Secondary batteries
The secondary battery design with a specific positive electrode active material and ionic liquid electrolyte addresses capacity degradation and structural instability, ensuring high capacity, safety, and stability at high voltages and temperatures.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2024-12-25
- Publication Date
- 2026-03-16
AI Technical Summary
Existing lithium-ion secondary batteries face challenges in achieving high capacity, stable charge-discharge cycle characteristics, safety at high voltages, and long lifespan, particularly at elevated temperatures, with significant capacity degradation and potential structural instability.
A secondary battery design incorporating a positive electrode active material composed of lithium, cobalt, oxygen, and magnesium with a layered rock salt type crystalline structure, using an ionic liquid electrolyte and a metal-polymer casing, which suppresses structural breakdown and enhances stability even at high charging voltages and temperatures.
The battery achieves high capacity, excellent charge-discharge cycle characteristics, safety, and a long lifespan, with reduced capacity degradation and stability at high temperatures, enabling rapid charging and high energy density.
Smart Images

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Abstract
Description
[Technical Field]
[0001] One aspect of the present invention relates to a product, a method, or a method of manufacture; or to a process, a machine, a manufacture, or a composition of matter. One aspect of the present invention relates to a semiconductor device, a display device, a light-emitting device, a power storage device, a lighting device, or an electronic device, or to a method of manufacturing the same. In particular, it relates to a positive electrode active material that can be used in a secondary battery, a secondary battery, an electronic device having a secondary battery, and a vehicle having a secondary battery.
[0002] Alternatively, one aspect of the present invention relates to an energy storage system having a secondary battery and a battery control circuit. Alternatively, one aspect of the present invention relates to an electronic device and a vehicle having an energy storage system.
[0003] In this specification, the term "energy storage device" refers to all elements and devices that have an energy storage function. For example, this includes rechargeable batteries (also called secondary batteries) such as lithium-ion secondary batteries, lithium-ion capacitors, and electric double-layer capacitors.
[0004] Furthermore, in this specification, "electronic equipment" refers to all devices that have an energy storage device, and electro-optical devices with an energy storage device, information terminal devices with an energy storage device, etc., are all considered electronic equipment. [Background technology]
[0005] In recent years, there has been a great deal of development on various energy storage devices, including lithium-ion secondary batteries, lithium-ion capacitors, and air batteries. In particular, lithium-ion secondary batteries, with their high output and high energy density, have seen a rapid increase in demand alongside the development of the semiconductor industry. They are used in mobile information terminals such as mobile phones, smartphones, tablets, and notebook computers, as well as portable music players, digital cameras, medical equipment, and next-generation clean energy vehicles (hybrid vehicles (HV), electric vehicles (EV), plug-in hybrid vehicles (PHV), etc.), and have become indispensable to today's information society as a source of rechargeable energy.
[0006] The characteristics required of lithium-ion secondary batteries include further increases in energy density, improved cycle characteristics, and enhanced safety and long-term reliability in various operating environments.
[0007] Therefore, improvements to the positive electrode active material are being considered to enhance the cycle characteristics and increase the capacity of lithium-ion secondary batteries (Patent Documents 1 and 2). Research is also being conducted on the crystal structure of the positive electrode active material (Non-Patent Documents 1 to 3).
[0008] Non-patent document 4 describes the physical properties of metal fluorides.
[0009] X-ray diffraction (XRD) is one of the techniques used to analyze the crystal structure of positive electrode active materials. By using ICSD (Inorganic Crystal Structure Database), which is introduced in Non-Patent Document 5, XRD data can be analyzed. [Prior art documents] [Patent Documents]
[0010] [Patent Document 1] Japanese Patent Publication No. 2002-216760 [Patent Document 2] Japanese Patent Publication No. 2006-261132 [Non-patent literature]
[0011] [Non-Patent Document 1] Toyoki Okumura et al, “Correlation of lithium ion distribution and X-ray absorption near-edge structure in O3-and O2-lithium cobalt oxides from first-principle calculation”, Journal of Materials Chemistry, 2012, 22, p.17340-17348 [Non-Patent Document 2] Motohashi, T. et al, “Electronic phase diagram of the layered cobalt oxide system LixCoO2(0.0≦x≦1.0)”, Physical Review B, 80(16);165114 [Non-Patent Document 3] Zhaohui Chen et al, “Staging Phase Transitions in LixCoO2”, Journal of The Electrochemical Society, 2002, 149(12) A1604-A1609 [Non-Patent Document 4] WE Counts et al, “Flouride Model Systems: II, The Binary Systems CaF2-BeF2, MgF2-BeF2, and LiF-MgF2”, Journal of the American Ceramic Society,(1953) 36[1] 12-17. Fig.01471 [Non-Patent Document 5] Belsky, A. et al., “New developments in the Inorganic Crystal Structure Database (ICSD): accessibility in support of materials research and design”, Acta Cryst., (2002) B58 364-369 [Overview of the Initiative] [Problems that the invention aims to solve]
[0012] One aspect of the present invention aims to provide a lithium-ion secondary battery with high capacity and excellent charge-discharge cycle characteristics, and a method for manufacturing the same. Alternatively, one aspect of the present invention aims to provide a rapidly rechargeable secondary battery and a method for manufacturing the same. Alternatively, one aspect of the present invention aims to provide a high-capacity secondary battery and a method for manufacturing the same. Alternatively, one aspect of the present invention aims to provide a secondary battery with excellent charge-discharge characteristics and a method for manufacturing the same. Alternatively, one aspect of the present invention aims to provide a secondary battery in which capacity degradation is suppressed even when a high-voltage charge state is maintained for a long period of time, and a method for manufacturing the same. Alternatively, one aspect of the present invention aims to provide a safe or highly reliable secondary battery and a method for manufacturing the same. Alternatively, one aspect of the present invention aims to provide a secondary battery in which capacity degradation is suppressed even at high temperatures, and a method for manufacturing the same. Alternatively, one aspect of the present invention aims to provide a secondary battery with a long lifespan and a method for manufacturing the same.
[0013] One aspect of the present invention aims to provide an extremely superior secondary battery that can be rapidly charged, used at high temperatures, has a high energy density achieved by increasing the charging voltage, is safe, and has a long lifespan.
[0014] One aspect of the present invention aims to provide a positive electrode active material for lithium-ion secondary batteries that has high capacity and excellent charge-discharge cycle characteristics, and a method for producing the same. Alternatively, one aspect of the present invention aims to provide a method for producing a positive electrode active material with good productivity. Alternatively, one aspect of the present invention aims to provide a positive electrode active material that, when used in a lithium-ion secondary battery, suppresses the decrease in capacity during charge-discharge cycles. Alternatively, one aspect of the present invention aims to provide a positive electrode active material in which the elution of transition metals such as cobalt is suppressed even when a high-voltage charged state is maintained for a long period of time.
[0015] Alternatively, one aspect of the present invention aims to provide a novel substance, active material particles, energy storage device, or method for producing the same.
[0016] Furthermore, the description of these problems does not preclude the existence of other problems. Moreover, one aspect of the present invention does not need to solve all of these problems. It is possible to extract other problems from the description, drawings, and claims. [Means for solving the problem]
[0017] One aspect of the present invention is a secondary battery comprising a positive electrode, a negative electrode, an electrolyte, and an outer casing, wherein the positive electrode comprises a positive electrode active material, the positive electrode active material comprises lithium, cobalt, oxygen, magnesium, and fluorine, the number of magnesium atoms in the positive electrode active material is 0.001 times or more and 0.1 times or less the number of cobalt atoms in the positive electrode active material, the positive electrode active material has regions having a layered rock salt type crystalline structure, the electrolyte comprises an ionic liquid, and the outer casing comprises a metal layer and a polymer layer laminated on the metal layer, the polymer layer having regions in contact with the electrolyte.
