Secondary battery
A multi-step synthesis process for secondary battery active materials using specific metal sources and conductive additives addresses capacity and reliability issues, enhancing energy density and safety while reducing cobalt use.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2025-12-03
- Publication Date
- 2026-03-04
AI Technical Summary
Existing secondary batteries face challenges in achieving high charge/discharge capacity, voltage, and reliability, with cobalt being a limited resource and requiring improvements in safety and long-term performance.
A method for manufacturing a positive electrode active material involving multiple synthesis steps with specific metal sources and impurity layers, utilizing cobalt, nickel, manganese, and iron, along with titanium, magnesium, and fluorine sources, and incorporating conductive materials like graphene and particulate carbon to enhance conductivity and stability.
The method produces a secondary battery with high energy density, safety, and reliability, enabling extended cruising distances in vehicles without increasing weight, and reducing cobalt usage for cost-effectiveness.
Smart Images

Figure 2026035793000001_ABST
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 a mobile information terminal, a vehicle, etc. that has 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 elements and devices in general that have 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 and 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 literature]
[0009] [Non-Patent Document 1] 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 method for manufacturing a positive electrode active material having high charge / discharge capacity. Another object is to provide a method for manufacturing a positive electrode active material having high charge / discharge voltage. Another object is to provide a method for manufacturing a positive electrode active material with little deterioration. Another object is to provide a method for manufacturing a novel positive electrode active material. Another object is to provide a method for manufacturing a secondary battery with high charge / discharge capacity. Another object is to provide a method for manufacturing a secondary battery with high charge / discharge voltage. Another object is to provide a method for manufacturing a safe or highly reliable secondary battery. Another object is to provide a method for manufacturing a secondary battery with little deterioration. Another object is to provide a method for manufacturing a secondary battery with a long life. Another object is to provide a novel method for manufacturing a 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 in 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. [Means for solving the problem]
[0014] One embodiment of the present invention is a method for manufacturing a secondary battery having a positive electrode active material, the method for manufacturing the positive electrode active material including: a first step of synthesizing a first lithium source and a first transition metal source to form a first composite oxide; a second step of synthesizing an impurity source and providing an impurity layer on the first composite oxide after the first step; and a third step of synthesizing a second lithium source and a second transition metal source to form a second composite oxide and providing the second composite oxide on the first composite oxide with the impurity layer provided thereon after the second step.
[0015] In the above, it is preferred that the first transition metal source is at least one of a cobalt source, a nickel source, a manganese source, and an iron source, the impurity source is at least one of a titanium source, a magnesium source, and a fluorine source, and the second transition metal source is at least one of a cobalt source, a nickel source, a manganese source, and an iron source.
[0016] In the above, the heating temperature for synthesis in the third step is preferably lower than the heating temperature for synthesis in the first step.
[0017] In the above, the radius of the cation of the impurity element contained in the impurity layer is preferably larger than the ion radius of the transition metal contained in the first composite oxide.
[0018] Another embodiment of the present invention is a method for manufacturing a secondary battery having a positive electrode active material, the method including: a first step of synthesizing a first lithium source and a first transition metal source to form a first composite oxide; a second step of synthesizing a first impurity source and providing a first impurity layer on the first composite oxide after the first step; and a second step of synthesizing a second lithium source and a second transition metal source to form a second composite oxide and providing a second composite oxide on the first composite oxide with the impurity layer provided thereon. The method for producing a secondary battery includes a third step of providing an oxide, and a fourth step of synthesizing a second impurity source after the third step, and providing a second impurity layer on the first composite oxide on which the second composite oxide and the first impurity layer have been provided, wherein the first transition metal source and the second transition metal source are each at least one of a cobalt source, a nickel source, a manganese source, and an iron source, and the first impurity source and the second impurity source are at least one of a titanium source, a magnesium source, and a fluorine source.
[0019] Another embodiment of the present invention is a secondary battery in which a positive electrode active material has a first region and a second region, and the first region and the second region are formed by different synthesis methods.
[0020] 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.
[0021] 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 materials (also called conductivity-imparting agents or conductive additives). By attaching a conductive material 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 materials and the conductive material, but also encompasses cases where covalent bonds are formed, bonding through van der Waals forces, the conductive material covering part of the active material's surface, the conductive material 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 known as CNTs). Because graphene has a thin, planar shape, it can form efficient conductive paths with less amount 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 miniaturized and have a higher capacity. Furthermore, the use of graphene can suppress capacity loss during rapid charging and discharging. In this specification, 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. Particulate carbon refers to carbon black (furnace black, acetylene black (also called AB), graphite, etc.). A conductive material containing graphene is preferred. Using graphene as a conductive material may potentially suppress deterioration of the positive electrode active material during charging and discharging. For example, during charging and discharging, deterioration may occur starting from the surface layer of the positive electrode active material due to the influence of cation mixing. In this case, using a conductive material containing graphene may potentially suppress such deterioration. Various combinations of conductive materials can be used. Typical combinations of conductive materials 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). Materials used to form graphene may be mixed with 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 a D50 of 1 μm or less, more preferably 100 nm or less.
[0022] Another embodiment of the present invention is an electronic device including the above-described secondary battery. The use of the above-described positive electrode active material enables a secondary battery having high energy density and high safety or reliability to be realized, which is preferable for next-generation clean energy vehicles, such as hybrid vehicles, electric vehicles, and plug-in hybrid vehicles, that are equipped with a large battery housing a plurality of secondary batteries. [Effects of the Invention]
[0023] According to one embodiment of the present invention, a method for manufacturing a positive electrode active material having a high energy density and a large charge / discharge capacity can be provided. Alternatively, a method for manufacturing a positive electrode active material having a high energy density and a high charge / discharge voltage can be provided. Alternatively, a method for manufacturing a positive electrode active material with little deterioration can be provided. Alternatively, a method for manufacturing a novel positive electrode active material can be provided. Alternatively, a method for manufacturing a secondary battery with a large charge / discharge capacity can be provided. Alternatively, a method for manufacturing a secondary battery with a high charge / discharge voltage can be provided. Alternatively, a method for manufacturing a safe or highly reliable secondary battery can be provided. Alternatively, a method for manufacturing a secondary battery with little deterioration can be provided. Alternatively, a method for manufacturing a secondary battery with a long life can be provided. Alternatively, a novel method for manufacturing a secondary battery can be provided.
[0024] 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.
[0025] Therefore, according to one embodiment of the present invention, a vehicle equipped with a novel power storage device can be provided.
[0026] 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.
[0027] 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]
[0028] [Figure 1] 1A and 1B show an example of a method for producing a positive electrode active material. [Figure 2] 2A and 2B are cross-sectional views of examples of positive electrode active materials. [Figure 3] 3A to 3D are cross-sectional views illustrating examples of the positive electrode of a secondary battery. [Figure 4] FIG. 4A is a perspective view of a coin-type secondary battery, FIG. 4B is a cross-sectional perspective view thereof, and FIG. 4C is a cross-sectional schematic view thereof during charging. [Figure 5] Figure 5A shows an example of a cylindrical secondary battery. Figure 5B shows an example of a cylindrical secondary battery. Figure 5C shows an example of multiple cylindrical secondary batteries. Figure 5D shows an example of a power storage system having multiple cylindrical secondary batteries. [Figure 6]6A and 6B are diagrams illustrating an example of a secondary battery, and FIG. 6C is a diagram showing the inside of the secondary battery. [Figure 7] 7A to 7C are diagrams illustrating an example of a secondary battery. [Figure 8] 8A and 8B are diagrams showing examples of the external appearance of a secondary battery. [Figure 9] 9A to 9C are diagrams illustrating an example of a method for manufacturing a secondary battery. [Figure 10] FIG. 10A shows an example of the configuration of a battery pack, FIG. 10B shows an example of the configuration of a battery pack, and FIG. 10C shows an example of the configuration of a battery pack. [Figure 11] 11A and 11B are diagrams illustrating an example of a secondary battery. [Figure 12] 12A to 12C are diagrams illustrating an example of a secondary battery. [Figure 13] 13A and 13B are diagrams illustrating an example of a secondary battery. [Figure 14] FIG. 14A is a perspective view of an example of a battery pack, FIG. 14B is an example of a block diagram of a battery pack, and FIG. 14C is an example of a block diagram of a vehicle having a motor. [Figure 15] 15A to 15D are diagrams illustrating examples of transportation vehicles. [Figure 16] 16A and 16B are diagrams illustrating an example of a power storage device. [Figure 17] FIG. 17A is a diagram showing an example of an electric bicycle, FIG. 17B is a diagram showing an example of a secondary battery for an electric bicycle, and FIG. 17C is a diagram explaining an example of an electric motorcycle. [Figure 18] 18A to 18D are diagrams illustrating examples of electronic devices. [Figure 19] FIG. 19A shows an example of a wearable device, FIG. 19B shows a perspective view of an example of a wristwatch-type device, and FIG. 19C is a diagram illustrating a side view of the example of the wristwatch-type device. [Figure 20] 20A and 20B are graphs showing the results of DSC measurements. DETAILED DESCRIPTION OF THE INVENTION
[0029] 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.
[0030] In addition, in this specification, ordinal numbers such as first, second, etc. are used for convenience and do not indicate the order of processes or stacking. Therefore, for example, "first" can be appropriately replaced with "second" or "third," etc. in the description. Furthermore, the ordinal numbers used to identify one embodiment of the present invention may not match the ordinal numbers used in this specification.
[0031] Furthermore, in this specification, terms indicating arrangement such as "above" and "below" are used for convenience in describing the positional relationship between components with reference to the drawings. Furthermore, the positional relationship between components changes as appropriate depending on the direction in which each component is depicted. Therefore, the terms are not limited to those described in the specification, and can be rephrased appropriately depending on the situation.
[0032] Furthermore, in this specification and the like, crystal planes and directions are indicated by Miller indices. In crystallography, crystal planes and directions are indicated by a superscript bar after the number, but in this specification and the like, due to restrictions on application notation, numbers may be expressed by a minus sign (-) before them instead of a bar above them. Furthermore, individual directions indicating directions within a crystal are expressed with [ ], collective directions indicating all equivalent directions are expressed with < >, individual planes indicating crystal planes are expressed with ( ), and collective planes with equivalent symmetry are expressed with {}.
[0033] In this specification and the like, segregation 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).
[0034] 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 ovals, rectangles, trapezoids, cones, squares with rounded corners, and asymmetric shapes. Furthermore, individual particles may also have irregular shapes.
[0035] 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.
[0036] 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.
[0037] Furthermore, the O3'-type crystal structure possessed by composite oxides containing lithium and transition metals as referred to herein belongs to the space group R-3m, with ions such as cobalt and magnesium ions occupying hexacoordinated oxygen 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 an O3'-type crystal structure in this specification. Note that in the O3'-type crystal structure, light elements such as lithium may occupy tetracoordinated oxygen positions.
[0038] It can also be said that the O3' type crystal structure is similar to the CdCl2 type crystal structure, although it has random lithium 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 0.06The crystal structure is similar to that of lithium cobalt oxide (NiO2), but it is known that simple, pure lithium cobalt oxide or layered rock salt-type positive electrode active materials containing a large amount of cobalt do not usually adopt this crystal structure.
[0039] Layered rock salt crystals and the anions in 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. Furthermore, because real crystals always have defects, analytical 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.
