharge capacity of the positive electrode active material may decrease. For example, this may be due to magnesium entering lithium sites, reducing the amount of lithium contributing to charge / discharge. Excess magnesium may also produce magnesium compounds that do not contribute to charge / discharge. By incorporating nickel as the metal Z in addition to magnesium into a positive electrode active material having the crystal structure shown in Figure 7, the charge / discharge capacity per weight and per volume may be increased. Furthermore, by incorporating aluminum as the metal Z in addition to magnesium into a positive electrode active material having the crystal structure shown in Figure 7, the charge / discharge capacity per weight and per volume may be increased. Furthermore, by incorporating nickel and aluminum in addition to magnesium into a positive electrode active material having the crystal structure shown in Figure 7, the charge / discharge capacity per weight and per volume may be increased.
[0181] Preferred concentrations of elements such as magnesium and metal Z contained in the positive electrode active material having the crystal structure shown in FIG. 7 are expressed below in terms of atomic number.
[0182] The number of nickel atoms in the positive electrode active material having the crystal structure shown in FIG. 7 is preferably more than 0% but not more than 7.5% of the number of cobalt atoms, more preferably 0.05% to 4%, and even more preferably 0.1% to 2%. Alternatively, it is preferably more than 0% but not more than 4%. Alternatively, it is preferably more than 0% but not more than 2%. Alternatively, it is preferably 0.05% to 7.5%. Alternatively, it is preferably 0.05% to 2%. Alternatively, it is preferably 0.1% to 7.5%. Alternatively, it is preferably 0.1% to 4%. The nickel concentration shown here may be, for example, a value obtained by performing elemental analysis of the entire particles of the positive electrode active material using ICP-MS or the like, or may be based on the value of the raw material composition during the production process of the positive electrode active material.
[0183] Nickel contained at the above concentration is likely to dissolve uniformly throughout the positive electrode active material having the crystal structure shown in Figure 7, thereby contributing to the stabilization of the crystal structure of the inner portion 100b in particular. Furthermore, the presence of divalent nickel in the inner portion 100b may allow divalent additive elements, such as magnesium, present randomly and dilutely at lithium sites nearby to exist more stably. This can suppress the elution of magnesium even after high-voltage charging and discharging. This can improve charge-discharge cycle performance. Thus, combining the effects of nickel in the inner portion 100b and the effects of magnesium, aluminum, titanium, fluorine, and the like in the surface portion 100a is extremely effective in stabilizing the crystal structure during high-voltage charging.
[0184] The number of aluminum atoms in the positive electrode active material having the crystal structure shown in Figure 7 is preferably 0.05% to 4% of the number of cobalt atoms, more preferably 0.1% to 2%, and even more preferably 0.3% to 1.5%. Alternatively, 0.05% to 2% is preferred. Alternatively, 0.1% to 4% is preferred. The aluminum concentration shown here may be a value obtained by performing elemental analysis of the entire particles of the positive electrode active material using, for example, GD-MS, ICP-MS, or the like, or may be based on the value of the composition of raw materials in the process of producing the positive electrode active material.
[0185] When the positive electrode active material having the crystal structure shown in FIG. 7 contains magnesium in addition to element X, the stability in a high-voltage charged state is extremely high. When element X is phosphorus, the number of phosphorus atoms is preferably 1% to 20% of the number of cobalt atoms, more preferably 2% to 10%, and even more preferably 3% to 8%. Alternatively, 1% to 10% is preferred. Alternatively, 1% to 8% is preferred. Alternatively, 2% to 20% is preferred. Alternatively, 2% to 8% is preferred. Alternatively, 3% to 20% is preferred. Alternatively, 3% to 10% is preferred. In addition, the number of magnesium atoms is preferably 0.1% to 10% of the number of cobalt atoms, more preferably 0.5% to 5%, and even more preferably 0.7% to 4%. Alternatively, 0.1% to 5% is preferred. Alternatively, 0.1% to 4% is preferred. Alternatively, 0.5% to 10% is preferred. Alternatively, 0.5% to 4% is preferred. Alternatively, the concentration of phosphorus and magnesium is preferably 0.7% or more and 10% or less. Alternatively, the concentration of phosphorus and magnesium is preferably 0.7% or more and 5% or less. The concentrations of phosphorus and magnesium shown here may be values obtained by performing elemental analysis of the entire particles of the positive electrode active material using, for example, ICP-MS or the like, or may be based on values obtained by mixing raw materials in the process of producing the positive electrode active material.
[0186] A positive electrode active material having the above-described configuration can reduce the displacement of the CoO2 layer during repeated high-voltage charge and discharge. Furthermore, it can reduce volume change. Therefore, a secondary battery using a positive electrode active material having the crystalline structure shown in FIG. 7 in at least a portion of its core can achieve excellent cycle characteristics. Furthermore, a positive electrode active material having the crystalline structure shown in FIG. 7 in its core can have a stable crystalline structure in a high-voltage charged state. Therefore, a secondary battery using a positive electrode active material having the crystalline structure shown in FIG. 7 in its core may be less likely to short circuit when maintained in a high-voltage charged state. In such cases, the safety of the secondary battery is further improved, which is preferable.
[0187] The positive electrode active material having the crystal structure shown in Figure 7 at its core shows small changes in crystal structure and small differences in volume per the same number of transition metal atoms when it is fully discharged and when it is charged at a high voltage.
[0188] The space group of a crystal structure is identified by XRD, electron diffraction, neutron diffraction, etc. Therefore, in this specification and the like, "belonging to a certain space group" or "being a certain space group" can be rephrased as "identified with a certain space group."
[0189] This embodiment mode can be freely combined with other embodiment modes.
[0190] (Embodiment 3) In this embodiment, an example of manufacturing a secondary battery using the particles 190 described in embodiment 1 will be described. The particles 190 described in embodiment 1 are used to manufacture a positive electrode. The secondary battery has at least an outer casing, a current collector, an active material (positive electrode active material or negative electrode active material), a conductive additive, and a binder. It also has an electrolyte solution in which a lithium salt or the like is dissolved. In the case of a secondary battery using an electrolyte solution, a positive electrode, a negative electrode, and a separator are provided between the positive electrode and the negative electrode.
[0191] [Positive electrode] First, the positive electrode will be described. The positive electrode has a positive electrode active material layer and a current collector. Figure 8A shows an example of a schematic cross-sectional view of the positive electrode.
[0192] The current collector 500 is a metal foil, and the positive electrode is formed by applying a slurry onto the metal foil and drying it. After drying, further pressing may be performed. The positive electrode is formed by forming an active material layer on the current collector 500.
[0193] The slurry is a material liquid used to form an active material layer on the current collector 500, and refers to a material containing at least an active material, a binder, and a solvent, and preferably further mixed with a conductive additive. The slurry is also called an electrode slurry or an active material slurry, and is sometimes called a positive electrode slurry when forming a positive electrode active material layer, and a negative electrode slurry when forming a negative electrode active material layer.
[0194] The conductive additive, also called a conductivity-imparting agent or conductive material, is made of a carbon material. By attaching the conductive additive between multiple active materials, the active materials are electrically connected to each other, thereby increasing their conductivity. Note that "attachment" does not only refer to physical adhesion between the active material and the conductive additive, but also encompasses cases where a covalent bond is formed, bonding due to van der Waals forces, the conductive additive covering part of the surface of the active material, the conductive additive fitting into the surface irregularities of the active material, and electrical connection even when not in contact with each other.
[0195] Carbon black (furnace black, acetylene black, graphite, etc.) is a typical carbon material used as a conductive additive.
[0196] In Fig. 8A, acetylene black 503 is shown as a conductive additive. Fig. 8A also shows an example in which a second active material 502 having a particle size smaller than that of the particles 190 described in the first embodiment is mixed. By mixing particles of different sizes, a high-density positive electrode can be obtained. Note that the particles 190 described in the first embodiment correspond to the active material 501 in Fig. 8A.
[0197] A binder (resin) is mixed into the positive electrode of a secondary battery to bond the current collector 500, such as a metal foil, to the active material. The binder is also called a binding agent. The binder is a polymer material, and if a large amount of binder is added, the proportion of active material in the positive electrode decreases, reducing the discharge capacity of the secondary battery. Therefore, the amount of binder mixed is kept to a minimum. In Figure 8A, the areas not filled with the active material 501, second active material 502, and acetylene black 503 indicate voids or binder.
[0198] 8A, the boundary between the core region and the shell region of active material 501 is indicated by a dotted line inside active material 501. Note that while active material 501 is shown as a sphere in FIG. 8A, the shape is not particularly limited and various shapes are possible. The cross-sectional shape of active material 501 may be elliptical, rectangular, trapezoidal, conical, square with rounded corners, or asymmetrical.
[0199] In Figure 8B, the active material 501 is illustrated in various shapes. Figure 8B shows an example different from Figure 8A.
[0200] In the positive electrode in FIG. 8B, graphene 504 is used as a carbon material used as a conductive additive.
[0201] Graphene is a carbon material that has amazing electrical, mechanical, and chemical properties and is expected to be applied in a variety of fields, including field-effect transistors and solar cells.
[0202] In FIG. 8B, a positive electrode active material layer including an active material 501, graphene 504, and acetylene black 503 is formed on a current collector 500.
[0203] In the step of mixing graphene 504 and acetylene black 503 to obtain electrode slurry, the weight of the carbon black to be mixed is preferably 1.5 to 20 times, more preferably 2 to 9.5 times, that of graphene.
[0204] Furthermore, when the mixture of graphene 504 and acetylene black 503 is within the above range, the dispersion stability of acetylene black 503 is excellent and agglomerations are less likely to occur during slurry preparation. Furthermore, when the mixture of graphene 504 and acetylene black 503 is within the above range, a higher electrode density can be achieved than in a positive electrode using only acetylene black 503 as a conductive additive. Increasing the electrode density can increase the capacity per unit weight. Specifically, the density of the positive electrode active material layer measured by weight can be increased to more than 3.5 g / cc. Furthermore, when the particles 190 described in the first embodiment are used in the positive electrode and the mixture of graphene 504 and acetylene black 503 is within the above range, a synergistic effect can be expected in terms of increasing the capacity of the secondary battery, which is preferable.
[0205] Although the electrode density is lower than that of a positive electrode using only graphene as a conductive additive, rapid charging is possible by mixing the first carbon material (graphene) and the second carbon material (acetylene black) in the above range. Furthermore, when the particles 190 described in the first embodiment are used in the positive electrode and the mixture of the graphene 504 and the acetylene black 503 is in the above range, the secondary battery becomes more stable and a synergistic effect of being able to handle even faster charging can be expected, which is preferable.