[0018] Furthermore, in the above configuration, the ionic liquid has an imidazolium cation represented by the general formula (G1), and R 1 R represents an alkyl group with 1 to 4 carbon atoms. 2 ~R 4 Each of these independently represents a hydrogen atom or an alkyl group having 1 to 4 carbon atoms, and R 5 Preferably, this represents an alkyl group or a main chain composed of two or more atoms selected from C, O, Si, N, S, and P.
[0019] [ka]
[0020] Furthermore, in the above configuration, the ionic liquid has a pyridinium cation represented by the general formula (G2), and R 6represents an alkyl group or a main chain composed of two or more selected from the atoms of C, O, Si, N, S, and P, and R 7 to R 11 each preferably independently represents a hydrogen atom or an alkyl group having 1 to 4 carbon atoms.
[0021]
Chemical formula
[0022] In addition, in the above configuration, the ionic liquid preferably has a quaternary ammonium cation.
[0023] In addition, in the above configuration, the quaternary ammonium cation is one or more selected from the general formula (G4), the general formula (G5), and the general formula (G6), and R 12 to R 17 and R 18 to R 24 each independently represents an alkyl group having 1 to 20 carbon atoms, a methoxy group, a methoxymethyl group, a methoxyethyl group, or a hydrogen atom, n and m are 1 to 3, α is 0 to 6, β is 0 to 6, and X or Y preferably represents a linear or branched alkyl group having 1 to 4 carbon atoms as a substituent, a linear or branched alkoxy group having 1 to 4 carbon atoms, or a linear or branched alkoxyalkyl group having 1 to 4 carbon atoms.
[0024]
Chemical formula
[0025]
Chemical formula
[0026]
Chemical formula
[0027] Furthermore, in the above configuration, the ionic liquid has a tertiary sulfonium cation represented by the general formula (G7), and R 25 ~R 27 Preferably, each of these independently represents a main chain composed of a hydrogen atom, or an alkyl group, phenyl group, or two or more atoms selected from C, O, Si, N, S, and P, with a carbon number of 1 to 4.
[0028] [ka]
[0029] Furthermore, in the above configuration, the ionic liquid has a quaternary phosphonium cation represented by the general formula (G8), and R 32 ~R 35 Preferably, each of these independently represents a main chain composed of a hydrogen atom, an alkyl group having 1 to 4 carbon atoms, a phenyl group, or two or more atoms selected from C, O, Si, N, S, and P.
[0030] [ka]
[0031] Furthermore, in the above configuration, (FSO2)2N is used as the anion of the ionic liquid. - Or (CF3SO2)2N - It is preferable that it has
[0032] Furthermore, in the above configuration, (FSO2)2N is used as the anion of the ionic liquid. - Or (CF3SO2)2N - It is preferable that the negative electrode has graphite.
[0033] Alternatively, one aspect of the present invention is a secondary battery having a positive electrode, a negative electrode, an electrolyte, and an outer casing, wherein the positive electrode has a positive electrode active material comprising lithium, cobalt, oxygen, magnesium, and fluorine, and the positive electrode active material has regions having a layered rock salt type crystalline structure, the electrolyte has an ionic liquid comprising one or more cations selected from aromatic cations, quaternary ammonium cations, tertiary sulfonium cations, and quaternary phosphonium cations, the outer casing has a metal layer and a polymer layer laminated on the metal layer, the polymer layer has regions in contact with the electrolyte, the negative electrode has graphite, and when the positive electrode is analyzed by powder X-ray diffraction using CuKα1 rays after constant current charging at a 25°C environment until the battery voltage becomes 4.5V, and then constant voltage charging until the current value becomes 0.01C, the secondary battery has diffraction peaks at 2θ of 19.10° to 19.50° and 2θ of 45.45° to 45.65°, respectively.
[0034] Furthermore, in the above configuration, (FSO2)2N is used as the anion of the ionic liquid. - Or (CF3SO2)2N - It is preferable that it has
[0035] Alternatively, one aspect of the present invention is a secondary battery having a positive electrode, a negative electrode, and an electrolyte, wherein the positive electrode has a positive electrode active material, the positive electrode active material has lithium, cobalt, and oxygen, and when the charging temperature is in the range of a first temperature or higher and less than a second temperature, the upper limit voltage of charging is a first value, and when the charging temperature is a second temperature or higher, the upper limit voltage of charging is a second value, the first temperature is 5°C or higher and less than 15°C, the second temperature is 25°C or higher and less than 55°C, the first value is 0.02V or higher than the second value, and the first value is 4.45V or higher and 4.6V or lower.
[0036] Furthermore, in the above configuration, it is preferable that the positive electrode active material contains magnesium and fluorine.
[0037] Furthermore, in the above configuration, it is preferable that the negative electrode has graphite.
[0038] Alternatively, one aspect of the present invention is an electronic device having a secondary battery as described in any one of the above and a temperature sensor.
[0039] Alternatively, one aspect of the present invention is a vehicle having a secondary battery as described in any one of the above and a temperature sensor. [Effects of the Invention]
[0040] According to one aspect of the present invention, a lithium-ion secondary battery with high capacity and excellent charge-discharge cycle characteristics, and a method for manufacturing the same can be provided. Furthermore, according to one aspect of the present invention, a rapidly rechargeable secondary battery, and a method for manufacturing the same can be provided. Furthermore, a secondary battery, and a method for manufacturing the same, can be provided in which capacity degradation is suppressed even when a high-voltage charge state is maintained for a long period of time. Furthermore, according to one aspect of the present invention, a safe and reliable secondary battery, and a method for manufacturing the same can be provided. Furthermore, according to one aspect of the present invention, a secondary battery, and a method for manufacturing the same, can be provided in which capacity degradation is suppressed even at high temperatures. Furthermore, according to one aspect of the present invention, a secondary battery, and a method for manufacturing the same, can be provided in which lifespan is long.
[0041] According to one aspect of the present invention, it is possible to provide an extremely superior secondary battery that can be rapidly charged, used at high temperatures, has a high energy density achieved by increasing the charging voltage, is safe, and has a long lifespan.
[0042] According to one aspect of the present invention, a positive electrode active material for lithium-ion secondary batteries with high capacity and excellent charge-discharge cycle characteristics, and a method for producing the same can be provided. Furthermore, a method for producing a positive electrode active material with good productivity can be provided. In addition, according to one aspect of the present invention, a positive electrode active material can be provided that, when used in a lithium-ion secondary battery, suppresses the decrease in capacity during charge-discharge cycles. Furthermore, according to one aspect of the present invention, a positive electrode active material can be provided in which the elution of transition metals such as cobalt is suppressed even when a high-voltage charged state is maintained for a long period of time.
[0043] Alternatively, one aspect of the present invention can provide a novel substance, active material particles, energy storage device, or a method for producing the same.
