electrode

The electrode design with oxygen-terminated particles and graphene compound addresses the challenges of active material collapse and capacity reduction, offering a durable and high-energy-density secondary battery for vehicles and devices.

JP2026042064APending Publication Date: 2026-03-10SEMICON ENERGY LAB CO LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2025-12-18
Publication Date
2026-03-10

AI Technical Summary

Technical Problem

Secondary batteries used in mobile vehicles and devices require high capacity, durability, and safety, while maintaining high energy density and stability, as they face issues with active material collapse and reduced capacity due to conductive agent and binder usage.

Method used

An electrode design incorporating particles with oxygen-containing functional groups and a sheet-like graphene compound that clings to the particles via hydrogen bonds, forming a stable conductive network, enhancing conductivity and preventing collapse during charge-discharge cycles.

Benefits of technology

The electrode provides a durable, high-capacity, and safe secondary battery with improved energy density and stability, suitable for vehicles and portable devices, by using a graphene compound to enhance conductivity and prevent active material collapse.

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Abstract

To provide an electrode having excellent properties, to provide an active material having excellent properties, or to provide a novel silicon material. [Solution] An electrode comprising a plurality of particles and a graphene compound, wherein at least a portion of the surface of each of the plurality of particles is terminated with a functional group containing oxygen, the graphene compound is encapsulated so as to surround the plurality of particles, and the graphene compound is graphene having at least one of a carbon atom terminated with a hydrogen atom and a carbon atom terminated with a fluorine atom in a two-dimensional structure formed by a six-membered carbon ring.
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Description

[Technical Field]

[0001] One embodiment of the present invention relates to an electrode and a manufacturing method thereof, or an active material included in the electrode and a manufacturing method thereof, or a secondary battery and a manufacturing method thereof, or a mobile object including a vehicle, a personal digital assistant, an electronic device, or the like, each having a secondary battery.

[0002] One embodiment of the present invention relates to an object, a method, or a manufacturing method. Alternatively, the present invention relates to a process, a machine, a manufacture, or a composition of matter. One embodiment of the present invention relates to a semiconductor device, a display device, a light-emitting device, a power storage device, a lighting device, an electronic device, or a manufacturing method thereof.

[0003] In this specification, the term "electronic device" refers to any device having a power storage device, and includes electro-optical devices having a power storage device, information terminal devices having a power storage device, and the like.

[0004] In this specification, the term "power storage device" refers to all elements and devices having a power storage function, including, for example, power storage devices such as lithium ion secondary batteries (also called secondary batteries), lithium ion capacitors, and electric double layer capacitors. [Background technology]

[0005] In recent years, there has been active development of various types of electricity storage devices, such as lithium-ion secondary batteries, lithium-ion capacitors, and air batteries. Demand for high-power, high-energy-density lithium-ion secondary batteries, in particular, has rapidly expanded alongside the development of the semiconductor industry, as they are used in portable information terminals such as mobile phones, smartphones, and notebook computers, portable music players, digital cameras, medical devices, and next-generation clean-energy vehicles such as hybrid vehicles (HVs), electric vehicles (EVs), and plug-in hybrid vehicles (PHVs), making them indispensable in today's information society as a rechargeable energy source.

[0006] In addition to their stability, it is important for secondary batteries to have high capacity. Silicon-based materials have high capacity and are used as active materials for secondary batteries. Silicon materials can be characterized by chemical shift values ​​obtained from NMR spectra (Patent Document 1).

[0007] Fluorine has a high electronegativity, and various studies have been conducted on its reactivity. Non-Patent Document 1 describes the reactions of compounds containing fluorine. [Prior art documents] [Patent documents]

[0008] [Patent Document 1] Japanese Patent Application Laid-Open No. 2015-156355 [Non-patent literature]

[0009] [Non-Patent Document 1] JM Sangster and AD Pelton, “Critical Coupled Evaluation of Phase Diagrams and Thermodynamic Properties of Binary and Ternary Alkali Salt Systems”, American Ceramic Society; Westerville, Ohio; pp. 4-231 (1987). Summary of the Invention [Problem to be solved by the invention]

[0010] Secondary batteries used in mobile vehicles such as electric vehicles and hybrid vehicles need to have high capacities in order to extend the driving distance.

[0011] Furthermore, as mobile devices and the like become more multifunctional, their power consumption is increasing. Furthermore, there is a demand for smaller and lighter secondary batteries for use in mobile devices. Therefore, there is also a demand for higher capacity secondary batteries for use in mobile devices.

[0012] Electrodes of secondary batteries are composed of materials such as active materials, conductive agents, and binders. The higher the proportion of materials that contribute to charge / discharge capacity, such as active materials, the higher the capacity of the secondary battery. The presence of a conductive agent in an electrode can enhance the conductivity of the electrode, resulting in excellent output characteristics. Furthermore, repeated expansion and contraction of the active material during charge / discharge of a secondary battery can sometimes cause the active material to collapse, short-circuit the conductive path, and the like in the electrode. In such cases, the presence of a conductive agent and / or a binder in an electrode can suppress at least one of the collapse of the active material and the short-circuit of the conductive path. On the other hand, the use of a conductive agent and / or a binder can reduce the proportion of the active material, which can result in a decrease in the capacity of the secondary battery.

[0013] An object of one embodiment of the present invention is to provide an electrode having excellent characteristics. Alternatively, an object of one embodiment of the present invention is to provide an active material having excellent characteristics. Alternatively, an object of one embodiment of the present invention is to provide a novel silicon material. Alternatively, an object of one embodiment of the present invention is to provide a novel electrode.

[0014] Another object of one embodiment of the present invention is to provide a durable negative electrode.Another object of one embodiment of the present invention is to provide a durable positive electrode.Another object of one embodiment of the present invention is to provide a negative electrode that is less susceptible to deterioration.Another object of one embodiment of the present invention is to provide a positive electrode with high capacity.

[0015] Another object of one embodiment of the present invention is to provide a secondary battery that is less susceptible to deterioration.Another object of one embodiment of the present invention is to provide a secondary battery that is highly safe.Another object of one embodiment of the present invention is to provide a secondary battery that has high energy density.Another object of one embodiment of the present invention is to provide a novel secondary battery.

[0016] Another object of one embodiment of the present invention is to provide a novel substance, active material particles, or a manufacturing method thereof.

[0017] 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. [Means for solving the problem]

[0018] In an electrode having particles and a sheet-like material, the sheet-like material is curved so as to approach the particles due to intermolecular forces such as London dispersion forces.

[0019] An electrode according to one embodiment of the present invention includes particles and a sheet-shaped material, and the particles have a region terminated with an oxygen-containing functional group.

[0020] Furthermore, it is more preferable that the particles included in the electrode of one embodiment of the present invention have a region terminated with a functional group containing oxygen and hydrogen, such as a hydroxy group, a carboxy group, or a functional group containing a hydroxy group.

[0021] The sheet-shaped material preferably has a first region terminated with hydrogen atoms. The first region is, for example, a region consisting of one atom capable of bonding with hydrogen and a hydrogen atom bonded to the atom. Alternatively, the first region is, for example, a region having multiple atoms capable of bonding with hydrogen.

[0022] The hydrogen atoms in the first region and the oxygen atoms in the functional groups terminating the particles can form hydrogen bonds.

[0023] It is preferable that the sheet-shaped material cling to the active material. The sheet-shaped material clinging to the active material means, for example, that the sheet-shaped material is arranged so as to cover a portion of the active material or to adhere to the surface of the active material. It is preferable that the sheet-shaped material and the surface of the active material have an area in surface contact with each other. Alternatively, it is preferable that the sheet-shaped material covers a portion of the surface of the active material so as to be in surface contact with each other.

[0024] Alternatively, the sheet-like material clinging to the active material preferably means, for example, that the sheet-like material overlaps at least a portion of the active material. It is also preferable that the shape of the graphene compound matches at least a portion of the shape of the active material. The shape of the active material refers to, for example, the unevenness of a single active material particle or the unevenness formed by multiple active materials. It is also preferable that the sheet-like material surrounds at least a portion of the active material.

[0025] The phrase "a sheet-like material clings to an object" refers to, for example, the sheet-like material being arranged so as to cover a portion of the object or to stick to the surface of the object. It is preferable that the sheet-like material and the surface of the object have an area in surface contact with each other. Alternatively, it is preferable that the sheet-like material cover a portion of the surface of the object so as to be in surface contact with each other.

[0026] Next, a case where an active material layer is provided on a current collector will be described. The active material layer includes, for example, an active material and a sheet-like material. When the active material layer is provided on a current collector, the sheet-like material may cling to the surfaces of the active material particles and the current collector, for example.

[0027] The sheet-shaped material curves toward the particle due to intermolecular forces, and the sheet-shaped material can cling to the particle through hydrogen bonds. The sheet-shaped material preferably has multiple regions terminated by hydrogen atoms on the sheet surface. The sheet surface may have, for example, a surface facing the particle and a surface behind the surface. In the hydrogen-atom-terminated region, the hydrogen atoms terminating the atoms in the region are preferably provided, for example, on the surface facing the particle. By providing multiple hydrogen-atom-terminated regions widely across the sheet surface, the area on the particle to which the sheet-shaped material clings can be increased. The sheet-shaped material may also have hydrogen-bonded regions, which may be distributed in a localized manner. Such a distribution allows the oxygen atoms of the functional groups terminating the particle and the hydrogen-bonded regions to cling tightly together due to the action of intermolecular forces, etc.

[0028] Alternatively, the first region may be terminated with a functional group containing oxygen. Examples of functional groups containing oxygen include hydroxyl groups, epoxy groups, and carboxyl groups. The hydrogen atoms contained in the hydroxyl groups and carboxyl groups can form hydrogen bonds with the oxygen atoms contained in the functional groups terminating the particles. Furthermore, the oxygen atoms contained in the hydroxyl groups, epoxy groups, and carboxyl groups can form hydrogen bonds with the hydrogen atoms contained in the functional groups terminating the particles.

[0029] Furthermore, when the sheet-shaped material has a second region terminated with a fluorine atom, the fluorine atom in the second region and the hydrogen atom in the functional group terminating the particle can form a hydrogen bond, which makes the sheet-shaped material more likely to cling to the particle.

[0030] The first region may have holes formed on the sheet surface, and the holes may be composed of, for example, a plurality of atoms bonded in a ring shape and an atom terminating the plurality of atoms. The plurality of atoms may also be terminated by a functional group. Here, "forming a hole" refers to, for example, atoms on the periphery of the opening, atoms at the end of the opening, etc.

[0031] The particles included in the electrode of one embodiment of the present invention preferably function as an active material, for example. The particles included in the electrode of one embodiment of the present invention can be made of a material that functions as an active material. Alternatively, the particles included in the electrode of one embodiment of the present invention preferably include a material that functions as an active material, for example. Furthermore, the sheet-shaped material included in the electrode of one embodiment of the present invention preferably functions as a conductive agent, for example. In one embodiment of the present invention, the conductive agent can be attached to the active material by hydrogen bonding, so that a highly conductive electrode can be realized.

[0032] Furthermore, a sheet-like material can cling to the active material, thereby preventing electrode collapse and other problems. Furthermore, a sheet-like material can cling to multiple active materials. The sheet-like material and the surface of the active material preferably have a region in surface contact with each other. Alternatively, the sheet-like material preferably covers a portion of the surface of the active material so as to be in surface contact with each other. When a material that undergoes a large volume change during charge and discharge, such as silicon, is used as the active material, repeated charge and discharge may gradually weaken the adhesion between the active material and the conductive agent, between multiple active materials, etc., which may lead to electrode collapse and other problems. According to one embodiment of the present invention, electrode collapse is suppressed even during repeated charge and discharge, thereby realizing an electrode with stable characteristics and high reliability. Silicon has a very high theoretical capacity of 4000 mAh / g or more, which can increase the energy density of secondary batteries. By using a material containing silicon as particles according to one embodiment of the present invention, a secondary battery with high energy density and stable characteristics even during repeated charge and discharge can be realized.

[0033] Particles according to one embodiment of the present invention have silicon atoms terminated with hydroxy groups. Alternatively, particles according to one embodiment of the present invention have silicon, and at least a portion of the surface is terminated with hydroxy groups. Alternatively, particles according to one embodiment of the present invention are silicon compounds with at least a portion of the surface terminated with hydroxy groups. Alternatively, particles according to one embodiment of the present invention are silicon with at least a portion of the surface terminated with hydroxy groups.

[0034] Alternatively, a particle according to one embodiment of the present invention has a first region containing silicon, and at least a portion of the surface of the first region is covered with silicon oxide. Furthermore, at least a portion of the surface of the silicon oxide contains silicon terminated with a hydroxyl group. When the silicon oxide is in the form of a film, the thickness is, for example, 0.3 nm or more, or 0.5 nm or more, or 0.8 nm or more, and 30 nm or less, or 10 nm or less.

[0035] Alternatively, a particle according to one embodiment of the present invention has a first region containing a first metal, and at least a portion of the surface of the first region is covered with an oxide of the first metal. Furthermore, at least a portion of the surface of the oxide contains the first metal terminated with a hydroxyl group. The first metal can be, for example, one or more selected from tin, gallium, aluminum, germanium, lead, antimony, bismuth, silver, zinc, and indium. When the oxide is in the form of a film, its thickness is, for example, 0.3 nm or more, or 0.5 nm or more, or 0.8 nm or more, and 30 nm or less, or 10 nm or less.

[0036] As the sheet-shaped material, a graphene compound is preferably used, for example, graphene in which carbon atoms are terminated in the sheet plane by atoms other than carbon or functional groups.

[0037] Graphene has a structure in which the edges are terminated with hydrogen. Furthermore, graphene sheets have a two-dimensional structure formed by six-membered carbon rings. When defects or holes are formed in this two-dimensional structure, carbon atoms near the defects and carbon atoms constituting the holes may be terminated with atoms such as various functional groups, hydrogen atoms, or fluorine atoms.

[0038] In one embodiment of the present invention, one or both of defects and holes are formed in graphene, and one or more of the carbon atoms near the defects and the carbon atoms constituting the holes are terminated with a hydrogen atom, a fluorine atom, a functional group having one or more of a hydrogen atom and a fluorine atom, or a functional group having oxygen, thereby making it possible to attach the graphene to particles of an electrode. Note that the number of defects and holes formed in the graphene is preferably such that the conductivity of the entire graphene is not significantly impaired. Here, "constituting holes" refers to, for example, atoms around the opening, atoms at the opening end, etc.

[0039] A graphene compound according to one embodiment of the present invention has holes formed by a poly-membered ring of 7 or more members, preferably 18 or more members, and more preferably 22 or more members, composed of carbon. One of the carbon atoms in the poly-membered ring is terminated with a hydrogen atom. In one embodiment of the present invention, one of the carbon atoms in the poly-membered ring is terminated with a hydrogen atom, and another is terminated with a fluorine atom. In one embodiment of the present invention, the number of carbon atoms in the poly-membered ring terminated with fluorine is less than 40% of the number of carbon atoms terminated with hydrogen atoms.

[0040] A graphene compound according to one embodiment of the present invention has pores, each pore being composed of a plurality of carbon atoms bonded in a ring and an atom or functional group terminating the plurality of carbon atoms. One or more of the plurality of carbon atoms bonded in a ring may be substituted with a Group 13 element such as boron, a Group 15 element such as nitrogen, or a Group 16 element such as oxygen.

[0041] In the graphene compound of one embodiment of the present invention, carbon atoms other than those at edges are preferably terminated with a hydrogen atom, a fluorine atom, a functional group having one or more of a hydrogen atom and a fluorine atom, a functional group having oxygen, etc. Furthermore, in the graphene compound of one embodiment of the present invention, for example, carbon atoms near the center of a graphene plane are preferably terminated with one or more selected from a hydrogen atom, a fluorine atom, a functional group having one or more of a hydrogen atom and a fluorine atom, a functional group having oxygen, etc.