[0040] When two layered rock-salt crystals come into contact, there exists a crystal plane where the cubic close-packed structure of anions is aligned. Alternatively, the above phenomenon can be explained as follows: Anions on the (111) plane of the cubic crystal structure have a triangular arrangement. Layered rock-salt crystals belong to the space group R-3m and have a rhombohedral structure, but for ease of understanding the structure, they are generally represented as a compound hexagonal lattice, and the (000l) plane of layered rock-salt crystals has a hexagonal lattice. The triangular lattice of the cubic (111) plane has the same atomic arrangement as the hexagonal lattice of the (000l) plane of layered rock-salt crystals. The compatibility of the two lattices can be said to align the orientation of the cubic close-packed structure. 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.
[0041] The roughly identical orientation of the crystals in the two regions 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, and ABF-STEM (Annular Bright-Field Scanning Transmission Electron Microscopy) images. XRD (X-ray Diffraction), electron diffraction, and neutron diffraction can also be used for this determination. In TEM images, the arrangement of cations and anions can be observed as repeated bright and dark lines. When the orientation of the cubic close-packed structure in the layered rock salt crystal and the rock salt crystal is aligned, the angle between the repeated bright and dark lines between the crystals can be observed to be 5 degrees or less, preferably 2.5 degrees or less. In some cases, light elements such as oxygen and fluorine cannot be clearly observed in TEM images, but in such cases, the alignment of the orientation can be determined from the arrangement of the metal elements.
[0042] 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.
[0043] 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.
[0044] 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.
[0045] 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.
[0046] 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.
[0047] 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.
[0048] 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.
[0049] 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.
[0050] 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.
[0051] In this specification, a value close to a certain value A refers to a value between 0.9 A and 1.1 A.
[0052] (Embodiment 1) 2A and 2B are examples of cross sections of a particle 190 that can be produced by a method for producing a positive electrode active material according to one embodiment of the present invention.
[0053] 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.
[0054] 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.
[0055] 2A has a region 191, a region 192, and a region 193. The region 191, the region 192, and the region 193 are each a complex oxide containing oxygen and a plurality of metal atoms.
[0056] The region 191 is provided inside the region 193. The region 192 is provided between the region 191 and the region 193.
[0057] Region 193 is a region that includes the surface layer of particle 190. Region 192 is a region that is 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. The center of the particle refers to the center of gravity of the particle, and its position can be identified from an electron microscope image or the like. For example, when a particle is cut and the cross section is observed, it 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.
[0058] Region 191 may be called the "core" and region 193 may be called the "shell." Alternatively, regions 191 and 192 may be collectively called the "core" and region 193 may be called 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 layer.
[0059] Particle 190 may be said to have a core-shell structure (also called a core-shell type structure).
[0060] The particle diameter (also called the median diameter, 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.
[0061] 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. The area of the region 191 is S 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 )
[0062] 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.
[0063] Region 192 is preferably a layer that 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.
[0064] 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.
[0065] 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.
[0066] Region 193 preferably has a function of promoting lithium diffusion during charge and discharge and contributing to stabilization of the positive electrode active material. Region 193 also preferably has a 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, region 193 may have two regions, with region 193b provided on the inside and region 193a provided outside region 193b.
[0067] As shown in FIG. 2B, the particle 190 may have a region 194. The region 194 is also a composite oxide containing oxygen and a plurality of metal atoms. 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 layer. 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 )
[0068] 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.
[0069] 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.
[0070] 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).
[0071] 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.
[0072] The particles 190 can be made by, for example, a solid phase method, a co-precipitation method, a hydrothermal method, a spray drying method, and combinations thereof.
[0073] <Production Method 1> An example of producing a particle 190 having regions 191 to 193 by a solid phase method will be described with reference to FIG. 1A.
[0074] <Step S11> First, in step S11, a lithium (Li) source and a transition metal M 191 Prepare the source and.
[0075] As the lithium source, for example, lithium carbonate, lithium fluoride, lithium nitrate, lithium hydroxide, etc. can be used.
[0076] Region 191 has a transition metal M 191 The transition metal M contained in the region 191 is preferably at least one of cobalt, nickel, manganese, iron, and vanadium. 191 It is particularly preferable to use a metal that can form a layered rock salt type composite oxide belonging to the space group R-3m together with lithium. When using a metal that can form a layered rock salt type composite oxide, it is preferable to set the mixing ratio of cobalt, manganese, and nickel within a range that can form a layered rock salt type crystal structure. Compounds having a layered rock salt type crystal structure include transition metals M 191 The atomic ratio of lithium to M is greater than 1, which is called a lithium-rich compound. 191 Aluminum may be added to the region 191. Furthermore, the region 191 is not limited to a composite oxide having a layered rock salt crystal structure, and may be a composite oxide having, for example, an olivine crystal structure. The olivine crystal structure is preferable because the polyanion skeleton consisting of phosphorus and oxygen is stable even when all the lithium has been released, making the crystal structure less likely to collapse.
[0077] Region 191 has a transition metal M 191 When one of the transition metals is cobalt, the cobalt source may be, for example, cobalt oxide or cobalt hydroxide. 191 When one of the transition metals is manganese, manganese oxide, manganese hydroxide, etc. can be used as the manganese source. 191 When one of the transition metals is nickel, nickel oxide, nickel hydroxide, etc. can be used as the nickel source. 191When one of the transition metals is iron, iron oxide, iron hydroxide, etc. can be used as the iron source. 191 When one of the elements is vanadium, vanadium oxide, vanadium hydroxide, etc. can be used as the vanadium source.
[0078] The materials prepared in step S11 are not limited to these. Other elements can be added as needed to synthesize the region 191. For example, an aluminum source, a phosphorus source, a phosphate source, etc. can be added.
[0079] <Step S12> Next, in step S12, a lithium source and a transition metal M contained in the region 191 are 191 The synthesis method is, for example, to synthesize a lithium source and a transition metal M contained in the region 191 by a solid phase method. 191 There is a method in which the source is mixed and then heated.
[0080] The mixing can be carried out by a dry method or a wet method. For example, a ball mill, a bead mill, etc. can be used for mixing. When a ball mill is used, it is preferable to use zirconia balls as the grinding media.
[0081] The heating in the synthesis in step S12 is sometimes referred to as calcination or first heating to distinguish it from the subsequent heating step. The first heating is preferably performed at a temperature of 800°C or higher but lower than 1100°C, more preferably 900°C or higher but 1000°C or lower, and even more preferably around 950°C. Alternatively, 800°C or higher but 1000°C or lower is preferable. Alternatively, 900°C or higher but 1100°C or lower is preferable. If the temperature is too low, the transition metal M contained in the lithium source and region 191 may be easily heated. 191 On the other hand, if the temperature is too high, the decomposition and melting of the transition metal M, which is responsible for the redox reaction, may be insufficient. 191 Defects may occur due to excessive reduction of lithium or evaporation of lithium. For example, transition metal M 191 When cobalt is used as the cobalt, defects can occur in which the cobalt becomes divalent.
[0082] The heating time can be, for example, from 1 hour to 100 hours, preferably from 2 hours to 20 hours. Alternatively, from 1 hour to 20 hours is preferred. Alternatively, from 2 hours to 100 hours is preferred. Firing is preferably carried out in an atmosphere with little water, such as dry air (for example, a dew point of -50°C or less, more preferably -100°C or less). For example, heating is preferably carried out at 1000°C for 10 hours, with a temperature increase rate of 200°C / h and a flow rate of the dry atmosphere of 10 L / min. The heated material can then be cooled to room temperature (25°C). For example, the cooling time from the specified temperature to room temperature is preferably from 10 hours to 50 hours.
[0083] However, cooling to room temperature in step S12 is not essential, and cooling to a temperature higher than room temperature may be performed if there is no problem in carrying out the subsequent steps.
[0084] <Step S13> Next, in step S13, the calcined material is recovered, and a composite oxide C having lithium, a transition metal, and oxygen in the region 191 is obtained. 191 Specifically, lithium cobalt oxide, lithium manganese oxide, lithium nickel oxide, lithium cobalt oxide in which some of the cobalt is replaced with manganese, lithium cobalt oxide in which some of the cobalt is replaced with nickel, lithium nickel-manganese oxide, or lithium nickel-manganese-cobalt oxide can be obtained.
[0085] Furthermore, in step S13, a composite oxide containing lithium, a transition metal, and oxygen that has been synthesized in advance may be used as the composite oxide contained in region 191. In this case, steps S11 and S12 can be omitted.
[0086] For example, lithium cobalt oxide particles (product name: Cellseed C-10N) manufactured by Nippon Chemical Industry Co., Ltd. can be used as a pre-synthesized composite oxide. This lithium cobalt oxide has an average particle size (D50) of approximately 12 μm, and impurity analysis by glow discharge mass spectrometry (GD-MS) shows that the magnesium and fluorine concentrations are 50 ppm wt or less, the calcium, aluminum, and silicon concentrations are 100 ppm wt or less, the nickel concentration is 150 ppm wt or less, the sulfur concentration is 500 ppm wt or less, the arsenic concentration is 1100 ppm wt or less, and the concentrations of other elements other than lithium, cobalt, and oxygen are 150 ppm wt or less.
[0087] Alternatively, lithium cobalt oxide particles (product name: Cellseed C-5H) manufactured by Nippon Chemical Industry Co., Ltd. can also be used. This is lithium cobalt oxide with a median diameter (D50) of approximately 6.5 μm, and in impurity analysis by GD-MS, the concentrations of elements other than lithium, cobalt, and oxygen are similar to or lower than those of C-10N.
[0088] <Step S21> Next, in step S21, element X contained in region 192 is 192 Prepare a source and a halogen source. 192 The source and the halogen source may be collectively referred to as an impurity source. Although not shown, it is preferable to also provide a lithium source.
[0089] As the halogen source, a fluorine source, a chlorine source, etc. can be used.
[0090] Examples of fluorine sources that can be used include lithium fluoride (LiF), magnesium fluoride (MgF2), aluminum fluoride (AlF3), titanium fluoride (TiF4), cobalt fluoride (CoF2, CoF3), nickel fluoride (NiF2), zirconium fluoride (ZrF4), vanadium fluoride (VF5), manganese fluoride, iron fluoride, chromium fluoride, niobium fluoride, zinc fluoride (ZnF2), calcium fluoride (CaF2), sodium fluoride (NaF), potassium fluoride (KF), barium fluoride (BaF2), cerium fluoride (CeF2), lanthanum fluoride (LaF3), and sodium aluminum hexafluoride (Na3AlF6). The fluorine source is not limited to a solid, and may be, for example, fluorine (F2), carbon fluoride, sulfur fluoride, or oxygen fluoride (OF2, O2F2, O3F2, O4F2, O2F), which may be mixed into the atmosphere during the heating step described below. A mixture of multiple fluorine sources may also be used. Among these, lithium fluoride is preferred because it has a relatively low melting point of 848°C and is easily melted during the annealing step described below.
[0091] As the chlorine source, for example, lithium chloride, magnesium chloride, etc. can be used.
[0092] element 192 As the source, a titanium source, a magnesium source, an aluminum source, a zirconium source, a calcium source, a gallium source, a niobium source, a phosphorus source, a boron source, a silicon source, or the like can be used.
[0093] As the titanium source, for example, titanium oxide, titanium hydroxide, titanium fluoride, lithium titanium oxide, titanium alkoxide (for example, [(CH3)2CHO]4Ti), etc. can be used.