[0044] Furthermore, the description of these effects does not preclude the existence of other effects. Moreover, one aspect of the present invention does not necessarily have to possess all of these effects. Other effects will naturally become apparent from the description in the specification, drawings, and claims, and it is possible to extract other effects from the description in the specification, drawings, and claims. [Brief explanation of the drawing]
[0045] [Figure 1] Figure 1 shows an example of a secondary battery. [Figure 2] Figure 2A shows an example of a cross-section of a secondary battery. Figure 2B shows an example of a cross-section of a secondary battery. [Figure 3] Figure 3 shows an example of a secondary battery. [Figure 4] Figure 4A shows an example of an electrode. Figure 4B shows an example of a method for manufacturing a secondary battery. Figure 4C shows an example of a method for manufacturing a secondary battery. [Figure 5] Figure 5A shows an example of a method for manufacturing a secondary battery. Figure 5B shows an example of a method for manufacturing a secondary battery. [Figure 6] Figure 6A shows an example of an electrode. Figure 6B shows an example of a method for manufacturing a secondary battery. Figure 6C shows an example of a method for manufacturing a secondary battery. Figure 6D shows an example of a method for manufacturing a secondary battery. [Figure 7] Figure 7A shows an example of the configuration of a secondary battery. Figure 7B shows an example of the configuration of a secondary battery. Figure 7C shows an example of the configuration of a secondary battery. [Figure 8] Figure 8 shows an example of a secondary battery configuration. [Figure 9] Figure 9A shows an example of the battery pack configuration. Figure 9B shows an example of the battery pack configuration. [Figure 10]Figure 10A shows an example of the battery pack configuration. Figure 10B shows an example of the battery pack configuration. Figure 10C shows an example of the battery pack configuration. Figure 10D shows an example of the battery pack configuration. [Figure 11] Figure 11A illustrates a bendable secondary battery. Figure 11B illustrates a bendable secondary battery. Figure 11C illustrates a bendable secondary battery. Figure 11D illustrates a bendable secondary battery. Figure 11E illustrates a bendable secondary battery. [Figure 12] Figure 12A is a diagram illustrating the radius of curvature. Figure 12B is a diagram illustrating the radius of curvature. Figure 12C is a diagram illustrating the radius of curvature. [Figure 13] Figure 13A is a diagram illustrating the radius of curvature. Figure 13B is a diagram illustrating the radius of curvature. Figure 13C is a diagram illustrating the radius of curvature. Figure 13D is a diagram illustrating the radius of curvature. [Figure 14] Figure 14A shows an example of a cylindrical secondary battery. Figure 14B shows an example of a cylindrical secondary battery. Figure 14C shows an example of multiple cylindrical secondary batteries. Figure 14D shows an example of an energy storage system with multiple cylindrical secondary batteries. [Figure 15] Figure 15A shows an example of the battery pack configuration. Figure 15B shows an example of the battery pack configuration. Figure 15C shows an example of the battery pack configuration. [Figure 16] Figure 16A shows an example of the configuration of an energy storage system. Figure 16B shows an example of a method for manufacturing an energy storage system. Figure 16C shows an example of a method for manufacturing an energy storage system. Figure 16D shows an example of a method for manufacturing an energy storage system. [Figure 17] Figure 17A is a diagram illustrating an example of a vehicle. Figure 17B is a diagram illustrating an example of a vehicle. Figure 17C is a diagram illustrating an example of a vehicle. [Figure 18] Figure 18A is a diagram illustrating an example of a vehicle. Figure 18B is a diagram illustrating an example of an energy storage system. [Figure 19]Figure 19A is a diagram illustrating an example of electronic equipment. Figure 19B is a diagram illustrating an example of electronic equipment. Figure 19C is a diagram illustrating an example of electronic equipment. [Figure 20] Figure 20 is a diagram illustrating an example of an electronic device. [Figure 21] Figure 21A illustrates an example of electronic equipment. Figure 21B illustrates an example of electronic equipment. Figure 21C illustrates an example of a rechargeable battery. Figure 21D illustrates an example of electronic equipment. Figure 21E illustrates an example of a rechargeable battery. Figure 21F illustrates an example of electronic equipment. Figure 21G illustrates an example of electronic equipment. [Figure 22] Figure 22 illustrates an example of an electronic device. [Figure 23] Figure 23A is a diagram illustrating an example of an electronic device. Figure 23B is a diagram illustrating an example of an electronic device. Figure 23C is a diagram illustrating an example of an electronic device. [Figure 24] Figure 24A shows the cycle characteristics of a secondary battery. Figure 24B shows the cycle characteristics of a secondary battery. [Figure 25] Figure 25 shows the cycle characteristics of a secondary battery. [Figure 26] Figure 26A shows the charge and discharge curve of a secondary battery. Figure 26B shows the charge and discharge curve of a secondary battery. [Figure 27] Figure 27A shows the charge and discharge curve of a secondary battery. Figure 27B shows the charge and discharge curve of a secondary battery. [Figure 28] Figure 28A shows the charge and discharge curve of a secondary battery. Figure 28B shows the charge and discharge curve of a secondary battery. [Figure 29] Figure 29A shows the charge and discharge curve of a secondary battery. Figure 29B shows the charge and discharge curve of a secondary battery. [Figure 30] Figure 30A shows the charge and discharge curve of a secondary battery. Figure 30B shows the charge and discharge curve of a secondary battery. [Figure 31] Figure 31 shows the charge and discharge curves of a secondary battery. [Modes for carrying out the invention]
[0046] Embodiments of the present invention will be described in detail below with reference to the drawings. However, it will be readily apparent to those skilled in the art that the present invention is not limited to the following description, and its form and details can be modified in various ways. Furthermore, the present invention is not to be interpreted as being limited to the embodiments described below.
[0047] Furthermore, in this specification, crystal planes and directions are indicated by Miller indices. In crystallography, crystal planes and directions are indicated by a superscript bar above the number, but in this specification, due to limitations in patent application notation, a minus sign (-) may be placed before the number instead of a bar above it. In addition, individual orientations indicating directions within a crystal are indicated by [ ], collective orientations indicating all equivalent directions are indicated by < >, individual planes indicating crystal planes are indicated by ( ), and collective planes having equivalent symmetry are indicated by {}.
[0048] In this specification, segregation refers to the phenomenon in which a certain element (e.g., B) is spatially non-uniformly distributed in a solid composed of multiple elements (e.g., A, B, C).
[0049] In this specification, the surface layer of particles such as active material refers to the region from the surface down to approximately 10 nm. Surfaces created by cracks or fissures may also be considered the surface. The region deeper than the surface layer is called the interior.
[0050] In this specification, the layered rock salt crystal structure of a composite oxide containing lithium and a transition metal refers to a crystal structure having a rock salt-type ionic arrangement in which cations and anions are arranged alternately, and in which the transition metal and lithium are regularly arranged to form a two-dimensional plane, thereby enabling two-dimensional diffusion of lithium. Defects such as vacancies in cations or anions may be present. Furthermore, strictly speaking, a layered rock salt crystal structure may have a distorted lattice structure of the rock salt crystal.
[0051] In this specification, a rock salt-type crystal structure refers to a structure in which cations and anions are arranged alternately. However, deficiencies in cations or anions are acceptable.
[0052] Furthermore, in this specification, the pseudo-spinel crystal structure of a composite oxide containing lithium and a transition metal refers to a crystal structure with a space group R-3m, which is not a spinel crystal structure, but in which ions such as cobalt and magnesium occupy the oxygen 6-coordinate positions, and the arrangement of cations has a symmetry similar to that of a spinel. In addition, in pseudo-spinel crystal structures, light elements such as lithium may occupy the oxygen 4-coordinate positions, and in this case as well, the arrangement of ions has a symmetry similar to that of a spinel.
[0053] Furthermore, the pseudo-spinel crystal structure can be described as a crystal structure similar to the CdCl2 type crystal structure, although it has Li randomly between the layers. This crystal structure similar to the CdCl2 type is observed when lithium nickelate is charged to a depth of charge of 0.94 (Li 0.06 Although its crystal structure is similar to that of NiO2, it is known that pure lithium cobaltate, or layered rock salt-type cathode active materials containing a large amount of cobalt, do not usually adopt this crystal structure.
[0054] The anions in layered rock salt crystals and rock salt crystals adopt a cubic close-packed structure (face-centered cubic lattice structure). It is also presumed that the anions in pseudo-spinel crystals adopt a cubic close-packed structure. When these are in contact, there exists a crystal plane in which the orientation of the cubic close-packed structure composed of anions is aligned. However, the space group of layered rock salt crystals and pseudo-spinel crystals is R-3m, which is different from the space group of rock salt crystals Fm-3m (the space group of a typical rock salt crystal) and Fd-3m (the space group of a rock salt crystal with the simplest symmetry). Therefore, the Miller indices of the crystal planes that satisfy the above conditions are different for layered rock salt crystals and pseudo-spinel crystals and for rock salt crystals. In this specification, when the orientation of the cubic close-packed structure composed of anions is aligned in layered rock salt crystals, pseudo-spinel crystals, and rock salt crystals, it is sometimes said that the crystal orientation is approximately the same.