[0206] These features are effective for use as a secondary battery for vehicles.
[0207] Increasing the number of secondary batteries and increasing the vehicle's weight reduces the driving range because the energy required to move increases. By using high-density secondary batteries, the driving range can be maintained with almost no change in the total weight of the vehicle equipped with the same weight of secondary batteries.
[0208] Furthermore, as vehicle secondary batteries reach high capacity, they require more power for charging, so it is desirable to complete charging in a short time.Furthermore, charging is performed under high-rate charging conditions during so-called regenerative charging, in which temporary power is generated when the vehicle brakes are applied and the power is charged, so good rate characteristics are required for vehicle secondary batteries.
[0209] By using the particles 190 described in the first embodiment for the positive electrode and by adjusting the mixture ratio of acetylene black and graphene to the optimum range, it is possible to achieve both high density of the electrode and creation of appropriate gaps necessary for ion conduction, thereby obtaining a secondary battery for automotive use with high energy density and good output characteristics.
[0210] This configuration is also effective for portable information terminals, and by using the particles 190 described in the first embodiment for the positive electrode and by adjusting the mixture ratio of acetylene black and graphene within an optimal range, the secondary battery can be made smaller and have a higher capacity. In addition, by adjusting the mixture ratio of acetylene black and graphene within an optimal range, rapid charging of the portable information terminal is also possible.
[0211] In addition, in Figure 8B, the boundary between the core region and shell region of active material 501 is indicated by a dotted line inside active material 501. Note that in Figure 8B, the regions not filled with active material 501, graphene 504, and acetylene black 503 indicate voids or binder. Voids are necessary for the electrolyte to penetrate, but if there are too many voids, the electrode density decreases, and if there are too few voids, the electrolyte cannot penetrate and the voids remain even after the secondary battery is completed, resulting in reduced efficiency.
[0212] By using the particles 190 described in the first embodiment for the positive electrode and by adjusting the mixture ratio of acetylene black and graphene to the optimum range, it is possible to achieve both high density of the electrode and creation of appropriate gaps necessary for ion conduction, thereby obtaining a secondary battery with high energy density and good output characteristics.
[0213] 8C shows an example of a positive electrode in which carbon nanotubes 505 are used instead of graphene. Fig. 8C shows an example different from Fig. 8B. The use of carbon nanotubes 505 can prevent aggregation of carbon black such as acetylene black 503 and improve dispersibility.
[0214] In FIG. 8C, the regions not filled with active material 501, carbon nanotubes 505, and acetylene black 503 indicate voids or binders.
[0215] Another example of a positive electrode is shown in Fig. 8D. Fig. 8C shows an example in which carbon nanotubes 505 are used in addition to graphene 504. Using both graphene 504 and carbon nanotubes 505 can prevent aggregation of carbon black such as acetylene black 503 and further improve dispersibility.
[0216] In FIG. 8D, the regions not filled with the active material 501, the carbon nanotubes 505, the graphene 504, and the acetylene black 503 indicate voids or binders.
[0217] A secondary battery can be produced by using any one of the positive electrodes shown in Figures 8A, 8B, 8C, and 8D, stacking a separator on the positive electrode, placing the stacked negative electrode on the separator in a container (such as an exterior body or a metal can) and filling the container with an electrolyte.
[0218] Although the above configuration shows an example of a secondary battery using an electrolytic solution, the present invention is not particularly limited.
[0219] For example, the particles 190 described in the first embodiment can be used to fabricate a semi-solid battery or an all-solid battery.
[0220] In this specification, a semi-solid battery refers to a battery that has a semi-solid material in at least one of the electrolyte layer, positive electrode, and negative electrode. The term "semi-solid" does not mean that the ratio of solid material is 50%. Semi-solid means that the battery has solid properties, such as small volume change, while also possessing some liquid-like properties, such as flexibility. As long as these properties are met, the battery may be made of a single material or multiple materials. For example, the battery may be made by infiltrating a porous solid material with a liquid material.
[0221] In this specification, a polymer electrolyte secondary battery refers to a secondary battery having a polymer in the electrolyte layer between a positive electrode and a negative electrode. Polymer electrolyte secondary batteries include dry (or intrinsic) polymer electrolyte batteries and polymer gel electrolyte batteries. Polymer electrolyte secondary batteries may also be called semi-solid batteries.
[0222] When a semi-solid battery is fabricated using the particles 190 described in the first embodiment, the semi-solid battery becomes a secondary battery with a large charge / discharge capacity. Furthermore, the semi-solid battery can be a semi-solid battery with a high charge / discharge voltage. Alternatively, a semi-solid battery with high safety and reliability can be realized.
[0223] [Negative electrode] The negative electrode includes a negative electrode active material layer and a negative electrode current collector. The negative electrode active material layer may also include a conductive additive and a binder.
[0224] <Negative electrode active material> As the negative electrode active material, for example, an alloy-based material or a carbon-based material can be used.
[0225] The negative electrode active material can be an element capable of undergoing charge-discharge reactions through alloying and dealloying reactions with lithium. For example, materials containing at least one of silicon, tin, gallium, aluminum, germanium, lead, antimony, bismuth, silver, zinc, cadmium, and indium can be used. These elements have a larger capacity than carbon, and silicon, in particular, has a high theoretical capacity of 4200 mAh / g. For this reason, silicon is preferred as the negative electrode active material. Compounds containing these elements can also be used. Examples include SiO, Mg2Si, Mg2Ge, SnO, SnO2, Mg2Sn, SnS2, V2Sn3, FeSn2, CoSn2, Ni3Sn2, Cu6Sn5, Ag3Sn, Ag3Sb, Ni2MnSb, CeSb3, LaSn3, La3Co2Sn7, CoSb3, InSb, and SbSn. Here, elements that can undergo charge-discharge reactions by alloying / dealloying reactions with lithium, and compounds containing such elements, are sometimes called alloy-based materials.
[0226] In this specification and the like, SiO refers to, for example, silicon monoxide. Alternatively, SiO refers to SiO x Here, x preferably has a value of 1 or close to 1. For example, x is preferably 0.2 or more and 1.5 or less, and more preferably 0.3 or more and 1.2 or less.
[0227] Examples of carbonaceous materials that can be used include graphite, easily graphitizable carbon (soft carbon), non-graphitizable carbon (hard carbon), carbon nanotubes, graphene, and carbon black.
[0228] Examples of graphite include artificial graphite and natural graphite. Examples of artificial graphite include mesocarbon microbeads (MCMB), coke-based artificial graphite, and pitch-based artificial graphite. Here, spherical graphite having a spherical shape can be used as the artificial graphite. For example, MCMB may have a spherical shape and is preferred. Furthermore, it is relatively easy to reduce the surface area of MCMB, and this may be preferred. Examples of natural graphite include flake graphite and spherical natural graphite.
[0229] When lithium ions are inserted into graphite (when lithium-graphite intercalation compounds are formed), graphite exhibits a low potential similar to that of metallic lithium (0.05V to 0.3V vs. Li / Li + ) This allows lithium-ion secondary batteries to exhibit high operating voltages. Furthermore, graphite is preferred because it has advantages such as a relatively high capacity per unit volume, a relatively small volume expansion, low cost, and higher safety compared to lithium metal.
[0230] In addition, titanium dioxide (TiO2), lithium titanium oxide (Li4Ti5O 12 ), lithium-graphite intercalation compound (Li x C6), niobium pentoxide (Nb2O5), tungsten oxide (WO2), molybdenum oxide (MoO2), and other oxides can be used.
[0231] In addition, the negative electrode active material is a composite nitride of lithium and transition metals, Li3N-type 3-x M x N (M=Co, Ni, Cu) can be used. For example, Li 2.6 Co 0.4 N3 has a large charge / discharge capacity (900mAh / g, 1890mAh / cm 3 ) and is preferred.
[0232] When a composite nitride of lithium and a transition metal is used, lithium ions are contained in the negative electrode active material, and therefore it can be preferably combined with a material that does not contain lithium ions, such as V2O5 or Cr3O8, as the positive electrode active material. Even when a material containing lithium ions is used as the positive electrode active material, the composite nitride of lithium and a transition metal can be used as the negative electrode active material by first desorbing the lithium ions contained in the positive electrode active material.
[0233] In addition, materials that undergo a conversion reaction can also be used as the negative electrode active material. For example, transition metal oxides that do not form alloys with lithium, such as cobalt oxide (CoO), nickel oxide (NiO), and iron oxide (FeO), can be used as the negative electrode active material. Materials that undergo a conversion reaction include oxides such as Fe2O3, CuO, Cu2O, RuO2, and Cr2O3, and CoS 0.89 It also occurs with sulfides such as NiS and CuS, nitrides such as Zn3N2, Cu3N and Ge3N4, phosphides such as NiP2, FeP2 and CoP3, and fluorides such as FeF3 and BiF3.
[0234] As the conductive additive and binder that can be contained in the negative electrode active material layer, the same materials as the conductive additive and binder that can be contained in the positive electrode active material layer can be used.
[0235] <Negative electrode current collector> The negative electrode current collector may be made of the same material as the positive electrode current collector, but it is preferable that the negative electrode current collector be made of a material that does not alloy with carrier ions such as lithium.
[0236] [Separator] A separator is placed between the positive electrode and the negative electrode. The separator can be made of, for example, cellulose-containing fibers such as paper, nonwoven fabric, glass fiber, ceramics, or synthetic fibers such as nylon (polyamide), vinylon (polyvinyl alcohol-based fiber), polyester, acrylic, polyolefin, or polyurethane. The separator is preferably processed into a bag shape and placed so as to encase either the positive electrode or the negative electrode.
[0237] The separator may have a multilayer structure. For example, an organic material film such as polypropylene or polyethylene can be coated with a ceramic material, a fluorine-based material, a polyamide material, or a mixture of these. Examples of ceramic materials that can be used include aluminum oxide particles and silicon oxide particles. Examples of fluorine-based materials that can be used include PVDF and polytetrafluoroethylene. Examples of polyamide materials that can be used include nylon and aramid (meta-aramid, para-aramid).
[0238] Coating with ceramic materials improves oxidation resistance, suppressing separator degradation during high-voltage charging and discharging and improving the reliability of secondary batteries. Coating with fluorine-based materials also improves adhesion between the separator and electrodes, improving output characteristics. Coating with polyamide materials, especially aramid, improves heat resistance, improving the safety of secondary batteries.
[0239] For example, both sides of a polypropylene film may be coated with a mixed material of aluminum oxide and aramid, or the surface of the polypropylene film that contacts the positive electrode may be coated with a mixed material of aluminum oxide and aramid, and the surface that contacts the negative electrode may be coated with a fluorine-based material.