[0094] As the magnesium source, for example, magnesium fluoride, magnesium oxide, magnesium hydroxide, magnesium carbonate, etc. can be used.
[0095] As the aluminum source, for example, aluminum oxide, aluminum hydroxide, aluminum fluoride, aluminum alkoxide (for example, Al[OCH(CH3)2]3), etc. can be used.
[0096] Similarly, oxides, hydroxides, fluorides, alkoxides, etc. can be used as the zirconium source, calcium source, gallium source, niobium source, phosphorus source, boron source, and silicon source.
[0097] Examples of lithium sources that can be used include lithium fluoride and lithium carbonate. That is, lithium fluoride can be used as both a lithium source and a fluorine source. Magnesium fluoride can be used as both a fluorine source and a magnesium source.
[0098] Also, element X 192 The source and the halogen source may be synthesized together, or each may be synthesized separately multiple times. 192 When a plurality of compounds are used, they may be synthesized in separate batches in the same manner. Alternatively, different synthesis methods may be used.
[0099] For example, the halogen source may be synthesized by a solid phase method, and the titanium source may be attached by a sol-gel method, followed by heating.
[0100] Element X in region 192 192 The ionic radius of the cation of element X is preferably larger than the ionic radius of the cation of region 191. 192 are likely to be unevenly distributed as region 192. Furthermore, region 192 is likely to exhibit the function of suppressing interdiffusion of elements in region 191 and region 193.
[0101] The radius of the cations in each region can be determined, for example, by electron microbeam diffraction, TEM-FFT patterns, etc. For example, these analyses can be used to measure cation-cation distances, estimate the crystal structure, and calculate the radius of the cations.
[0102] The ease of ion diffusion in a solid correlates with the melting point of the material. Furthermore, a material with a high oxidation number tends to have a large diffusion coefficient because it induces cation deficiency. Therefore, it is preferable for element X to have an element with a high melting point as an oxide and a small valence. For example, magnesium is preferable.
[0103] Table 1 shows the melting points and crystal structures of the oxides.
[0104] [Table 1]
[0105] The bond distance between cations and anions can also be used as a guide for the diffusion coefficient. Table 2 shows the bond distance and crystal structure.
[0106] [Table 2]
[0107] In addition, elements that tend to be concentrated in region 192 can be investigated by comparing stabilization energies using first-principles calculations.
[0108] In this embodiment, lithium fluoride (LiF) is prepared as the fluorine source, and magnesium fluoride (MgF2) is prepared as both the fluorine source and the magnesium source. Lithium fluoride (LiF) and magnesium fluoride (MgF2) are mixed in a molar ratio of approximately LiF:MgF2 = 65:35, and both become liquid at the lowest temperature when heated. On the other hand, if the amount of lithium fluoride is too high, there is a concern that the lithium will become excessive, resulting in deterioration of cycle characteristics. Therefore, the molar ratio of lithium fluoride (LiF) to magnesium fluoride (MgF2) is preferably LiF:MgF2 = x:1 (0≦x≦1.9), more preferably LiF:MgF2 = x:1 (0.1≦x≦0.5), and even more preferably LiF:MgF2 = x:1 (near x = 0.33). In this specification, "near" refers to a value greater than 0.9 times but less than 1.1 times the value.
[0109] Also, element X 192 It is preferable to mix the source and the halogen source. If the mixing is performed wet, a solvent is prepared. Examples of solvents that can be used include ketones such as acetone, alcohols such as ethanol and isopropanol, ethers such as diethyl ether, dioxane, acetonitrile, and N-methyl-2-pyrrolidone (NMP). It is more preferable to use an aprotic solvent that does not easily react with lithium. In this embodiment, acetone is used.
[0110] Also, when mixing, element X 192 It is preferable to pulverize the source and halogen source of element X in the subsequent step. 192 and halogen-containing region 192 can be more uniformly provided on region 191. 192 The source and halogen source preferably have a D50 (median diameter) of 10 nm to 20 μm, more preferably 100 nm to 5 μm, or more preferably 10 nm to 5 μm, or more preferably 100 nm to 20 μm.
[0111] <Step S31> Next, in step S31, the complex oxide C in the region 191 is 191 and element X 192 The compound oxide C in the region 191 is synthesized by, for example, 191 and element X 192 A method is to mix the source and the halogen source and then heat the mixture.
[0112] The mixing can be carried out by a dry method or a wet method. For example, a ball mill, a bead mill, etc. can be used for mixing. When a ball mill is used, it is preferable to use zirconia balls as the grinding media.
[0113] The heating in the synthesis in step S31 is sometimes called annealing or second heating to distinguish it from other heating processes. The second heating is preferably performed in an atmosphere containing oxygen. In addition, the complex oxide C in the region 191 191 It is more preferable to use a heating method that has an effect of preventing adhesion so that the particles do not adhere to each other. Examples of heating that has an effect of preventing adhesion include heating while stirring and heating while vibrating the container.
[0114] The second heating temperature is the temperature at which the complex oxide C 191 and element X 192 The temperature must be higher than the temperature at which the reaction between the source and the halogen source proceeds. The temperature at which the reaction proceeds here is the temperature at which mutual diffusion of the elements occurs. Therefore, it may be lower than the melting point of these materials. For example, in the case of oxides, the melting point T m 0.757 times (Tanman temperature T d ) solid-state diffusion occurs. Therefore, for example, a temperature of 500°C or higher is sufficient.
[0115] However, the complex oxide C in region 191 191 and element X 192 The reaction proceeds more easily if the annealing temperature is equal to or higher than the melting point of at least one of the X and X halogen sources. 192 When the source is LiF and MgF2 as a halogen source, the eutectic point of LiF and MgF2 is around 742°C, so the temperature of the second heating is preferably 742°C or higher.
[0116] Furthermore, a mixture mixed so as to have a molar ratio of LiCoO2:LiF:MgF2 = 100:0.33:1 exhibits an endothermic peak at around 830°C in differential scanning calorimetry (DSC). Therefore, an annealing temperature of 830°C or higher is more preferable.
[0117] A higher annealing temperature is preferable because the reaction proceeds more easily, the annealing time can be shortened, and productivity is high.
[0118] However, the annealing temperature is the complex oxide C 191 The temperature must be below the decomposition temperature of LiCoO (1130°C in the case of LiCoO). 191 Therefore, the annealing temperature is preferably 1130°C or lower, more preferably 1000°C or lower, even more preferably 950°C or lower, and even more preferably 900°C or lower.
[0119] Therefore, the annealing temperature is preferably 500°C to 1130°C, more preferably 500°C to 1000°C, even more preferably 500°C to 950°C, and even more preferably 500°C to 900°C. Also, it is preferably 742°C to 1130°C, more preferably 742°C to 1000°C, even more preferably 742°C to 950°C, and even more preferably 742°C to 900°C. Also, it is preferably 830°C to 1130°C, more preferably 830°C to 1000°C, even more preferably 830°C to 950°C, and even more preferably 830°C to 900°C.
[0120] Furthermore, during the second heating, it is preferable to control the partial pressure of fluorine or fluoride in the atmosphere within an appropriate range.
[0121] In the manufacturing method described in this embodiment, some materials, for example, LiF, which is a fluorine source, function as a flux. This function allows the annealing temperature of the region 191 to be controlled by the complex oxide C 191 The temperature can be lowered to below the decomposition temperature, for example, 742°C to 950°C, and additives such as magnesium can be distributed in the surface vicinity region, making it possible to produce a positive electrode active material with good characteristics.
[0122] However, since LiF is lighter than oxygen, if LiF volatilizes due to heating, its function as a flux will be weakened. Therefore, it is necessary to heat while suppressing the volatilization of LiF. Even if LiF is not used as a fluorine source, the complex oxide C in the region 191 191 There is also a possibility that Li and F will react to produce LiF, which may volatilize. Therefore, even if a fluoride with a higher melting point than LiF is used, it is still necessary to suppress volatilization.
[0123] Therefore, it is preferable to perform the second heating in an atmosphere containing LiF, that is, in a state where the partial pressure of LiF in the heating furnace is high, as this type of heating can suppress the volatilization of LiF.
[0124] The annealing is preferably performed for an appropriate time. The appropriate annealing time depends on the annealing temperature, the amount of the complex oxide C in the region 191, and the amount of the complex oxide C in the region 191. 191 The temperature and time required for the reaction may vary depending on factors such as the particle size and composition. Smaller particles may be better suited to lower temperatures or shorter times than larger particles.
[0125] For example, the complex oxide C in the region 191 191 When the average particle size (D50) of the particles is about 12 μm, the annealing temperature is preferably, for example, 600° C. or more and 950° C. or less. The annealing time is, for example, preferably 3 hours or more, more preferably 10 hours or more, and even more preferably 60 hours or more.
[0126] On the other hand, the complex oxide C in the region 191 191 When the average particle size (D50) of the particles is about 5 μm, the annealing temperature is preferably, for example, 600° C. to 950° C. The annealing time is preferably, for example, 1 hour to 10 hours, more preferably about 2 hours.
[0127] The temperature drop time after annealing is preferably, for example, 10 hours or more and 50 hours or less.
[0128] <Step S32> Next, in step S32, the annealed material is collected, and the composite oxide C contained in the region 191 is 191 The composite oxide C 191+192 get.
[0129] <Step S41> Next, in step S41, a lithium source and a transition metal M contained in the region 193 are 193 Prepare the source and.
[0130] Region 193 contains a transition metal M 193 The transition metal M contained in the region 193 is preferably at least one of cobalt, nickel, manganese, iron, and vanadium. 193 It is particularly preferable to use a metal that can form a layered rock-salt type composite oxide belonging to the space group R-3m together with lithium. When using a metal that can form a layered rock-salt type composite oxide, it is preferable to mix cobalt, manganese, and nickel in a ratio that allows a layered rock-salt type crystal structure to be formed. Furthermore, aluminum may be added to these transition metals in a ratio that allows a layered rock-salt type crystal structure to be formed.
[0131] The lithium source and the transition metal M in region 193 193 For the source, the description of step S11 can be taken into consideration.
[0132] <Step S71> Next, in step S71, a composite oxide C having a region 192 provided in the composite oxide of the region 191 is formed. 191+192 a lithium source; and a transition metal M 193 The source and are synthesized. For example, the synthesis method includes mixing them in a solid phase method and then heating.
[0133] The mixing can be carried out by a dry method or a wet method. For example, a ball mill, a bead mill, etc. can be used for mixing. When a ball mill is used, it is preferable to use zirconia balls as the grinding media.
[0134] The heating in the synthesis in step S71 is sometimes referred to as the third heating to distinguish it from other heating steps. The third heating is preferably performed at a temperature lower than the first heating. For example, the third heating is preferably at least 100° C. lower than the first heating.
[0135] In addition, the complex oxide C in the region 191 191 is the complex oxide C contained in the region 193. 193 It is preferable that the material has a melting point higher than that of the composite oxide C contained in the region 191. 191 is the complex oxide C contained in the region 193. 193 It is preferable that the material has a melting peak temperature higher than that of the composite oxide C contained in the region 191. 191 is the complex oxide C contained in the region 193. 193 It is preferable that the material has a crystallization temperature higher than that of the composite oxide C contained in the region 191. 191 is the complex oxide C contained in the region 193. 193 It is preferable that the material has higher thermal stability than the material of the present invention.