[0055] A secondary battery has, for example, a positive electrode and a negative electrode. The positive electrode is composed of a positive electrode active material. The positive electrode active material is, for example, a substance that performs a reaction that contributes to the charge and discharge capacity. However, the positive electrode active material may also contain a portion of substances that do not contribute to the charge and discharge capacity.
[0056] In this specification, the positive electrode active material of one aspect of the present invention may be expressed as a positive electrode material, a positive electrode material for secondary batteries, etc. In this specification, it is preferable that the positive electrode active material of one aspect of the present invention has a compound. In this specification, it is preferable that the positive electrode active material of one aspect of the present invention has a composition. In this specification, it is preferable that the positive electrode active material of one aspect of the present invention has a composite.
[0057] (Embodiment 1) This embodiment describes an example of a secondary battery according to one aspect of the present invention.
[0058] In secondary batteries, increasing the charging voltage can increase the discharge capacity. It can also increase the energy density.
[0059] On the other hand, with secondary batteries, increasing the charging voltage can lead to a significant decrease in capacity with each charge-discharge cycle. At high charging voltages, for example, the crystal structure of the positive electrode active material may become unstable.
[0060] For example, consider a case where a material containing a metal (hereinafter referred to as metal A) that acts as a carrier ion is used as the positive electrode active material. During the charging reaction, metal A is detached from the positive electrode active material. As the charging voltage is increased, a large amount of metal A may be detached from the positive electrode active material, and the crystal structure of the positive electrode active material may change significantly. If the change in crystal structure due to the insertion and detachment of metal A is irreversible, the crystal structure will gradually collapse, and a significant decrease in capacity may occur with charge-discharge cycles.
[0061] A secondary battery using a positive electrode active material according to one aspect of the present invention can suppress the breakdown of the crystal structure and suppress the decrease in capacity associated with charge-discharge cycles, even when repeatedly charged at a high charging voltage.
[0062] Furthermore, as shown in the examples described later, in a secondary battery using a positive electrode active material according to one aspect of the present invention, by using a positive electrode having the positive electrode active material according to one aspect of the present invention as the positive electrode, and further using an ionic liquid as the main solvent of the electrolyte, it was found that the decrease in capacity associated with charge-discharge cycles is further suppressed, and remarkably superior characteristics of the secondary battery are realized.
[0063] Ionic liquids are salts composed of combinations of cations and anions. They are sometimes called room-temperature molten salts.
[0064] Ionic liquids have low volatility and flammability, and are stable over a wide temperature range. Because they do not easily volatilize even at high temperatures, they can suppress the expansion of secondary batteries caused by gas generation from the electrolyte. Therefore, secondary batteries operate stably even at high temperatures. Furthermore, they have low flammability and are flame-retardant.
[0065] By using ionic liquids, it is possible to create rechargeable batteries that can be used at high temperatures and have high safety.
[0066] For example, organic solvents such as diethyl carbonate (DEC) and ethyl methyl carbonate (EMC) have boiling points lower than 150°C and are highly volatile. Therefore, using them at high temperatures can generate gas, potentially causing the casing of a secondary battery to expand. Furthermore, organic solvents may have flash points below 50°C.
[0067] On the other hand, ionic liquids have low volatility and are extremely stable at temperatures lower than those at which decomposition and other reactions occur, such as up to around 300°C.
[0068] Thus, it can be seen that ionic liquids are stable even at high temperatures. On the other hand, if other components of a secondary battery, such as the positive electrode active material, negative electrode active material, or outer casing, change at high temperatures, especially if the change is irreversible, it can lead to a significant decrease in the capacity of the secondary battery.
[0069] For example, if charging at high temperatures causes irreversible changes in the crystal structure of the material constituting the positive electrode active material, significant degradation will occur in the secondary battery. For instance, a significant decrease in capacity may occur with each charge-discharge cycle. When the temperature is high and the charging voltage is also high, the crystal structure of the positive electrode may become even more unstable.
[0070] In one embodiment of the present invention, by using a positive electrode active material whose crystal structure is extremely stable at high charging voltages and high temperatures, excellent performance can be achieved even at high temperatures and high charging voltages, and the effects of the ionic liquid can be fully demonstrated. In other words, the remarkable improvement in performance obtained by using the configuration of the secondary battery according to one embodiment of the present invention is achieved through the combination with the positive electrode active material according to one embodiment of the present invention.
[0071] Furthermore, the positive electrode active material of one aspect of the present invention preferably contains element X, and preferably contains a halogen in addition to element X, as described later. The presence of element X, or a halogen in addition to element X, in the positive electrode active material of one aspect of the present invention suggests the suppression of reactions with the ionic liquid on the surface of the positive electrode active material. As mentioned above, ionic liquids are extremely stable even at high temperatures. On the other hand, in the secondary battery of one aspect of the present invention, the reaction potential range is extremely wide. In such a wide reaction potential range, there may be concerns about reactions with the ionic liquid on the surface of the active material, and by using the positive electrode active material of one aspect of the present invention, it is suggested that reactions with the ionic liquid can be suppressed, leading to the realization of an even more stable secondary battery.
[0072] By using the configuration of a secondary battery according to one aspect of the present invention, it is possible to realize a secondary battery that can be repeatedly charged even when the upper limit voltage for charging is high. For example, a secondary battery that can be repeatedly charged can be realized by setting the upper limit voltage for charging preferably to 4.45V or higher, more preferably to 4.47V or higher, and even more preferably to 4.49V or higher, for example to around 4.5V. Furthermore, by using the configuration of a secondary battery according to one aspect of the present invention, it is possible to significantly suppress the decrease in discharge capacity even when the upper limit voltage for charging is high.
[0073] In the configuration of a secondary battery according to one aspect of the present invention, it is preferable that the upper limit voltage for charging be v(1)[V] when the charging temperature is in the range of t(1)[°C] or higher and less than t(2)[°C], and that the upper limit voltage for charging be v(2)[V] when the charging temperature is t(2)[°C] or higher. Here, it is preferable that t(1) is a value of 5 or more and 15 or less, and t(2) is a value of 25 or more and less than 55. Furthermore, it is preferable that v(1) is a value of 0.02 or more greater than v(2), and it is preferable that v(1) is a value of 4.45 or more and 4.6 or less.
[0074] By using the configuration of a secondary battery according to one embodiment of the present invention, a secondary battery capable of repeated charging at high temperatures of 42°C or higher and at high charging voltages can be realized. For example, by setting the ambient temperature to 42°C or higher and the upper limit charging voltage to preferably 4.37V or higher, more preferably 4.40V or higher, even more preferably 4.42V or higher, and even more preferably 4.44V or higher, for example around 4.45V, a secondary battery capable of repeated charging can be realized.
[0075] Furthermore, it is possible to realize rechargeable batteries that perform well even at higher temperatures. For example, it may be possible to realize rechargeable batteries that operate stably at temperatures between 42°C and 200°C, or between 42°C and 180°C, or between 42°C and 150°C, or between 42°C and 120°C, or between 42°C and 100°C, or between 42°C and 90°C.
[0076] A secondary battery according to one aspect of the present invention has a discharge capacity of 160 mAh / g or more after discharging a cumulative charge of 57,000 mAh / g. Here, for example, it is preferable that the discharge capacity is measured at 0.2C. Furthermore, it is preferable that the cumulative charge and discharge capacity be calculated per unit weight of positive electrode active material.
[0077] Furthermore, in one embodiment of the present invention, the secondary battery has a discharge capacity of 160 mAh / g or more after 300 charge cycles at 25°C with a charging voltage of 4.5V. Here, for example, the discharge capacity is preferably measured at 0.2C. In addition, the cumulative charge amount and discharge capacity are preferably calculated per unit weight of positive electrode active material.