[0042] One aspect of the present invention is an electrode comprising: particles having silicon; and a graphene compound, wherein at least a portion of the surface of the particles is terminated with a functional group containing oxygen; the graphene compound clings to the particles; and the graphene compound is graphene having, on a plane of the graphene, at least one of a carbon atom terminated with a hydrogen atom and a carbon atom terminated with a fluorine atom.

[0043] Alternatively, one embodiment of the present invention is an electrode including a plurality of particles and a graphene compound, wherein at least a portion of a surface of each of the plurality of particles is terminated with a functional group containing oxygen, the graphene compound is encapsulated in the plurality of particles so as to surround the particles, and the graphene compound is graphene having, on a surface of the graphene, at least one of a carbon atom terminated with a hydrogen atom and a carbon atom terminated with a fluorine atom.

[0044] Alternatively, one embodiment of the present invention is an electrode including a plurality of particles and a graphene compound, wherein at least a portion of a surface of each of the plurality of particles is terminated with a functional group containing oxygen, the graphene compound has a bag-like shape that encapsulates the plurality of particles, and the graphene compound is graphene having, on a surface of the graphene, at least one of a carbon atom terminated with a hydrogen atom and a carbon atom terminated with a fluorine atom.

[0045] Alternatively, one embodiment of the present invention is an electrode comprising: particles having silicon; and a graphene compound, wherein at least a portion of the surface of the particles is terminated with a functional group containing oxygen; the graphene compound clings to the particles; and the graphene compound is graphene having at least one of a carbon atom terminated with a hydrogen atom and a carbon atom terminated with a fluorine atom in a secondary electron structure formed of a six-membered carbon ring.

[0046] Alternatively, one embodiment of the present invention is an electrode including a plurality of particles and a graphene compound, wherein at least a portion of a surface of each of the plurality of particles is terminated with a functional group containing oxygen, the graphene compound is encapsulated in such a manner as to surround the plurality of particles, and the graphene compound is graphene having at least one of a carbon atom terminated with a hydrogen atom and a carbon atom terminated with a fluorine atom in a secondary electron structure formed of a six-membered carbon ring.

[0047] Alternatively, one embodiment of the present invention is an electrode including a plurality of particles and a graphene compound, wherein at least a portion of a surface of each of the plurality of particles is terminated with a functional group containing oxygen, the graphene compound has a bag-like shape that encapsulates the plurality of particles, and the graphene compound is graphene having at least one of a carbon atom terminated with a hydrogen atom and a carbon atom terminated with a fluorine atom in a secondary electron structure formed of a six-membered carbon ring.

[0048] In the above description, the functional group is preferably a hydroxy group, an epoxy group, or a carboxy group.

[0049] Alternatively, one embodiment of the present invention is an electrode comprising: particles having silicon; and a graphene compound having pores, wherein at least a portion of the surface of the particles is terminated with a functional group containing oxygen; the graphene compound has a plurality of carbon atoms and one or more hydrogen atoms, each of which terminates one of the plurality of carbon atoms; and the plurality of carbon atoms and the one or more hydrogen atoms form pores.

[0050] In the above description, the functional group is preferably a hydroxy group, an epoxy group, or a carboxy group.

[0051] Another embodiment of the present invention is a secondary battery including any one of the above electrodes and an electrolyte.

[0052] Another embodiment of the present invention is a mobile object including any one of the above secondary batteries. [Effects of the Invention]

[0053] According to one embodiment of the present invention, an electrode having excellent characteristics can be provided. Furthermore, according to one embodiment of the present invention, an active material having excellent characteristics can be provided. Furthermore, according to one embodiment of the present invention, a novel silicon material can be provided. Furthermore, according to one embodiment of the present invention, a novel electrode can be provided.

[0054] According to one embodiment of the present invention, a strong negative electrode can be provided. According to one embodiment of the present invention, a strong positive electrode can be provided. According to one embodiment of the present invention, a negative electrode that is less susceptible to deterioration can be provided. According to one embodiment of the present invention, a positive electrode with high capacity can be provided.

[0055] According to one embodiment of the present invention, a secondary battery with little deterioration can be provided. According to one embodiment of the present invention, a highly safe secondary battery can be provided. According to one embodiment of the present invention, a secondary battery with high energy density can be provided. According to one embodiment of the present invention, a novel secondary battery can be provided.

[0056] According to one embodiment of the present invention, a novel substance, active material particles, or a manufacturing method thereof can be provided.

[0057] 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]

[0058] [Figure 1] 1A and 1B are diagrams showing an example of a cross section of an electrode. [Figure 2] 2A and 2B are examples of models with silicon. [Figure 3] Figure 3 shows an example of a model containing silicon and a model of a graphene compound. [Figure 4] 4A and 4B are examples of a model containing silicon and a model of a graphene compound. [Figure 5] 5A and 5B are examples of a model containing silicon and a model of a graphene compound. [Figure 6] 6A and 6B are examples of graphene compound models. [Figure 7] 7A and 7B are examples of a model containing silicon and a model of a graphene compound. [Figure 8] 8A and 8B are examples of a model containing silicon and a model of a graphene compound. [Figure 9] 9A and 9B are examples of a model containing silicon and a model of a graphene compound. [Figure 10] 10A to 10C illustrate an example of a method for manufacturing an electrode according to one embodiment of the present invention. [Figure 11] FIG. 11 is a diagram illustrating the crystal structure of the positive electrode active material. [Figure 12] FIG. 12 is a diagram illustrating the crystal structure of the positive electrode active material. [Figure 13] FIG. 13 is a diagram showing an example of a cross section of a secondary battery. [Figure 14] 14A is an exploded perspective view of the coin-type secondary battery, FIG. 14B is a perspective view of the coin-type secondary battery, and FIG. 14C is a cross-sectional perspective view thereof. [Figure 15] 15A and 15B are examples of cylindrical secondary batteries, FIG. 15C is an example of a plurality of cylindrical secondary batteries, and FIG. 15D is an example of a power storage system having a plurality of cylindrical secondary batteries. [Figure 16] 16A and 16B are diagrams illustrating an example of a secondary battery, and FIG. 16C is a diagram showing the inside of the secondary battery. [Figure 17] 17A, 17B, and 17C are diagrams illustrating examples of secondary batteries. [Figure 18] 18A and 18B are diagrams showing the external appearance of a secondary battery. [Figure 19] 19A, 19B, and 19C are diagrams illustrating a method for producing a secondary battery. [Figure 20] FIG. 20A is a perspective view showing a battery pack, FIG. 20B is a block diagram of the battery pack, and FIG. 20C is a block diagram of a vehicle having a motor. [Figure 21] 21A to 21D are diagrams illustrating an example of a moving body. [Figure 22] 22A and 22B are diagrams illustrating a power storage device. [Figure 23] 23A to 23D are diagrams illustrating an example of an electronic device. [Figure 24] Figure 24 shows the results of ToF-SIMS. [Figure 25] 25A and 25B are surface SEM images. [Figure 26] 26A and 26B are cross-sectional SEM images. [Figure 27] FIG. 27 shows the results of the cycle characteristics. [Figure 28] 28A and 28B are surface SEM images. [Figure 29] 29A to 29E show the results of EELS analysis. [Figure 30] 30A to 30E show the results of EELS analysis. DETAILED DESCRIPTION OF THE INVENTION

[0059] 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.

[0060] (Embodiment 1) In this embodiment, an electrode, an active material, a conductive agent, and the like according to one embodiment of the present invention will be described.

[0061] <Example of an electrode> 1A is a schematic cross-sectional view illustrating an electrode of one embodiment of the present invention. An electrode 570 shown in FIG. 1A can be used for a positive electrode or a negative electrode of a secondary battery. The electrode 570 includes at least a current collector 571 and an active material layer 572 formed in contact with the current collector 571.

[0062] FIG. 1B is an enlarged view of the region surrounded by a dashed line in FIG. 1A. As shown in FIG. 1B, the active material layer 572 includes an electrolyte 581 and particles 582. The particles 582 preferably function as an active material. A material that functions as an active material can be used for the particles 582. Alternatively, the particles 582 preferably include, for example, a material that functions as an active material. Furthermore, the sheet-shaped material included in the electrode 570 preferably functions, for example, as a conductive agent. In one embodiment of the present invention, the conductive agent can be attached to the active material by hydrogen bonding, thereby achieving an electrode with high conductivity. Various materials can be used for the particles 582. Materials that can be used for the particles 582 will be described later.

[0063] The active material layer 572 preferably contains a carbon-based material such as a graphene compound, carbon black, graphite, carbon fiber, or fullerene, and particularly preferably contains a graphene compound. Examples of carbon black that can be used include acetylene black (AB). Examples of graphite that can be used include natural graphite and artificial graphite such as mesocarbon microbeads. These carbon-based materials have high conductivity and can function as a conductive agent in the active material layer. These carbon-based materials may also function as an active material. FIG. 1B shows an example in which the active material layer 572 contains a graphene compound 583. In the active material layer 572, the graphene compound preferably clings to particles 582 and one or more selected from carbon black, graphite, carbon fiber, and fullerene.

[0064] Furthermore, in the active material 572, the graphene compound may be attached to the particles 582 and the like via a binder. For example, the graphene compound has a region in contact with the binder, and the binder has a region in contact with the particles 582. In such a case, the graphene compound may have both a region in contact with the binder and a region in contact with the particles 482. Furthermore, the graphene compound may be arranged so as to cover the binder attached to the particles 582.

[0065] Examples of carbon fibers that can be used include mesophase pitch-based carbon fibers and isotropic pitch-based carbon fibers. Carbon nanofibers and carbon nanotubes can also be used as carbon fibers. Carbon nanotubes can be produced by vapor phase growth, for example.

[0066] The active material layer may also contain, as a conductive agent, one or more selected from metal powders such as copper, nickel, aluminum, silver, and gold, metal fibers, and conductive ceramic materials.

[0067] The content of the conductive additive relative to the total amount of the active material layer is preferably 1 wt % or more and 10 wt % or less, and more preferably 1 wt % or more and 5 wt % or less.

[0068] Unlike granular conductive materials such as carbon black, which make point contact with the active material, graphene compounds enable surface contact with low contact resistance, and therefore can improve the electrical conductivity between the granular active material and the graphene compound with a smaller amount than that of ordinary conductive materials. This allows the ratio of the active material in the active material layer to be increased, thereby increasing the discharge capacity of the secondary battery.

[0069] Furthermore, the graphene compound of one embodiment of the present invention has excellent lithium permeability, and therefore the charge / discharge rate of a secondary battery can be increased.

[0070] Particulate carbon-containing compounds such as carbon black and graphite, and fibrous carbon-containing compounds such as carbon nanotubes, easily enter microscopic spaces. Microscopic spaces refer to, for example, the regions between multiple active materials. By combining a carbon-containing compound that easily enters microscopic spaces with a sheet-like carbon-containing compound such as graphene, which can impart conductivity across multiple particles, the density of the electrode can be increased and an excellent conductive path can be formed. Furthermore, by including an electrolyte according to one embodiment of the present invention in a secondary battery, the operational stability of the secondary battery can be improved. That is, the secondary battery according to one embodiment of the present invention can achieve both high energy density and stability, making it effective as an in-vehicle secondary battery. Increasing the number of secondary batteries increases the vehicle weight, which in turn reduces the cruising range due to the increased energy required for movement. Using high-density secondary batteries can increase the cruising range without significantly changing the total weight of a vehicle equipped with the same weight of secondary batteries.

[0071] Furthermore, as vehicle secondary batteries become more highly charged, it is desirable to complete charging in a short time because a large amount of power is required for charging. Furthermore, charging is performed under high-rate charging conditions in so-called regenerative charging, in which temporary power is generated when the vehicle brakes are applied and the power is charged, so that vehicle secondary batteries are required to have good rate characteristics.

[0072] In the active material layer 572 shown in FIG. 1B, a plurality of graphene compounds 583 are arranged in a three-dimensional network, with particles 582 present between the plurality of graphene compounds 583.

[0073] By using the electrolyte of one embodiment of the present invention, a secondary battery for vehicle use having a wide operating temperature range can be obtained.

[0074] Furthermore, the secondary battery of one embodiment of the present invention has a high energy density, which allows for miniaturization, and has high conductivity, which allows for rapid charging. Therefore, the structure of the secondary battery of one embodiment of the present invention is also effective in portable information terminals.

[0075] Active material layer 572 preferably includes a binder (not shown). The binder binds or fixes, for example, the electrolyte and the active material. The binder can also bind or fix the electrolyte and a carbon-based material, the active material and another carbon-based material, multiple active materials together, multiple carbon-based materials, etc.

[0076] As the binder, 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.

[0077] Polyimide has excellent thermal, mechanical, and chemical stability. Furthermore, when polyimide is used as a binder, a dehydration reaction and a cyclization (imidization) reaction occur. These reactions can be performed, for example, by heat treatment. In an electrode according to one embodiment of the present invention, when graphene having an oxygen-containing functional group is used as the graphene compound and polyimide is used as the binder, the graphene compound can also be reduced by the heat treatment, thereby simplifying the process. Furthermore, because polyimide has excellent heat resistance, the heat treatment can be performed at a heating temperature of, for example, 200° C. or higher. By performing the heat treatment at a heating temperature of 200° C. or higher, the reduction reaction of the graphene compound can be sufficiently performed, thereby further increasing the conductivity of the electrode.

[0078] Fluorine-containing polymer materials, specifically polyvinylidene fluoride (PVDF), can be used. PVDF is a resin with a melting point between 134°C and 169°C, and is a material with excellent thermal stability.

[0079] 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. As the binder, fluororubber can also be used.

[0080] 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 one or more selected from cellulose derivatives such as carboxymethyl cellulose (CMC), methyl cellulose, ethyl cellulose, hydroxypropyl cellulose, diacetyl cellulose, and regenerated cellulose, as well as starch. It is even more preferable to use these water-soluble polymers in combination with the aforementioned rubber material.

[0081] The binder may be used in combination with two or more of the above.

[0082] Furthermore, the graphene compound 583 is flexible and can cling to the particles 582 like natto (fermented soybeans). For example, the particles 582 can be compared to soybeans, and the graphene compound 583 can be compared to a sticky component, such as polyglutamic acid. By disposing the graphene compound 583 between materials contained in the active material layer 572, such as an electrolyte, multiple active materials, and multiple carbon-based materials, not only can a good conductive path be formed within the active material layer 572, but also these materials can be bound or fixed using the graphene compound 583. For example, multiple graphene compounds 583 can be used to form a three-dimensional mesh structure or a polygonal array structure, such as a honeycomb structure in which hexagons are arranged in a matrix, and materials such as an electrolyte, multiple active materials, and multiple carbon-based materials are disposed in the mesh. This allows the graphene compound 583 to form a three-dimensional conductive path and prevent the electrolyte from falling off the current collector. Furthermore, in the polygonal array structure, polygons with different numbers of sides may be arranged intermingled. Therefore, the graphene compound 583 functions as a conductive agent and a binder in the active material layer 572 in some cases.

[0083] Particles 582 may have various shapes, such as a rounded shape or a shape with corners. Furthermore, in the cross section of the electrode, particles 582 may have various cross-sectional shapes, such as a circle, an ellipse, a curved figure, a polygon, etc. For example, FIG. 1B shows an example in which the cross section of particle 582 has a rounded shape, but the cross section of particle 582 may have corners. Furthermore, part of the cross section may be rounded and part of the cross section may have corners.