[0136] Due to the difference in the melting point, the melting peak temperature, the crystallization temperature, or the thermal stability, for example, the heating in the synthesis of step S71 can be performed to obtain the composite oxide C 191 is stable, and the complex oxide C in the region 193 193 The temperature and time can be set so that the two materials are sufficiently interdiffused.
[0137] In the case of layered rock salt type composite oxides, the melting point, melting peak temperature, and crystallization temperature tend to decrease as the concentration of nickel in the transition metal increases. 191 is the complex oxide C contained in the region 193. 193 It is preferable that the concentration of nickel in the transition metal is lower than that in the transition metal.
[0138] For example, when lithium cobalt oxide is used for region 191 and lithium nickel-manganese-cobalt oxide is used for region 193, the third heating is preferably performed at a temperature of 700°C or higher and 900°C or lower.
[0139] <Step S72> In this way, a composite oxide C 192 is formed on the composite oxide of the region 191. 191+192 On the top, the region 193 has a complex oxide C 193 and the particles 190 can be produced (step S72).
[0140] Also, a particle 190 having regions 191 to 194 can be fabricated, for example, as shown in FIG. 1B.
[0141] Steps S11 to S41 can be fabricated in the same manner as in FIG. 1A.
[0142] <Step S51> Next, in step S51, the complex oxide C contained in the region 191 and the region 192 is 191+192 a lithium source; and a transition metal M 193 The source and are synthesized. For example, the synthesis method includes mixing them by a solid phase method and then heating them. The heating conditions can be determined by referring to the description of step S31.
[0143] <Step S52> In this way, the composite oxide C having the regions 191 to 193 191+192+193 is created (step S52).
[0144] <Step S61> Next, in step S61, the element X contained in the region 194 is 194 A source and a halogen source are provided in region 194.
[0145] Next, in step S71, a composite oxide C having regions 191 to 193 is 191+192+193 and X in region 194 194 The source and the halogen source in the region 194 are synthesized. For example, the synthesis method includes mixing these by a solid phase method and then heating.
[0146] In this way, the composite oxide C having the regions 191 to 193 191+192+193 A second impurity layer is provided on the silicon substrate 100 to form particles 190 (step S72).
[0147] Also, region 194 has element X 194 The ionic radius of the cation of element X is preferably larger than the ionic radius of the cation of region 193. 194 tends to be unevenly distributed as region 194.
[0148] This embodiment can be used in combination with other embodiments.
[0149] (Embodiment 2) In this embodiment, a lithium-ion secondary battery including a positive electrode active material manufactured by a manufacturing method according to one embodiment of the present invention will be described. The secondary battery includes at least an outer casing, a current collector, an active material (positive electrode active material or negative electrode active material), a conductive material, and a binder. The secondary battery also includes 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.
[0150] [Positive electrode] The positive electrode includes a positive electrode active material layer and a positive electrode current collector, and the positive electrode active material is preferably formed by the method described in Embodiment 1.
[0151] FIG. 3A shows an example of a schematic cross-sectional view of a positive electrode.
[0152] The current collector 550 is a metal foil, and the positive electrode is formed by applying a slurry onto the metal foil and drying it. After drying, the metal foil may be further pressed. The positive electrode is formed by forming an active material layer on the current collector 550.
[0153] The slurry is a material liquid used to form an active material layer on the current collector 550, and refers to a material containing at least an active material, a binder, and a solvent, and preferably further mixed with a conductive material. 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.
[0154] The conductive material, also called a conductivity imparting agent or a conductivity aid, is made of a carbon material. By attaching the conductive material 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 material, but also encompasses cases where a covalent bond is formed, bonding due to van der Waals forces, the conductive material covering part of the surface of the active material, the conductive material fitting into the surface irregularities of the active material, and electrical connection even when not in contact with each other.
[0155] Carbon black (furnace black, acetylene black, graphite, etc.) is a typical carbon material used as a conductive material.
[0156] In FIG. 3A, acetylene black 553 is shown as the conductive material. Also, in FIG. 3A, an example is shown in which a second active material 562 having a particle size smaller than that of particles 190 obtained in the first embodiment is mixed. By mixing particles of different sizes, a high-density positive electrode can be obtained. Note that particles 190 obtained in the first embodiment correspond to active material 561 in FIG. 3A.
[0157] A binder (resin) is mixed to bond the active material to the current collector 550, such as a metal foil, which serves as the positive electrode of the secondary battery. The binder is also called a binding agent. The binder is a polymeric material, and if a large amount of binder is added, the proportion of active material in the positive electrode decreases, thereby reducing the discharge capacity of the secondary battery. Therefore, the amount of binder mixed is kept to a minimum. In Figure 3A, the areas not filled with the active material 561, second active material 562, and acetylene black 553 represent voids or binder.
[0158] 3A, the boundary between the core region and the shell region of active material 561 is indicated by a dotted line inside active material 561. While active material 561 is shown as a sphere in FIG. 3A, the shape is not particularly limited and various shapes are possible. The cross-sectional shape of active material 561 may be elliptical, rectangular, trapezoidal, conical, square with rounded corners, or asymmetrical.
[0159] 3B shows an example in which the active material 561 has various shapes. FIG. 3B shows an example different from FIG. 3A.
[0160] In addition, in the positive electrode in FIG. 3B, graphene 554 is used as a carbon material used as a conductive material.
[0161] 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 graphene-based field-effect transistors and solar cells.
[0162] In FIG. 3B, a positive electrode active material layer including an active material 561, graphene 554, and acetylene black 553 is formed on a current collector 550.
[0163] In the step of mixing graphene 554 and acetylene black 553 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.
[0164] Furthermore, when the mixture of graphene 554 and acetylene black 553 is within the above range, the dispersion stability of acetylene black 553 is excellent and agglomerations are less likely to occur during slurry preparation. Furthermore, when the mixture of graphene 554 and acetylene black 553 is within the above range, a higher electrode density can be achieved than a positive electrode using only acetylene black 553 as a conductive material. 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 obtained in the first embodiment are used in a positive electrode and the mixture of graphene 554 and acetylene black 553 is within the above range, a synergistic effect can be expected to increase the capacity of the secondary battery.
[0165] Although the electrode density is lower than that of a positive electrode using only graphene as a conductive material, rapid charging can be achieved by mixing the first carbon material (graphene) and the second carbon material (acetylene black) in the above range. Furthermore, when the particles 190 obtained in the first embodiment are used for the positive electrode and the mixture of the graphene 554 and the acetylene black 553 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.
[0166] These features are effective for use as a secondary battery for vehicles.
[0167] 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.
[0168] 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.
[0169] By using the particles 190 obtained in embodiment 1 for the positive electrode and by adjusting the mixture ratio of acetylene black and graphene to the optimal range, it is possible to achieve both high electrode density and the creation of appropriate gaps necessary for ion conduction, thereby obtaining an in-vehicle secondary battery with high energy density and good output characteristics.
[0170] This configuration is also effective for portable information terminals, and by using the particles 190 obtained 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.
[0171] In addition, in Figure 3B, the boundary between the core region and shell region of the active material 561 is indicated by a dotted line inside the active material 561. Note that in Figure 3B, the regions not filled with the active material 561, graphene 554, and acetylene black 553 indicate voids or binder. The 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 if they remain as voids even after the secondary battery is fabricated, the efficiency decreases.
[0172] By using the particles 190 obtained in embodiment 1 for the positive electrode and by adjusting the mixture ratio of acetylene black and graphene to the optimal range, it is possible to achieve both high electrode density and the creation of appropriate gaps necessary for ion conduction, thereby obtaining a secondary battery with high energy density and good output characteristics.
[0173] 3C shows an example of a positive electrode in which carbon nanotubes 555 are used instead of graphene. Fig. 3C shows an example different from Fig. 3B. The use of carbon nanotubes 555 can prevent aggregation of carbon black such as acetylene black 553 and improve dispersibility.
[0174] In FIG. 3C, the regions not filled with active material 561, carbon nanotubes 555, and acetylene black 553 indicate voids or binders.
[0175] Another example of a positive electrode is shown in Fig. 3D. Fig. 3D shows an example in which carbon nanotubes 555 are used in addition to graphene 554. Using both graphene 554 and carbon nanotubes 555 can prevent aggregation of carbon black such as acetylene black 553 and further improve dispersibility.
[0176] In FIG. 3D, the regions not filled with the active material 561, the carbon nanotubes 555, the graphene 554, and the acetylene black 553 indicate voids or binders.
[0177] 3A to 3D, a separator is placed on the positive electrode, and a negative electrode is placed on the separator to produce a laminate, which is then placed in a container (such as an outer casing or a metal can) and filled with an electrolyte to produce a secondary battery.
[0178] Although the above configuration shows an example of a secondary battery using an electrolytic solution, the present invention is not particularly limited.
[0179] For example, the particles 190 obtained in the first embodiment can be used to fabricate a semi-solid battery or an all-solid battery.
[0180] 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.
[0181] In this specification and the like, a polymer electrolyte secondary battery refers to a secondary battery having a polymer in the electrolyte layer between the positive electrode and the negative electrode. The polymer electrolyte secondary battery includes a dry (or solid) polymer electrolyte battery and a polymer gel electrolyte battery. The polymer electrolyte secondary battery may also be referred to as a semi-solid battery.
[0182] When a semi-solid battery is fabricated using the particles 190 obtained in Embodiment 1, the semi-solid battery becomes a secondary battery with a large charge-discharge capacity. Also, a semi-solid battery with a high charge-discharge voltage can be obtained. Alternatively, a semi-solid battery with high safety or reliability can be realized.
[0183] Also, the particles 190 obtained in Embodiment 1 may be mixed with other positive electrode active materials and used.
[0184] Examples of other positive electrode active materials include composite oxides having an olivine-type crystal structure, a layered rock salt-type crystal structure, or a spinel-type crystal structure. For example, compounds such as LiFePO4, LiFeO2, LiNiO2, LiMn2O4, V2O5, Cr2O5, and MnO2 can be mentioned.
[0185] Also, as other positive electrode active materials, it is preferable to mix lithium nickelate (LiNiO2 or LiNi 1-x M x O2 (0 < x < 1) (M = Co, Al, etc.)) with a lithium-containing material having a spinel-type crystal structure containing manganese such as LiMn2O4. By adopting such a configuration, the characteristics of the secondary battery can be improved.
[0186] Also, as other positive electrode active materials, a composition formula Li a Mn b M c O dA lithium-manganese composite oxide that can be expressed by the formula (1) can be used. Here, element M is preferably a metal element selected from among lithium and manganese, or silicon or phosphorus, and more preferably nickel. When measuring the entire lithium-manganese composite oxide particle, <a / (b+c)<2、かつc>it is preferable that the composition be 0 0 during discharge and satisfy 0.26≦(b+c) / d<0.5. The composition of metals, silicon, phosphorus, etc. in the entire lithium-manganese composite oxide particle can be measured using, for example, an inductively coupled plasma mass spectrometer (ICP-MS). The oxygen composition in the entire lithium-manganese composite oxide particle can be measured using, for example, energy dispersive X-ray spectroscopy (EDX). In addition, the composition can be determined by valence evaluation using fusion gas analysis and XAFS (X-ray absorption fine structure) analysis in combination with ICPMS analysis. The lithium manganese composite oxide refers to an oxide containing at least lithium and manganese, and may contain at least one element selected from the group consisting of chromium, cobalt, aluminum, nickel, iron, magnesium, molybdenum, zinc, indium, gallium, copper, titanium, niobium, silicon, phosphorus, and the like.