[0240] When a separator with a multilayer structure is used, the safety of the secondary battery can be maintained even if the overall thickness of the separator is thin, and therefore the capacity per volume of the secondary battery can be increased.
[0241] [Electrolyte] The electrolytic solution contains a solvent and an electrolyte. The solvent for the electrolytic solution is preferably an aprotic organic solvent, such as ethylene carbonate (EC), propylene carbonate (PC), butylene carbonate, chloroethylene carbonate, vinylene carbonate, γ-butyrolactone, γ-valerolactone, dimethyl carbonate (DMC), diethyl carbonate (DEC), ethyl methyl carbonate (EMC), methyl formate, methyl acetate, ethyl acetate, methyl propionate, ethyl propionate, propyl propionate, methyl butyrate, 1,3-dioxane, 1,4-dioxane, dimethoxyethane (DME), dimethyl sulfoxide, diethyl ether, methyl diglyme, acetonitrile, benzonitrile, tetrahydrofuran, sulfolane, or sultone, or any combination and ratio of two or more of these.
[0242] Furthermore, by using one or more flame-retardant and non-volatile ionic liquids (room-temperature molten salts) as the solvent for the electrolyte, it is possible to prevent the secondary battery from exploding or catching fire even if the internal temperature rises due to an internal short circuit or overcharging of the secondary battery. Ionic liquids are composed of cations and anions, including organic cations and anions. Examples of organic cations used in the electrolyte include aliphatic onium cations such as quaternary ammonium cations, tertiary sulfonium cations, and quaternary phosphonium cations, and aromatic cations such as imidazolium cations and pyridinium cations. Examples of anions used in the electrolyte include monovalent amide anions, monovalent methide anions, fluorosulfonate anions, perfluoroalkylsulfonate anions, tetrafluoroborate anions, perfluoroalkylborate anions, hexafluorophosphate anions, and perfluoroalkylphosphate anions.
[0243] Examples of the electrolyte to be dissolved in the solvent include LiPF6, LiClO4, LiAsF6, LiBF4, LiAlCl4, LiSCN, LiBr, LiI, Li2SO4, and Li2B 10 Cl 10 , Li2B12 Cl 12 Lithium salts such as LiCF3SO3, LiC4F9SO3, LiC(CF3SO2)3, LiC(C2F5SO2)3, LiN(CF3SO2)2, LiN(C4F9SO2)(CF3SO2), LiN(C2F5SO2)2, etc. can be used alone or in any combination and ratio of two or more of these.
[0244] The electrolyte used in the secondary battery is preferably a highly purified electrolyte with a low content of granular dust and elements other than the constituent elements of the electrolyte (hereinafter simply referred to as "impurities"). Specifically, the weight ratio of impurities to the electrolyte is preferably 1% or less, preferably 0.1% or less, and more preferably 0.01% or less.
[0245] The electrolyte may also contain additives such as vinylene carbonate, propane sultone (PS), tert-butylbenzene (TBB), fluoroethylene carbonate (FEC), lithium bis(oxalato)borate (LiBOB), or dinitrile compounds such as succinonitrile and adiponitrile. The concentration of the additive may be, for example, 0.1 wt % to 5 wt % of the total solvent.
[0246] Alternatively, a polymer gel electrolyte may be used in which a polymer is swollen with an electrolytic solution.
[0247] The use of a polymer gel electrolyte improves safety against leakage, etc. It also enables the secondary battery to be made thinner and lighter.
[0248] Examples of polymers that can be gelled include silicone gel, acrylic gel, acrylonitrile gel, polyethylene oxide gel, polypropylene oxide gel, and fluorine-based polymer gel. For example, polymers having a polyalkylene oxide structure such as polyethylene oxide (PEO), PVDF, polyacrylonitrile, and copolymers containing these can be used. For example, PVDF-HFP, a copolymer of PVDF and hexafluoropropylene (HFP), can be used. The polymer formed may also have a porous shape.
[0249] In addition, instead of an electrolyte solution, a solid electrolyte containing inorganic materials such as sulfides or oxides, or a solid electrolyte containing polymer materials such as polyethylene oxide (PEO) can be used. When a solid electrolyte is used, the installation of a separator or spacer is unnecessary. Furthermore, since the entire battery can be solidified, there is no risk of leakage, dramatically improving safety.
[0250] Therefore, the particles 190 described in the first embodiment can also be applied to all-solid-state batteries. By applying the positive electrode slurry or electrode to an all-solid-state battery, an all-solid-state battery with high safety and excellent characteristics can be obtained.
[0251] This embodiment mode can be freely combined with other embodiment modes.
[0252] (Fourth embodiment) In this embodiment, an example of manufacturing an all-solid-state battery using the particles 190 described in the first embodiment will be described.
[0253] As shown in FIG. 9A, a secondary battery 400 according to one embodiment of the present invention includes a positive electrode 410, a solid electrolyte layer 420, and a negative electrode 430.
[0254] Positive electrode 410 includes positive electrode current collector 413 and positive electrode active material layer 414. Positive electrode active material layer 414 includes positive electrode active material 411 and solid electrolyte 421. Positive electrode active material 411 uses particles 190 described in Embodiment 1, and the boundary between the core region and the shell region is indicated by a dotted line. Positive electrode active material layer 414 may also include a conductive additive and a binder.
[0255] Solid electrolyte layer 420 has solid electrolyte 421. Solid electrolyte layer 420 is located between positive electrode 410 and negative electrode 430, and is a region that has neither positive electrode active material 411 nor negative electrode active material 431.
[0256] The negative electrode 430 includes a negative electrode current collector 433 and a negative electrode active material layer 434. The negative electrode active material layer 434 includes a negative electrode active material 431 and a solid electrolyte 421. The negative electrode active material layer 434 may also include a conductive additive and a binder. When metallic lithium is used for the negative electrode 430, the negative electrode 430 may not include the solid electrolyte 421, as shown in FIG. 9B . Using metallic lithium for the negative electrode 430 is preferable because it can improve the energy density of the secondary battery 400.
[0257] As the solid electrolyte 421 of the solid electrolyte layer 420, for example, a sulfide-based solid electrolyte, an oxide-based solid electrolyte, a halide-based solid electrolyte, or the like can be used.
[0258] Sulfide-based solid electrolytes include thiosilicon-based (Li 10 GeP2S 12 , Li 3.25 Ge 0.25 P 0.75 S4, etc.), sulfide glasses (70Li2S·30P2S5, 30Li2S·26B2S3·44LiI, 63Li2S·38SiS2·1Li3PO4, 57Li2S·38SiS2·5Li4SiO4, 50Li2S·50GeS2, etc.), sulfide crystallized glasses (Li7P3S 11 , Li 3.25 P 0.95Sulfide-based solid electrolytes have the advantages of being highly conductive, being able to be synthesized at low temperatures, and being relatively soft, which makes it easy to maintain conductive paths even after charging and discharging.
[0259] Oxide-based solid electrolytes include materials with a perovskite crystal structure (La 2 / 3-x Li 3x TiO3, etc.), materials with NASICON-type crystal structure (Li 1-Y Al Y Ti 2-Y (PO4)3, etc.), materials with garnet-type crystal structure (Li7La3Zr2O 12 etc.), materials with LISICON-type crystal structure (Li 14 ZnGeO 16 etc.), LLZO(Li7La3Zr2O 12 ), oxide glass (Li3PO4-Li4SiO4, 50Li4SiO4·50Li3BO3, etc.), oxide glass-ceramics (Li 1.07 Al 0.69 Ti 1.46 (PO4)3, Li 1.5 Al 0.5 Ge 1.5 Oxide-based solid electrolytes have the advantage of being stable in the atmosphere.
[0260] Halide-based solid electrolytes include LiAlCl4, Li3InBr6, LiF, LiCl, LiBr, LiI, etc. Composite materials in which these halide-based solid electrolytes are filled into the pores of porous aluminum oxide or porous silica can also be used as solid electrolytes.
[0261] Also, different solid electrolytes may be mixed and used.
[0262] Among them, Li with NASICON type crystal structure 1+x Al x Ti 2-xSince (PO4)3(0[x]1) (hereinafter referred to as LATP) contains aluminum and titanium, elements that may be contained in the positive electrode active material used in the secondary battery 400 of one embodiment of the present invention, a synergistic effect in improving cycle characteristics can be expected, which is preferable. Furthermore, improved productivity can be expected due to a reduction in the number of processes. Note that in this specification, the NASICON-type crystal structure refers to a compound represented by M2(XO4)3 (M: transition metal, X: S, P, As, Mo, W, etc.), which has a structure in which MO6 octahedra and XO4 tetrahedra are arranged three-dimensionally with vertices shared.
[0263] [Shapes of exterior body and secondary battery] The exterior of the secondary battery 400 of one embodiment of the present invention can be made of various materials and in various shapes, but preferably has a function of applying pressure to the positive electrode, the solid electrolyte layer, and the negative electrode.
[0264] For example, Figure 10 shows an example of a cell for evaluating materials for all-solid-state batteries.
[0265] 10A is a cross-sectional schematic diagram of the evaluation cell, which has a lower member 761, an upper member 762, and a fixing screw and wing nut 764 that fix them in place, and electrode plate 753 is pressed by rotating a holding screw 763 to fix the evaluation material. An insulator 766 is provided between lower member 761 and upper member 762, both made of stainless steel. An O-ring 765 is also provided between upper member 762 and holding screw 763 to provide a tight seal.
[0266] The evaluation material is placed on electrode plate 751, surrounded by insulating tube 752, and pressed from above by electrode plate 753. An enlarged perspective view of the evaluation material and its surroundings is shown in FIG. 10B.
[0267] The evaluation material is an example of a laminate of a positive electrode 750a, a solid electrolyte layer 750b, and a negative electrode 750c, and its cross-sectional view is shown in Fig. 10C. Note that the same reference numerals are used for the same parts in Fig. 10A, Fig. 10B, and Fig. 10C.
[0268] The electrode plate 751 and lower member 761, which are electrically connected to the positive electrode 750a, can be said to correspond to a positive electrode terminal. The electrode plate 753 and upper member 762, which are electrically connected to the negative electrode 750c, can be said to correspond to a negative electrode terminal. Electrical resistance and the like can be measured by applying pressure to the evaluation material via the electrode plate 751 and the electrode plate 753.
[0269] The secondary battery of one embodiment of the present invention preferably uses an airtight package for its exterior. For example, a ceramic package or a resin package can be used. Furthermore, the exterior is preferably sealed in a sealed atmosphere, such as in a glove box, while blocking external air.