[0078] Furthermore, a secondary battery according to one embodiment of the present invention is preferably used in combination with a battery control circuit. The battery control circuit preferably has a function for controlling charging, for example. Controlling charging refers to, for example, monitoring the parameters of the secondary battery and changing the charging conditions according to its state. Examples of secondary battery parameters to be monitored include the voltage, current, temperature, charge amount, impedance, etc.
[0079] Furthermore, a secondary battery according to one aspect of the present invention is preferably used in combination with a sensor. The sensor preferably has the ability to measure one or more of the following: displacement, position, velocity, acceleration, angular velocity, rotational speed, distance, light, liquid, magnetism, temperature, chemical substances, sound, time, hardness, electric field, current, voltage, power, radiation, flow rate, humidity, gradient, vibration, odor, and infrared radiation.
[0080] Furthermore, in one embodiment of the present invention, it is preferable that the charging of the secondary battery is controlled according to a value measured by a sensor. An example of controlling a secondary battery using a temperature sensor will be described later.
[0081] [Cathode active material] The following describes a positive electrode active material that is preferable for use in a secondary battery according to one embodiment of the present invention.
[0082] <Structure of positive electrode active material> The positive electrode active material preferably contains a metal (hereinafter referred to as element A) that acts as a carrier ion. As element A, for example, alkali metals such as lithium, sodium, and potassium, and group 2 elements such as calcium, beryllium, and magnesium can be used.
[0083] In a positive electrode active material, carrier ions are detached from the positive electrode active material during charging. If a large amount of element A is detached, more ions contribute to the capacity of the secondary battery, increasing the capacity. On the other hand, if a large amount of element A is detached, the crystal structure of the compound contained in the positive electrode active material is more likely to collapse. Collapse of the crystal structure of the positive electrode active material may lead to a decrease in discharge capacity with charge-discharge cycles. In one embodiment of the present invention, the positive electrode active material contains element X, which may suppress the collapse of the crystal structure when carrier ions are detached during charging of the secondary battery. Element X is, for example, partially substituted for element A. Element X can be magnesium, calcium, zirconium, lanthanum, barium, etc. Alternatively, element X can be copper, potassium, sodium, zinc, etc. Furthermore, two or more of the above-mentioned elements may be used in combination as element X.
[0084] Furthermore, the positive electrode active material of one aspect of the present invention preferably contains a halogen in addition to element X. It is preferable that it contains a halogen such as fluorine or chlorine. The presence of such a halogen in the positive electrode active material of one aspect of the present invention may promote the substitution of element X to the position of element A.
[0085] In one embodiment of the present invention, if the positive electrode active material contains element X, or if it contains a halogen in addition to element X, the electrical conductivity on the surface of the positive electrode active material may be suppressed.
[0086] Furthermore, the positive electrode active material of one aspect of the present invention has a metal (hereinafter referred to as element M) whose valency changes with charging and discharging of the secondary battery. Element M is, for example, a transition metal. The positive electrode active material of one aspect of the present invention has, for example, one or more of cobalt, nickel, and manganese as element M, and particularly cobalt. In addition, the position of element M may have an element that does not change in valency and can take the same valency as element M, such as aluminum, more specifically, a trivalent typical element. The aforementioned element X may be substituted, for example, at the position of element M. Furthermore, if the positive electrode active material of one aspect of the present invention is an oxide, element X may be substituted at the position of oxygen.
[0087] In one embodiment of the present invention, it is preferable to use a lithium composite oxide having a layered rock salt crystal structure as the positive electrode active material. More specifically, examples of lithium composite oxides having a layered rock salt crystal structure include lithium cobaltate, lithium nickelate, lithium composite oxides having nickel, manganese, and cobalt, lithium composite oxides having nickel, cobalt, and aluminum, etc. Furthermore, it is preferable that these positive electrode active materials are represented by the space group R-3m.
[0088] In positive electrode active materials having a layered rock salt crystal structure, increasing the charging depth may cause a breakdown of the crystal structure. Here, a breakdown of the crystal structure refers to, for example, a shift in the layers. If the breakdown of the crystal structure is irreversible, the capacity of the secondary battery may decrease with repeated charging and discharging.
[0089] The positive electrode active material according to one embodiment of the present invention contains element X, which suppresses the shifting of the above-mentioned layers even when the charging depth increases. By suppressing the shifting, the change in volume during charging and discharging can be reduced. Therefore, the positive electrode active material according to one embodiment of the present invention can achieve excellent cycle characteristics. Furthermore, the positive electrode active material according to one embodiment of the present invention can adopt a stable crystal structure in a high-voltage charging state. Therefore, the positive electrode active material according to one embodiment of the present invention may be less prone to short circuits when a high-voltage charging state is maintained. In such cases, safety is further improved, which is preferable.
[0090] In one embodiment of the present invention, the positive electrode active material exhibits small changes in crystal structure and a small difference in volume per unit of the same number of transition metal atoms between a fully discharged state and a high-voltage charged state.
[0091] The positive electrode active material in one aspect of the present invention has the chemical formula AM y O Z It can sometimes be represented as (y>0, z>0). For example, lithium cobalt oxide can be represented as LiCoO2. Also, lithium nickelate can be represented as LiNiO2.
[0092] In a positive electrode active material according to one embodiment of the present invention, which contains element X, when the charging depth is 0.8 or greater, it is represented by the space group R-3m and is not a spinel-type crystal structure, but ions of element M (e.g., cobalt), element X (e.g., magnesium), etc., occupy the oxygen 6-coordinate position, and the arrangement of cations may have a symmetry similar to that of a spinel type. This structure is referred to as a pseudo-spinel-type crystal structure in this specification. In the pseudo-spinel-type crystal structure, light elements such as lithium may occupy the oxygen 4-coordinate position, and in this case as well, the arrangement of ions has a symmetry similar to that of a spinel type.
[0093] The desorption of carrier ions during charging destabilizes the structure of the positive electrode active material. The pseudo-spinel crystal structure can be said to be a structure that can maintain high stability even after carrier ions have been desorbed.
[0094] In the present invention, when the depth of charge is high, by using a positive electrode active material having a pseudo-spinel type structure in a secondary battery, the structure of the positive electrode active material is stable at voltages of, for example, 4.57V to less than 4.65V or 4.59V to less than 4.63V, or about 4.6V, based on the potential of lithium metal, and capacity reduction due to charging and discharging can be suppressed. Furthermore, when graphite is used as the negative electrode active material in a secondary battery, for example, the structure of the positive electrode active material is stable at voltages of, for example, 4.45V to 4.6V, more preferably 4.47V to less than 4.55V, and even more preferably 4.49V to less than 4.53V, or about 4.5V, and capacity reduction due to charging and discharging can be suppressed.
[0095] Furthermore, the pseudo-spinel crystal structure can be described as a crystal structure similar to the CdCl2 type crystal structure, although it has Li randomly between the layers. This crystal structure similar to the CdCl2 type is observed when lithium nickelate is charged to a depth of charge of 0.94 (Li 0.06 Although its crystal structure is similar to that of NiO2, it is known that pure lithium cobaltate, or layered rock salt-type cathode active materials containing a large amount of cobalt, do not usually adopt this crystal structure.
[0096] The anions in layered rock salt crystals and rock salt crystals adopt a cubic close-packed structure (face-centered cubic lattice structure). It is also presumed that the anions in pseudo-spinel crystals adopt a cubic close-packed structure. When these are in contact, there exists a crystal plane in which the orientation of the cubic close-packed structure composed of anions is aligned. However, the space group of layered rock salt crystals and pseudo-spinel crystals is R-3m, which is different from the space group of rock salt crystals Fm-3m (the space group of a typical rock salt crystal) and Fd-3m (the space group of a rock salt crystal with the simplest symmetry). Therefore, the Miller indices of the crystal planes that satisfy the above conditions are different for layered rock salt crystals and pseudo-spinel crystals and for rock salt crystals. In this specification, when the orientation of the cubic close-packed structure composed of anions is aligned in layered rock salt crystals, pseudo-spinel crystals, and rock salt crystals, it is sometimes said that the crystal orientation is approximately the same.