[0084] <Graphene compounds> In this specification and the like, graphene compounds include graphene, multilayer graphene, multigraphene, graphene oxide, multilayer graphene oxide, multi-graphene oxide, reduced graphene oxide, reduced multilayer graphene oxide, reduced multi-graphene oxide, graphene quantum dots, etc. Graphene compounds contain carbon, have a shape such as a plate or sheet, and have a two-dimensional structure formed by six-membered carbon rings. The two-dimensional structure formed by six-membered carbon rings may also be called a carbon sheet. Graphene compounds may have functional groups. Furthermore, graphene compounds preferably have a curved shape. Furthermore, graphene compounds may be rolled up to resemble carbon nanofibers.

[0085] In this specification and the like, graphene oxide refers to, for example, a material that contains carbon and oxygen, has a sheet-like shape, and has a functional group, in particular, an epoxy group, a carboxy group, or a hydroxy group.

[0086] In this specification, reduced graphene oxide refers to, for example, a material containing carbon and oxygen, having a sheet-like shape, and having a two-dimensional structure formed by six-membered carbon rings. It may also be called a carbon sheet. Although a single sheet of reduced graphene oxide can function, multiple sheets may also be stacked. Reduced graphene oxide preferably has a portion where the carbon concentration is greater than 80 atomic % and the oxygen concentration is between 2 atomic % and 15 atomic %. By achieving these carbon and oxygen concentrations, it can function as a highly conductive material even in small amounts. Furthermore, reduced graphene oxide preferably has an intensity ratio G / D between the G band and the D band in a Raman spectrum of 1 or more. Reduced graphene oxide with such an intensity ratio can function as a highly conductive material even in small amounts.

[0087] By reducing graphene oxide, it may be possible to provide holes in the graphene compound.

[0088] Alternatively, a material in which the ends of graphene are terminated with fluorine may be used.

[0089] In the longitudinal section of the active material layer, the sheet-like graphene compound is dispersed substantially uniformly in the inner region of the active material layer. The plurality of graphene compounds are formed so as to partially cover the plurality of granular active material particles or to be attached to the surfaces of the plurality of granular active material particles, and are in surface contact with each other.

[0090] Here, a mesh-like graphene compound sheet (hereinafter referred to as a graphene compound net or graphene net) can be formed by bonding multiple graphene compounds together. When an active material is covered with a graphene net, the graphene net can also function as a binder that bonds the active materials together. Therefore, the amount of binder can be reduced or can be eliminated, thereby improving the ratio of the active material to the electrode volume and electrode weight. In other words, the charge / discharge capacity of the secondary battery can be increased.

[0091] Here, it is preferable to use graphene oxide as the graphene compound, mix it with an active material to form a layer that will become an active material layer, and then reduce it. That is, the completed active material layer preferably contains reduced graphene oxide. By using graphene oxide, which has extremely high dispersibility in a polar solvent, to form the graphene compound, it is possible to substantially uniformly disperse the graphene compound in the internal region of the active material layer. Since the solvent is volatilized and removed from the dispersion medium containing the uniformly dispersed graphene oxide and the graphene oxide is reduced, the graphene compound remaining in the active material layer partially overlaps and is dispersed to such an extent that it is in surface contact with each other, thereby forming a three-dimensional conductive path. Note that the reduction of graphene oxide may be performed, for example, by heat treatment or using a reducing agent.

[0092] Furthermore, by using a spray dryer in advance, a graphene compound, which is a conductive material, can be formed as a coating that covers the entire surface of the active material, and further, the active material can be electrically connected to each other by the graphene compound to form a conductive path.

[0093] Furthermore, a material used in forming the graphene compound may be mixed with the graphene compound and used in the active material layer. For example, particles used as a catalyst in forming the graphene compound may be mixed with the graphene compound. Examples of catalysts used in forming the graphene compound 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.

[0094] The graphene compound of one embodiment of the present invention preferably has holes in parts of the carbon sheet. In the graphene compound of one embodiment of the present invention, holes through which carrier ions such as lithium ions can pass are provided in parts of the carbon sheet, which facilitates insertion and desorption of carrier ions on the surface of the active material covered with the graphene compound, thereby improving the rate characteristics of the secondary battery. The holes provided in parts of the carbon sheet may be called vacancies, defects, or gaps.

[0095] The graphene compound of one embodiment of the present invention preferably has holes formed by a plurality of carbon atoms and one or more fluorine atoms. Furthermore, the plurality of carbon atoms are preferably bonded in a ring, and one or more of the ring-bonded carbon atoms are preferably terminated with the fluorine. Fluorine has high electronegativity and is easily negatively charged. Positively charged lithium ions approach each other, which causes an interaction, stabilizing energy and lowering the barrier energy for the lithium ions to pass through the holes. Therefore, by including fluorine in the holes of the graphene compound, it is possible to realize a graphene compound in which lithium ions can easily pass through even small holes and which has excellent electrical conductivity.

[0096] When graphene has holes, for example, it may be possible to observe spectra based on the characteristics caused by the holes by Raman spectroscopy mapping measurement. Furthermore, it may be possible to observe the bonds and functional groups that make up the holes by ToF-SIMS. Furthermore, it may be possible to analyze the vicinity of the holes, their surroundings, etc. by TEM observation.

[0097] <Example of negative electrode active material> When electrode 570 is a negative electrode, particles having a negative electrode active material can be used as particles 582. As the negative electrode active material, it is preferable to use a material capable of reacting with carrier ions of a secondary battery, a material capable of inserting and desorbing carrier ions, a material capable of alloying with a metal that becomes a carrier ion, a material capable of dissolving and precipitating a metal that becomes a carrier ion, or the like.

[0098] An example of the negative electrode active material will be described below.

[0099] Silicon can be used as the negative electrode active material. Electrode 570 preferably uses particles containing silicon as particles 582.

[0100] The negative electrode active material may be a metal or compound containing one or more elements selected from tin, gallium, aluminum, germanium, lead, antimony, bismuth, silver, zinc, cadmium, and indium. Examples of alloy compounds using such elements include Mg2Si, Mg2Ge, Mg2Sn, SnS2, V2Sn3, FeSn2, CoSn2, Ni3Sn2, Cu6Sn5, Ag3Sn, Ag3Sb, Ni2MnSb, CeSb3, LaSn3, La3Co2Sn7, CoSb3, InSb, and SbSn.

[0101] Alternatively, a material with low resistance may be used by adding impurity elements such as phosphorus, arsenic, boron, aluminum, or gallium to silicon. A silicon material pre-doped with lithium may also be used. Pre-doping methods include mixing silicon with lithium fluoride, lithium carbonate, or the like and annealing the mixture, or mechanically alloying lithium metal with silicon. After forming the electrode, the material may be combined with an electrode such as lithium metal to dope lithium through a charge-discharge reaction. The doped electrode may then be combined with a counter electrode (e.g., a positive electrode for a pre-doped negative electrode) to produce a secondary battery.

[0102] For example, silicon nanoparticles can be used as particles 582. The average diameter of the silicon nanoparticles is, for example, preferably 5 nm or more and less than 1 μm, more preferably 10 nm or more and 300 nm or less, and even more preferably 10 nm or more and 100 nm or less.

[0103] The silicon nanoparticles may be crystalline, or may have a crystalline region and an amorphous region.

[0104] Examples of silicon-containing materials include SiO x (x is preferably smaller than 2, more preferably 0.5 or more and 1.6 or less) can be used.

[0105] The silicon-containing material may have, for example, a plurality of crystal grains within a single particle. For example, a single particle may have one or more silicon crystal grains within it. The single particle may have silicon oxide around the silicon crystal grain. The silicon oxide may be amorphous. The material may also be a particle in which a graphene compound is attached to a secondary silicon particle.

[0106] Furthermore, examples of compounds that can be used include Li2SiO3 and Li4SiO4. Li2SiO3 and Li4SiO4 may each be crystalline or amorphous.

[0107] Silicon-containing compounds can be analyzed using nuclear magnetic resonance (NMR), X-ray diffraction (XRD), Raman spectroscopy, scanning electron microscope (SEM), transmission electron microscope (TEM), energy dispersive X-ray spectroscopy (EDX), and the like.

[0108] As the negative electrode active material, for example, carbon-based materials such as graphite, graphitizable carbon, non-graphitizable carbon, carbon nanotubes, carbon black, and graphene compounds can be used.

[0109] Furthermore, as the negative electrode active material, for example, an oxide containing one or more elements selected from titanium, niobium, tungsten, and molybdenum can be used.

[0110] As the negative electrode active material, a combination of the above-mentioned metals, materials, compounds, etc. can be used.

[0111] Examples of negative electrode active materials include SnO, SnO2, titanium dioxide (TiO2), and 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.

[0112] 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 is preferable because it exhibits a large charge / discharge capacity (900 mAh / g).

[0113] The use of a lithium-transition metal complex nitride as the negative electrode material is preferable because it can be combined with a lithium-ion-free positive electrode material such as V2O5 or Cr3O8. Even when a material containing lithium ions is used as the positive electrode material, the lithium-transition metal complex nitride can be used as the negative electrode material by first removing the lithium ions contained in the positive electrode material.

[0114] 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 undergo an alloying reaction 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 This phenomenon 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. Note that the above fluorides have high potentials and may therefore be used as positive electrode materials.

[0115] Furthermore, although the volume of the particles 582 may change during charging and discharging, by disposing a fluorine-containing electrolyte between the particles 582 in the electrode, the particles can slide easily even when volume changes during charging and discharging, suppressing cracks and resulting in a dramatic improvement in cycle characteristics. It is important that a fluorine-containing organic compound exists between the active materials that make up the electrode.

[0116] <Calculation> The interaction between silicon-containing particles and graphene compounds was optimized and evaluated using density functional theory (DFT). Gaussian 09 was used for the optimization calculations. The main calculation conditions are shown in Table 1.

[0117] [Table 1]

[0118] Two types of silicon-containing particle models were used: hydrogen-terminated silicon (model S_H) and hydroxyl-terminated silicon (model S_OH). For model S_H, a structure consisting of 35 silicon atoms and 35 hydrogen atoms was used, as shown in Figure 2A. For model S_OH, a structure consisting of 35 silicon atoms, 35 oxygen atoms, and 35 hydrogen atoms was used, as shown in Figure 2B.

[0119] The graphene (model G-1) used had a structure consisting of 170 carbon atoms and 36 hydrogen atoms, all of which terminated the edges of the graphene.

[0120] Five graphene compound models were used: graphene with one carbon bonded to an epoxy group (Model G-2), graphene with two carbons bonded to hydroxyl groups (Model G-3), graphene with two hydrogen-terminated carbons (Model G-4), and graphene with two fluorine-terminated carbons (Model G-5). In each model, the carbons terminated by functional groups or atoms are located near the center of the graphene plane.

[0121] Figure 3 shows an example of the interaction between a silicon-containing particle and a graphene compound after optimization. Optimization shows how the silicon-containing particle approaches the graphene compound. The graphene compound also appears to bend. The bending of the graphene compound is thought to be due to London dispersion forces. Figure 3 also shows the interaction between a hydroxyl-terminated silicon (model S_OH) and graphene (model G-1).

[0122] To verify the interaction between the silicon-containing particles and the graphene compound, the stabilization energy was calculated for each combination. The results are shown in Table 2. The energy when the silicon-containing particles and the graphene compound are placed at infinity was used as the reference, and the absolute value of the difference from the reference was taken as the stabilization energy. The larger the stabilization energy value shown in Table 2 and Table 3 described below, the more stable the result.

[0123] [Table 2]

[0124] As shown in Table 2, the stabilization energy of hydroxy-terminated silicon (model S_OH) was higher than that of hydrogen-terminated silicon (model S_H). In addition, graphene compounds (models G-2 to G-5) having carbon bonded to functional groups, hydrogen atoms, or fluorine atoms on the graphene surface had higher stabilization energies than graphene (model G-1).

[0125] Figure 4A shows the state when silicon terminated with a hydroxyl group (model S_OH) is brought close to graphene (model G-2) with carbon bonded to an epoxy group. It was suggested that hydrogen bonds are formed between the oxygen in the epoxy group and the hydroxyl group on the silicon surface.

[0126] Figure 4B shows the state when silicon terminated with a hydroxyl group (model S_OH) and graphene (model G-3) with carbon bonded to the hydroxyl group are brought close together. It is suggested that hydrogen bonds are formed between the hydroxyl groups on both sides.

[0127] Figure 5A shows the state when silicon terminated with hydroxyl groups (model S_OH) and graphene (model G-4) with carbon terminated with hydrogen atoms are brought close together. It was suggested that hydrogen bonds are formed between the hydrogen atoms of the graphene and the hydroxyl groups on the silicon surface.

[0128] Figure 5B shows the state when silicon terminated with hydroxyl groups (model S_OH) is brought close to graphene (model G-5) with carbon terminated with fluorine atoms. It was suggested that hydrogen bonds are formed between the fluorine atoms in the graphene and the hydroxyl groups on the silicon surface.

[0129] It is thought that the stabilization energy increases when the silicon surface is terminated with hydroxy groups, forming hydrogen bonds with the graphene compound.

[0130] Next, we investigated a model in which graphene has holes.

[0131] 6A and 6B show an example of the structure of a graphene compound having holes.

[0132] The structure shown in Figure 6A (hereinafter referred to as Model G-22H8) has a 22-membered ring, and eight of the carbon atoms constituting the 22-membered ring are terminated with hydrogen. Model G-22H8 has a structure in which two connected six-membered rings are removed from graphene, and the carbon atoms bonded to the removed six-membered rings are terminated with hydrogen.

[0133] The structure shown in Figure 6B (hereinafter referred to as Model G-22H6F2) has a 22-membered ring, and of the eight carbon atoms that make up the 22-membered ring, six carbon atoms are terminated with hydrogen and two carbon atoms are terminated with fluorine. Model G-22H6F2 has a structure in which two connected six-membered rings are removed from graphene, and the carbon atoms that were bonded to the removed six-membered rings are terminated with hydrogen or fluorine.

[0134] The stabilization energy was calculated for the combination of silicon-containing particles and a graphene compound having holes. The results are shown in Table 3.

[0135] [Table 3]

[0136] As shown in Table 3, silicon terminated with a hydroxyl group (model S_OH) had a high stabilization energy, suggesting a strong interaction with graphene compounds having holes.

[0137] Figure 7A shows the state when hydroxyl-terminated silicon (model S_OH) and model G-22H8 are brought close together. Figure 7B is an enlarged view of the area where hydroxyl-terminated silicon (model S_OH) and model G-22H8 are approaching. As shown by the dashed line in Figure 7B, it is suggested that hydrogen bonds are formed between the hydrogen atoms of graphene and the hydroxyl groups on the silicon surface.

[0138] Figure 8A shows the state when hydroxyl-terminated silicon (model S_OH) and model G-22H6F2 are brought close together. Figure 8B is an enlarged view of the area where hydroxyl-terminated silicon (model S_OH) and model G-22H6F2 are brought close together. As shown by the dashed line in Figure 8B, it was suggested that hydrogen bonds were formed between the hydrogen atoms of graphene and the oxygen atoms of the hydroxyl groups on the silicon surface. It was also suggested that hydrogen bonds were formed between the fluorine atoms of graphene and the hydrogen atoms of the hydroxyl groups on the silicon surface.

[0139] It was suggested that the presence of fluorine in addition to hydrogen in graphene compounds results in the formation of hydrogen bonds between the oxygen atoms of the hydroxyl groups and the hydrogen atoms of the graphene compounds, as well as between the hydrogen atoms of the hydroxyl groups and the fluorine atoms of the graphene compounds, which strengthens the interaction between the silicon-containing particles and the graphene compounds and further increases the stabilization energy.

[0140] On the other hand, as shown in Table 2, the stabilization energy of hydrogen-terminated silicon (Model S_H) with the graphene compounds having the two types of holes shown in Table 2 was smaller than that of hydroxyl-terminated silicon (Model S_OH).