[0270] Fig. 11A shows a perspective view of a secondary battery of one embodiment of the present invention, which has an exterior body and a shape different from those in Fig. 10. The secondary battery in Fig. 11A has external electrodes 771 and 772 and is sealed in an exterior body having multiple package members.
[0271] An example of a cross section taken along the dashed line in Figure 11A is shown in Figure 11B. A laminate including positive electrode 750a, solid electrolyte layer 750b, and negative electrode 750c is enclosed and sealed within package member 770a, which is a flat plate with electrode layer 773a provided thereon, frame-shaped package member 770b, and package member 770c, which is a flat plate with electrode layer 773b provided thereon. Package members 770a, 770b, and 770c can be made of an insulating material, such as a resin material or ceramic.
[0272] The external electrode 771 is electrically connected to the positive electrode 750a via the electrode layer 773a and functions as a positive electrode terminal, while the external electrode 772 is electrically connected to the negative electrode 750c via the electrode layer 773b and functions as a negative electrode terminal.
[0273] By using the particles 190 according to the first embodiment, an all-solid-state secondary battery having high energy density and good output characteristics can be realized.
[0274] This embodiment mode can be implemented in appropriate combination with other embodiment modes.
[0275] (Embodiment 5) In this embodiment, an example of the shape of a secondary battery having the positive electrode described in the previous embodiment will be described. The description in the previous embodiment can be referred to for materials used in the secondary battery described in this embodiment.
[0276] <Coin-type secondary battery> First, an example of a coin-type secondary battery will be described. Fig. 12A is an external view of a coin-type (single-layer flat) secondary battery, and Fig. 12B is a cross-sectional view thereof.
[0277] In a coin-type secondary battery 300, a positive electrode can 301, which also serves as a positive electrode terminal, and a negative electrode can 302, which also serves as a negative electrode terminal, are insulated and sealed by a gasket 303 made of polypropylene or the like. The positive electrode 304 is formed by a positive electrode current collector 305 and a positive electrode active material layer 306 provided in contact with the positive electrode current collector. The negative electrode 307 is formed by a negative electrode current collector 308 and a negative electrode active material layer 309 provided in contact with the negative electrode current collector.
[0278] It is to be noted that the positive electrode 304 and the negative electrode 307 used in the coin-type secondary battery 300 each only need to have an active material layer formed on one side.
[0279] Positive electrode can 301 and negative electrode can 302 can be made of a metal such as nickel, aluminum, or titanium that is corrosion-resistant to the electrolyte, or an alloy of these metals or an alloy of these metals with other metals (e.g., stainless steel). Furthermore, to prevent corrosion by the electrolyte, it is preferable to coat them with nickel, aluminum, or the like. Positive electrode can 301 is electrically connected to positive electrode 304, and negative electrode can 302 is electrically connected to negative electrode 307.
[0280] These negative electrode 307, positive electrode 304, and separator 310 are impregnated with an electrolyte, and as shown in FIG. 12B, the positive electrode 304, separator 310, negative electrode 307, and negative electrode can 302 are stacked in this order with the positive electrode can 301 facing downwards, and the positive electrode can 301 and the negative electrode can 302 are crimped together via gasket 303 to produce coin-type secondary battery 300.
[0281] By using the particles 190 described in the first embodiment for the positive electrode 304, it is possible to obtain a coin-type secondary battery 300 having a high charge / discharge capacity and excellent cycle characteristics.
[0282] Here, we will explain the current flow during charging of a secondary battery using Figure 12C. When a lithium secondary battery is considered as a closed circuit, the movement of lithium ions and the flow of current are in the same direction. In lithium secondary batteries, the anode (positive electrode) and cathode (negative electrode) are interchanged during charging and discharging, and the oxidation and reduction reactions are alternated. Therefore, the electrode with the higher reaction potential is called the positive electrode, and the electrode with the lower reaction potential is called the negative electrode. Therefore, in this specification, whether during charging, discharging, when a reverse pulse current is applied, or when a charging current is applied, the positive electrode will be called the "positive electrode" or "+ electrode," and the negative electrode will be called the "negative electrode" or "- electrode." Using the terms anode (positive electrode) and cathode (negative electrode), which are related to oxidation and reduction reactions, could lead to confusion because their roles are reversed during charging and discharging. Therefore, the terms anode (positive electrode) and cathode (negative electrode) will not be used in this specification. If the terms anode and cathode are used, it should be clearly stated whether they are used during charging or discharging, and whether they correspond to the positive or negative pole.
[0283] 12C, a charger is connected to charge the secondary battery 300. As the charging of the secondary battery 300 progresses, the potential difference between the electrodes increases.
[0284] <Stacked secondary battery> 13A and 13B, the secondary battery of one embodiment of the present invention may be a secondary battery 700 in which a plurality of electrodes are stacked. The electrodes and the outer casing are not limited to being L-shaped and may be rectangular.
[0285] 13A includes a positive electrode 703 having an L-shaped positive electrode current collector 701 and a positive electrode active material layer 702, a negative electrode 706 having an L-shaped negative electrode current collector 704 and a negative electrode active material layer 705, an electrolyte layer 707, and an exterior body 709. The electrolyte layer 707 is disposed between the positive electrode 703 and the negative electrode 706 provided within the exterior body 709.
[0286] 13A, the positive electrode current collector 701 and the negative electrode current collector 704 also serve as terminals for electrical contact with the outside. Therefore, the positive electrode current collector 701 and the negative electrode current collector 704 may be arranged so as to be partially exposed to the outside from the exterior body 709. Alternatively, the positive electrode current collector 701 and the negative electrode current collector 704 may not be exposed to the outside from the exterior body 709, but may be exposed to the outside by using a lead electrode and ultrasonically bonding the lead electrode to the positive electrode current collector 701 or the negative electrode current collector 704.
[0287] In a laminated secondary battery, the exterior body 709 can be a three-layer laminate film having a highly flexible metal thin film made of aluminum, stainless steel, copper, nickel, or the like on a film made of a material such as polyethylene, polypropylene, polycarbonate, ionomer, or polyamide, and further having an insulating synthetic resin film made of polyamide-based resin, polyester-based resin, or the like on the metal thin film as the outer surface of the exterior body.
[0288] An example of the cross-sectional structure of a laminated secondary battery is shown in Fig. 13B. For clarity, Fig. 13A shows only one set of electrodes and one electrolyte layer, but in practice, it is preferable to have a configuration with multiple electrodes and multiple electrolyte layers as shown in Fig. 13B.
[0289] In FIG. 13B, the number of electrodes is 16 as an example. FIG. 13B shows a structure with a total of 16 layers, including eight layers of negative electrode current collectors 704 and eight layers of positive electrode current collectors 701. FIG. 13B also shows a cross section of the positive electrode extraction portion cut along the dashed line in FIG. 13A, in which eight layers of negative electrode current collectors 704 are ultrasonically bonded. Of course, the number of electrode layers is not limited to 16 and may be more or less. By using the particles 190 described in the first embodiment in the positive electrode active material layer 702, a secondary battery with high charge / discharge capacity and excellent cycle characteristics can be obtained. When the number of electrode layers is large, a secondary battery with higher capacity can be obtained. Furthermore, when the number of electrode layers is small, the battery can be made thinner.
[0290] 14A shows a positive electrode of a secondary battery 700 having an L-shaped positive electrode current collector 701 and a positive electrode active material layer 702. The positive electrode has a region where the positive electrode current collector 701 is partially exposed (hereinafter referred to as a tab region). FIG. 14B shows a negative electrode of a secondary battery 700 having an L-shaped negative electrode current collector 704 and a negative electrode active material layer 705. The negative electrode has a region where the negative electrode current collector 704 is partially exposed, i.e., a tab region.
[0291] 14C shows a perspective view of four layers of positive electrodes 703 and four layers of negative electrodes 706. For simplicity, electrolyte layer 707 provided between positive electrodes 703 and negative electrodes 706 is shown by a dotted line in FIG.
[0292] <Wound secondary battery> 15A to 15C , a secondary battery according to one embodiment of the present invention may be a secondary battery 950 including a wound body 951 in an outer casing 960. The wound body 951 shown in FIG. 15A includes a negative electrode 107, a positive electrode 106, and an electrolyte layer 103. The negative electrode 107 includes a negative electrode active material layer 104 and a negative electrode current collector 105. The positive electrode 106 includes a positive electrode active material layer 102 and a positive electrode current collector 101. The electrolyte layer 103 has a width greater than that of the negative electrode active material layer 104 and the positive electrode active material layer 102 and is wound so as to overlap with the negative electrode active material layer 104 and the positive electrode active material layer 102. The electrolyte layer 103 containing a lithium ion conductive polymer and a lithium salt is flexible and thus can be wound in this manner. Note that the width of the negative electrode active material layer 104 is preferably greater than that of the positive electrode active material layer 102 from the standpoint of safety. Moreover, the wound body 951 having such a shape is preferable in terms of safety and productivity.
[0293] 15B, the negative electrode 107 is electrically connected to a terminal 961. The terminal 961 is electrically connected to a terminal 963. The positive electrode 106 is electrically connected to a terminal 962. The terminal 962 is electrically connected to a terminal 964.
[0294] 15B, the secondary battery 950 may have a plurality of wound bodies 951. By using a plurality of wound bodies 951, the secondary battery 950 can have a larger charge / discharge capacity.
[0295] By using the particles 190 described in Embodiment 1 for the positive electrode 106, the secondary battery 950 can have a high charge / discharge capacity and excellent cycle characteristics.
[0296] This embodiment can be used in combination with other embodiments.
[0297] (Sixth embodiment) This embodiment shows an example in which the secondary battery shown in Fig. 14C is applied to an electric vehicle (EV). Fig. 16C shows a block diagram of the electric vehicle.
[0298] The electric vehicle is equipped with first batteries 1301a and 1301b shown in Fig. 16C as main driving secondary batteries, and a second battery 1311 that supplies power to an inverter 1312 that starts a motor 1304. The second battery 1311 is also called a cranking battery (also called a starter battery). The second battery 1311 only needs to have high output, and does not need to have a large capacity, and the capacity of the second battery 1311 is smaller than that of the first batteries 1301a and 1301b.
[0299] The internal structure of the first battery 1301a may be a wound type as shown in Fig. 15A or a stacked type as shown in Fig. 13A, 13B, 14A, 14B, or 14C. The first battery 1301a may use the all-solid-state battery of Embodiment 4. Using the all-solid-state battery of Embodiment 4 for the first battery 1301a can achieve high capacity, improved safety, and reduced size and weight.