[0187] <Binder> As the binder, it is preferable to use a rubber material such as styrene-butadiene rubber (SBR), styrene-isoprene-styrene rubber, acrylonitrile-butadiene rubber, butadiene rubber, ethylene-propylene-diene copolymer, etc. Also, fluororubber can be used as the binder.
[0188] Furthermore, it is preferable to use, for example, a water-soluble polymer as the binder. Examples of the water-soluble polymer that can be used include polysaccharides. Examples of the polysaccharide that can be used include cellulose derivatives such as carboxymethyl cellulose (CMC), methyl cellulose, ethyl cellulose, hydroxypropyl cellulose, diacetyl cellulose, and regenerated cellulose, and / or starch. It is even more preferable to use these water-soluble polymers in combination with the above-mentioned rubber material.
[0189] Alternatively, it is preferable to use materials such as polystyrene, polymethyl acrylate, polymethyl methacrylate (polymethyl methacrylate, PMMA), sodium polyacrylate, polyvinyl alcohol (PVA), polyethylene oxide (PEO), polypropylene oxide, polyimide, polyvinyl chloride, polytetrafluoroethylene, polyethylene, polypropylene, polyisobutylene, polyethylene terephthalate, nylon, polyvinylidene fluoride (PVDF), polyacrylonitrile (PAN), ethylene propylene diene polymer, polyvinyl acetate, and nitrocellulose as the binder.
[0190] The binder may be used in combination with two or more of the above.
[0191] For example, a material with particularly excellent viscosity adjusting effect may be used in combination with other materials. For example, while rubber materials have excellent adhesive strength and elasticity, it may be difficult to adjust the viscosity when mixed with a solvent. In such cases, it is preferable to mix them with a material with particularly excellent viscosity adjusting effect. As a material with particularly excellent viscosity adjusting effect, for example, a water-soluble polymer may be used. Furthermore, as a water-soluble polymer with particularly excellent viscosity adjusting effect, the above-mentioned polysaccharides, for example, carboxymethyl cellulose (CMC), methyl cellulose, ethyl cellulose, hydroxypropyl cellulose, diacetyl cellulose, cellulose derivatives such as regenerated cellulose, and / or starch may be used.
[0192] In addition, the solubility of cellulose derivatives such as carboxymethyl cellulose can be increased by converting them into salts such as sodium salts or ammonium salts of carboxymethyl cellulose, making them more effective as viscosity adjusters. Higher solubility can also improve dispersibility with the active material and other components when preparing electrode slurry. In this specification, the cellulose and cellulose derivatives used as electrode binders also include their salts.
[0193] Water-soluble polymers stabilize viscosity by dissolving in water, and they also allow active materials and other materials combined as binders, such as styrene-butadiene rubber, to be stably dispersed in aqueous solutions. Furthermore, their functional groups are expected to facilitate stable adsorption to the surface of active materials. Furthermore, many cellulose derivatives, such as carboxymethyl cellulose, contain functional groups, such as hydroxyl and / or carboxyl groups, and these functional groups are expected to interact with each other and widely cover the surface of the active material.
[0194] When the binder covering or contacting the surface of the active material forms a film, it is expected to function as a passive film and have the effect of suppressing decomposition of the electrolyte. Here, the passive film is a film with no electrical conductivity or a film with extremely low electrical conductivity. For example, when a passive film is formed on the surface of the active material, it can suppress decomposition of the electrolyte at the battery reaction potential. Furthermore, it is more desirable that the passive film suppresses electrical conductivity while still allowing lithium ions to conduct.
[0195] <Positive electrode current collector> The current collector can be made of a highly conductive material, such as a metal such as stainless steel, gold, platinum, aluminum, or titanium, or an alloy thereof. The material used for the positive electrode current collector preferably does not dissolve at the potential of the positive electrode. Aluminum alloys containing elements that improve heat resistance, such as silicon, titanium, neodymium, scandium, or molybdenum, can also be used. The current collector can also be made of a metal element that reacts with silicon to form a silicide. Examples of metal elements that react with silicon to form a silicide include zirconium, titanium, hafnium, vanadium, niobium, tantalum, chromium, molybdenum, tungsten, cobalt, and nickel. The current collector can be in the form of a foil, plate, sheet, mesh, punched metal, or expanded metal, as appropriate. The current collector preferably has a thickness of 5 μm to 30 μm.
[0196] [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 material and a binder.
[0197] <Negative electrode active material> As the negative electrode active material, for example, an alloy-based material and / or a carbon-based material can be used.
[0198] 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.
[0199] 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.
[0200] 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.
[0201] 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.
[0202] 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 (0.05 V to 0.3 V 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 a higher level of safety compared to lithium metal.
[0203] 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.
[0204] 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.
[0205] 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.
[0206] 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.
[0207] The conductive material and binder that can be contained in the negative electrode active material layer can be the same as the conductive material and binder that can be contained in the positive electrode active material layer.
[0208] <Negative electrode current collector> The negative electrode current collector may be made of the same material as the positive electrode current collector, or may be made of copper, etc. It is preferable that the negative electrode current collector be made of a material that does not alloy with carrier ions such as lithium.
[0209] [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.
[0210] 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).
[0211] 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.
[0212] 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.
[0213] 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.
[0214] [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.
[0215] 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 electricity storage device from exploding or catching fire even if the internal temperature of the electricity storage device rises due to an internal short circuit, overcharging, or the like. 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.
[0216] 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, lithium bis(oxalato)borate (Li(C2O4)2, LiBOB), etc. can be used alone or in any combination and ratio of two or more of these.
[0217] The electrolyte used in the electricity storage device is preferably a highly purified electrolyte with a low content of granular waste or 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.
[0218] 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.
[0219] Alternatively, a polymer gel electrolyte may be used in which a polymer is swollen with an electrolytic solution.
[0220] The use of a polymer gel electrolyte improves safety against leakage, etc. It also enables the secondary battery to be made thinner and lighter.
[0221] 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, and polyacrylonitrile, as well as 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.
[0222] In addition, instead of an electrolyte solution, a solid electrolyte containing inorganic materials such as sulfides and / or oxides, or a solid electrolyte containing polymeric 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, the risk of leakage is eliminated, dramatically improving safety.
[0223] Therefore, the particles 190 obtained in the first embodiment can be applied to an all-solid-state battery. 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.
[0224] [Exterior body] The exterior body of the secondary battery can be made of, for example, a metal material such as aluminum and / or a resin material. Alternatively, a film-like exterior body can be used. Examples of the film include a three-layer structure film in which a thin, flexible metal film such as aluminum, stainless steel, copper, or nickel is provided on a film made of a material such as polyethylene, polypropylene, polycarbonate, ionomer, or polyamide, and an insulating synthetic resin film such as a polyamide resin or polyester resin is further provided on the thin metal film as the outer surface of the exterior body.
[0225] This embodiment can be used in combination with other embodiments.
[0226] (Embodiment 3) In this embodiment mode, examples of a plurality of shapes of secondary batteries each having a positive electrode or a negative electrode manufactured by the manufacturing method described in the previous embodiment will be described.
[0227] [Coin-type secondary battery] An example of a coin-type secondary battery will be described below: Fig. 4A is an external view of a coin-type (single-layer flat) secondary battery, and Fig. 4B is a cross-sectional view thereof.
[0228] 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.
[0229] 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.
[0230] Positive electrode can 301 and negative electrode can 302 can be made of metals such as nickel, aluminum, titanium, or alloys thereof and / or alloys of these with other metals (e.g., stainless steel) that are corrosion-resistant to the electrolyte. Furthermore, to prevent corrosion by the electrolyte, it is preferable to coat them with nickel and / or aluminum. Positive electrode can 301 is electrically connected to positive electrode 304, and negative electrode can 302 is electrically connected to negative electrode 307.
[0231] These negative electrode 307, positive electrode 304, and separator 310 are immersed in an electrolyte, and as shown in FIG. 4B, positive electrode 304, separator 310, negative electrode 307, and negative electrode can 302 are stacked in this order with positive electrode can 301 facing downwards, and positive electrode can 301 and negative electrode can 302 are crimped together via gasket 303 to produce coin-type secondary battery 300.
[0232] By using the particles 190 obtained 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.
[0233] Here, we will use Figure 4C to explain the current flow during charging of a secondary battery. When a lithium-based 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-based secondary batteries, the anode (positive electrode) and cathode (negative electrode) are interchanged during charging and discharging, and the oxidation and reduction reactions alternate. 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, the positive electrode will be called the "positive electrode" or "+ electrode (plus electrode)," and the negative electrode will be called the "negative electrode" or "- electrode (minus electrode)," regardless of whether the battery is being charged or discharged, whether a reverse pulse current is being applied, or whether a charging current is being applied. Using the terms anode (positive electrode) and cathode (negative electrode), which are related to oxidation and reduction reactions, may 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.
[0234] 4C is connected to a charger to charge the secondary battery 300. As the charging of the secondary battery 300 progresses, the potential difference between the electrodes increases.
[0235] [Cylindrical secondary battery] An example of a cylindrical secondary battery will be described with reference to Fig. 5A. As shown in Fig. 5A, a cylindrical secondary battery 616 has a positive electrode cap (battery lid) 601 on the top surface and a battery can (external can) 602 on the side and bottom surfaces. The positive electrode cap 601 and the battery can (external can) 602 are insulated by a gasket (insulating packing) 610.
[0236] Fig. 5B is a diagram showing a cross section of a cylindrical secondary battery. The cylindrical secondary battery shown in Fig. 5B has a positive electrode cap (battery lid) 601 on the top surface and a battery can (external can) 602 on the side and bottom surfaces. The positive electrode cap and battery can (external can) 602 are insulated by a gasket (insulating packing) 610.
[0237] A battery element is provided inside a hollow cylindrical battery can 602. The battery element is formed by winding a strip-shaped positive electrode 604 and a negative electrode 606 with a separator 605 sandwiched between them. Although not shown, the battery element is wound around a center pin. One end of the battery can 602 is closed and the other end is open. The battery can 602 can be made of a metal such as nickel, aluminum, or titanium, or an alloy of these metals and / or alloys of these metals with other metals (e.g., stainless steel), which are corrosion-resistant to the electrolyte. It is preferable to coat the battery can 602 with nickel and / or aluminum to prevent corrosion by the electrolyte. Inside the battery can 602, the wound battery element, consisting of the positive electrode, negative electrode, and separator, is sandwiched between a pair of opposing insulating plates 608 and 609. A nonaqueous electrolyte (not shown) is poured into the battery can 602. The nonaqueous electrolyte may be the same as that used in coin-type secondary batteries.
[0238] Since the positive and negative electrodes used in a cylindrical storage battery are wound up, it is preferable to form active materials on both sides of the current collector.
[0239] By using the particles 190 obtained in Embodiment 1 for the positive electrode 604, a cylindrical secondary battery 616 having a high charge / discharge capacity and excellent cycle characteristics can be obtained.