[0141] It is believed that the silicon surface is terminated with hydroxy groups and the graphene compound has holes terminated with hydrogen or fluorine, which leads to the formation of hydrogen bonds and an increase in stabilization energy.

[0142] Next, we calculated the interaction between graphene compounds and silicon oxide particles. A silicon oxide model (hereafter referred to as Model S_Ox) was used, consisting of 20 silicon atoms, 28 hydrogen atoms, and 54 oxygen atoms. The dangling bonds at the ends were terminated with hydroxyl groups.

[0143] The results of calculating the stabilization energy are shown in Table 4. Figure 9A shows the optimized state of silicon oxide and graphene with carbon terminated by hydroxyl groups (Model G-3), and Figure 9B shows the optimized state of silicon oxide and graphene with carbon terminated by fluorine (Model G-5). It was suggested that even in the case of silicon oxide terminated by hydroxyl groups, the presence of functional groups or holes in the graphene compound strengthens the bond.

[0144] [Table 4]

[0145] <Electrode manufacturing method> FIG. 10 is a flowchart illustrating an example of a method for manufacturing an electrode according to one embodiment of the present invention.

[0146] First, in step S71, particles containing silicon are prepared. For example, the particles described above as particles 582 can be used as the particles containing silicon.

[0147] In step S72, a solvent is prepared. For example, the solvent may be one or a mixture of two or more of water, methanol, ethanol, acetone, tetrahydrofuran (THF), dimethylformamide (DMF), N-methylpyrrolidone (NMP), and dimethyl sulfoxide (DMSO).

[0148] Next, in step S73, the silicon-containing particles prepared in step S71 are mixed with the solvent prepared in step S72, the mixture is recovered in step S74, and mixture E-1 is obtained in step S75. A kneader or the like can be used for mixing. For example, a planetary centrifugal mixer or the like can be used as the kneader.

[0149] Next, in step S80, a graphene compound is prepared.

[0150] Next, in step S81, the mixture E-1 and the graphene compound prepared in step S80 are mixed, and in step S82, the mixture is recovered. The recovered mixture is preferably in a high viscosity state. The high viscosity of the mixture allows for thick kneading (kneading at high viscosity) in the next step S83.

[0151] Next, in step S83, the mixture is kneaded firmly. The kneading can be performed using, for example, a spatula. By performing the kneading, it is possible to form a mixture in which the silicon-containing particles and the graphene compound are well mixed and in which the graphene compound has excellent dispersibility.

[0152] Next, in step S84, the thickened mixture is mixed. For example, a kneader or the like can be used for mixing. The mixed mixture is recovered in step S85.

[0153] It is preferable to repeat steps S83 to 85 n times on the mixture recovered in step S85. n is a natural number, for example, between 2 and 10. Furthermore, if the mixture is in a dry state in step S83, it is preferable to add solvent. Furthermore, for example, during the n repetitions, solvent may or may not be added in step S83. On the other hand, if too much solvent is added, the viscosity decreases, reducing the effect of the thick kneading.

[0154] After steps S83 to S85 are repeated n times, a mixture E-2 is obtained (step S86).

[0155] Next, in step S87, a binder is prepared. The materials described above can be used as the binder, and polyimide is particularly preferred. In step S87, a precursor of the material used as the binder may be prepared. For example, a polyimide precursor is prepared.

[0156] Next, in step S88, the mixture E-2 is mixed with the binder prepared in step S87. Next, in step S89, the viscosity is adjusted. Specifically, for example, the same type of solvent as the solvent prepared in step S72 is prepared and added to the mixture obtained in step S88. By adjusting the viscosity, for example, it may be possible to adjust the thickness, density, etc. of the electrode obtained in step S97.

[0157] Next, the mixture whose viscosity has been adjusted in step S89 is mixed in step S90 and collected in step S91 to obtain mixture E-3 (step S92). The mixture E-3 obtained in step S92 is called, for example, a slurry.

[0158] Next, in step S93, a current collector is prepared.

[0159] Next, in step S94, the mixture E-3 is applied to the current collector prepared in step S93. For application, a slot die method, a gravure method, a blade method, or a combination thereof can be used. Alternatively, a continuous coater or the like can be used for application.

[0160] Next, in step S95, the first heating is performed. The solvent is evaporated by the first heating. The first heating is performed at a temperature in the range of 50°C to 200°C, preferably 60°C to 150°C.

[0161] For example, heat treatment may be performed on a hot plate in an air atmosphere at 30°C to 70°C for 10 minutes or more, and then heat treatment may be performed in a reduced pressure environment at room temperature to 100°C for 1 hour to 10 hours.

[0162] Alternatively, the heat treatment may be carried out using a drying oven, etc. When a drying oven is used, the heat treatment may be carried out at a temperature of 30° C. or higher and 120° C. or lower for 30 seconds or longer and 2 hours or shorter, for example.

[0163] Alternatively, the temperature may be increased stepwise. For example, heat treatment may be performed at 60° C. or lower for 10 minutes or less, and then at 65° C. or higher for an additional minute or more.

[0164] Next, in step S96, a second heating is performed. When polyimide is used as the binder, it is preferable that a cyclization addition reaction of the polyimide occurs during the second heating. Furthermore, a dehydration reaction of the polyimide may occur during the second heating. Alternatively, a dehydration reaction of the polyimide may occur during the first heating. Furthermore, a cyclization reaction of the polyimide may occur during the first heating. Furthermore, it is preferable that a reduction reaction of the graphene compound occurs during the second heating.

[0165] In step S97, an electrode is obtained in which an active material layer is provided on a current collector.

[0166] The thickness of the active material layer thus formed is preferably, for example, 5 μm or more and 300 μm or less, more preferably 10 μm or more and 150 μm or less. The amount of active material carried in the active material layer is preferably, for example, 2 mg / cm. 2 More than 50mg / cm 2 The following is fine.

[0167] The active material layer may be formed on both sides of the current collector, or on only one side thereof, or both sides may have regions where the active material layer is partially formed.

[0168] After volatilizing the solvent from the active material layer, pressing may be performed by a compression method such as a roll press method or a flat press method. When pressing, heat may be applied.

[0169] <An example of a positive electrode active material>

[0170] Examples of the positive electrode active material include composite oxides having a layered rock salt-type crystal structure or a spinel-type crystal structure. Also, examples of the positive electrode active material include compounds having an olivine-type crystal structure. Examples of the positive electrode active material include compounds such as LiFePO4, LiFeO2, LiNiO2, LiMn2O4, V2O5, CrCl5, and MnO2.

[0171] Also, it is preferable to mix a lithium-containing material having a spinel-type crystal structure containing manganese such as LiMn2O4 as the positive electrode active material with lithium nickelate (LiNiO2 or LiNi 1-x M x O2 (0 < x < 1) (M = Co, Al, etc.). By adopting such a configuration, the characteristics of the secondary battery can be improved. <0000​​​​​​​​​​A 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.

[0173] [Positive electrode active material structure] Materials with a layered rock-salt crystal structure, such as lithium cobalt oxide (LiCoO2), are known to have high discharge capacity and are excellent as positive electrode active materials for secondary batteries. An example of a material with a layered rock-salt crystal structure is a composite oxide represented by LiMO2. Metal M includes metal Me1. Metal Me1 is one or more metals including cobalt. Metal M can also include metal X in addition to metal Me1. Metal X is one or more metals selected from magnesium, calcium, zirconium, lanthanum, barium, copper, potassium, sodium, and zinc.

[0174] It is known that the strength of the Jahn-Teller effect in transition metal compounds varies depending on the number of electrons in the d orbital of the transition metal.

[0175] ​In compounds containing nickel, distortion can easily occur due to the Jahn-Teller effect. Therefore, when LiNiO2 is subjected to deep charge / discharge, for example, at high charge / discharge voltages, there is a concern that the crystal structure may collapse due to distortion. In LiCoO2, the influence of the Jahn-Teller effect is suggested to be small, and the crystal structure is less likely to collapse during deep charge / discharge, which may result in better charge / discharge cycle characteristics, making it preferable.

[0176] The positive electrode active material will be described with reference to FIGS.

[0177] The positive electrode active material prepared according to one embodiment of the present invention can reduce the displacement of the CoO2 layer during repeated deep charge / discharge cycles. Furthermore, the volume change can be reduced. Therefore, the compound can achieve excellent cycle characteristics. Furthermore, the compound can adopt a stable crystal structure at a deep charge state. Therefore, the compound may be less likely to cause a short circuit when maintained at a deep charge state. In such cases, safety is further improved, which is preferable.

[0178] In this compound, the change in crystal structure and the difference in volume per the same number of transition metal atoms between a fully discharged state and a state with a high degree of charge are small.

[0179] The positive electrode active material preferably has a layered rock-salt structure, and this region is represented by the space R-3m. The positive electrode active material has a region containing lithium, metal Me1, oxygen, and metal X. An example of the crystal structure of the positive electrode active material before and after charge and discharge is shown in FIG. 11. Furthermore, the surface layer of the positive electrode active material may have, in addition to or instead of the region containing the layered rock-salt structure described below in FIG. 11, etc., a crystal containing titanium, magnesium, and oxygen and having a structure different from the layered rock-salt structure. For example, the surface layer may have a crystal containing titanium, magnesium, and oxygen and having a spinel structure.

[0180] The crystal structure at a charge depth of 0 (discharged state) in Figure 11 is the same as that in Figure 12, R-3m(O3). On the other hand, the positive electrode active material shown in Figure 11 has a crystal structure different from the H1-3 crystal structure when fully charged. This structure is in the space group R-3m and is not a spinel crystal structure. However, ions such as cobalt and magnesium occupy six oxygen coordination positions, and the cation arrangement has a symmetry similar to that of a spinel structure. The symmetry of the CoO2 layers in this structure is the same as that of an O3 type. Therefore, this structure is referred to herein as an O3' type crystal structure or a pseudospinel type crystal structure. While the O3' type crystal structure shown in Figure 11 indicates that lithium can exist at any lithium site with a probability of approximately 20%, this is not limited to this. It may also exist at only a specific portion of the lithium sites. In both the O3 type and O3' type crystal structures, it is preferable for magnesium to be present in a dilute form between the CoO2 layers, i.e., at the lithium sites. Furthermore, halogens such as fluorine may be present randomly and dilutely at the oxygen sites.

[0181] In the O3'-type crystal structure, light elements such as lithium may occupy the oxygen tetracoordination site, and in this case too, the ion arrangement has a symmetry similar to that of the spinel type.

[0182] The O3'-type crystal structure can also be said to be a crystal structure similar to the CdCl2-type crystal structure, although it has random Li between the layers. This CdCl2-type-like crystal structure was observed when lithium nickel oxide was charged to a charge depth of 0.94 (Li 0.06 The crystal structure is similar to that of lithium cobaltate (NiO2), but it is known that pure lithium cobaltate or layered rock salt-type positive electrode active materials containing a large amount of cobalt do not usually adopt this crystal structure.

[0183] The anions in layered rock salt crystals and rock salt crystals have a cubic close-packed structure (face-centered cubic lattice structure). It is estimated that the anions in O3'-type crystals also have a cubic close-packed structure. When these crystals contact, there is a crystal plane where the cubic close-packed structures formed by the anions are aligned. However, the space group of layered rock salt crystals and O3'-type crystals is R-3m, which is different from the space groups of rock salt crystals, Fm-3m (the space group of general rock salt crystals) and Fd-3m (the space group of rock salt crystals with the simplest symmetry). Therefore, the Miller indices of the crystal planes that satisfy the above conditions are different between layered rock salt crystals and O3'-type crystals and rock salt crystals. In this specification, when the cubic close-packed structures formed by the anions are aligned in layered rock salt crystals, O3'-type crystals, and rock salt crystals, the crystal orientations may be said to be approximately aligned.

[0184] In the positive electrode active materials shown in Figure 11, when charging is performed at a high charging voltage and a large amount of lithium is released, the change in the crystal structure is suppressed more than in the comparative example described below. For example, as shown by the dotted line in Figure 11, there is almost no displacement of the CoO2 layers in these crystal structures.

[0185] More specifically, the cathode active material shown in FIG. 11 exhibits high structural stability even at high charge voltages. For example, in FIG. 12, the H1-3 crystal structure is formed at a charge voltage of approximately 4.6 V relative to the potential of lithium metal. However, the cathode active material of one embodiment of the present invention can maintain the R-3m(O3) crystal structure even at a charge voltage of approximately 4.6 V. Even at higher charge voltages, for example, at voltages of approximately 4.65 V to 4.7 V relative to the potential of lithium metal, there exists a region in which the O3' crystal structure can be formed. When the charge voltage is further increased above 4.7 V, the H1-3 crystal may finally be observed in the cathode active material of one embodiment of the present invention. Furthermore, at lower charge voltages (for example, even when the charge voltage is 4.5 V or higher but less than 4.6 V relative to the potential of lithium metal), the cathode active material of one embodiment of the present invention may be able to form the O3' crystal structure. Note that when graphite is used as the negative electrode active material in a secondary battery, the voltage of the secondary battery is lower than the above-mentioned value by the potential of the graphite. The potential of graphite is approximately 0.05 V to 0.2 V relative to the potential of lithium metal. Therefore, even when the voltage of a secondary battery using graphite as the negative electrode active material is 4.3 V or higher and 4.5 V or lower, the positive electrode active material of one embodiment of the present invention can maintain the R-3m(O3) crystal structure. Furthermore, even when the charge voltage is higher, for example, when the voltage of the secondary battery is higher than 4.5 V and lower than 4.6 V, there is a region in which the O3'-type crystal structure can be formed. Furthermore, even when the charge voltage is lower, for example, when the voltage of the secondary battery is 4.2 V or higher but lower than 4.3 V, the positive electrode active material of one embodiment of the present invention can sometimes form the O3'-type crystal structure.

[0186] Therefore, in the positive electrode active material shown in FIG. 11, the crystal structure is not easily broken even when charging and discharging are repeated at a high voltage.

[0187] In addition, in a positive electrode active material according to one embodiment of the present invention, the difference in volume per unit cell between the O3-type crystal structure at a charge depth of 0 and the O3'-type crystal structure at a charge depth of 0.8 is 2.5% or less, more specifically 2.2% or less.

[0188] In addition, the O3' type crystal structure can be expressed by the coordinates of cobalt and oxygen in the unit cell being Co(0,0,0.5), O(0,0,x), 0.20≦x≦0.25.

[0189] Magnesium, which exists randomly and dilutely between the CoO2 layers, i.e., at the lithium sites, has the effect of suppressing the displacement of the CoO2 layers when charged at high voltage. Therefore, when magnesium exists between the CoO2 layers, the O3'-type crystal structure is easily formed.

[0190] However, if the heat treatment temperature is too high, cation mixing occurs, increasing the possibility that magnesium will enter the cobalt site. Magnesium present in the cobalt site may not be effective in maintaining the R-3m structure during high-voltage charging. Furthermore, if the heat treatment temperature is too high, there are concerns that adverse effects such as cobalt being reduced to a divalent state and lithium evaporating may occur.

[0191] Therefore, it is preferable to add a halogen compound such as a fluorine compound to the lithium cobalt oxide before the heat treatment to distribute magnesium throughout the particles. Adding the halogen compound lowers the melting point of the lithium cobalt oxide. Lowering the melting point makes it easier to distribute magnesium throughout the particles at a temperature where cation mixing is unlikely to occur. Furthermore, the presence of a fluorine compound is expected to improve corrosion resistance to hydrofluoric acid produced by decomposition of the electrolyte.