[0300] In this embodiment, an example is shown in which two first batteries 1301a and 1301b are connected in parallel, but three or more may be connected in parallel. Also, if the first battery 1301a can store sufficient power, the first battery 1301b may not be necessary. By configuring a battery pack having multiple secondary batteries, it is possible to extract large amounts of power. The multiple secondary batteries may be connected in parallel, in series, or in series after being connected in parallel. A plurality of secondary batteries is also called a battery pack.
[0301] In addition, in order to cut off power from a plurality of secondary batteries in a vehicle, a service plug or circuit breaker that can cut off high voltage without using tools is provided in the first battery 1301a.
[0302] The power of the first batteries 1301a and 1301b is mainly used to rotate the motor 1304, but also supplies power to 42V in-vehicle components (such as an electric power steering 1307, a heater 1308, and a defogger 1309) via a DC-DC circuit 1306. When a rear motor 1317 is provided on the rear wheels, the first battery 1301a is also used to rotate the rear motor 1317.
[0303] Furthermore, the second battery 1311 supplies power to 14V in-vehicle components (audio 1313, power windows 1314, lamps 1315, etc.) via the DCDC circuit 1310.
[0304] The first battery 1301a will be described with reference to FIG. 16A.
[0305] FIG. 16A shows an example in which nine prismatic secondary batteries 1300 are used as one battery pack 1415. Furthermore, nine prismatic secondary batteries 1300 are connected in series, with one electrode fixed by fixing portion 1413 made of an insulator and the other electrode fixed by fixing portion 1414 made of an insulator. While this embodiment shows an example in which the batteries are fixed by fixing portions 1413 and 1414, they may also be housed in a battery housing box (also called a casing). Because it is expected that a vehicle will be subjected to external vibrations or shaking (such as from the road surface), it is preferable to fix multiple secondary batteries by fixing portions 1413 and 1414, a battery housing box, or the like. Furthermore, one electrode is electrically connected to control circuit unit 1320 by wiring 1421. Furthermore, the other electrode is electrically connected to control circuit unit 1320 by wiring 1422.
[0306] A memory circuit including a transistor using an oxide semiconductor may be used for the control circuit unit 1320. A charge control circuit or a battery control system having a memory circuit including a transistor using an oxide semiconductor may be referred to as a battery operating system (BTOS) or a battery oxide semiconductor.
[0307] It is preferable to use a metal oxide that functions as an oxide semiconductor. For example, a metal oxide such as In-M-Zn oxide (wherein M is one or more elements selected from aluminum, gallium, yttrium, copper, vanadium, beryllium, boron, titanium, iron, nickel, germanium, zirconium, molybdenum, lanthanum, cerium, neodymium, hafnium, tantalum, tungsten, magnesium, etc.) can be used as the oxide. In particular, the In-M-Zn oxide that can be used as the oxide is preferably a C-Axis Aligned Crystal Oxide Semiconductor (CAAC-OS) or a Cloud-Aligned Composite Oxide Semiconductor (CAC-OS). Alternatively, an In-Ga oxide or an In-Zn oxide may be used as the oxide. A CAAC-OS is an oxide semiconductor having multiple crystalline regions, each of which has a c-axis aligned in a specific direction. The specific direction may be the thickness direction of the CAAC-OS film, a normal direction to the surface on which the CAAC-OS film is formed, or a normal direction to the surface of the CAAC-OS film. A crystalline region is a region in which the atomic arrangement is periodic. Considering the atomic arrangement as a lattice arrangement, a crystalline region is also a region in which the lattice arrangement is uniform. Furthermore, a CAAC-OS has a region in which multiple crystalline regions are connected in the ab-plane direction, and the region may have distortion. The distortion refers to a point in the region in which multiple crystalline regions are connected, where the lattice arrangement changes direction between a region with a uniform lattice arrangement and another region with a different uniform lattice arrangement. In other words, a CAAC-OS is an oxide semiconductor that is c-axis oriented but not clearly oriented in the ab-plane direction. A CAC-OS is, for example, a material in which elements constituting a metal oxide are unevenly distributed in a size range of 0.5 nm to 10 nm, preferably 1 nm to 3 nm, or a similar size range. Hereinafter, a metal oxide in which one or more metal elements are unevenly distributed and the regions containing the metal elements are mixed in a size range of 0.5 nm to 10 nm, preferably 1 nm to 3 nm, or a similar size range, is also referred to as a mosaic or patch structure.
[0308] Furthermore, CAC-OS has a mosaic structure in which the material is separated into first and second regions, and the first regions are distributed throughout the film (hereinafter also referred to as a cloud structure). That is, CAC-OS is a composite metal oxide having a structure in which the first and second regions are mixed.
[0309] Here, the atomic ratios of In, Ga, and Zn to the metal elements constituting the CAC-OS in the In-Ga-Zn oxide are denoted as [In], [Ga], and [Zn], respectively. For example, in the CAC-OS in the In-Ga-Zn oxide, the first region is a region where [In] is larger than [In] in the composition of the CAC-OS film. The second region is a region where [Ga] is larger than [Ga] in the composition of the CAC-OS film. Alternatively, for example, the first region is a region where [In] is larger than [In] in the second region and [Ga] is smaller than [Ga] in the second region. The second region is a region where [Ga] is larger than [Ga] in the first region and [In] is smaller than [In] in the first region.
[0310] Specifically, the first region is a region whose main component is indium oxide, indium zinc oxide, or the like. The second region is a region whose main component is gallium oxide, gallium zinc oxide, or the like. In other words, the first region can be rephrased as a region whose main component is In. The second region can be rephrased as a region whose main component is Ga.
[0311] It should be noted that there are cases where a clear boundary between the first region and the second region cannot be observed.
[0312] For example, in the case of CAC-OS in In-Ga-Zn oxide, EDX mapping obtained using EDX (Energy Dispersive X-ray spectroscopy) confirms that the CAC-OS has a structure in which a region mainly composed of In (first region) and a region mainly composed of Ga (second region) are unevenly distributed and mixed.
[0313] When CAC-OS is used in a transistor, the conductivity due to the first region and the insulating property due to the second region act in a complementary manner, thereby providing the CAC-OS with a switching function (the ability to turn on and off). In other words, CAC-OS has a conductive function in part of the material and an insulating function in part of the material, and the material as a whole functions as a semiconductor. By separating the conductive function from the insulating function, both functions can be maximized. Therefore, by using CAC-OS in a transistor, a high on-current (I on ), high field-effect mobility (μ), and good switching behavior can be achieved.
[0314] Oxide semiconductors have a variety of structures, each with different characteristics. The oxide semiconductor of one embodiment of the present invention may include two or more of an amorphous oxide semiconductor, a polycrystalline oxide semiconductor, an a-like OS, a CAC-OS, an nc-OS, and a CAAC-OS.
[0315] Furthermore, because the control circuit unit 1320 can be used in high-temperature environments, it is preferable to use transistors using oxide semiconductors. To simplify the process, the control circuit unit 1320 may be formed using unipolar transistors. Transistors using oxide semiconductors in the semiconductor layer have a wider operating ambient temperature range than single-crystal silicon, from -40°C to 150°C, and their characteristics change less when the secondary battery is heated than single-crystal silicon. The off-current of transistors using oxide semiconductors is below the lower limit of measurement regardless of temperature, even at 150°C, whereas the off-current characteristics of single-crystal silicon transistors are highly temperature-dependent. For example, at 150°C, the off-current of single-crystal silicon transistors increases, and the current on / off ratio is not sufficiently large. The control circuit unit 1320 can improve safety. Furthermore, combining it with a secondary battery using the particles 190 described in embodiment 1 in its positive electrode can achieve a synergistic effect in terms of safety. A secondary battery using the particles 190 described in embodiment 1 in its positive electrode and the control circuit unit 1320 can significantly contribute to eliminating accidents, such as fires, caused by secondary batteries.
[0316] The control circuit unit 1320, which uses a memory circuit including transistors using oxide semiconductors, can also function as an automatic control device for secondary batteries to address 10 causes of instability, such as micro-short circuits. The functions for addressing the 10 causes of instability include overcharging prevention, overcurrent prevention, overheating control during charging, cell balancing in the battery pack, over-discharging prevention, a fuel gauge, automatic control of charging voltage and current according to temperature, control of charging current according to the degree of degradation, detection of abnormal behavior of micro-short circuits, and prediction of abnormalities related to micro-short circuits. The control circuit unit 1320 has at least one of these functions. Furthermore, the automatic control device for secondary batteries can be miniaturized.
[0317] A micro-short circuit refers to a tiny short circuit inside a secondary battery, which is not so small that the positive and negative electrodes of the secondary battery are short-circuited and the battery is unable to be charged or discharged, but rather a small short-circuit current flows through the tiny short circuit.Even if the short circuit occurs in a relatively short period of time and in a small location, a large voltage change occurs, and this abnormal voltage value may affect subsequent estimations.
[0318] One of the causes of micro-short circuits is said to be that multiple charge and discharge cycles cause uneven distribution of the positive electrode active material, resulting in localized current concentration in parts of the positive electrode and negative electrode, causing parts of the separator to stop functioning, or the generation of by-products due to side reactions, resulting in micro-short circuits.
[0319] In addition to detecting micro-shorts, the control circuit 1320 can also be said to detect the terminal voltage of the secondary battery and manage the charge / discharge state of the secondary battery. For example, to prevent overcharging, it can turn off both the output transistor and the cutoff switch of the charging circuit almost simultaneously.
[0320] FIG. 16B shows an example of a block diagram of the battery pack 1415 shown in FIG. 16A.
[0321] The control circuit unit 1320 includes a switch unit 1324 including at least a switch for preventing overcharging and a switch for preventing overdischarging, a control circuit 1322 for controlling the switch unit 1324, and a voltage measurement unit for the first battery 1301a. The control circuit unit 1320 sets the upper and lower voltage limits for the secondary battery used and limits the upper limit of the current from the outside and the upper limit of the output current to the outside. The range between the lower limit and the upper limit of the secondary battery's voltage is within the recommended voltage range. If the voltage falls outside this range, the switch unit 1324 activates and functions as a protection circuit. The control circuit unit 1320 can also be called a protection circuit because it controls the switch unit 1324 to prevent overcharging and overdischarging. For example, if the control circuit 1322 detects a voltage that could cause overcharging, it turns off the switch unit 1324 to cut off the current. A PTC element may also be provided in the charge / discharge path to provide a function for cutting off the current in response to a rise in temperature. The control circuit section 1320 also has an external terminal 1325 (+IN) and an external terminal 1326 (-IN).