[0240] A positive electrode terminal (positive electrode current collector lead) 603 is connected to the positive electrode 604, and a negative electrode terminal (negative electrode current collector lead) 607 is connected to the negative electrode 606. Both the positive electrode terminal 603 and the negative electrode terminal 607 can be made of a metal material such as aluminum. The positive electrode terminal 603 is resistance-welded to a safety valve mechanism 613, and the negative electrode terminal 607 is resistance-welded to the bottom of the battery can 602. The safety valve mechanism 613 is electrically connected to the positive electrode cap 601 via a PTC (Positive Temperature Coefficient) element 611. The safety valve mechanism 613 cuts off the electrical connection between the positive electrode cap 601 and the positive electrode 604 when the increase in internal pressure of the battery exceeds a predetermined threshold. The PTC element 611 is a thermosensitive resistor whose resistance increases with an increase in temperature. This increase in resistance limits the amount of current and prevents abnormal heat generation. The PTC element can be made of a barium titanate (BaTiO3)-based semiconductor ceramic or the like.
[0241] 5C shows an example of a power storage system 615. The power storage system 615 has a plurality of secondary batteries 616. The positive electrodes of the respective secondary batteries are in contact with and electrically connected to conductors 624 separated by insulators 625. The conductors 624 are electrically connected to a control circuit 620 via wiring 623. The negative electrodes of the respective secondary batteries are electrically connected to the control circuit 620 via wiring 626. The control circuit 620 may be a charge / discharge control circuit that performs charging and discharging, etc., and / or a protection circuit that prevents overcharging or overdischarging.
[0242] 5D shows an example of a power storage system 615. The power storage system 615 has a plurality of secondary batteries 616, which are sandwiched between a conductive plate 628 and a conductive plate 614. The plurality of secondary batteries 616 are electrically connected to the conductive plate 628 and the conductive plate 614 by wiring 627. The plurality of secondary batteries 616 may be connected in parallel, in series, or in series after being connected in parallel. By configuring the power storage system 615 to have a plurality of secondary batteries 616, it is possible to extract a large amount of power.
[0243] A plurality of secondary batteries 616 may be connected in parallel and then further connected in series.
[0244] A temperature control device may be provided between the multiple secondary batteries 616. When the secondary batteries 616 are overheated, they can be cooled by the temperature control device, and when the secondary batteries 616 are too cold, they can be heated by the temperature control device. This makes the performance of the power storage system 615 less susceptible to the outside temperature.
[0245] 5D, the power storage system 615 is electrically connected to a control circuit 620 via wiring 621 and wiring 622. The wiring 621 is electrically connected to the positive electrodes of the plurality of secondary batteries 616 via a conductive plate 628, and the wiring 622 is electrically connected to the negative electrodes of the plurality of secondary batteries 616 via a conductive plate 614.
[0246] [Other examples of secondary battery structures] An example of the structure of the secondary battery will be described with reference to FIGS. 6A to 7C.
[0247] A secondary battery 913 shown in FIG. 6A has a wound body 950 provided with terminals 951 and 952 inside a housing 930. The wound body 950 is immersed in an electrolyte inside the housing 930. The terminal 952 contacts the housing 930, and the terminal 951 is not in contact with the housing 930 by using an insulating material or the like. Note that in FIG. 6A, for convenience, the housing 930 is shown separated, but in reality, the wound body 950 is covered by the housing 930, and the terminals 951 and 952 extend outside the housing 930. The housing 930 can be made of a metal material (e.g., aluminum) or a resin material.
[0248] 6B, the housing 930 shown in Fig. 6A may be formed from a plurality of materials. For example, the secondary battery 913 shown in Fig. 6B has housings 930a and 930b bonded together, and a wound body 950 is provided in the area surrounded by the housings 930a and 930b.
[0249] The housing 930a can be made of an insulating material such as organic resin. In particular, by using a material such as organic resin on the surface on which the antenna is formed, it is possible to prevent the secondary battery 913 from blocking the electric field. Note that if the electric field blocking effect of the housing 930a is small, the antenna may be provided inside the housing 930a. The housing 930b can be made of, for example, a metal material.
[0250] 6C shows the structure of wound body 950. Winding body 950 has a negative electrode 931, a positive electrode 932, and a separator 933. Winding body 950 is a wound body in which negative electrode 931 and positive electrode 932 are stacked on top of each other with separator 933 sandwiched therebetween, and the stacked sheet is wound. Note that multiple stacks of negative electrode 931, positive electrode 932, and separator 933 may be stacked.
[0251] 7A to 7C, a secondary battery 913 may be provided having a wound body 950a. The wound body 950a shown in Fig. 7A has a negative electrode 931, a positive electrode 932, and a separator 933. The negative electrode 931 has a negative electrode active material layer 931a. The positive electrode 932 has a positive electrode active material layer 932a.
[0252] By using the particles 190 obtained in Embodiment 1 for the positive electrode 932, the secondary battery 913 can have high charge / discharge capacity and excellent cycle characteristics.
[0253] The separator 933 has a width wider than the negative electrode active material layer 931a and the positive electrode active material layer 932a, and is wound so as to overlap the negative electrode active material layer 931a and the positive electrode active material layer 932a. From the standpoint of safety, it is preferable that the negative electrode active material layer 931a be wider than the positive electrode active material layer 932a. A wound body 950a having such a shape is preferable because of its high safety and productivity.
[0254] 7B, negative electrode 931 is electrically connected to terminal 951. Terminal 951 is electrically connected to terminal 911a. Positive electrode 932 is electrically connected to terminal 952. Terminal 952 is electrically connected to terminal 911b.
[0255] 7C, wound body 950a and the electrolyte are covered by casing 930 to form secondary battery 913. It is preferable to provide casing 930 with a safety valve, an overcurrent protection element, etc. The safety valve is a valve that opens when the inside of casing 930 reaches a predetermined internal pressure to prevent the battery from exploding.
[0256] As shown in Fig. 7B, the secondary battery 913 may have a plurality of wound bodies 950a. By using a plurality of wound bodies 950a, the secondary battery 913 can have a larger charge / discharge capacity. For other elements of the secondary battery 913 shown in Figs. 7A and 7B, the descriptions of the secondary battery 913 shown in Figs. 6A to 6C can be referred to.
[0257] <Laminated secondary battery> Next, examples of external views of an example of a laminated secondary battery are shown in Figures 8A and 8B. A secondary battery 500 in Figures 8A and 8B has a positive electrode 503, a negative electrode 506, a separator 507, an outer casing 509, a positive electrode lead electrode 510, and a negative electrode lead electrode 511.
[0258] FIG. 9A shows the appearance of a positive electrode 503 and a negative electrode 506. The positive electrode 503 has a positive electrode current collector 501, and a positive electrode active material layer 502 is formed on the surface of the positive electrode current collector 501. The positive electrode 503 also has a region where the positive electrode current collector 501 is partially exposed (hereinafter referred to as a tab region). The negative electrode 506 has a negative electrode current collector 504, and a negative electrode active material layer 505 is formed on the surface of the negative electrode current collector 504. The negative electrode 506 also has a region where the negative electrode current collector 504 is partially exposed, i.e., a tab region. The area and shape of the tab regions of the positive electrode and negative electrode are not limited to the example shown in FIG. 9A.
[0259] <Method for manufacturing laminated secondary batteries> Here, an example of a method for manufacturing the laminated secondary battery whose external view is shown in FIG. 8A will be described with reference to FIGS. 9B and 9C.
[0260] First, the negative electrode 506, separator 507, and positive electrode 503 are stacked. FIG. 9B shows the stacked negative electrode 506, separator 507, and positive electrode 503. Here, an example is shown in which five pairs of negative electrodes and four pairs of positive electrodes are used. This can also be called a laminate consisting of a negative electrode, a separator, and a positive electrode. Next, the tab regions of the positive electrodes 503 are joined together, and a positive electrode lead electrode 510 is joined to the tab region of the outermost positive electrode. For example, ultrasonic welding or the like may be used for joining. Similarly, the tab regions of the negative electrodes 506 are joined together, and a negative electrode lead electrode 511 is joined to the tab region of the outermost negative electrode.
[0261] Next, the negative electrode 506 , the separator 507 and the positive electrode 503 are placed on the exterior body 509 .
[0262] Next, as shown in Fig. 9C, exterior body 509 is folded at the portion indicated by the dashed line. Thereafter, the outer periphery of exterior body 509 is joined. For the joining, for example, thermocompression bonding or the like may be used. At this time, an area (hereinafter referred to as an inlet) that is not joined is provided in a part (or one side) of exterior body 509 so that electrolyte 508 can be introduced later.
[0263] Next, electrolyte 508 (not shown) is introduced into the inside of exterior body 509 through an inlet provided in exterior body 509. The introduction of electrolyte 508 is preferably carried out under a reduced pressure atmosphere or an inert atmosphere. Finally, the inlet is joined. In this manner, laminated secondary battery 500 can be produced.
[0264] By using the particles 190 obtained in the first embodiment for the positive electrode 503, the secondary battery 500 can be made to have a high charge / discharge capacity and excellent cycle characteristics.
[0265] [Example of a battery pack] An example of a secondary battery pack according to one embodiment of the present invention, which is capable of wireless charging using an antenna, will be described with reference to FIGS. 10A to 10C.
[0266] FIG. 10A is a diagram showing the appearance of secondary battery pack 531, which has a thin rectangular parallelepiped shape (which can also be called a thick flat plate shape). FIG. 10B is a diagram illustrating the configuration of secondary battery pack 531. Secondary battery pack 531 has circuit board 540 and secondary battery 513. Label 529 is attached to secondary battery 513. Circuit board 540 is fixed with sticker 515. Secondary battery pack 531 also has antenna 517.
[0267] The inside of the secondary battery 513 may have a structure having a wound body or a structure having a laminated body.
[0268] 10B, the secondary battery pack 531 has a control circuit 590 on a circuit board 540. The circuit board 540 is electrically connected to the terminals 514. The circuit board 540 is also electrically connected to the antenna 517, one 551 of the positive electrode lead and the negative electrode lead of the secondary battery 513, and the other 552 of the positive electrode lead and the negative electrode lead of the secondary battery 513.
[0269] Alternatively, as shown in FIG. 10C, the device may have a circuit system 590a provided on the circuit board 540 and a circuit system 590b electrically connected to the circuit board 540 via the terminals 514.
[0270] The antenna 517 is not limited to a coil shape, and may be, for example, a wire or plate shape. Also, antennas such as a planar antenna, an aperture antenna, a traveling wave antenna, an EH antenna, a magnetic field antenna, and a dielectric antenna may be used. Alternatively, the antenna 517 may be a flat conductor. This flat conductor can function as one of the conductors for electric field coupling. In other words, the antenna 517 may function as one of the two conductors of a capacitor. This allows power to be exchanged not only by electromagnetic fields and magnetic fields, but also by electric fields.
[0271] The secondary battery pack 531 has a layer 519 between the antenna 517 and the secondary battery 513. The layer 519 has a function of, for example, shielding an electromagnetic field caused by the secondary battery 513. The layer 519 can be made of, for example, a magnetic material.
[0272] This embodiment mode can be freely combined with other embodiment modes.
[0273] (Fourth embodiment) In this embodiment, an example of manufacturing an all-solid-state battery using the particles 190 obtained in the first embodiment will be described.
[0274] As shown in FIG. 11A, 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.
[0275] 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 obtained 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 material and a binder.
[0276] 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.
[0277] 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 material 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. 11B. Using metallic lithium for the negative electrode 430 is preferable because it can improve the energy density of the secondary battery 400.
[0278] 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.
[0279] 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 0.95 Sulfide-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.
[0280] 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.