[0097] In the pseudo-spinel type crystal structure, the coordinates of cobalt and oxygen in the unit cell can be expressed as Co(0,0,0.5), O(0,0,x), and within the range of 0.20≦x≦0.25.
[0098] In a positive electrode active material according to one embodiment of the present invention, the difference between the volume of a unit cell at a charging depth of 0 and the volume per unit cell of a pseudo-spinel crystal structure at a charging depth of 0.82 is preferably 2.5% or less, and more preferably 2.2% or less.
[0099] In the pseudo-spinel crystal structure, diffraction peaks appear at 2θ = 19.30 ± 0.20° (19.10° to 19.50°) and 2θ = 45.55 ± 0.10° (45.45° to 45.65°). More specifically, sharp diffraction peaks appear at 2θ = 19.30 ± 0.10° (19.20° to 19.40°) and 2θ = 45.55 ± 0.05° (45.50° to 45.60°).
[0100] In one embodiment of the present invention, the positive electrode active material has a pseudo-spinel crystal structure when charged with high voltage, but not all particles have to have a pseudo-spinel crystal structure. Other crystal structures may be included, and some may be amorphous. However, when Rietveld analysis is performed on the XRD pattern, it is preferable that the pseudo-spinel crystal structure accounts for 50 wt% or more, more preferably 60 wt% or more, and even more preferably 66 wt% or more. If the pseudo-spinel crystal structure accounts for 50 wt% or more, more preferably 60 wt% or more, and even more preferably 66 wt% or more, a positive electrode active material with sufficiently excellent cycle characteristics can be obtained.
[0101] The number of atoms of element X is preferably 0.001 times or more and 0.1 times the number of atoms of element M, more preferably greater than 0.01 and less than 0.04, and even more preferably around 0.02. The concentration of element X shown here may be, for example, a value obtained by elemental analysis of the entire particle of the positive electrode active material using ICP-MS, or it may be based on the value of the raw material composition during the manufacturing process of the positive electrode active material.
[0102] When element M contains cobalt and nickel, the ratio of the number of nickel atoms (Ni) to the sum of the number of cobalt and nickel atoms (Co+Ni), Ni / (Co+Ni), is preferably less than 0.1, and more preferably 0.075 or less.
[0103] The positive electrode active material according to one aspect of the present invention is not limited to the materials listed above.
[0104] For example, a composite oxide having a spinel-type crystal structure can be used as the positive electrode active material. Alternatively, for example, a polyanionic material can be used as the positive electrode active material. Examples of polyanionic materials include materials having an olivine-type crystal structure, nasicone-type materials, and so on. Furthermore, for example, a material containing sulfur can be used as the positive electrode active material.
[0105] As a material having a spinel-type crystal structure, for example, a composite oxide represented by LiM2O4 can be used. It is preferable that the element M is Mn. For example, LiMn2O4 can be used. Furthermore, by having Ni in addition to Mn as element M, the discharge voltage of the secondary battery may be improved and the energy density may be improved, which is preferable. In addition, a small amount of lithium nickelate (LiNiO2 or LiNi) can be added to a lithium-containing material having a spinel-type crystal structure containing manganese, such as LiMn2O4. 1-x M x Mixing O2 (M=Co, Al, etc.) can improve the characteristics of the secondary battery, which is preferable.
[0106] As a polyanionic material, for example, a composite oxide having oxygen, metal A, metal M, and element Z can be used. Metal A is one or more of Li, Na, Mg, metal M is one or more of Fe, Mn, Co, Ni, Ti, V, Nb, and element Z is one or more of S, P, Mo, W, As, Si.
[0107] As a material having an olivine-type crystal structure, for example, a composite material (general formula: LiMPO4, where M is one or more of Fe(II), Mn(II), Co(II), Ni(II))) can be used. Representative examples of the general formula LiMPO4 include LiFePO4, LiNiPO4, LiCoPO4, LiMnPO4, LiFe a Ni b PO4, LiFe a Co b PO4, LiFe a Mn b PO4, LiNi a Co b PO4, LiNi a Mn b PO4 (a + b is 1 or less, 0 < a < 1, 0 < b < 1), LiFe c Ni d Co e PO4, LiFe c Ni d Mn e PO4, LiNi c Co d Mn e PO4 (c + d + e is 1 or less, 0 < c < 1, 0 < d < 1, 0 < e < 1), LiFe f Ni g Co h Mn i PO4 (f + g + h + i is 1 or less, 0 < f < 1, 0 < g < 1, 0 < h < 1, 0 < i < 1), etc., lithium compounds can be used.
[0108] Also, composite materials such as the general formula Li<00k Mn l SiO4, Li (2-j) Ni k Co l SiO4, Li (2-j) Ni k Mn l SiO4 (k + l is 1 or less, 0 < k < 1, 0 < l < 1), Li (2-j) Fe m Ni n Co q SiO4, Li (2-j) Fe m Ni n Mn q SiO4, Li (2-j) Ni m Co n Mn q SiO4 (m + n + q is 1 or less, 0 < m < 1, 0 < n < 1, 0 < q < 1), Li (2-j) Fe r Ni s Co t Mn[[ID=4�]] u Lithium compounds such as SiO4 (r + s + t + u is 1 or less, 0 < r < 1, 0 < s < 1, 0 < t < 1, 0 < u < 1), etc. can be used as materials.
[0109] Also, A x NASICON-type compounds represented by the general formula M2(XO4)3 (A = Li, Na, Mg, M = Fe, Mn, Ti, V, Nb, X = S, P, Mo, W, As, Si) can be used. Examples of NASICON-type compounds include Fe2(MnO4)3, Fe2(SO4)3, Li3Fe2(PO4)3, etc. Also, as the positive electrode active material, compounds represented by the general formula Li2MPO4F, Li2MP2O7, Li5MO4 (M = Fe, Mn) can be used.
[0110] Also, as the positive electrode active material, perovskite-type fluorides such as NaFeF3, FeF3, metal chalcogenides (sulfides, selenides, tellurides) such as TiS2, MoS2, oxides having an inverse spinel-type crystal structure such as LiMVO4, vanadium oxide-based (V2O5, V6O 13 , LiV3O8, etc.), manganese oxides, organic sulfur compounds, etc. may be used.
[0111] Furthermore, a borate-based material represented by the general formula LiMBO3 (where M is Fe(II), Mn(II), or Co(II)) may be used as the positive electrode active material.
[0112] Examples of materials containing sodium include NaFeO2 and Na 2 / 3 [Fe 1 / 2 Mn 1 / 2 ]O2, Na 2 / 3 [Ni 1 / 3 Mn 2 / 3 Sodium-containing oxides such as O2, Na2Fe2(SO4)3, Na3V2(PO4)3, Na2FePO4F, NaVPO4F, NaMPO4 (where M is Fe(II), Mn(II), Co(II), Ni(II)), Na2FePO4F, and Na4Co3(PO4)2P2O7 may be used as positive electrode active materials.
[0113] Furthermore, lithium-containing metal sulfides may be used as the positive electrode active material. Examples include Li2TiS3 and Li3NbS4.
[0114] In one embodiment of the present invention, two or more of the materials listed above may be used as the positive electrode active material.
[0115] In typical rechargeable batteries, as the charging voltage increases, the structure of the positive electrode active material becomes unstable, and element M present in the positive electrode active material may dissolve into the electrolyte. The dissolution of element M into the electrolyte can, for example, reduce the capacity of the positive electrode. A decrease in the capacity of the positive electrode leads to a decrease in the capacity of the rechargeable battery. In addition, element M dissolved into the electrolyte may precipitate on the surface of the negative electrode of the rechargeable battery. The inhibition of the reaction of the negative electrode by the precipitated element M leads to a decrease in the capacity of the rechargeable battery.