[0322] The switch unit 1324 can be configured by combining n-channel transistors and p-channel transistors. The switch unit 1324 is not limited to a switch having a Si transistor using single-crystal Si. For example, the switch unit 1324 may be formed of a power transistor having Ge (germanium), SiGe (silicon germanium), GaAs (gallium arsenide), GaAlAs (gallium aluminum arsenide), InP (indium phosphide), SiC (silicon carbide), ZnSe (zinc selenide), GaN (gallium nitride), or GaOx (gallium oxide; x is a real number greater than 0). Furthermore, memory elements using OS transistors can be freely arranged by stacking them on circuits using Si transistors, facilitating integration. Furthermore, OS transistors can be fabricated using the same manufacturing equipment as Si transistors, allowing for low-cost fabrication. Specifically, a control circuit unit 1320 using OS transistors can be stacked on the switch unit 1324 and integrated into a single chip. The control circuit unit 1320 occupies a smaller volume, enabling miniaturization.
[0323] The first batteries 1301a and 1301b primarily supply power to 42V (high-voltage) in-vehicle devices, while the second battery 1311 supplies power to 14V (low-voltage) in-vehicle devices. Lead-acid batteries are often used for the second battery 1311 due to their cost advantages. Lead-acid batteries have a greater self-discharge rate than lithium-ion secondary batteries and are prone to degradation due to a phenomenon called sulfation. Using a lithium-ion secondary battery as the second battery 1311 offers the advantage of being maintenance-free, but after prolonged use (e.g., three years or more), there is a risk of abnormalities occurring that are not detectable at the time of manufacture. In particular, if the second battery 1311, which starts the inverter, becomes inoperable, even if the first batteries 1301a and 1301b still have remaining capacity, the motor cannot be started. To prevent this, if the second battery 1311 is a lead-acid battery, power is supplied from the first battery to the second battery, and the second battery is constantly charged to maintain a fully charged state.
[0324] In this embodiment, an example in which lithium ion secondary batteries are used for both the first battery 1301a (or the first battery 1301b) and the second battery 1311 is shown. A lead storage battery, an all-solid-state battery, or an electric double layer capacitor may be used for the second battery 1311. For example, the all-solid-state battery of Embodiment 4 may be used. Using the all-solid-state battery of Embodiment 4 for the second battery 1311 allows for high capacity, miniaturization, and weight reduction.
[0325] Furthermore, regenerated energy generated by the rotation of the tire 1316 is sent to the motor 1304 via the gear 1305, and is then charged into the second battery 1311 from the motor controller 1303 or the battery controller 1302 via the control circuit unit 1321. Alternatively, the first battery 1301a is charged from the battery controller 1302 via the control circuit unit 1320. Alternatively, the first battery 1301b is charged from the battery controller 1302 via the control circuit unit 1320. In order to efficiently charge the regenerated energy, it is desirable that the first batteries 1301a and 1301b be capable of being rapidly charged.
[0326] The battery controller 1302 can set the charging voltage and charging current of the first batteries 1301a and 1301b. The battery controller 1302 can set charging conditions in accordance with the charging characteristics of the secondary battery used, and can perform rapid charging.
[0327] Although not shown, when an external charger is connected, the charger's outlet or the charger's connection cable is electrically connected to the battery controller 1302. The power supplied from the external charger is charged to the first batteries 1301a, 1301b via the battery controller 1302. Some chargers are provided with a control circuit, and although the function of the battery controller 1302 may not be used, it is preferable to charge the first batteries 1301a, 1301b via a control circuit unit 1320 to prevent overcharging. In some cases, the connection cable or the charger's connection cable is provided with a control circuit. The control circuit unit 1320 is also called an ECU (Electronic Control Unit). The ECU is connected to a CAN (Controller Area Network) provided in the electric vehicle. CAN is one of the serial communication standards used as an in-vehicle LAN. The ECU includes a microcomputer. The ECU uses a CPU and a GPU.
[0328] External chargers installed at charging stations and the like come in a variety of types, including 100V outlets, 200V outlets, and three-phase 200V and 50kW. Charging is also possible by receiving power from external charging equipment using a wireless power supply system, etc.
[0329] When rapid charging is performed, a secondary battery that can withstand high voltage charging is desired in order to charge in a short time.
[0330] Moreover, the secondary battery of this embodiment described above has a high-density positive electrode by using the particles 190 described in the first embodiment. Furthermore, by using graphene as a conductive additive, it is possible to suppress capacity reduction even when the electrode layer is thickened and the amount of support is increased. Furthermore, a synergistic effect is obtained by maintaining a high capacity, and a secondary battery with significantly improved electrical characteristics can be realized. This is particularly effective for secondary batteries used in vehicles, and it is possible to provide a vehicle with a long driving range, specifically a driving range of 500 km or more per charge, without increasing the ratio of the weight of the secondary battery to the total weight of the vehicle.
[0331] In particular, the secondary battery of the present embodiment described above can increase the operating voltage of the secondary battery by using the particles 190 described in embodiment 1, and the usable capacity can be increased as the charging voltage increases. Furthermore, by using the particles 190 described in embodiment 1 in the positive electrode, a secondary battery for vehicles with excellent cycle characteristics can be provided.
[0332] This embodiment mode can be freely combined with other embodiment modes.
[0333] (Embodiment 7) In this embodiment, an example in which a secondary battery according to one embodiment of the present invention is mounted on a vehicle, a building, a mobile object, an electronic device, or the like will be described.
[0334] Examples of electronic devices to which secondary batteries are applied include television devices (also called televisions or television receivers), computer monitors, digital cameras, digital video cameras, digital photo frames, mobile phones (also called mobile phones or mobile phone devices), portable game machines, personal digital assistants, sound reproduction devices, and large game machines such as pachinko machines.
[0335] Furthermore, the secondary battery can be applied to a mobile object, typically an automobile. Examples of the automobile include next-generation clean energy automobiles such as hybrid vehicles (HVs), electric vehicles (EVs), and plug-in hybrid vehicles (PHEVs or PHVs), and the secondary battery can be applied as one of the power sources mounted on the automobile. The mobile object is not limited to an automobile. Examples of the mobile object include trains, monorails, ships, aircraft (helicopters, unmanned aerial vehicles (drones), airplanes, and rockets), electric bicycles, and electric motorcycles, and the secondary battery of one embodiment of the present invention can be applied to these mobile objects.
[0336] Furthermore, the secondary battery of this embodiment may be applied to a ground-mounted charging device installed in a house or a charging station installed in a commercial facility.
[0337] An example in which a secondary battery according to one embodiment of the present invention is mounted in a building will be described with reference to FIGS. 17A and 17B.
[0338] 17A includes a power storage device 2612 including a secondary battery of one embodiment of the present invention and a solar panel 2610. The power storage device 2612 is electrically connected to the solar panel 2610 through a wiring 2611 or the like. The power storage device 2612 may be electrically connected to a ground-mounted charging device 2604. The power storage device 2612 can be charged with power obtained by the solar panel 2610. The power stored in the power storage device 2612 can be charged to a secondary battery 2602 included in a vehicle 2603 via the charging device 2604. The power storage device 2612 is preferably installed in an underfloor space. By installing the power storage device 2612 in the underfloor space, the space above the floor can be effectively utilized. Alternatively, the power storage device 2612 may be installed on the floor.
[0339] The power stored in the power storage device 2612 can also be supplied to other electronic devices in the house. Therefore, even when power cannot be supplied from a commercial power source due to a power outage or the like, the power storage device 2612 of one embodiment of the present invention can be used as an uninterruptible power supply, enabling the use of electronic devices.
[0340] 17B illustrates an example of a power storage device 800 according to one embodiment of the present invention. As illustrated in FIG. 17B, a power storage device 891 according to one embodiment of the present invention is installed in an underfloor space 896 of a building 899. The control circuit described in Embodiment 6 may be provided in the power storage device 891, and a synergistic effect on safety can be obtained by using a secondary battery in which the particles 190 described in Embodiment 1 are used for its positive electrode in the power storage device 891. The control circuit described in Embodiment 6 and the secondary battery in which the particles 190 described in Embodiment 1 are used for its positive electrode can greatly contribute to preventing accidents such as fires caused by the power storage device 891 including a secondary battery.
[0341] A control device 890 is installed in the power storage device 891, and the control device 890 is electrically connected by wiring to a distribution board 803, a power storage controller 805 (also called a control device), a display 806, and a router 809.
[0342] Electric power is sent from commercial power source 801 to distribution board 803 via service line attachment section 810. Electric power is also sent to distribution board 803 from power storage device 891 and commercial power source 801, and distribution board 803 supplies the sent electric power to general load 807 and power storage load 808 via an outlet (not shown).
[0343] The general load 807 is, for example, an electrical appliance such as a television or a personal computer, and the power storage load 808 is, for example, an electrical appliance such as a microwave oven, a refrigerator, or an air conditioner.
[0344] The power storage controller 805 has a measurement unit 811, a prediction unit 812, and a planning unit 813. The measurement unit 811 has a function of measuring the amount of power consumed by the general load 807 and the power storage load 808 during one day (for example, from midnight to midnight). The measurement unit 811 may also have a function of measuring the amount of power of the power storage device 891 and the amount of power supplied from the commercial power source 801. The prediction unit 812 has a function of predicting the amount of power demand to be consumed by the general load 807 and the power storage load 808 during the next day, based on the amount of power consumed by the general load 807 and the power storage load 808 during the previous day. The planning unit 813 has a function of making a plan for charging and discharging the power storage device 891, based on the amount of power demand predicted by the prediction unit 812.
[0345] The amount of power consumed by the general load 807 and the power storage load 808 measured by the measurement unit 811 can be confirmed on the display 806. It can also be confirmed on an electrical device such as a television or a personal computer via the router 809. It can also be confirmed on a mobile electronic device such as a smartphone or a tablet via the router 809. The amount of power demand for each time period (or each hour) predicted by the prediction unit 812 can also be confirmed on the display 806, the electrical device, or the mobile electronic device.
[0346] 18A and 18B show examples in which the secondary battery of one embodiment of the present invention is mounted in an electronic device. FIG. 18A shows an example of a mobile phone. The mobile phone 2100 includes a display portion 2102 built into a housing 2101, operation buttons 2103, an external connection port 2104, a speaker 2105, a microphone 2106, and the like. The mobile phone 2100 also includes a secondary battery 2107.
[0347] The mobile phone 2100 can execute various applications such as mobile phone calls, e-mail, document browsing and creation, music playback, internet communication, and computer games.
[0348] The operation button 2103 can be provided with various functions, such as time setting, power on / off operation, wireless communication on / off operation, silent mode activation / deactivation, power saving mode activation / deactivation, etc. For example, the functions of the operation button 2103 can be freely set by an operating system built into the mobile phone 2100.