[0281] Halide-based solid electrolytes include LiAlCl4, Li3InBr6, LiF, LiCl, LiBr, LiI, etc. Also, composite materials in which these halide-based solid electrolytes are filled in the pores of porous aluminum oxide or porous silica can be used as solid electrolytes.
[0282] Also, different solid electrolytes may be mixed and used.
[0283] Among them, Li 1+x Al x Ti 2-x (PO4)3 (0 < x < 1) (hereinafter referred to as LATP) contains aluminum and titanium, which are elements that the positive electrode active material used in the secondary battery 400 of one aspect of the present invention may have. Therefore, a synergistic effect can be expected for improving the cycle characteristics, which is preferable. Also, an improvement in productivity due to process reduction can be expected. In this specification, etc., 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 share vertices and are three-dimensionally arranged.
[0284] [Shape of the exterior body and the secondary battery] For the exterior body of the secondary battery 400 of one aspect of the present invention, various materials and shapes can be used, but it is preferable to have a function of pressing the positive electrode, the solid electrolyte layer, and the negative electrode.
[0285] For example, FIGS. 12A to 12C show an example of a cell for evaluating the materials of an all-solid-state battery.
[0286] 12A is a cross-sectional schematic diagram of the evaluation cell, which has a lower member 761, an upper member 762, and a fixing screw or wing nut 764 that fixes them together, 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.
[0287] 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. 12B.
[0288] 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. 12C. Note that the same reference numerals are used for the same parts in Figs. 12A to 12C.
[0289] 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.
[0290] The secondary battery of one embodiment of the present invention preferably uses an airtight package for its exterior. For example, a ceramic package and / or a resin package can be used. The exterior is preferably sealed in a sealed atmosphere, such as a glove box, while blocking external air.
[0291] Fig. 13A 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 of Fig. 12A. The secondary battery in Fig. 13A has external electrodes 771 and 772 and is sealed in an exterior body having multiple package members.
[0292] An example of a cross section taken along the dashed line in Figure 13A is shown in Figure 13B. 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 and / or ceramic.
[0293] 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.
[0294] By using the particles 190 obtained in the first embodiment, an all-solid-state secondary battery having high energy density and good output characteristics can be realized.
[0295] This embodiment mode can be implemented in appropriate combination with other embodiment modes.
[0296] (Embodiment 5) In this embodiment, an example of application to an electric vehicle (EV) will be shown using FIG. 14C, which is an example different from the cylindrical secondary battery shown in FIG. 5D.
[0297] The electric vehicle is equipped with first batteries 1301a and 1301b 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.
[0298] The internal structure of the first battery 1301a may be a wound type as shown in Fig. 6A or 7C, or a stacked type as shown in Fig. 8A or 8B. 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.
[0299] In this embodiment, an example is shown in which two first batteries 1301a and 1301b are connected in parallel, but three or more batteries 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.
[0300] 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.
[0301] The power of the first battery 1301a and the first battery 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.
[0302] 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.
[0303] The first battery 1301a will be described with reference to FIG. 14A.
[0304] FIG. 14A 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 using fixing portions 1413, 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.
[0305] 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.
[0306] 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.
[0307] 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.
[0308] 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.
[0309] 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.
[0310] It should be noted that there are cases where a clear boundary between the first region and the second region cannot be observed.
[0311] 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.
[0312] 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.
[0313] 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.
[0314] 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 obtained in embodiment 1 as its positive electrode can achieve a synergistic effect in terms of safety. A secondary battery using the particles 190 obtained in embodiment 1 as its positive electrode and the control circuit unit 1320 can significantly contribute to eliminating accidents, such as fires, caused by secondary batteries.
[0315] 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.
[0316] 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.
[0317] 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.
[0318] 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.
[0319] FIG. 14B shows an example of a block diagram of the battery pack 1415 shown in FIG. 14A.
[0320] 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 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 secondary battery 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).
[0321] The switch unit 1324 can be configured by combining n-channel transistors and / or p-channel transistors. The switch unit 1324 is not limited to switches having Si transistors using single-crystal silicon. For example, the switch unit 1324 may be formed of power transistors 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.
[0322] FIG. 14C is a block diagram of a vehicle having a motor. First battery 1301a and first battery 1301b mainly supply power to on-board equipment of the 42V system (high voltage system), and second battery 1311 supplies power to on-board equipment of the 14V system (low voltage system). Lead-acid batteries are often used as second battery 1311 due to their cost advantages. Lead-acid batteries have the disadvantage of being more self-discharged than lithium-ion secondary batteries and being prone to deterioration due to a phenomenon called sulfation. Using a lithium-ion secondary battery as second battery 1311 has the advantage of being maintenance-free, but after long-term use, for example, three years or more, there is a risk of abnormalities occurring that cannot be detected at the time of manufacture. In particular, if the second battery 1311 that starts the inverter becomes inoperable, in order to prevent the motor from being unable to start even if the first battery 1301a and the first battery 1301b have remaining capacity, 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 charged to always maintain a fully charged state.
[0323] In this embodiment, an example in which lithium ion secondary batteries are used for both the first battery 1301a and the second battery 1311 is shown. The second battery 1311 may be a lead storage battery, an all-solid-state battery, or an electric double layer capacitor. For example, the all-solid-state battery of Embodiment 4 may be used. By using the all-solid-state battery of Embodiment 4 for the second battery 1311, high capacity can be achieved, and miniaturization and weight reduction can be achieved.
[0324] 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 and 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.
[0325] The battery controller 1302 can set the charging voltage and charging current of the first battery 1301a and the first battery 1301b. The battery controller 1302 can set charging conditions according to the charging characteristics of the secondary battery used, and can perform rapid charging.
[0326] 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 battery 1301a and the first battery 1301b via the battery controller 1302. Some chargers are provided with a control circuit and do not use the functions of the battery controller 1302, but it is preferable to charge the first battery 1301a and the first battery 1301b via the 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 / or a GPU.
[0327] 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 outlets. Charging is also possible by receiving power from external charging equipment using methods such as contactless power supply.
[0328] When rapid charging is performed, a secondary battery that can withstand high voltage charging is desired in order to charge in a short time.
[0329] Moreover, the secondary battery of the present embodiment described above has a high-density positive electrode by using the particles 190 obtained in the first embodiment. Furthermore, by using graphene as a conductive material, it is possible to suppress a decrease in capacity 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.
[0330] 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.
[0331] Next, an example in which a secondary battery according to one embodiment of the present invention is mounted on a vehicle, typically a transportation vehicle, will be described.
[0332] 5D, 7C, and 14A, next-generation clean energy automobiles such as hybrid vehicles (HVs), electric vehicles (EVs), and plug-in hybrid vehicles (PHVs) can be realized. Furthermore, secondary batteries can also be installed in transportation vehicles such as agricultural machinery, mopeds including electrically assisted bicycles, motorcycles, electric wheelchairs, electric carts, small or large ships, submarines, aircraft such as fixed-wing aircraft and rotary-wing aircraft, rockets, artificial satellites, space probes, planetary probes, and spacecraft. The secondary battery of one embodiment of the present invention can be a high-capacity secondary battery. Therefore, the secondary battery of one embodiment of the present invention is suitable for miniaturization and weight reduction and can be suitably used in transportation vehicles.
[0333] 15A to 15D illustrate examples of transportation vehicles using one embodiment of the present invention. An automobile 2001 shown in FIG. 15A is an electric automobile that uses 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 3 is installed in one or more locations. The automobile 2001 shown in FIG. 15A includes a battery pack 2200, which includes a secondary battery module to which multiple secondary batteries are connected. It is preferable that the automobile further includes a charge control device electrically connected to the secondary battery module.
[0334] Furthermore, automobile 2001 can charge its secondary battery by receiving power supply from an external charging facility using a plug-in system and / or a wireless power supply system. Charging can be performed using a predetermined charging method and connector standards such as CHAdeMO (registered trademark) or Combo. The secondary battery may be charged using a charging station provided in a commercial facility or a household power source. For example, plug-in technology can be used to charge an electric storage device mounted on 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.
[0335] Although not shown, a power receiving device can be mounted on a vehicle and power can be supplied contactlessly from a ground-based power transmitting device for charging. In the case of this contactless power supply method, by incorporating a power transmitting device into the road and / or exterior wall, charging can be performed not only while the vehicle is stopped but also while it 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 the secondary battery can be charged while the vehicle is stopped and / or moving. Electromagnetic induction and / or magnetic resonance methods can be used for such contactless power supply.
[0336] 15B 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 with a nominal voltage of 3.0 V to 5.0 V, with 48 cells connected in series for a maximum voltage of 170 V. 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. 15A, and therefore a description thereof will be omitted.
[0337] FIG. 15C 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, which is obtained by connecting in series one hundred or more secondary batteries with a nominal voltage of 3.0 V to 5.0 V. Therefore, a secondary battery with little variation in characteristics is required. A secondary battery using the particles 190 described in the first embodiment as the positive electrode is suitable for miniaturization and weight reduction, and can be suitably used in transport vehicles. Furthermore, except for the number of secondary batteries constituting the secondary battery module of the battery pack 2202, the battery pack 2202 has the same functions as those shown in FIG. 15A, and therefore a description thereof will be omitted.
[0338] Fig. 15D shows, as an example, an aircraft 2004 having an engine that burns fuel. Since the aircraft 2004 shown in Fig. 15D 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 includes the secondary battery module and a charge control device.
[0339] 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. 15A, and therefore a description thereof will be omitted.
[0340] This embodiment mode can be implemented in appropriate combination with other embodiment modes.
[0341] (Embodiment 6) In this embodiment, 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. 16A and 16B.
[0342] 16A 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 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.
[0343] 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.
[0344] 16B illustrates an example of a power storage device 700 according to one embodiment of the present invention. As illustrated in FIG. 16B, a power storage device 791 according to one embodiment of the present invention is installed in an underfloor space 796 of a building 799. The power storage device 791 may be provided with the control circuit described in Embodiment 5. A synergistic effect on safety can be obtained by using a secondary battery in which the particles 190 obtained in Embodiment 1 are used for a positive electrode in the power storage device 791. The control circuit described in Embodiment 5 and the secondary battery in which the particles 190 described in Embodiment 1 are used for a positive electrode can greatly contribute to preventing accidents such as fires caused by the power storage device 791 including a secondary battery.
[0345] A control device 790 is installed in the power storage device 791, and the control device 790 is electrically connected to a distribution board 703, a power storage controller 705 (also called a control device), a display 706, and a router 709 by wiring.
[0346] Electric power is sent from commercial power source 701 to distribution board 703 via service line attachment section 710. Electric power is also sent to distribution board 703 from power storage device 791 and commercial power source 701, and distribution board 703 supplies the sent electric power to general load 707 and power storage load 708 via an outlet (not shown).
[0347] The general load 707 is, for example, an electrical appliance such as a television or a personal computer, and the power storage load 708 is, for example, an electrical appliance such as a microwave oven, a refrigerator, or an air conditioner.
[0348] The power storage controller 705 has a measurement unit 711, a prediction unit 712, and a planning unit 713. The measurement unit 711 has a function of measuring the amount of power consumed by the general load 707 and the power storage load 708 during one day (for example, from midnight to midnight). The measurement unit 711 may also have a function of measuring the amount of power of the power storage device 791 and the amount of power supplied from the commercial power source 701. The prediction unit 712 has a function of predicting the amount of power demand to be consumed by the general load 707 and the power storage load 708 during the next day, based on the amount of power consumed by the general load 707 and the power storage load 708 during the previous day. The planning unit 713 has a function of creating a plan for charging and discharging the power storage device 791, based on the amount of power demand predicted by the prediction unit 712.