[0192] Note that increasing the magnesium concentration above a desired value may reduce the effect on stabilizing the crystal structure. This is thought to be because magnesium occupies not only the lithium site but also the cobalt site. The number of magnesium atoms in the positive electrode active material prepared according to one embodiment of the present invention is preferably 0.001 to 0.1 times the number of cobalt atoms, more preferably greater than 0.01 and less than 0.04, and even more preferably approximately 0.02. The magnesium concentration shown here may be, for example, a value obtained by performing elemental analysis of the entire particles of the positive electrode active material using ICP-MS or the like, or may be based on the value of the raw material composition during the preparation of the positive electrode active material.

[0193] The number of nickel atoms in the positive electrode active material is preferably 7.5% or less of the number of cobalt atoms, preferably 0.05% to 4%, and more preferably 0.1% to 2%. The nickel concentration shown here may be a value obtained by performing elemental analysis of the entire particles of the positive electrode active material using, for example, ICP-MS, or may be based on the value of the composition of raw materials in the process of producing the positive electrode active material.

[0194] <Particle size> If the particle size of the positive electrode active material is too large, problems such as difficulty in diffusing lithium and excessive roughness of the surface of the active material layer when applied to a current collector arise. On the other hand, if the particle size is too small, problems such as difficulty in supporting the active material layer when applied to a current collector and excessive reaction with the electrolyte occur. Therefore, the average particle size (D50: also referred to as median diameter) is preferably 1 μm or more and 100 μm or less, more preferably 2 μm or more and 40 μm or less, and even more preferably 5 μm or more and 30 μm or less.

[0195] <Analysis method> Whether a certain positive electrode active material exhibits the O3'-type crystal structure when charged at a high voltage can be determined by analyzing the positive electrode charged at a high voltage using XRD, electron diffraction, neutron diffraction, electron spin resonance (ESR), nuclear magnetic resonance (NMR), etc. XRD is particularly preferred because it can analyze the symmetry of transition metals such as cobalt contained in the positive electrode active material with high resolution, it can compare the level of crystallinity and the orientation of the crystals, it can analyze the periodic distortion of the lattice and the crystallite size, and it can obtain sufficient accuracy even when measuring the positive electrode obtained by disassembling the secondary battery.

[0196] As mentioned above, positive electrode active materials are characterized by minimal change in their crystal structure between the high-voltage charged and discharged states. Materials with a crystal structure that exhibits significant changes between the high-voltage charged and discharged states (50 wt% or more) are undesirable because they cannot withstand high-voltage charging and discharging. It is important to note that simply adding impurity elements may not result in the desired crystal structure. For example, even if lithium cobalt oxide containing magnesium and fluorine has the same characteristics, when charged at high voltage, the O3'-type crystal structure may be 60 wt% or more, or the H1-3-type crystal structure may be 50 wt% or more. Furthermore, at a certain voltage, the O3'-type crystal structure may be nearly 100 wt%, and further increasing the voltage may result in the H1-3-type crystal structure. Therefore, it is preferable to analyze the crystal structure of positive electrode active materials using techniques such as XRD. By combining these techniques with XRD, even more detailed analysis can be performed.

[0197] However, when positive electrode active materials are charged or discharged at high voltage, their crystal structure may change when exposed to air. For example, they may change from an O3'-type crystal structure to an H1-3-type crystal structure. Therefore, it is recommended that all samples be handled in an inert atmosphere, such as an argon-containing atmosphere.

[0198] The positive electrode active material shown in Fig. 12 is lithium cobalt oxide (LiCoO2) to which no metal X is added. The crystal structure of the lithium cobalt oxide shown in Fig. 12 changes depending on the depth of charge.

[0199] As shown in Figure 12, lithium cobalt oxide at a depth of charge of 0 (discharged state) has a region with a crystal structure of space group R-3m, with three CoO2 layers in the unit cell. For this reason, this crystal structure is sometimes called an O3-type crystal structure. Note that a CoO2 layer is an octahedral structure in which cobalt is six-coordinated with oxygen, and the layers are connected in a plane with edge sharing.

[0200] At a charge depth of 1, the crystal structure is of the space group P-3m1, with one CoO2 layer in the unit cell. Therefore, this crystal structure is sometimes called an O1-type crystal structure.

[0201] Furthermore, lithium cobalt oxide at a charge depth of approximately 0.8 has a crystal structure of the space group R-3m. This structure can be described as a structure in which a CoO2 structure such as P-3m1(O1) and a LiCoO2 structure such as R-3m(O3) are alternately stacked. Therefore, this crystal structure is sometimes referred to as an H1-3 crystal structure. In reality, the H1-3 crystal structure has twice the number of cobalt atoms per unit cell as other structures. However, in Figure 12 and other parts of this specification, for ease of comparison with other structures, the c-axis of the H1-3 crystal structure is shown as half the unit cell.

[0202] As an example, the coordinates of cobalt and oxygen in the unit cell of the H1-3 crystal structure can be expressed as Co(0,0,0.42150±0.00016), O1(0,0,0.27671±0.00045), and O2(0,0,0.11535±0.00045). O1 and O2 are each an oxygen atom. Thus, the H1-3 crystal structure is expressed by a unit cell using one cobalt and two oxygen atoms. On the other hand, the O3' crystal structure of one embodiment of the present invention is preferably expressed by a unit cell using one cobalt and one oxygen atom. This indicates that the symmetry between cobalt and oxygen differs between the O3' crystal structure and the H1-3 structure, and that the O3' crystal structure exhibits smaller changes from the O3 structure than the H1-3 structure. The unit cell that is more preferably used to represent the crystal structure of the positive electrode active material may be selected, for example, so that the GOF (good of fitness) value is smaller in Rietveld analysis of XRD.

[0203] When lithium cobalt oxide is repeatedly charged and discharged at a high voltage of 4.6 V or higher, based on the redox potential of lithium metal, or at a deep charge depth of 0.76 or higher, the crystal structure of the lithium cobalt oxide changes repeatedly between the H1-3 crystal structure and the R-3m(O3) structure in the discharged state (i.e., a non-equilibrium phase change).

[0204] However, these two crystal structures have a large deviation in the CoO2 layers. As shown by the dotted lines and arrows in Figure 12, in the H1-3 crystal structure, the CoO2 layers are significantly deviated from the R-3m(O3) structure. Such dynamic structural changes can adversely affect the stability of the crystal structure.

[0205] Furthermore, the difference in volume is large: when compared per the same number of cobalt atoms, the difference in volume between the H1-3 crystal structure and the O3 crystal structure in the discharged state is more than 3.0%.

[0206] In addition, the H1-3 type crystal structure, which has continuous CoO2 layers such as P-3m1(O1), is likely to be unstable.

[0207] Therefore, repeated high-voltage charging and discharging causes the crystalline structure of lithium cobalt oxide to collapse, which leads to a deterioration in cycle characteristics. This is thought to be because the collapse of the crystalline structure reduces the number of sites where lithium can exist stably and makes it difficult for lithium to be inserted and extracted.

[0208] <Electrolyte> When a liquid electrolyte is used in a secondary battery, for example, the electrolyte may be one of 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, sultone, and the like, or two or more of these may be used in any combination and ratio.

[0209] Furthermore, by using one or more flame-retardant and non-volatile ionic liquids (room-temperature molten salts) as the electrolyte solvent, it is possible to prevent the secondary battery from exploding or catching fire even when the internal region of the secondary battery is short-circuited or the temperature of the internal region rises due to overcharging, etc. Ionic liquids are composed of cations and anions, including organic cations and anions. Examples of organic cations include aliphatic onium cations such as quaternary ammonium cations, tertiary sulfonium cations, and quaternary phosphonium cations, as well as aromatic cations such as imidazolium cations and pyridinium cations. Examples of anions include monovalent amide anions, monovalent methide anions, fluorosulfonate anions, perfluoroalkylsulfonate anions, tetrafluoroborate anions, perfluoroalkylborate anions, hexafluorophosphate anions, and perfluoroalkylphosphate anions.

[0210] The secondary battery of one embodiment of the present invention has, as a carrier ion, one or more ions selected from alkali metal ions such as sodium ions and potassium ions, and alkaline earth metal ions such as calcium ions, strontium ions, barium ions, beryllium ions, and magnesium ions.

[0211] When lithium ions are used as carrier ions, the electrolyte contains a lithium salt, such as LiPF, LiClO, LiAsF, LiBF, LiAlCl, LiSCN, LiBr, LiI, LiSO, and LiB. 10 Cl 10 , Li2B 12 Cl 12 , LiCF3SO3, LiC4F9SO3, LiC(CF3SO2)3, LiC(C2F5SO2)3, LiN(CF3SO2)2, LiN(C4F9SO2)(CF3SO2), LiN(C2F5SO2)2, etc. can be used.

[0212] The electrolyte preferably contains fluorine. For example, an electrolyte containing one or more fluorinated cyclic carbonates and lithium ions can be used as the fluorine-containing electrolyte. The fluorinated cyclic carbonate improves non-flammability and can enhance the safety of the lithium ion secondary battery.

[0213] Fluorinated cyclic carbonates include fluorinated ethylene carbonates, such as monofluoroethylene carbonate (fluoroethylene carbonate, FEC, F1EC), difluoroethylene carbonate (DFEC, F2EC), trifluoroethylene carbonate (F3EC), and tetrafluoroethylene carbonate (F4EC). DFEC includes isomers such as cis-4,5 and trans-4,5. For low-temperature operation, it is important to use one or more fluorinated cyclic carbonates as an electrolyte to solvate lithium ions and transport them within the electrolyte contained in the electrodes during charging and discharging. Using fluorinated cyclic carbonates not as a small additive but as a catalyst for lithium ion transport during charging and discharging enables low-temperature operation. Lithium ions move in clusters of several to several tens of ions within a secondary battery.

[0214] The use of a fluorinated cyclic carbonate in the electrolyte reduces the desolvation energy required for lithium ions solvated in the electrolyte contained in the electrode to enter active material particles. Reducing this desolvation energy facilitates insertion and desorption of lithium ions into active material particles, even at low temperatures. While lithium ions may migrate in a solvated state, a hopping phenomenon, in which the coordinated solvent molecules switch positions, may also occur. When lithium ions are more easily desolvated, they may be more susceptible to migration via the hopping phenomenon, which may facilitate lithium ion migration. There is a concern that electrolyte decomposition products cling to the surface of the active material during charging and discharging of secondary batteries, causing deterioration of the secondary battery. However, when the electrolyte contains fluorine, the electrolyte is smooth, making it difficult for electrolyte decomposition products to adhere to the surface of the active material. This reduces secondary battery degradation.

[0215] A plurality of solvated lithium ions may form clusters in the electrolyte and move within the negative electrode, between the positive electrode and the negative electrode, within the positive electrode, etc.

[0216] Examples of fluorinated cyclic carbonates are shown below.

[0217] Monofluoroethylene carbonate (FEC) is represented by the following formula (1).

[0218] [ka]

[0219] Tetrafluoroethylene carbonate (F4EC) is represented by the following formula (2).

[0220] [ka]

[0221] Difluoroethylene carbonate (DFEC) is represented by the following formula (3).

[0222] [ka]

[0223] In this specification, the term "electrolyte" is a general term that includes solid, liquid, or semi-solid materials.

[0224] Deterioration is likely to occur at interfaces present in secondary batteries, such as the interface between the active material and the electrolyte. In a secondary battery according to one embodiment of the present invention, the inclusion of a fluorine-containing electrolyte can prevent deterioration, typically electrolyte alteration or increased viscosity, that can occur at the interface between the active material and the electrolyte. A binder or graphene compound may be attached to or supported by the fluorine-containing electrolyte. Alternatively, the fluorine-containing electrolyte may be supported by a binder or graphene compound. This configuration can maintain a reduced viscosity of the electrolyte, in other words, a smooth electrolyte, thereby improving the reliability of the secondary battery. DFEC, which has two fluorine atoms, and F4EC, which has four bonds, have lower viscosity and are smoother than FEC, which has one fluorine atom, and thus have weaker coordination bonds with lithium. Therefore, adhesion of viscous decomposition products to active material particles can be reduced. Adhesion or adhesion of viscous decomposition products to active material particles can hinder the movement of lithium ions at the interfaces of the active material particles. Electrolytes containing fluorine mitigate the formation of decomposition products on the surface of the active material (positive electrode active material or negative electrode active material) by solvating. Furthermore, the use of fluorine-containing electrolytes can prevent the formation and growth of dendrites by preventing the adhesion of decomposition products.

[0225] Another feature is that a fluorine-containing electrolyte is used as the main component, and the fluorine-containing electrolyte is 5% by volume or more, 10% by volume or more, preferably 30% by volume or more and 100% by volume or less.

[0226] In this specification, the term "main component of the electrolyte" refers to 5% by volume or more of the total electrolyte of the secondary battery. Furthermore, "5% by volume or more of the total electrolyte of the secondary battery" refers to the percentage of the total electrolyte measured during the manufacture of the secondary battery. Furthermore, when disassembling a secondary battery after fabrication, it is difficult to quantify the percentage of each of multiple electrolytes, but it is possible to determine whether a certain type of organic compound accounts for 5% by volume or more of the total electrolyte.

[0227] By using an electrolyte containing fluorine, it is possible to realize a secondary battery that can operate over a wide temperature range, specifically, from -40°C to 150°C, preferably from -40°C to 85°C.

[0228] The electrolyte may also contain additives such as vinylene carbonate, propane sultone (PS), tert-butylbenzene (TBB), lithium bis(oxalato)borate (LiBOB), or dinitrile compounds such as succinonitrile and adiponitrile. The concentration of the additive may be, for example, 0.1% by volume or more and less than 5% by volume of the entire electrolyte.

[0229] In addition to the above, the electrolyte may contain one or more aprotic organic solvents such as γ-butyrolactone, acetonitrile, dimethoxyethane, and tetrahydrofuran.

[0230] Furthermore, the use of a gelling polymer material in the electrolyte increases safety against leakage, etc. Typical examples of gelling polymer materials include silicone gel, acrylic gel, acrylonitrile gel, polyethylene oxide gel, polypropylene oxide gel, and fluorine-based polymer gel.

[0231] The polymer material may be one or more selected from polymers having a polyalkylene oxide structure such as polyethylene oxide (PEO), PVDF, polyacrylonitrile, and copolymers containing these. For example, PVDF-HFP, a copolymer of PVDF and hexafluoropropylene (HFP), may be used. The polymer formed may also have a porous shape.

[0232] Although the above configuration shows an example of a secondary battery using a liquid electrolyte, it is not particularly limited. For example, semi-solid batteries and all-solid batteries can also be produced.

[0233] In this specification, the layer disposed between the positive electrode and the negative electrode is referred to as the electrolyte layer in both the case of a secondary battery using a liquid electrolyte and the case of a semi-solid battery. The electrolyte layer of a semi-solid battery can be said to be a layer formed by film formation, and can be distinguished from a liquid electrolyte layer.

[0234] In addition, in this specification, a semi-solid battery refers to a battery having a semi-solid material in at least one of the electrolyte layer, positive electrode, and negative electrode. The term "semi-solid" here does not mean that the ratio of solid material is 50%. Semi-solid means that the battery has the properties of a solid, 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.

[0235] In this specification, a polymer electrolyte secondary battery refers to a secondary battery having a polymer in the electrolyte layer between a positive electrode and a negative electrode. Polymer electrolyte secondary batteries include dry (or intrinsic) polymer electrolyte batteries and polymer gel electrolyte batteries. Polymer electrolyte secondary batteries may also be called semi-solid batteries.

[0236] When a semi-solid battery is manufactured using the negative electrode of one embodiment of the present invention, the semi-solid battery can be a secondary battery with large charge / discharge capacity, high charge / discharge voltage, or a highly safe or reliable semi-solid battery.

[0237] Here, an example of fabricating a semi-solid battery will be described with reference to FIG.