[0349] The mobile phone 2100 is also capable of performing standardized short-range wireless communication, and can also make hands-free calls by communicating with a wirelessly enabled headset, for example.
[0350] The mobile phone 2100 also has an external connection port 2104, which allows direct data exchange with other information terminals via a connector. Charging can also be performed via the external connection port 2104. Charging may also be performed by wireless power supply without using the external connection port 2104.
[0351] The mobile phone 2100 preferably has a sensor, such as a fingerprint sensor, a pulse sensor, a body temperature sensor, or other human body sensor, a touch sensor, a pressure sensor, or an acceleration sensor.
[0352] FIG. 18B shows unmanned aerial vehicle 2300 having multiple rotors 2302. Unmanned aerial vehicle 2300 is sometimes called a drone. Unmanned aerial vehicle 2300 includes secondary battery 2301 according to one embodiment of the present invention, camera 2303, and an antenna (not shown). Unmanned aerial vehicle 2300 can be remotely controlled via the antenna. A secondary battery using particles 190 described in embodiment 1 as a positive electrode has high energy density and is highly safe, allowing for safe use over a long period of time. Therefore, it is suitable as a secondary battery to be installed in unmanned aerial vehicle 2300.
[0353] Next, an example of a transportation vehicle using one embodiment of the present invention is shown in FIGS. 18C to 18F . The automobile 2001 shown in FIG. 18C is an electric automobile using an electric motor as a power source for traveling. Alternatively, it is a hybrid automobile that can appropriately select and use an electric motor or an engine as a power source for traveling. When a secondary battery is installed in a vehicle, an example of the secondary battery described in Embodiment 5 is installed in one or more locations. Furthermore, a synergistic effect on safety can be obtained by using a secondary battery using the particles 190 described in Embodiment 1 as a positive electrode. A secondary battery using the particles 190 described in Embodiment 1 as a positive electrode can significantly contribute to eliminating accidents, such as fires, caused by secondary batteries. The automobile 2001 shown in FIG. 18C includes a battery pack 2200, which includes a secondary battery module to which multiple secondary batteries are connected. It is preferable that the secondary battery module further includes a charge control device electrically connected to the secondary battery module. The weight of the secondary battery module refers to the weight of the battery pack to which multiple secondary batteries are connected. If a charge control device is built into the battery pack, the weight of the charge control device is also included.
[0354] Furthermore, automobile 2001 can charge its secondary battery by receiving power supply from an external charging facility using a plug-in system, a contactless power supply system, or the like. Charging can be performed using a predetermined charging method, connector standards, or the like, such as CHAdeMO (registered trademark) or Combo, as appropriate. The secondary battery may be charged using a charging station installed in a commercial facility or a household power source. For example, plug-in technology can be used to charge an electricity storage device installed in automobile 2001 using an external power supply. Charging can be performed by converting AC power to DC power via a conversion device such as an AC-DC converter.
[0355] Furthermore, although not shown, a power receiving device can be mounted on a vehicle and power can be supplied contactlessly from a ground power transmitting device for charging. In the case of this contactless power supply method, by incorporating a power transmitting device into a road or an exterior wall, charging can be performed not only while the vehicle is stopped but also while the vehicle is moving. This contactless power supply method can also be used to transmit and receive power between two vehicles. Furthermore, solar cells can be installed on the exterior of the vehicle, and a secondary battery can be charged while the vehicle is stopped or moving. For such contactless power supply, an electromagnetic induction method or a magnetic field resonance method can be used.
[0356] 18D shows a large transport vehicle 2002 having an electrically controlled motor as an example of a transport vehicle. The secondary battery module of the transport vehicle 2002 is, for example, a four-cell unit of secondary batteries of 3.5V to 4.7V, with 48 cells connected in series for a maximum voltage of 170V. Apart from the number of secondary batteries constituting the secondary battery module of the battery pack 2201, the transport vehicle 2002 has the same functions as those shown in FIG. 18A, and therefore a description thereof will be omitted.
[0357] FIG. 18E shows, as an example, a large transport vehicle 2003 having an electrically controlled motor. The secondary battery module of the transport vehicle 2003 has, for example, a maximum voltage of 600 V, with more than 100 secondary batteries connected in series with a voltage of 3.5 V or more and 4.7 V or less. Therefore, a secondary battery with little variation in characteristics is required. By using a secondary battery using the particles 190 described in the first embodiment as the positive electrode, a highly safe secondary battery can be manufactured, and from the viewpoint of yield, mass production at low cost is possible. Furthermore, except for the number of secondary batteries constituting the secondary battery module of the battery pack 2202, the same functions as those of FIG. 18C are provided, and therefore a description thereof will be omitted.
[0358] Fig. 18F shows, as an example, an aircraft 2004 having an engine that burns fuel. Since the aircraft 2004 shown in Fig. 18F has wheels for takeoff and landing, it can also be said to be part of a transportation vehicle, and has a battery pack 2203 that includes a secondary battery module formed by connecting multiple secondary batteries and a charge control device.
[0359] The secondary battery module of the aircraft 2004 has, for example, eight 4V secondary batteries connected in series to produce a maximum voltage of 32V. Other than the number of secondary batteries constituting the secondary battery module of the battery pack 2203, it has the same functions as those in Fig. 18C, and therefore a description thereof will be omitted.
[0360] In this embodiment, an example in which a power storage device according to one embodiment of the present invention is mounted on a motorcycle or a bicycle will be described.
[0361] 19A shows an example of an electric bicycle to which the secondary battery of one embodiment of the present invention is applied. The power storage device of one embodiment of the present invention can be applied to an electric bicycle 8700 shown in FIG. 19A. The power storage device of one embodiment of the present invention includes, for example, a plurality of storage batteries and a protection circuit.
[0362] The electric bicycle 8700 includes a power storage device 8702. The power storage device 8702 can supply electricity to a motor that assists a rider. The power storage device 8702 is portable and is shown in a state removed from the bicycle in FIG. 19B . The power storage device 8702 includes a plurality of built-in storage batteries 8701, which are included in the power storage device of one embodiment of the present invention, and the remaining battery charge and the like can be displayed on a display unit 8703. The power storage device 8702 also includes a control circuit 8704 that can control charging or detect an abnormality of the secondary battery, an example of which is shown in Embodiment 6. The control circuit 8704 is electrically connected to the positive and negative electrodes of the storage battery 8701. The control circuit 8704 may be provided with the small solid-state secondary battery shown in FIGS. 11A and 11B. By providing the small solid-state secondary battery shown in FIGS. 11A and 11B in the control circuit 8704, power can be supplied to retain data in a memory circuit included in the control circuit 8704 for a long period of time. Furthermore, a synergistic effect in terms of safety can be obtained by combining the particle 190 described in embodiment 1 with a secondary battery using the particle 190 described in embodiment 1 in its positive electrode. The secondary battery using the particle 190 described in embodiment 1 in its positive electrode and the control circuit 8704 can greatly contribute to eliminating accidents such as fires caused by secondary batteries.
[0363] 19C shows an example of a two-wheeled vehicle to which the secondary battery of one embodiment of the present invention is applied. A scooter 8600 shown in FIG. 19C includes a power storage device 8602, a side mirror 8601, and a turn signal light 8603. The power storage device 8602 can supply electricity to the turn signal light 8603.
[0364] 19C, the power storage device 8602 can be stored in the under-seat storage 8604. The power storage device 8602 can be stored in the under-seat storage 8604 even if the under-seat storage 8604 is small.
[0365] Figure 20A shows an example of a wearable device. The wearable device uses a secondary battery as a power source. Furthermore, in order to improve splash-proof, water-resistant, or dust-proof performance when used at home or outdoors, there is a demand for wearable devices that can be charged wirelessly as well as via wired charging with an exposed connector.
[0366] For example, a secondary battery according to one embodiment of the present invention can be mounted on an eyeglasses-type device 4000 as shown in FIG. 20A . The eyeglasses-type device 4000 includes a frame 4000a and a display portion 4000b. Mounting a secondary battery on temple portions of the curved frame 4000a makes it possible to provide an eyeglasses-type device 4000 that is lightweight, has a good weight balance, and has a long continuous use time. Furthermore, by providing a secondary battery using the particles 190 described in Embodiment 1 as a positive electrode, a high capacity can be achieved, and a configuration that can accommodate space saving due to a miniaturized housing can be realized.
[0367] Furthermore, the secondary battery according to one embodiment of the present invention can be mounted on a headset device 4001. The headset device 4001 includes at least a microphone unit 4001a, a flexible pipe 4001b, and an earphone unit 4001c. A secondary battery can be provided in the flexible pipe 4001b or the earphone unit 4001c. By providing a secondary battery using the particles 190 described in Embodiment 1 as a positive electrode, a high capacity can be achieved, and a configuration that can accommodate space saving due to a miniaturized housing can be realized.
[0368] Furthermore, a secondary battery using particles 190 described in embodiment 1 as a positive electrode can be mounted on device 4002 that can be directly attached to the body. Secondary battery 4002b can be provided inside thin housing 4002a of device 4002. By providing a secondary battery using particles 190 described in embodiment 1 as a positive electrode, a high capacity can be achieved, and a configuration that can accommodate space savings due to the miniaturization of the housing can be realized.
[0369] Furthermore, the secondary battery according to one embodiment of the present invention can be mounted on a device 4003 that can be attached to clothing. A secondary battery 4003b can be provided in a thin housing 4003a of the device 4003. By providing a secondary battery using the particles 190 described in Embodiment 1 as a positive electrode, a high capacity can be achieved, and a configuration that can accommodate space saving due to miniaturization of the housing can be realized.
[0370] Furthermore, the secondary battery according to one embodiment of the present invention can be mounted on the belt-type device 4006. The belt-type device 4006 includes a belt portion 4006a and a wireless power receiving portion 4006b, and a secondary battery can be mounted inside the belt portion 4006a. By providing a secondary battery using the particles 190 described in Embodiment 1 as a positive electrode, a high capacity can be achieved, and a configuration that can accommodate space saving due to miniaturization of the housing can be realized.
[0371] Furthermore, a secondary battery using the particles 190 described in Embodiment 1 as a positive electrode can be mounted on the wristwatch-type device 4005. The wristwatch-type device 4005 has a display unit 4005a and a belt unit 4005b, and the secondary battery can be provided on the display unit 4005a or the belt unit 4005b. By providing a secondary battery using the particles 190 described in Embodiment 1 as a positive electrode, a high capacity can be achieved, and a configuration that can accommodate space saving due to the miniaturization of the housing can be realized.