[0349] The amount of power consumed by the general load 707 and the power storage load 708 measured by the measurement unit 711 can be confirmed on the display 706. It can also be confirmed on electrical appliances such as televisions and personal computers via the router 709. It can also be confirmed on portable electronic devices such as smartphones and tablets via the router 709. The amount of power demand for each time period (or each hour) predicted by the prediction unit 712 can also be confirmed on the display 706, the electrical appliances, and the portable electronic devices.
[0350] This embodiment mode can be implemented in appropriate combination with other embodiment modes.
[0351] (Embodiment 7) 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.
[0352] 17A is an example of an electric bicycle using the power storage device of one embodiment of the present invention. The power storage device of one embodiment of the present invention can be applied to an electric bicycle 8700 shown in FIG. 17A. The power storage device of one embodiment of the present invention includes, for example, a plurality of storage batteries and a protection circuit.
[0353] 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. 17B . 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, as shown as an example in Embodiment 5. 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. 13A and 13B. By providing the small solid-state secondary battery shown in FIGS. 13A and 13B 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 time. Furthermore, a synergistic effect in terms of safety can be obtained by combining the particles 190 obtained in embodiment 1 with a secondary battery using the particles 190 obtained in embodiment 1 in its positive electrode. The secondary battery using the particles 190 obtained 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.
[0354] 17C is an example of a two-wheeled vehicle using the power storage device of one embodiment of the present invention. A scooter 8600 shown in FIG. 17C 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. The power storage device 8602, which includes a plurality of secondary batteries each using the particles 190 obtained in Embodiment 1 for its positive electrode, can have a high capacity and contribute to miniaturization.
[0355] 17C, 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.
[0356] (Embodiment 8) In this embodiment, an example in which a secondary battery according to one embodiment of the present invention is mounted in an electronic device will be described. Examples of electronic devices in which a secondary battery is mounted include television sets (also referred to as televisions or television receivers), computer monitors, digital cameras, digital video cameras, digital photo frames, mobile phones (also referred to as mobile phones or mobile phone devices), portable game consoles, personal digital assistants, sound players, and large game consoles such as pachinko machines. Examples of personal digital assistants include notebook personal computers, tablet terminals, e-books, and mobile phones.
[0357] 18A shows an example of a mobile phone. Mobile phone 2100 includes a display unit 2102 built into housing 2101, operation buttons 2103, an external connection port 2104, a speaker 2105, a microphone 2106, and the like. Mobile phone 2100 also includes secondary battery 2107. By including secondary battery 2107 using particles 190 described in embodiment 1 as the positive electrode, high capacity can be achieved, and a configuration that can accommodate space savings associated with miniaturization of housings can be realized.
[0358] 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.
[0359] 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.
[0360] 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.
[0361] 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.
[0362] The mobile phone 2100 preferably has a sensor, such as a fingerprint sensor, a pulse sensor, a body temperature sensor, a touch sensor, a pressure sensor, an acceleration sensor, or the like.
[0363] 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 obtained 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, the secondary battery is suitable as a secondary battery to be installed in unmanned aerial vehicle 2300.
[0364] Fig. 18C shows an example of a robot. A robot 6400 shown in Fig. 18C includes a secondary battery 6409, an illuminance sensor 6401, a microphone 6402, an upper camera 6403, a speaker 6404, a display unit 6405, a lower camera 6406, an obstacle sensor 6407, a movement mechanism 6408, a computing device, etc.
[0365] The microphone 6402 has a function of detecting the user's voice, environmental sounds, etc. The speaker 6404 has a function of emitting sound. The robot 6400 can communicate with the user using the microphone 6402 and the speaker 6404.
[0366] The display unit 6405 has a function of displaying various information. The robot 6400 can display information desired by the user on the display unit 6405. The display unit 6405 may be equipped with a touch panel. The display unit 6405 may also be a detachable information terminal, which can be installed in a fixed position on the robot 6400 to enable charging and data transfer.
[0367] The upper camera 6403 and the lower camera 6406 have the function of capturing images of the surroundings of the robot 6400. In addition, the obstacle sensor 6407 can detect the presence or absence of obstacles in the direction of travel when the robot 6400 moves forward using the movement mechanism 6408. The robot 6400 can recognize the surrounding environment and move safely using the upper camera 6403, the lower camera 6406, and the obstacle sensor 6407.
[0368] The robot 6400 includes a secondary battery 6409 according to one embodiment of the present invention and a semiconductor device or an electronic component in its internal region. A secondary battery using the particles 190 obtained in Embodiment 1 for its positive electrode has high energy density and high safety, and therefore can be used safely for a long period of time. Therefore, the secondary battery 6409 is suitable for the robot 6400.
[0369] 18D shows an example of a cleaning robot. The cleaning robot 6300 has a display unit 6302 arranged on the top surface of a housing 6301, a plurality of cameras 6303 arranged on the side surface, a brush 6304, an operation button 6305, a secondary battery 6306, various sensors, and the like. Although not shown, the cleaning robot 6300 is provided with tires, a suction port, and the like. The cleaning robot 6300 can move by itself, detect dust 6310, and suck up the dust from a suction port arranged on the bottom surface.
[0370] For example, the cleaning robot 6300 can analyze an image captured by the camera 6303 and determine whether or not there is an obstacle such as a wall, furniture, or a step. Furthermore, when an object that may become entangled in the brush 6304, such as a wire, is detected through image analysis, the rotation of the brush 6304 can be stopped. The cleaning robot 6300 includes a secondary battery 6306 according to one embodiment of the present invention and a semiconductor device or an electronic component in its internal region. A secondary battery using the particles 190 obtained in Embodiment 1 as a positive electrode has high energy density and high safety, and therefore can be used safely for a long period of time. Therefore, the secondary battery 6306 is suitable for use in the cleaning robot 6300.
[0371] Figure 19A 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 a wearable device that can be charged wirelessly as well as via a wired connection with an exposed connector.
[0372] 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. 19A. 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 can be used for a long time. A secondary battery using the particles 190 obtained in Embodiment 1 as a positive electrode has a high energy density and can realize a configuration that can accommodate space saving associated with a miniaturized housing.
[0373] 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. The secondary battery can be provided in the flexible pipe 4001b and / or the earphone unit 4001c. A secondary battery using the particles 190 obtained in Embodiment 1 as a positive electrode has high energy density, and can realize a configuration that can accommodate space saving associated with a miniaturized housing.
[0374] Furthermore, the secondary battery according to one embodiment of the present invention can be mounted on a device 4002 that can be directly attached to the body. A secondary battery 4002b can be provided in a thin housing 4002a of the device 4002. A secondary battery using the particles 190 obtained in Embodiment 1 as a positive electrode has high energy density, and a configuration that can accommodate space saving due to miniaturization of the housing can be realized.
[0375] 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. A secondary battery using the particles 190 obtained in Embodiment 1 as a positive electrode has high energy density, and a configuration that can accommodate space saving due to miniaturization of the housing can be realized.
[0376] 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 the secondary battery can be mounted in an inner region of the belt portion 4006a. The secondary battery using the particles 190 obtained in Embodiment 1 as a positive electrode has high energy density, and a configuration that can accommodate space saving due to miniaturization of the housing can be realized.
[0377] Furthermore, the secondary battery according to one embodiment of the present invention can be mounted on a wristwatch device 4005. The wristwatch device 4005 has a display portion 4005a and a belt portion 4005b, and the secondary battery can be provided on the display portion 4005a or the belt portion 4005b. A secondary battery using the particles 190 obtained in Embodiment 1 as a positive electrode has high energy density, and a structure that can accommodate space saving due to miniaturization of the housing can be realized.
[0378] The display unit 4005a can display not only the time but also various other information such as incoming emails and phone calls.
[0379] 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.
[0380] FIG. 19B shows a perspective view of the wristwatch type device 4005 removed from the wrist.
[0381] 19C shows a side view of the display portion 4005a. FIG. 19C shows a state in which a secondary battery 913 is built in the internal region. The secondary battery 913 is the secondary battery described in Embodiment 3. The secondary battery 913 is provided at a position overlapping with the display portion 4005a, and can have high density and high capacity, and is small and lightweight.
[0382] Since the wristwatch-type device 4005 is required to be small and lightweight, by using the particles 190 obtained in embodiment 1 as the positive electrode of the secondary battery 913, it is possible to obtain a high-energy density and small secondary battery 913.
[0383] This embodiment mode can be implemented in appropriate combination with other embodiment modes. [Example]
[0384] In this example, the results of measuring the melting points of composite oxides applicable to the regions 191 and 193 using differential scanning calorimetry (DSC) will be described.
[0385] The composite oxides to be measured have a layered rock salt type crystal structure and differ in the concentration of nickel and cobalt. 0.8 Ni 0.2 O2 and LiCo 0.5 Ni 0.5 There were three types of O2.
[0386] The differential scanning calorimeter used was a Thermo plus EVO2 DSC8271 manufactured by Rigaku. The temperature was increased at a rate of 20°C / min in the air.
[0387] Figure 20A shows LiCoO2, LiCo 0.8 Ni 0.2 O2 and LiCo 0.5 Ni 0.5 FIG. 20B is an enlarged view of a portion of FIG. 20A, showing the results of DSC measurement of O2.
[0388] As shown in Figure 20B, the endothermic peak of LiCoO2 is at 1137 °C, 0.8 Ni 0.2 The endothermic peak of O2 is 1119℃, and that of LiCo 0.5 Ni 0.5 The endothermic peak of O2 was 1073°C. These endothermic peaks are associated with melting, and are the melting peak temperatures. In this example and other examples, the melting peak temperature is taken as the melting point.
[0389] Thus, it became clear that in the case of a composite oxide having a layered rock-salt crystal structure and having different concentrations of nickel and cobalt in the transition metals, the melting point decreases as the concentration of nickel in the transition metal increases. [Explanation of symbols]
[0390] 190: Particle, 191: Area, 192: Area, 193: Area, 193a: Area, 193b: Area, 194: Area
Claims
1. A secondary battery having a positive electrode active material, the positive electrode active material is in the form of particles, the positive electrode active material has a first region, a second region, a third region, and a fourth region; the first region is provided more inward than the third region, the second region is provided between the first region and the third region, the fourth region is provided outside the third region, the fourth region overlaps with at least one of the first region, the second region, and the third region; Secondary battery.
2. In claim 1, the first region in the positive electrode active material has an area ratio of 0.04% or more and 96.0% or less of a cross section of the positive electrode active material (cross-sectional area of the first region / cross-sectional area of the positive electrode active material); the third region in the positive electrode active material has an area ratio of 4% or more and 99.96% or less of a cross section of the positive electrode active material (cross-sectional area of the third region / cross-sectional area of the positive electrode active material); Secondary battery.
3. In claim 1 or claim 2, the first region comprises at least one of cobalt, nickel, manganese, iron, and vanadium; the third region includes at least one of cobalt, nickel, manganese, iron, and vanadium; the melting point of the complex oxide contained in the first region is higher than the melting point of the complex oxide contained in the third region; Secondary battery.
Citation Information
Patent Citations
Positive electrode active material, positive electrode, method of preparing positive electrode, and secondary battery
JP2019021456A