[0116] In a secondary battery using a positive electrode active material according to one aspect of the present invention, the structure of the positive electrode active material remains stable even at high charging voltages, thereby suppressing the elution of element M from the positive electrode active material into the electrolyte.
[0117] [Electrolyte] The secondary battery according to one aspect of the present invention preferably has an electrolyte solution. The electrolyte solution of the secondary battery according to one aspect of the present invention preferably has an ionic liquid and a salt containing a metal serving as a carrier ion.
[0118] When the metal serving as the carrier ion is lithium, examples of the salt containing the metal serving as the carrier ion include LiN(FSO2)2, LiN(CF3SO2)2, LiN(C4F9SO2)(CF3SO2), LiN(C2F5SO2)2, LiC(FSO2)3, LiC(CF3SO2)3, LiC(C2F5SO2)3, LiCF3SO3, LiC4F9SO3, LiAsF6, LiBF4, LiAlCl4, LiSCN, LiBr, LiI, Li2SO4, Li2B 10 Cl 10 、Li2B 12 Cl 12 、LiPF6, LiClO4 and other lithium salts can be used singly or in any combination and ratio of two or more of them.
[0119] Particularly, metal salts with fluorosulfonic acid anions and fluoroalkylsulfonic acid anions may be preferable. Among them, the metal salts with amide anions represented by (C n F 2n+1 SO2)2N - (n is 0 or more and 3 or less) may be preferable because they have high stability at high temperatures and high oxidation-reduction resistance.
[0120] Ionic liquids consist of cations and anions, and include organic cations and anions. Examples of organic cations used in electrolytes include aromatic cations such as imidazolium cations and pyridinium cations, and aliphatic onium cations such as quaternary ammonium cations, tertiary sulfonium cations, and quaternary phosphonium cations. Examples of anions used in electrolytes include monovalent amide anions, monovalent methide anions, fluorosulfonic acid anions, perfluoroalkyl sulfonic acid anions, tetrafluoroborate anions, perfluoroalkyl borate anions, hexafluorophosphate anions, or perfluoroalkyl phosphate anions.
[0121] Furthermore, in addition to the ionic liquid, the electrolyte may also contain an aprotic solvent, such as one of the following: ethylene carbonate (EC), propylene carbonate (PC), butylene carbonate, chloroethylene carbonate, vinylene carbonate, γ-butyrolactone, γ-valerolactone, dimethyl carbonate (DMC), DEC, 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, or a mixture of two or more of these in any combination and ratio.
[0122] Furthermore, additives such as vinylene carbonate (VC), propane sultone (PS), tert-butylbenzene (TBB), fluoroethylene carbonate (FEC), lithium bis(oxalate) borate (LiBOB), succinonitrile, adiponitrile, fluorobenzene, cyclohexylbenzene, and dinitrile compounds such as biphenyl may be added to the electrolyte. The concentration of the added material should be, for example, 0.1 wt% to 5 wt% relative to the total solvent.
[0123] As an ionic liquid having an imidazolium cation, for example, an ionic liquid represented by the following general formula (G1) can be used. In general formula (G1), R 1 R represents an alkyl group with 1 to 4 carbon atoms. 2 ~R 4 Each of these independently represents a hydrogen atom or an alkyl group having 1 to 4 carbon atoms, and R 5 R represents an alkyl group or a main chain composed of two or more atoms selected from C, O, Si, N, S, and P. 5 Substituents may be introduced into the main chain. Examples of substituents that can be introduced include alkyl groups and alkoxy groups.
[0124] [ka]
[0125] As an ionic liquid having a pyridinium cation, for example, an ionic liquid represented by the following general formula (G2) may be used. In general formula (G2), R 6 R represents an alkyl group or a main chain composed of two or more atoms selected from C, O, Si, N, S, and P. 7 ~R 11 Each of these independently represents a hydrogen atom or an alkyl group having 1 to 4 carbon atoms. Also, R 6 Substituents may be introduced into the main chain. Examples of substituents that can be introduced include alkyl groups and alkoxy groups.
[0126] [ka]
[0127] As ionic liquids having quaternary ammonium cations, for example, ionic liquids represented by the following general formulas (G3), (G4), (G5), and (G6) can be used.
[0128] [ka]
[0129] In general formula (G3), R 28 ~R 31 Each of these independently represents an alkyl group having 1 to 20 carbon atoms, a methoxy group, a methoxymethyl group, a methoxyethyl group, or a hydrogen atom.
[0130] [ka]
[0131] In general formula (G4), R 12 ~R 17 Each of these independently represents an alkyl group having 1 to 20 carbon atoms, a methoxy group, a methoxymethyl group, a methoxyethyl group, or a hydrogen atom.
[0132] [ka]
[0133] In general formula (G5), R 18 ~R 24 Each of these independently represents an alkyl group having 1 to 20 carbon atoms, a methoxy group, a methoxymethyl group, a methoxyethyl group, or a hydrogen atom.
[0134] [ka]
[0135] In general formula (G6), n and m are between 1 and 3. α is between 0 and 6, where n is 1, α is between 0 and 4, n is 2, α is between 0 and 5, and n is 3, α is between 0 and 6. β is between 0 and 6, where m is 1, β is between 0 and 4, m is 2, β is between 0 and 5, and m is 3, β is between 0 and 6. Note that α or β being 0 means unsubstituted. Also, the case where both α and β are 0 is excluded. X or Y represents a linear or side-chain alkyl group having 1 to 4 carbon atoms, a linear or side-chain alkoxy group having 1 to 4 carbon atoms, or a linear or side-chain alkoxyalkyl group having 1 to 4 carbon atoms as a substituent.
[0136] As an ionic liquid having a tertiary sulfonium cation, for example, an ionic liquid represented by the following general formula (G7) can be used. In general formula (G7), R 25 ~R 27 Each of these independently represents a hydrogen atom, an alkyl group with 1 to 4 carbon atoms, or a phenyl group. Or, R 25 ~R 27 Alternatively, a main chain composed of two or more atoms selected from C, O, Si, N, S, and P may be used.
[0137] [ka]
[0138] As an ionic liquid having a quaternary phosphonium cation, for example, an ionic liquid represented by the following general formula (G8) can be used. In general formula (G8), R 32 ~R 35 Each of these independently represents a hydrogen atom, an alkyl group with 1 to 4 carbon atoms, or a phenyl group. Or, R 32 ~R 35 Alternatively, a main chain composed of two or more atoms selected from C, O, Si, N, S, and P may be used.
[0139] [ka]
[0140] A shown in general formulas (G1) to (G8) - One or more of the following can be used: monovalent amide anions, monovalent methide anions, fluorosulfonic acid anions, perfluoroalkyl sulfonic acid anions, tetrafluoroborate anions, perfluoroalkyl borate anions, hexafluorophosphate anions, and perfluoroalkyl phosphate anions.
[0141] As for monovalent amide anions, (C n F 2n+1 SO2)2N - (n=0 to 3), as a monovalent cyclic amide anion, (CF2SO2)2N - These can be used. As a monovalent methide anion, (C n F 2n+1 SO2)3C - (n=0 to 3), a monovalent cyclic methide anion is (CF2SO2)2C - (CF3SO2) and others can be used. As for fluoroalkyl sulfonate anions, (C m F 2m+1 SO3) - Examples include (m=0 or greater and 4 or less). Examples of fluoroalkylborate anions include {BF n (C m H k F 2m+1-k ) 4-n} - Examples include (n=0 to 3, m=1 to 4, k=0 to 2m). Examples of fluoroalkyl phosphate anions include {PF n (C m H k F 2m+1-k ) 6-n} - Examples include (n = 0 or greater and 5 or less, m = 1 or greater and 4 or less, k = 0 or greater and 2m or less).