[0372] The display unit 4005a can display not only the time but also various other information such as incoming emails and phone calls.
[0373] Furthermore, since the wristwatch device 4005 is a wearable device that is worn directly on the wrist, it may be equipped with sensors that measure the user's pulse, blood pressure, etc. Data on the user's exercise volume and health can be accumulated to manage the user's health.
[0374] FIG. 20B shows a perspective view of the wristwatch type device 4005 removed from the wrist.
[0375] A side view is also shown in Figure 20C. Figure 20C shows that secondary battery 700 is built inside. Although the external shape is different from secondary battery 700 in Figure 13, the internal structure is the same, so the same reference numerals are used. Secondary battery 700 is provided in a position overlapping display unit 4005a, and is small and lightweight.
[0376] 20D includes a housing 8301, a display unit 8302, a band-shaped fixture 8304, a pair of lenses 8305, and a secondary battery 700. Note that although the external shape is different from that of the secondary battery 700 in FIG. 13, the internal structure is the same, and therefore the same reference numerals are used. In this example, two rectangular secondary batteries 700 are provided to be installed in the fixture 8304.
[0377] As shown in FIG. 20D, a head-mounted display 8300 preferably includes a circuit portion 8306 and an imaging device 8307.
[0378] Image data (hereinafter, image data A1) is provided to a display unit 8302 of the head mounted display 8300. The image data A1 is configured using image data (hereinafter, image data B1) generated by a circuit unit 8306 of the head mounted display 8300 and data (hereinafter, data C1) generated by an information processing device. Alternatively, the image data B1 may be generated by a circuit external to the head mounted display 8300. The data C1 is information related to the controller, and is data that is updated as needed when the user operates the controller.
[0379] By combining image data B1 with data C1, which is updated from time to time, to generate image data A1 and displaying it on the display unit 8302 of the head-mounted display 8300, the head-mounted display 8300 can be used as a device for VR (Virtual Reality), AR (Augmented Reality), or MR (Mixed Reality), etc.
[0380] The head mounted display 8300 may also have an eye-gaze input device. When generating the image data A1, the information processing device may use a signal detected by the eye-gaze input device in addition to the image data B1 and data C1.
[0381] The eye-gaze input device can detect the gaze. For example, the gaze can be detected by detecting the iris or pupil of a human eye. The gaze can also be detected by capturing the movement of the eyeball or eyelid. The gaze can also be detected by providing electrodes in contact with the user and detecting the current flowing through the electrodes in accordance with the movement of the eyeball.
[0382] Image data A1 and audio data can be combined to generate video data. The display unit 8302 has a function of displaying the video data.
[0383] The head mounted display 8300 preferably includes a sensor element having a function of receiving electromagnetic waves emitted from the light emitting element. Here, the imaging device 8307 can be used as a structure including a sensor element having a function of receiving electromagnetic waves emitted from the light emitting element.
[0384] Since the head-mounted display 8300 is required to be small and lightweight, by using the particles 190 described in embodiment 1 as the positive electrode of the secondary battery 700, it is possible to obtain a high-energy density and small secondary battery 700.
[0385] This embodiment mode can be implemented in appropriate combination with other embodiment modes. [Example]
[0386] In this embodiment, the ratio of the volume, area, and radius of the region 191 and the region 193 in the particle 190, and the results of calculations regarding the charge capacity will be described.
[0387] For simplicity of calculation, particle 190 according to one embodiment of the present invention is assumed to be spherical, like the particle shown in Figure 21A. Also, region 192 is not directly related to the charge capacity, so it is excluded from the calculation in this example.
[0388] FIG. 21B shows a particle 190 having a radius of 5 μm, a core region 191 containing LiCoO2, and a shell region 193 containing NCM811 (LiNi x Co y Mn z 19 is a graph showing the radius of the region 191 and the charge capacity per weight when using a charge voltage of 4.2V, 4.4V, 4.6V, and 4.7V.
[0389] 21B, there was a tendency for the discharge capacity to increase as the radius of the core region 191 decreased between 4.2 V and 4.6 V. In this case, it was shown that the radius of region 191 is preferably 3.5 μm or less (0.7 or less the radius of particle 190), and more preferably 3.0 μm or less (0.6 or less the radius of particle 190).
[0390] Although not shown, the cross-sectional area ratio can be calculated by squaring the radius ratio. For example, when the radius ratio of the region 191 is 0.02, the area of the region 191 is S 190 When the ratio of the radii of the region 191 is 0.55, the area of the region 191 is S 190 When the radius ratio of the region 191 is 0.8, the area of the region 191 is S 190 When the radius ratio of the region 191 is 0.95, the area of the region 191 is S 190 When the radius ratio of the region 191 is 0.98, the area of the region 191 is S 190 This is approximately 96% of the total.
[0391] As described in the embodiment, the cross-sectional area ratio of region 191 or region 193 can be evaluated by exposing the cross section of particle 190 through processing, observing the cross section, and by various line and area analyses. When evaluating the area ratio, it is preferable to use a cross section that fully reflects the internal structure of particle 190. For example, it is preferable to use a cross section whose maximum width is 80% or more of the average particle size (D50). [Explanation of symbols]
[0392] 100: positive electrode active material, 101: positive electrode current collector, 102: positive electrode active material layer, 103: electrolyte layer, 104: negative electrode active material layer, 105: negative electrode current collector, 106: positive electrode, 107: negative electrode, 190: particle, 191: region, 192: region, 193: region, 193a: region, 193b: region, 194: region, 195: region, 196a: region, 196b: region, 196c: region, 196d: region, 197: grain boundary, 300: secondary battery, 301: positive electrode can, 302: negative electrode can, 303: gasket, 304: positive electrode, 305: positive electrode current collector, 306: positive electrode active material layer, 307: negative electrode, 308: negative electrode Electrode current collector, 309: negative electrode active material layer, 310: separator, 400: secondary battery, 410: positive electrode, 411: positive electrode active material, 413: positive electrode current collector, 414: positive electrode active material layer, 420: solid electrolyte layer, 421: solid electrolyte, 430: negative electrode, 431: negative electrode active material, 433: negative electrode current collector, 434: negative electrode active material layer, 500: current collector, 501: active material, 502: active material, 503: acetylene black, 504: graphene, 505: carbon nanotubes, 700: secondary battery, 701: positive electrode current collector, 702: positive electrode active material layer, 703: positive electrode, 704: negative electrode current collector, 705: negative electrode active Material layer, 706: negative electrode, 707: electrolyte layer, 709: exterior body, 750a: positive electrode, 750b: solid electrolyte layer, 750c: negative electrode, 751: electrode plate, 752: insulating tube, 753: electrode plate, 761: lower member, 762: upper member, 764: wing nut, 765: O-ring, 766: insulator, 770a: packaging member, 770b: packaging member, 770c: packaging member, 771: external electrode, 772: external electrode, 773a: electrode layer, 773b: electrode layer, 800: energy storage device, 801: commercial power source, 803: distribution board, 805: energy storage controller, 80 6: display, 807: general load, 808: power storage system load, 809: router, 810: service line attachment section, 811: measurement section, 812: prediction section, 813: planning section, 890: control device, 891: power storage device, 896: underfloor space section, 899: building, 950: secondary battery, 951: winding body, 960: exterior body, 961: terminal, 962: terminal, 963: terminal, 964: terminal, 1300: prismatic secondary battery, 1301a: battery, 1301b: battery, 1302: battery controller, 1303: motor controller, 1304: motor, 1305: gear, 1306: DCDC circuit,1307: electric power steering, 1308: heater, 1309: defogger, 1310: DCDC circuit, 1311: battery, 1312: inverter, 1313: audio, 1314: power window, 1315: lamps, 1316: tires, 1317: rear motor, 1320: control circuit section, 1321: control circuit section, 1322: control circuit, 1324: switch section, 1325: external terminal, 1326: external terminal, 1413: fixing section, 1414: fixing section, 1415: battery pack, 1421: wiring, 14 22: Wiring, 2001: Automobile, 2002: Transport vehicle, 2003: Transport vehicle, 2004: Aircraft, 2100: Mobile phone, 2101: Housing, 2102: Display unit, 2103: Operation button, 2104: External connection port, 2105: Speaker, 2106: Microphone, 2107: Secondary battery, 2200: Battery pack, 2201: Battery pack, 2202: Battery pack, 2203: Battery pack, 2300: Unmanned aerial vehicle, 2301: Secondary battery, 2302: Rotor, 2303: Camera, 2602: Secondary battery, 2603: Car Both, 2604: charging device, 2610: solar panel, 2611: wiring, 2612: power storage device, 4000: eyeglass-type device, 4000a: frame, 4000b: display unit, 4001: headset-type device, 4001a: microphone unit, 4001b: flexible pipe, 4001c: earphone unit, 4002: device, 4002a: housing, 4002b: secondary battery, 4003: device, 4003a: housing, 4003b: secondary battery, 4005: wristwatch-type device, 4005a: display unit, 4005b : Belt section, 4006: Belt-type device, 4006a: Belt section, 4006b: Wireless power supply receiving section, 8300: Head-mounted display, 8301: Housing, 8302: Display section, 8304: Fixing device, 8305: Lens, 8306: Circuit section, 8307: Imaging device, 8600: Scooter, 8601: Side mirror, 8602: Power storage device, 8603: Turn signal light, 8604: Under-seat storage, 8700: Electric bicycle, 8701: Storage battery, 8702: Power storage device, 8703: Display section, 8704: Control circuit,
Claims
1. A secondary battery having a positive electrode active material, the positive electrode active material has a first region, a second region provided inside the first region, and a third region provided between the first region and the second region, the first region has a lithium composite oxide represented by LiNi x Co y Mn z O 2 (x>0, y>0, 0.8<x+y+z<1.2); the second region comprises lithium cobalt oxide; the third region comprises fluorine, magnesium, and lithium cobalt oxide; The secondary battery, wherein the concentration of nickel is higher in the first region than in the second region.
2. In claim 1, The third region has a function of suppressing interdiffusion of elements contained in the first region and the second region.
3. In claim 1 or claim 2, The first region promotes lithium diffusion during charge and discharge, contributing to stabilization of the positive electrode active material.
4. A method for producing a secondary battery according to any one of claims 1 to 3, comprising: The positive electrode active material includes a first step of heating a mixture obtained by mixing lithium cobalt oxide particles, lithium fluoride, and magnesium fluoride at a temperature of 735°C or higher and 1000°C or lower to obtain a first composite oxide; a second step of heating a mixture obtained by mixing the first composite oxide with a nickel source, a manganese source, and a cobalt source to obtain a second composite oxide.
Citation Information
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