[0238] 13 is a schematic cross-sectional view of a secondary battery of one embodiment of the present invention. The secondary battery of one embodiment of the present invention includes a negative electrode 570a and a positive electrode 570b. The negative electrode 570a includes at least a negative electrode current collector 571a and a negative electrode active material layer 572a formed in contact with the negative electrode current collector 571a. The positive electrode 570b includes at least a positive electrode current collector 571b and a positive electrode active material layer 572b formed in contact with the positive electrode current collector 571b. The secondary battery also includes an electrolyte 576 between the negative electrode 570a and the positive electrode 570b.

[0239] The electrolyte 576 comprises a lithium ion conducting polymer and a lithium salt.

[0240] In this specification, the lithium ion conductive polymer is a polymer that has conductivity for cations such as lithium. More specifically, it is a polymer compound having a polar group to which a cation can be coordinated. The polar group preferably has an ether group, an ester group, a nitrile group, a carbonyl group, a siloxane group, or the like.

[0241] Examples of the lithium ion conductive polymer that can be used include polyethylene oxide (PEO), derivatives having polyethylene oxide as the main chain, polypropylene oxide, polyacrylic acid ester, polymethacrylic acid ester, polysiloxane, and polyphosphazene.

[0242] The lithium ion conductive polymer may be branched or crosslinked, or may be a copolymer. The molecular weight is preferably 10,000 or more, and more preferably 100,000 or more.

[0243] In lithium-ion conductive polymers, lithium ions move while changing the polar groups they interact with due to the partial motion (also called segmental motion) of the polymer chain. For example, in the case of PEO, lithium ions move while changing the oxygen they interact with due to the segmental motion of the ether chain. When the temperature is close to or higher than the melting point or softening point of the lithium-ion conductive polymer, the crystalline regions dissolve, the amorphous regions increase, and the motion of the ether chains becomes more active, resulting in higher ionic conductivity. For this reason, when using PEO as a lithium-ion conductive polymer, it is preferable to charge and discharge at temperatures above 60°C.

[0244] According to Shannon's ionic radius (Shannon et al., Acta A 32 (1976) 751.), the radius of a monovalent lithium ion is 0.590 × 10 when it is four-coordinated. -10 m, 0.76×10 for 6-coordinate -10 m, 0.92 × 10 for 8-coordinated -10 m. The radius of a divalent oxygen ion is 1.35 × 10 when two coordinates are present. -10 m, 1.36×10 for 3-coordinate -10 m, 1.38×10 for 4-coordinate -10 m, 1.40×10 for 6-coordinate -10 m, 1.42 × 10 for 8-coordinated -10 m. The distance between the polar groups of adjacent lithium ion conductive polymer chains is preferably at least the distance at which the lithium ions and the anions of the polar groups can stably exist while maintaining the ionic radius as described above. It is also preferable that the distance be such that sufficient interaction occurs between the lithium ions and the polar groups. However, as mentioned above, segmental motion occurs, so it is not necessary to maintain a constant distance at all times. It is sufficient that the distance is appropriate for the lithium ions to pass through.

[0245] As the lithium salt, for example, a compound containing lithium and at least one of phosphorus, fluorine, nitrogen, sulfur, oxygen, chlorine, arsenic, boron, aluminum, bromine, and iodine can be used, such as LiPF6, LiN(FSO2)2 (lithium bis(fluorosulfonyl)amide, LiFSA), LiClO4, LiAsF6, LiBF4, LiAlCl4, LiSCN, LiBr, LiI, Li2SO4, and Li2B 10 Cl 10 , Li2B 12 Cl 12 Lithium salts such as LiCF3SO3, LiC4F9SO3, LiC(CF3SO2)3, LiC(C2F5SO2)3, LiN(CF3SO2)2 (lithium bis(trifluoromethanesulfonyl)amide, LiTFSA), LiN(C4F9SO2)(CF3SO2), LiN(C2F5SO2)2, and lithium bis(oxalato)borate (LiBOB) can be used alone or in any combination and ratio of two or more of these.

[0246] In particular, the use of LiFSA is preferable due to its excellent low-temperature properties. Furthermore, LiFSA and LiTFSA are less reactive with water than LiPF6 and other compounds. This makes it easier to control the dew point when fabricating electrodes and electrolyte layers using LiFSA. For example, they can be handled not only in an inert atmosphere such as argon, which minimizes moisture, or in a dry room with a controlled dew point, but also in normal air. This improves productivity and is therefore preferable. Furthermore, the use of highly dissociable and plasticizing Li salts such as LiFSA and LiTFSA is particularly preferable when using lithium conduction utilizing the segmental motion of ether chains, as they can be used over a wide temperature range.

[0247] In this specification, the term "binder" refers to a polymer compound that is mixed solely to bind active materials, conductive materials, etc. onto a current collector. Examples of binder include rubber materials such as polyvinylidene fluoride (PVDF), styrene-butadiene rubber (SBR), styrene-isoprene-styrene rubber, butadiene rubber, and ethylene-propylene-diene copolymers, as well as fluororubber, polystyrene, polyvinyl chloride, polytetrafluoroethylene, polyethylene, polypropylene, polyisobutylene, and ethylene propylene diene polymers.

[0248] Because lithium ion conductive polymers are polymer compounds, mixing them thoroughly before use in the active material layer makes it possible to bind the active material and conductive material to the current collector. This allows electrodes to be fabricated without the use of binders. Binders are materials that do not contribute to charge / discharge reactions. Therefore, the less binder used, the more materials that contribute to charge / discharge, such as active material and electrolyte, can be used. This allows for a secondary battery with improved discharge capacity and cycle characteristics.

[0249] The absence or very little amount of organic solvents makes it possible to make a secondary battery less susceptible to ignition, which is preferable and improves safety. Furthermore, if the electrolyte 576 is an electrolyte layer with no or very little organic solvent, it has sufficient strength even without a separator and can electrically insulate the positive and negative electrodes. Since a separator is not required, a secondary battery with high productivity can be made. If the electrolyte 576 is an electrolyte layer containing an inorganic filler, the strength is further increased, resulting in a secondary battery with even higher safety.

[0250] It is preferable that the electrolyte 576 be sufficiently dried to form an electrolyte layer containing no or very little organic solvent. In this specification, the electrolyte layer is considered to be sufficiently dried if the weight change of the electrolyte layer is within 5% when dried under reduced pressure at 90°C for 1 hour.

[0251] Materials contained in secondary batteries, such as lithium ion conductive polymers, lithium salts, binders, and additives, can be identified by, for example, nuclear magnetic resonance (NMR). Analytical results from Raman spectroscopy, Fourier transform infrared spectroscopy (FT-IR), time-of-flight secondary ion mass spectrometry (TOF-SIMS), gas chromatography / mass spectrometry (GC / MS), pyrolysis gas chromatography / mass spectrometry (Py-GC / MS), and liquid chromatography / mass spectrometry (LC / MS) can also be used as a basis for determination. It is preferable to suspend the active material layer in a solvent to separate the active material from other materials before conducting NMR or other analyses.

[0252] In each of the above configurations, the negative electrode may further contain a solid electrolyte material to improve flame retardancy, and it is preferable to use an oxide-based solid electrolyte as the solid electrolyte material.

[0253] Oxide-based solid electrolytes include LiPON, Li2O, Li2CO3, Li2MoO4, Li3PO4, Li3VO4, Li4SiO4, LLT(La 2 / 3-x Li 3x TiO3), LLZ(Li7La3Zr2O 12 ) and other lithium composite oxides and lithium oxide materials.

[0254] LLZ is a garnet-type oxide containing Li, La, and Zr, and may be a compound containing Al, Ga, or Ta.

[0255] Alternatively, a polymer solid electrolyte such as PEO (polyethylene oxide) formed by a coating method may be used. Such a polymer solid electrolyte can also function as a binder, so when a polymer solid electrolyte is used, the number of components of the electrode can be reduced, and manufacturing costs can also be reduced.

[0256] This embodiment mode can be implemented in appropriate combination with other embodiment modes.

[0257] (Embodiment 2) In this embodiment, an example of a secondary battery of one embodiment of the present invention will be described.

[0258] <Configuration example 1 of secondary battery> The following description will be given taking as an example a secondary battery in which a positive electrode, a negative electrode, and an electrolyte are enclosed in an exterior body.

[0259] [Negative electrode] As the negative electrode, the negative electrode described in the above embodiment can be used.

[0260] [Current collector] Positive and negative electrode current collectors can be made of highly conductive materials that do not alloy with carrier ions such as lithium, such as metals such as stainless steel, gold, platinum, zinc, iron, copper, aluminum, and titanium, as well as alloys thereof. Aluminum alloys containing elements that improve heat resistance, such as silicon, titanium, neodymium, scandium, and molybdenum, can also be used. They can also be made of metal elements that react with silicon to form silicides. Examples of metal elements that react with silicon to form silicides include zirconium, titanium, hafnium, vanadium, niobium, tantalum, chromium, molybdenum, tungsten, cobalt, and nickel. The current collectors can be in various shapes, such as sheet, mesh, punched metal, and expanded metal. The current collectors should preferably have a thickness of 10 μm to 30 μm.

[0261] The negative electrode current collector is preferably made of a material that does not alloy with carrier ions such as lithium.

[0262] A titanium compound may be provided as a current collector by being laminated on the metal element shown above. Examples of titanium compounds include titanium nitride, titanium oxide, titanium nitride in which part of the nitrogen is substituted with oxygen, titanium oxide in which part of the oxygen is substituted with nitrogen, and titanium oxynitride (TiO x N yOne selected from (0 < x < 2, 0 < y < 1), or two or more of them can be mixed or laminated and used. Among them, titanium nitride is particularly preferable because it has high conductivity and a high function of suppressing oxidation. By providing a titanium compound on the surface of the current collector, for example, the reaction between the material and the metal in the active material layer formed on the current collector is suppressed. When the active material layer contains a compound having oxygen, the oxidation reaction between the metal element and oxygen can be suppressed. For example, when aluminum is used as the current collector and the active material layer is formed using graphene oxide described later, there may be a concern about the oxidation reaction between the oxygen in graphene oxide and aluminum. In such a case, by providing a titanium compound on aluminum, the oxidation reaction between the current collector and graphene oxide can be suppressed.

[0263] [Positive electrode] The positive electrode has a positive electrode active material layer and a positive electrode current collector. The positive electrode active material layer has a positive electrode active material and may have a conductive material and a binder.

[0264] As the conductive material and the binder that the positive electrode active material layer can have, the same materials as those that the negative electrode active material layer can have can be used.

[0265] [Separator] A separator is disposed between the positive electrode and the negative electrode. As the separator, for example, those formed of fibers having cellulose such as paper, non-woven fabric, glass fiber, ceramics, or synthetic fibers using nylon (polyamide), vinylon (polyvinyl alcohol-based fiber), polyester, acrylic, polyolefin, polyurethane, etc. can be used. The separator is preferably processed into a bag shape and disposed so as to wrap either the positive electrode or the negative electrode.

[0266] The separator is a porous material having pores with a size of about 20 nm, preferably pores with a size of 6.5 nm or more, and more preferably pores with a diameter of at least 2 nm. In the case of the semi-solid secondary battery described above, the separator can also be omitted.

[0267] 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).

[0268] 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.

[0269] 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.

[0270] 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.

[0271] [Exterior body] The exterior of a secondary battery can be made of one or more materials selected from metal materials such as aluminum and resin materials. Film-like exteriors can also be used. Examples of films include a three-layer structure consisting of a membrane made of polyethylene, polypropylene, polycarbonate, ionomer, polyamide, or other materials, a thin, flexible metal film made of aluminum, stainless steel, copper, nickel, or other materials, and a thin, insulating synthetic resin film made of polyamide resin, polyester resin, or other materials, which serves as the exterior of the exterior. Fluororesin films are also preferred. Fluororesin films are highly stable against acids, alkalis, organic solvents, and other substances, and can suppress side reactions and corrosion associated with secondary battery reactions, thereby achieving superior secondary batteries. Examples of fluororesin films include PTFE (polytetrafluoroethylene), PFA (perfluoroalkoxyalkane: a copolymer of tetrafluoroethylene and perfluoroalkyl vinyl ether), FEP (perfluoroethylene propene copolymer: a copolymer of tetrafluoroethylene and hexafluoropropylene), and ETFE (ethylene tetrafluoroethylene copolymer: a copolymer of tetrafluoroethylene and ethylene).

[0272] This embodiment mode can be implemented in appropriate combination with other embodiment modes.

[0273] (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.

[0274] [Coin-type secondary battery] An example of a coin-type secondary battery will be described. Fig. 14A is an exploded perspective view of a coin-type (single-layer flat) secondary battery, Fig. 14B is an external view, and Fig. 14C is a cross-sectional view thereof. Coin-type secondary batteries are mainly used in small electronic devices.

[0275] 14A is a schematic diagram that shows the overlapping of components (upper and lower relationships and positional relationships) for ease of understanding, and therefore, FIGS. 14A and 14B are not completely corresponding views.

[0276] In Fig. 14A, a positive electrode 304, a separator 310, a negative electrode 307, a spacer 322, and a washer 312 are stacked together. These are sealed between a negative electrode can 302 and a positive electrode can 301. Note that a gasket for sealing is not shown in Fig. 14A. The spacer 322 and the washer 312 are used to protect the interior or to fix the position within the can when the positive electrode can 301 and the negative electrode can 302 are crimped together. The spacer 322 and the washer 312 are made of stainless steel or an insulating material.

[0277] A positive electrode 304 has a laminated structure in which a positive electrode active material layer 306 is formed on a positive electrode current collector 305 .

[0278] To prevent short-circuiting between the positive electrode and the negative electrode, a separator 310 and a ring-shaped insulator 313 are arranged so as to cover the side and top surfaces of the positive electrode 304. The separator 310 has a larger planar area than the positive electrode 304.

[0279] FIG. 14B is a perspective view of the completed coin-type secondary battery.

[0280] In the 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. The negative electrode 307 is not limited to a laminated structure, and may be made of lithium metal foil or a lithium-aluminum alloy foil.

[0281] 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.

[0282] The positive electrode can 301 and the negative electrode can 302 can be made of a material that is corrosion-resistant to the electrolyte. For example, metals such as nickel, aluminum, and titanium, alloys of these metals, or alloys of these metals with other metals (e.g., stainless steel) can be used. To prevent corrosion by the electrolyte, it is preferable to coat them with nickel, aluminum, or the like. The positive electrode can 301 is electrically connected to the positive electrode 304, and the negative electrode can 302 is electrically connected to the negative electrode 307.

[0283] These negative electrode 307, positive electrode 304, and separator 310 are immersed in an electrolyte, and as shown in FIG. 14C, the positive electrode can 301 is placed downward, and the positive electrode 304, separator 310, negative electrode 307, and negative electrode can 302 are stacked in this order, and the positive electrode can 301 and the negative electrode can 302 are crimped together via gasket 303, to produce coin-type secondary battery 300.

[0284] By using it as a secondary battery, it is possible to obtain a coin-type secondary battery 300 having a high capacity, a high charge / discharge capacity, and excellent cycle characteristics. Note that when a secondary battery is formed between the negative electrode 307 and the positive electrode 304, the separator 310 may not be necessary.

[0285] [Cylindrical secondary battery] An example of a cylindrical secondary battery will be described with reference to Fig. 15A. As shown in Fig. 15A, 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 battery can (external can) 602 is formed from a metal material and has excellent water barrier properties and gas barrier properties. The positive electrode cap 601 and the battery can (external can) 602 are insulated by a gasket (insulating packing) 610.

[0286] Fig. 15B is a diagram showing a cross section of a cylindrical secondary battery. The cylindrical secondary battery shown in Fig. 15B 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.

[0287] A battery element is provided inside a hollow cylindrical battery can 602, in which a strip-shaped positive electrode 604 and a negative electrode 606 are wound 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 material that is corrosion-resistant to the electrolyte. For example, metals such as nickel, aluminum, and titanium, alloys of these metals, or alloys of these metals with other metals (e.g., stainless steel) can be used. To prevent corrosion by the electrolyte, the battery can 602 is preferably coated with nickel, aluminum, or the like. Inside the battery can 602, the wound battery element, in which the positive electrode, negative electrode, and separator are wound, is sandwiched between a pair of opposing insulating plates 608 and 609. An electrolyte (not shown) is injected into the battery can 602, in which the battery element is provided. The electrolyte can be the same as that used in coin-type secondary batteries.

[0288] 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.

[0289] By using the negative electrode obtained in Embodiment 1, the cylindrical secondary battery 616 can have a large capacity, a large charge / discharge capacity, and excellent cycle characteristics.

[0290] 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.

[0291] FIG. 15C shows an example of a power storage system 615. The power storage system 615 includes multiple secondary batteries 616. The positive electrodes of each secondary battery are 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 each secondary battery are electrically connected to the control circuit 620 via wiring 626. The control circuit 620 may include a charge / discharge control circuit for charging and discharging, and a protection circuit for preventing overcharging or overdischarging. The control circuit 620 may have one or more functions, for example, controlling charging, controlling discharging, measuring charging voltage, measuring discharging voltage, measuring charging current, measuring discharging current, and measuring remaining capacity by integrating the amount of charge. The control circuit 620 may also have one or more functions, for example, detecting overcharging, overdischarging, charging overcurrent, and discharging overcurrent. Based on these detection results, the control circuit 620 preferably has one or more functions, for example, stopping charging, stopping discharging, changing charging conditions, and changing discharging conditions.

[0292] 15D 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 parallel and then further connected in series. 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.

[0293] A plurality of secondary batteries 616 may be connected in parallel and then further connected in series.

[0294] 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.

[0295] 15D, 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.

[0296] [Other examples of secondary battery structures] An example of the structure of the secondary battery will be described with reference to FIGS.

[0297] A secondary battery 913 shown in FIG. 16A 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. 16A, 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 (such as aluminum) or a resin material.

[0298] 16B, the housing 930 shown in Fig. 16A may be formed from a plurality of materials. For example, the secondary battery 913 shown in Fig. 16B has housings 930a and 930b bonded together, and a wound body 950 is provided in the area surrounded by the housings 930a and 930b.

[0299] 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.

[0300] 16C 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.

[0301] Alternatively, a secondary battery 913 may be provided having a wound body 950a as shown in Fig. 17. The wound body 950a shown in Fig. 17A 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.

[0302] By using a fluorine-containing electrolyte for the negative electrode 931, the secondary battery 913 can have a high charge / discharge capacity and excellent cycle characteristics.

[0303] The separator 933 has a width greater than that of the negative electrode active material layer 931a and the positive electrode active material layer 932a, and is wound so as to overlap with 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 width of the negative electrode active material layer 931a be greater than that of the positive electrode active material layer 932a. A wound body 950a having such a shape is preferable due to its high safety and productivity.

[0304] 17A and 17B, the negative electrode 931 is electrically connected to a terminal 951. The terminal 951 is electrically connected to a terminal 911a. The positive electrode 932 is electrically connected to a terminal 952. The terminal 952 is electrically connected to a terminal 911b.

[0305] 17C, wound body 950a and the electrolyte are covered with 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 pressure inside casing 930 reaches a predetermined level to prevent the battery from exploding.

[0306] As shown in Fig. 17B, the secondary battery 913 may have multiple wound bodies 950a. Using multiple wound bodies 950a can result in a secondary battery 913 with a larger charge / discharge capacity. For other elements of the secondary battery 913 shown in Figs. 17A and 17B, the descriptions of the secondary battery 913 shown in Figs. 16A to 16C can be referred to.

[0307] <Laminated secondary battery> 18A and 18B show examples of external views of a laminated secondary battery, which includes 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.

[0308] FIG. 19A shows an external view 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. 19A.

[0309] <Method for manufacturing laminated secondary batteries> Here, an example of a method for producing the laminated secondary battery whose external view is shown in FIG. 18A will be described with reference to FIGS. 19B and 19C.

[0310] First, the negative electrode 506, separator 507, and positive electrode 503 are stacked. FIG. 19B 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.

[0311] Next, the negative electrode 506 , the separator 507 and the positive electrode 503 are placed on the exterior body 509 .

[0312] Next, as shown in FIG. 19C, the exterior body 509 is folded at the portion indicated by the dashed line. Thereafter, the outer periphery of the exterior body 509 is joined. For joining, 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 on a part (or one side) of the exterior body 509 so that an electrolyte can be introduced later. For the exterior body 509, it is preferable to use a film that has excellent water barrier properties and gas barrier properties. Furthermore, the exterior body 509 can be made to have a laminated structure, and by using a metal foil (e.g., aluminum foil) as one of the intermediate layers, high water barrier properties and gas barrier properties can be achieved.

[0313] Next, an electrolyte (not shown) is introduced into the inside of the exterior body 509 through an inlet provided in the exterior body 509. The introduction of the electrolyte is preferably carried out under a reduced pressure atmosphere or an inert atmosphere. Finally, the inlet is joined. In this manner, the laminated secondary battery 500 can be produced.

[0314] The negative electrode structure obtained in Embodiment 1, that is, the use of a fluorine-containing electrolyte for negative electrode 506, makes it possible to provide secondary battery 500 with high capacity, high charge / discharge capacity, and excellent cycle characteristics.

[0315] This embodiment mode can be implemented in appropriate combination with other embodiment modes.

[0316] (Fourth embodiment) The secondary battery of one embodiment of the present invention can be mounted on moving objects such as automobiles, trains, and airplanes, as described below. In this embodiment, an example different from that shown in FIG. 15D, which shows a cylindrical secondary battery, is shown. An example of application to an electric vehicle (EV) is shown using FIG. 20C.

[0317] 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.

[0318] The internal structure of the first battery 1301a may be a wound type as shown in FIG. 16A, or may be a layered type as shown in FIGS. 18A and 18B.

[0319] In this embodiment, an example is shown in which two first batteries 1301a and 1301b are connected in parallel, but three or more may be connected in parallel. Also, if the first battery 1301a can store sufficient power, the first battery 1301b may not be necessary. By configuring a battery pack having multiple secondary batteries, it is possible to extract large amounts of power. The multiple secondary batteries may be connected in parallel, in series, or in series after being connected in parallel. A plurality of secondary batteries is also called a battery pack.

[0320] 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.

[0321] The power of the first batteries 1301a and 1301b is mainly used to rotate the motor 1304, but also supplies power to 42V in-vehicle components (such as an electric power steering 1307, a heater 1308, and a defogger 1309) via a DC-DC circuit 1306. When a rear motor 1317 is provided on the rear wheels, the first battery 1301a is also used to rotate the rear motor 1317.

[0322] 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.

[0323] The first battery 1301a will be described with reference to FIG. 20A.

[0324] FIG. 20A 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 vibrations or shaking from the outside (such as the road surface), it is preferable to fix multiple secondary batteries using fixing portions 1413 and 1414 or a battery housing box. 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.

[0325] 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.

[0326] The control circuit 1320 detects the terminal voltage of the secondary battery and manages 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.

[0327] FIG. 20B shows an example of a block diagram of the battery pack 1415 shown in FIG. 20A.

[0328] 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 and upper voltage limits of the secondary battery is within the recommended voltage range. If the voltage falls outside this range, the switch unit 1324 activates and functions as a protection circuit. The control circuit unit 1320 can also be called a protection circuit because it controls the switch unit 1324 to prevent overcharging and overdischarging. For example, if the control circuit 1322 detects a voltage that could cause overcharging, it turns off the switch unit 1324 to cut off the current. A PTC element may also be provided in the charge / discharge path to provide a function for cutting off the current in response to an increase in temperature. The control circuit section 1320 also has an external terminal 1325 (+IN) and an external terminal 1326 (-IN).

[0329] The switch unit 1324 can be configured by combining n-channel transistors and p-channel transistors. The switch unit 1324 is not limited to a switch having a Si transistor using single crystal silicon. For example, the switch unit 1324 may be formed of a power transistor having Ge (germanium), SiGe (silicon germanium), GaAs (gallium arsenide), GaAlAs (gallium aluminum arsenide), InP (indium phosphide), SiC (silicon carbide), ZnSe (zinc selenide), GaN (gallium nitride), or GaOx (gallium oxide; x is a real number greater than 0). Furthermore, memory elements using OS transistors can be freely arranged by stacking them on circuits using Si transistors, facilitating integration. Furthermore, OS transistors can be fabricated using the same manufacturing equipment as Si transistors, allowing for low-cost fabrication. Specifically, a control circuit unit 1320 using OS transistors can be stacked on the switch unit 1324 and integrated into a single chip. The control circuit unit 1320 occupies a smaller volume, enabling miniaturization.

[0330] The first batteries 1301a and 1301b mainly supply power to 42V (high voltage) in-vehicle devices, and the second battery 1311 supplies power to 14V (low voltage) in-vehicle devices. A lead-acid battery is often used as the second battery 1311 because of its cost advantage.

[0331] In this embodiment, an example is shown in which lithium ion secondary batteries are used as both the first battery 1301a and the second battery 1311. The second battery 1311 may be a lead storage battery, an all-solid-state battery, or an electric double layer capacitor.

[0332] 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 via the control circuit unit 1321 from one or both of the motor controller 1303 and the battery controller 1302. 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.

[0333] The battery controller 1302 can set the charging voltage and charging current of the first batteries 1301a and 1301b. The battery controller 1302 can set charging conditions according to the charging characteristics of the secondary battery used, and can perform rapid charging.

[0334] Although not shown, when an external charger is connected, the charger's outlet or the charger's connection cable is electrically connected to the battery controller 1302. The power supplied from the external charger is charged to the first batteries 1301a, 1301b via the battery controller 1302. Some chargers are provided with a control circuit, and although the function of the battery controller 1302 may not be used, it is preferable to charge the first batteries 1301a, 1301b via a control circuit unit 1320 to prevent overcharging. In some cases, the connection cable or the charger's connection cable is provided with a control circuit. The control circuit unit 1320 is also called an ECU (Electronic Control Unit). The ECU is connected to a CAN (Controller Area Network) provided in the electric vehicle. CAN is one of the serial communication standards used as an in-vehicle LAN. The ECU includes a microcomputer. A CPU or a GPU is used as the ECU.

[0335] 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.

[0336] 15D or 20A , next-generation clean energy vehicles 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 or 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.

[0337] 21A to 21D illustrate examples of a moving object, such as a transportation vehicle, using one embodiment of the present invention. The automobile 2001 shown in FIG. 21A 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, the secondary battery is installed in one location or multiple locations. The automobile 2001 shown in FIG. 21A 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.

[0338] Furthermore, automobile 2001 can charge its secondary battery by receiving power supply from an external charging facility using one or more of a plug-in method, a contactless power supply method, etc. During charging, the charging method and connector standards may be appropriately determined using a predetermined method such as CHAdeMO (registered trademark) or Combo. The secondary battery may be charged using a charging station provided at 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.

[0339] 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 to charge the vehicle. In the case of this contactless power supply method, by incorporating a power transmitting device into one or both of the road and the 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 to charge the secondary battery while the vehicle is stopped or moving. For such contactless power supply, one or more of the electromagnetic induction method and the magnetic field resonance method can be used.

[0340] 21B shows a large transport vehicle 2002 having an electrically controlled motor as an example of a transport vehicle. The secondary battery module of the transport vehicle 2002 is, for example, a four-cell unit of secondary batteries of 3.5V to 4.7V, with 48 cells connected in series for a maximum voltage of 170V. Apart from the number of secondary batteries constituting the secondary battery module of the battery pack 2201, the transport vehicle 2002 has the same functions as those shown in FIG. 21A, and therefore a description thereof will be omitted.

[0341] FIG. 21C shows, as an example, a large transport vehicle 2003 having an electrically controlled motor. The secondary battery module of the transport vehicle 2003 has, for example, a maximum voltage of 600 V, with more than 100 secondary batteries connected in series, with a voltage of 3.5 V to 4.7 V. Therefore, secondary batteries with little variation in characteristics are required. By using secondary batteries with a structure having a fluorine-containing electrolyte in the negative electrode, secondary batteries with stable battery characteristics can be manufactured, and mass production at low cost is possible from the standpoint of yield. Furthermore, except for the number of secondary batteries constituting the secondary battery module of the battery pack 2202, the same functions as those in FIG. 21A are provided, and therefore a description thereof will be omitted.

[0342] Fig. 21D shows, as an example, an aircraft 2004 having an engine that burns fuel. Since the aircraft 2004 shown in Fig. 21D 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.

[0343] 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. 21A, and therefore a description thereof will be omitted.

[0344] This embodiment mode can be implemented in appropriate combination with other embodiment modes.

[0345] (Embodiment 5) 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. 22A and 22B.

[0346] 22A 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 also be electrically connected to a ground-mounted charging device 2604. The power obtained by the solar panel 2610 can be charged to the power storage device 2612. 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.

[0347] 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.

[0348] 22B illustrates an example of a power storage device 700 according to one embodiment of the present invention. As illustrated in FIG. 22B, a power storage device 791 according to one embodiment of the present invention is installed in an underfloor space 796 of a building 799.

[0349] 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.

[0350] 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).

[0351] 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.

[0352] 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.

[0353] 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 an electrical device such as a television or a personal computer via the router 709. It can also be confirmed on a mobile electronic device such as a smartphone or a tablet 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 device, or the mobile electronic device.

[0354] This embodiment mode can be implemented in appropriate combination with other embodiment modes.

[0355] (Sixth embodiment) 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.

[0356] 23A shows an example of a mobile phone. Mobile phone 2100 includes a display unit 2102 built into housing 2101, as well as 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 with a structure having a fluorine-containing electrolyte in the negative electrode, high capacity can be achieved, and a configuration can be realized that can accommodate space savings associated with smaller housings.

[0357] 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.

[0358] 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.

[0359] 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.

[0360] 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.

[0361] The mobile phone 2100 preferably has a sensor, such as one or more sensors selected from a fingerprint sensor, a pulse sensor, a human body sensor such as a body temperature sensor, a touch sensor, a pressure sensor, an acceleration sensor, and the like.

[0362] FIG. 23B shows an unmanned aerial vehicle 2300 having multiple rotors 2302. The unmanned aerial vehicle 2300 is sometimes called a drone. The unmanned aerial vehicle 2300 has a secondary battery 2301 according to one embodiment of the present invention, a camera 2303, and an antenna (not shown). The unmanned aerial vehicle 2300 can be remotely controlled via the antenna. A secondary battery having a structure in which a fluorine-containing electrolyte is included in the negative electrode has a 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 mounted on the unmanned aerial vehicle 2300.

[0363] Fig. 23C shows an example of a robot. A robot 6400 shown in Fig. 23C 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.

[0364] 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.

[0365] 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.

[0366] 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.

[0367] 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 having a structure in which a fluorine-containing electrolyte is included in the negative 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.

[0368] 23D shows an example of a cleaning robot. The cleaning robot 6300 includes 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.

[0369] 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, if an object that may become entangled in the brush 6304, such as a wire, is detected through image analysis, the cleaning robot 6300 can stop the rotation of the brush 6304. The cleaning robot 6300 includes a secondary battery 6306 according to one embodiment of the present invention and a semiconductor device or electronic component in its internal region. A secondary battery having a structure in which a fluorine-containing electrolyte is included in the negative electrode has high energy density and high safety, and therefore can be used safely for a long period of time, making it suitable as the secondary battery 6306 to be mounted on the cleaning robot 6300.

[0370] This embodiment mode can be implemented in appropriate combination with other embodiment modes.

[0371] (Notes regarding the present specification) 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 {}.

[0372] 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).

[0373] In this specification, the surface layer of particles of active material or the like is preferably, for example, a region within 50 nm from the surface, more preferably within 35 nm, and even more preferably within 20 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.

[0374] 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.

[0375] 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.

[0376] In this specification and the like, the O3'-type crystal structure of a composite oxide containing lithium and a transition metal refers to a crystal structure that has the space group R-3m and is not a spinel-type crystal structure, but in which ions of cobalt, magnesium, etc. occupy six oxygen coordination positions and the arrangement of cations has a symmetry similar to that of a spinel type.

[0377] The general alignment of the crystal orientations of the two regions can be determined from TEM (transmission electron microscope), STEM (scanning transmission electron microscope), HAADF-STEM (high-angle annular dark-field scanning transmission electron microscope), and ABF-STEM (annular bright-field scanning transmission electron microscope) images. X-ray diffraction (XRD), electron diffraction, and neutron diffraction can also be used. 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 of 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 less than 5 degrees, and more preferably less than 2.5 degrees. Light elements such as oxygen and fluorine may not be clearly visible in TEM images, but in such cases, the alignment of the orientations can be determined from the arrangement of metal elements.

[0378] 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.

[0379] 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.

[0380] 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.

[0381] 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.

[0382] 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.

[0383] 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.

[0384] 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.

[0385] 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.

[0386] 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. [Example]

[0387] In this example, an electrode according to one embodiment of the present invention was fabricated, and a coin cell was fabricated by combining the fabricated electrode with a lithium electrode, and the characteristics were evaluated.

[0388] Silicon particles manufactured by Aldrich were used (hereinafter referred to as sample nSi-1). The silicon particles were immersed in buffered hydrofluoric acid (a mixed aqueous solution of hydrofluoric acid and ammonium fluoride), washed with pure water, and then heat-treated at 100°C in a reduced pressure atmosphere for 1 hour to produce sample nSi-2.

[0389] <edx> Next, SEM-EDX analysis was performed on samples nSi-1 and nSi-2. The results are shown in Table 5. The EDX measurement was performed using an SEM SU8030 manufactured by Hitachi High-Technologies Corporation equipped with an EDX unit EX-350X-MaX80 manufactured by Horiba, Ltd. The acceleration voltage during EDX analysis was 10 kV. Table 5 shows the results of the EDX analysis. The unit is atomic concentration %. The sum of the atomic concentrations of carbon, oxygen, and silicon is taken as 100 atomic concentration %.

[0390] [Table 5]

[0391] <tof-sims> Next, samples nSi-1 and nSi-2 were analyzed by ToF-SIMS. The TOF-SIMS5 (manufactured by ION-TOF) was used with a bismuth ion source. The results are shown in Figure 24. The vertical axis represents intensity. In sample nSi-1, which exhibited a higher oxygen concentration in EDX, negative ions presumably due to SiO3H and SiO2O5H were detected, suggesting the presence of silicon, oxygen, and hydrogen. In contrast, in sample nSi-2, negative ions presumably due to F, SiF, Si2FO4, and Si3FO6 were detected in addition to SiO3H and SiO2O5H, suggesting the presence of fluorine on the sample surface and the bonding of silicon and fluorine. This is due to the hydrofluoric acid treatment of sample nSi-2. Note that the contributions of F, SiF, Si2FO4, and Si3FO6 are also interfering peaks.

[0392] <Electrode fabrication> Next, using the flow shown in FIG. 10, electrodes were fabricated using sample nSi-1 and sample nSi-2.

[0393] Silicon-containing particles (sample nSi-1 or sample nSi-2) and a solvent were prepared in a silicon-containing particles:solvent ratio of 1:1 (weight ratio) and mixed (steps S71, S72, S73). NMP was used as the solvent. Mixing was performed using a planetary centrifugal mixer (Thinky's Awatori Rentaro) at 2000 rpm for 3 minutes, and the mixture was recovered to obtain mixture E-1 (steps S74, S75).

[0394] Next, the mixture E-1 and the graphene compound were repeatedly mixed while adding the solvent. The weight of the graphene compound was 0.0625 times (5 / 80 times) the weight of the silicon-containing particles prepared in step S71. Graphene oxide was used as the graphene compound. The mixture was mixed using a planetary centrifugal mixer at 2000 rpm for 3 minutes and then collected (steps S81 and S82). Next, the collected mixture was kneaded, and NMP was added as needed. The mixture was mixed using a planetary centrifugal mixer at 2000 rpm for 3 minutes and then collected (steps S83, S84, and S85). Steps S83 to S85 were repeated five times to obtain mixture E-2 (step S86).

[0395] Next, mixture E-2 was mixed with a polyimide precursor (step S88). The weight of the prepared polyimide was 0.1875 times (15 / 80 times) the weight of the silicon-containing particles prepared in step 71. Mixing was performed using a planetary centrifugal mixer at 2000 rpm for 3 minutes. After that, NMP was prepared in an amount 1.5 times the weight of the silicon-containing particles prepared in step 71 and added to the mixture to adjust the viscosity (step S89). Further mixing was performed (twice at 2000 rpm for 3 minutes using a planetary centrifugal mixer), and the mixture was collected and collected as a slurry to obtain mixture E-3 (steps S90, S91, S92).

[0396] Next, a current collector was prepared and coated with mixture E-3 (steps S93 and S94). An undercoated copper foil was prepared as the current collector, and mixture E-3 was applied to the copper foil using a doctor blade with a gap thickness of 100 μm. The copper foil had a thickness of 18 μm, and a current collector with a carbon-containing coating layer was used as the undercoat. AB was used as the raw material for the carbon-containing coating layer.

[0397] Next, the copper foil coated with mixture E-3 was subjected to a first heating treatment at 50°C for 1 hour (step S95). Thereafter, a second heating treatment was performed at 400°C for 5 hours under reduced pressure (step S96), to obtain an electrode. The heating reduces the graphene oxide, decreasing the amount of oxygen.

[0398] <sem> The surface and cross section of the fabricated electrode were observed using an SEM. The SEM used was an S-4800 manufactured by Hitachi High-Technologies. The accelerating voltage was 5 kV. The electrodes for which cross-section observation was performed were processed using ion milling to expose the cross section.

[0399] 25A and 26A are observation images of the surface and cross section, respectively, of an electrode fabricated using sample nSi-1. 25B and 26B are observation images of the surface and cross section, respectively, of an electrode fabricated using sample nSi-2. Comparison of FIGS. 26A and 26B reveals that the electrode fabricated using sample nSi-1, which was suggested to have oxygen and hydrogen on its surface, contains graphene compounds 991 that form a fine mesh and are distributed relatively uniformly within the electrode. Furthermore, the graphene compounds 991 form bag-like regions, and multiple particles (silicon-containing particles) 992 are arranged within the bags.

[0400] <Coin cell fabrication> Next, a CR2032 type coin cell (diameter 20 mm, height 3.2 mm) was fabricated using the prepared electrodes.

[0401] The counter electrode was lithium metal, and the electrolyte was a mixture of ethylene carbonate (EC) and diethyl carbonate (DEC) at a volume ratio of 3:7, with lithium hexafluorophosphate (LiPF6) at a concentration of 1 mol / L.

[0402] The separator was made of polypropylene with a thickness of 25 μm.

[0403] The positive electrode can and the negative electrode can were made of stainless steel (SUS).

[0404] <Charge / discharge characteristics> The charge-discharge characteristics were evaluated using the coin cells. In the coin cells, lithium is absorbed into the electrodes during discharge and released from the electrodes during charge.

[0405] The discharge conditions (lithium absorption) were constant current discharge (0.1 C, lower limit voltage 0.01 V) followed by constant voltage discharge (lower limit current density 0.01 C), and the charge conditions (lithium desorption) were constant current charge (0.1 C, upper limit voltage 1 V). Discharge and charge were performed at 25°C. Figure 27 shows the change in capacity over the number of charge / discharge cycles. In a coin cell using an electrode made from sample nSi-1, which was suggested to have oxygen and hydrogen on its surface, the decrease in capacity over the number of cycles was suppressed, achieving excellent characteristics.

[0406] <sem> Coin cells using electrodes made with sample nSi-1 were disassembled after discharge (lithium absorption) and after charging (lithium release), and the surfaces were observed using an SEM. The coin cells disassembled after discharge and those disassembled after charging are different coin cells.

[0407] Figure 28A is an image of the electrode surface of a coin cell disassembled after discharge, and Figure 28B is an image of the electrode surface of a coin cell disassembled after charge. Upon discharge, lithium is absorbed into the silicon-containing particles, causing them to expand. It is also suggested that multiple particles (silicon-containing particles) expand and contract while remaining wrapped in the graphene compound.

[0408] The graphene compound clinging to the silicon-containing particle refers to, for example, the relationship between the graphene compound 991 and the silicon-containing particle 992 shown in Fig. 28A. Also, for example, the relationship between the graphene compound 991 and the silicon-containing particle 992 shown in Fig. 28B. [Example]

[0409] In this example, the results of electron energy loss spectroscopy (EELS) analysis of an electrode of one embodiment of the present invention will be described.

[0410] The coin cell using the electrode made of sample nSi-1 prepared in Example 1 was disassembled after discharge (lithium absorption) and after charge (lithium release), and cross-sectional STEM-EELS analysis was performed. The results are shown in Figures 29A to 30E.

[0411] Figures 29A to 29E show the analysis results after lithium absorption. Figure 29A is an ADF-STEM image, and Figures 29B to 29E show the EELS analysis results corresponding to the ADF-STEM image shown in Figure 29A. Figure 29B shows the analysis results for Li, Figure 29C shows the analysis results for C, Figure 29D shows the analysis results for O, and Figure 29E shows the analysis results for Si. The brighter the color, the higher the concentration.

[0412] In Figure 29A, "Si" is written in the area corresponding to the silicon-containing particles, and "RGO" is written in the area corresponding to the graphene compound. The graphene compound is a compound obtained by heat-treating graphene oxide, and is considered to be, for example, reduced graphene oxide.

[0413] 29A to 29E suggest the presence of lithium (Li) at the locations corresponding to the silicon-containing particles. This suggests that the graphene compound is permeable to lithium ions. It is also believed that the graphene compound does not inhibit the lithium absorption process into the silicon-containing particles.

[0414] Figures 30A to 30E show the analysis results after lithium release. Figure 30A is an ADF-STEM image, and Figures 30B to 30E show the EELS analysis results corresponding to the ADF-STEM image shown in Figure 30A. Figure 30B shows the analysis results for Li, Figure 30C shows the analysis results for C, Figure 30D shows the analysis results for O, and Figure 30E shows the analysis results for Si.

[0415] In Figure 30A, "Si" is written in the area corresponding to silicon particles, and "RGO" is written in the area corresponding to graphene compounds. Graphene compounds are compounds obtained by heat-treating graphene oxide, and are considered to be, for example, reduced graphene oxide.

[0416] The results of Figures 30A to 30E suggest the lithium concentration of the silicon-containing particles. This suggests that the graphene compound does not inhibit the lithium release process from the silicon-containing particles. The results of Figures 30A to 30E also suggest the presence of lithium in the areas corresponding to the graphene compound. This suggests the possibility that lithium ions are absorbed between the layers of the graphene compound, and that the absorbed lithium ions are difficult to release from the graphene oxide. [Explanation of symbols]

[0417] 300: secondary battery, 301: positive electrode can, 302: negative electrode can, 303: gasket, 304: positive electrode, 305: positive electrode current collector, 306: positive electrode active material layer, 307: negative electrode, 308: negative electrode current collector, 309: negative electrode active material layer, 310: separator, 312: washer, 313: ring-shaped insulator, 322: spacer, 500: secondary battery, 501: positive electrode current collector, 502: positive electrode active material layer, 503: positive electrode, 504: negative electrode current collector, 505: negative electrode active material layer, 506: negative electrode, 507: separator, 509: exterior body, 510: positive electrode lead electrode, 511: negative electrode lead electrode, 570: electrode, 570 a: negative electrode, 570b: positive electrode, 571: current collector, 571a: negative electrode current collector, 571b: positive electrode current collector, 572: active material layer, 572a: negative electrode active material layer, 572b: positive electrode active material layer, 576: electrolyte, 581: electrolyte, 582: particles, 583: graphene compound, 601: positive electrode cap, 602: battery can, 603: positive electrode terminal, 604: positive electrode, 605: separator, 606: negative electrode, 607: negative electrode terminal, 608: insulating plate, 609: insulating plate, 611: PTC element, 613: safety valve mechanism, 614: conductive plate, 615: power storage system, 616: secondary battery, 620: control circuit, 621: Wiring, 622: Wiring, 623: Wiring, 624: Conductor, 625: Insulator, 626: Wiring, 627: Wiring, 628: Conductive plate, 700: Energy storage device, 701: Commercial power supply, 703: Distribution board, 705: Energy storage controller, 706: Display, 707: General load, 708: Energy storage load, 709: Router, 710: Lead wire attachment section, 711: Measurement section, 712: Prediction section, 713: Planning section, 790: Control device, 791: Energy storage device, 796: Underfloor space section, 799: Building, 911a: Terminal, 911b: Terminal, 913: Secondary battery, 930: Housing, 930a: Housing, 930b: Housing, 9 31: negative electrode, 931a: negative electrode active material layer, 932: positive electrode, 932a: positive electrode active material layer, 933: separator, 950: wound body, 950a: wound body, 951: terminal, 952: terminal, 1300: prismatic secondary battery, 1301a: battery, 1301b: battery, 1302: battery controller, 1303: motor controller, 1304: motor, 1305: gear, 1306: DCDC circuit, 1307: electric power steering, 1308: heater, 1309: defogger, 1310: DCDC circuit, 1311: battery, 1312: inverter, 1313: audio,1314: power window, 1315: lamps, 1316: tires, 1317: rear motor, 1320: control circuit section, 1321: control circuit section, 1322: control circuit, 1324: switch section, 1325: external terminal, 1326: external terminal, 1413: fixing section, 1414: fixing section, 1415: battery pack, 1421: wiring, 1422: wiring, 2001: automobile, 2002: transport vehicle, 2003: transport vehicle, 2004: aircraft, 2100: mobile phone, 2101: housing, 2102: display section, 2103: operation button, 2104: external connection port, 2105: speaker, 2106: microphone, 2107: secondary battery, 2200: battery pack, 2201: battery pack, 2 202: battery pack, 2203: battery pack, 2300: unmanned aerial vehicle, 2301: secondary battery, 2302: rotor, 2303: camera, 2603: vehicle, 2604: charging device, 2610: solar panel, 2611: wiring, 2612: power storage device, 6300: cleaning robot, 6301: housing, 6302: display unit, 6303: camera, 6304: brush, 6305: operation button, 6306: secondary battery, 6310: dust, 6400: robot, 6401: illuminance sensor, 6402: microphone, 6403: upper camera, 6404: speaker, 6405: display unit, 6406: lower camera, 6407: obstacle sensor, 6408: movement mechanism, 6409: secondary battery,< / sem> < / sem> < / edx>

Claims

1. The graphene compound has particles having silicon and a pore, At least a portion of the surface of the particle is terminated with an oxygen-containing functional group; The graphene compound has a plurality of carbon atoms and one or more hydrogen atoms, each of the one or more hydrogen atoms terminates any one of the plurality of carbon atoms; the functional group is a hydroxy group, an epoxy group, or a carboxyl group; The hole is formed by the plurality of carbon atoms and the one or more hydrogen atoms.

2. In claim 1, The graphene compound is an electrode that is permeable to lithium ions.

Citation Information

Patent Citations

  • Negative-electrode active substance, negative electrode active substance material, negative electrode, lithium ion secondary battery, method of manufacturing negative electrode, method of manufacturing negative electrode active substance, and method of manufacturing lithium ion secondary battery

    JP2015156355A