[0142] Furthermore, as monovalent amide anions, one or more of the bis(fluorosulfonyl)amide anion and bis(trifluoromethanesulfonyl)amide anion can be used.
[0143] Furthermore, the ionic liquid may contain one or more hexofluorophosphate anions and tetrafluoroborate anions.
[0144] From here on, (FSO2)2N - The anion represented by (CF3SO2)2N is called the FSA anion. - The anion represented by is sometimes referred to as the TFSA anion.
[0145] Specific examples of the cation of the above general formula (G1) include, for example, structural formulas (111) to (174).
[0146] [ka]
[0147] [ka]
[0148] [ka]
[0149] [ka]
[0150] [ka]
[0151] [ka]
[0152] Specific examples of the cation of the above general formula (G2) include, for example, structural formulas (701) to (719).
[0153] [ka]
[0154] [ka]
[0155] Specific examples of the cation of the above general formula (G4) include, for example, structural formulas (501) to (520).
[0156] [ka]
[0157] Specific examples of the cation of the above general formula (G5) include, for example, structural formulas (601) to (630).
[0158] [ka]
[0159] [ka]
[0160] Specific examples of the cation of the above general formula (G6) include, for example, structural formulas (301) to (309) and structural formulas (401) to (419).
[0161] [ka]
[0162] [ka]
[0163] Furthermore, structural formulas (301) to (309) and structural formulas (401) to (419) show examples where m is 1 in general formula (G6), but in structural formulas (301) to (309) and structural formulas (401) to (419), m may be replaced with 2 or 3.
[0164] Furthermore, specific examples of the cation of the general formula (G7) mentioned above include structural formulas (201) to (215).
[0165] [ka]
[0166] In a secondary battery according to one aspect of the present invention, by using a positive electrode active material according to one aspect of the present invention and having the ionic liquid described above as the electrolyte, it is possible to suppress the decrease in capacity and achieve remarkably superior characteristics even when the secondary battery is repeatedly used at a high charging voltage.
[0167] [Negative electrode active material] As the negative electrode active material for a secondary battery, materials capable of performing charge-discharge reactions by insertion and removal of carrier ions, and materials capable of performing charge-discharge reactions by alloying and dealloying reactions with metal A, which acts as a carrier ion, can be used.
[0168] Carbon-based materials such as graphite, easily graphitizable carbon (soft carbon), difficult-to-graphitize carbon (hard carbon), carbon nanotubes, graphene, and carbon black can be used as the negative electrode material.
[0169] Examples of graphite include artificial graphite and natural graphite. Examples of artificial graphite include mesocarbon microbeads (MCMB), coke-based artificial graphite, pitch-based artificial graphite, etc. Here, spherical graphite having a spherical shape can be used as the artificial graphite. For example, MCMB may have a spherical shape, which is preferable. Also, it is relatively easy to reduce the surface area of MCMB, which may be preferable. Examples of natural graphite include flake graphite, spheroidized natural graphite, etc.
[0170] Graphite exhibits a potential as low as that of metallic lithium (0.05 V or more and 0.3 V or less vs. Li / Li + ) when lithium ions are inserted into the graphite (when a lithium-graphite intercalation compound is formed). As a result, a lithium-ion secondary battery can exhibit a high operating voltage. That is, for example, the charging voltage of a lithium-ion secondary battery can be increased. Therefore, the energy density of the lithium-ion secondary battery can be increased. Furthermore, graphite has advantages such as a relatively high capacity per unit volume, a relatively small volume expansion, low cost, and high safety compared to metallic lithium, so it is preferable.
[0171] Also, as the negative electrode active material, for example, a material containing at least one of silicon, tin, gallium, aluminum, germanium, lead, antimony, bismuth, silver, zinc, cadmium, indium, etc. can be used. Such elements have a larger capacity compared to carbon, and in particular, silicon has a high theoretical capacity of 4200 mAh / g. Therefore, it is preferable to use silicon as the negative electrode active material. Also, compounds containing these elements may be used. For example, there are SiO, Mg2Si, Mg2Ge, SnO, SnO2, Mg2Sn, SnS2, V2Sn3, FeSn2, CoSn2, Ni3Sn2, Cu6Sn5, Ag3Sn, Ag3Sb, Ni2MnSb, CeSb3, LaSn3, La3Co2Sn7, CoSb3, InSb, SbSn, etc. Here, elements capable of performing charge and discharge reactions through alloying and dealloying reactions with lithium, and compounds containing such elements, etc. may be referred to as alloy-based materials.
[0172] In this specification and the like, SiO refers to, for example, silicon monoxide. Alternatively, SiO can be represented as SiO x . Here, x preferably has a value near 1. Alternatively, x is preferably, for example, 0.2 or more and 1.5 or less, and more preferably 0.3 or more and 1.2 or less.
[0173] Also, as the negative electrode active material, oxides such as titanium dioxide (TiO2), lithium titanate (Li4Ti5O 12 ), lithium-graphite intercalation compound (Li x C6), niobium pentoxide (Nb2O5), tungsten oxide (WO2), molybdenum oxide (MoO2), etc. can be used.
[0174] Also, as the negative electrode active material, Li having a Li3N-type structure, which is a complex nitride of lithium and a transition metal, 3-x M x N (M = Co, Ni, Cu) can be used. For example, Li 2.6 Co 0.4 N3 exhibits a large charge-discharge capacity (900 mAh / g, 1890 mAh / cm 3 ) and is preferable.
[0175] When using a complex nitride of lithium and a transition metal, since the negative electrode active material contains lithium ions, it can be preferably combined with materials such as V2O5 and Cr3O8 that do not contain lithium ions as the positive electrode active material. Even when using a material containing lithium ions for the positive electrode active material, a complex nitride of lithium and a transition metal can be used as the negative electrode active material by previously desorbing the lithium ions contained in the positive electrode active material.
[0176] Also, a material in which a conversion reaction occurs can be used as the negative electrode active material. For example, transition metal oxides that do not form an alloy with lithium, such as cobalt oxide (CoO), nickel oxide (NiO), and iron oxide (FeO), may be used as the negative electrode active material. As materials in which a conversion reaction occurs, further, oxides such as Fe2O3, CuO, Cu2O, RuO2, and Cr2O3, CoS 0.89This can also occur 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.
[0177] In typical rechargeable batteries, element M from the positive electrode active material may dissolve into the electrolyte and precipitate on the negative electrode surface. The denial of the reaction at the negative electrode by the precipitated element M leads to a decrease in the capacity of the rechargeable battery.
[0178] For example, consider the case where graphite is used as the negative electrode active material. In the galvanic reaction, carrier ions are inserted into and removed from the interlayers of graphite. For example, insertion and removal of carrier ions occur in the region of the graphite particle surface where the cross-section of the layer is exposed. Because the galvanic reaction occurs efficiently only in specific regions of the particle surface, it is suggested that the particle surface is more susceptible to the influence of, for example, the deposition of element M on the particle surface.
[0179] In a secondary battery using a positive electrode active material according to one embodiment of the present invention, as described above, the elution of element M from the positive electrode active material into the electrolyte can be suppressed. Therefore, even when graphite is used as the negative electrode active material, for example, a high battery capacity can be maintained even when the secondary battery is repeatedly used at a high charging voltage.
[0180] Furthermore, using ionic liquids may suppress the degradation of graphite associated with charging and discharging.
[0181] Furthermore, in a secondary battery according to one aspect of the present invention, increasing the concentration of carrier ions in the electrolyte can suppress the insertion of cations into graphite, which may extend the lifespan of the secondary battery.
[0182] In an electrolyte containing an ionic liquid, when lithium ions are used as carrier ions in the electrolyte, for example, the concentration of the lithium salt is preferably 0.8 mol / L or higher, more preferably 1 mol / L or higher and 2.5 mol / L or lower, and even more preferably 1.2 mol / L or higher and less than 2 mol / L.
[0183] [Example of a secondary battery] Figure 1 shows a secondary battery using a film-like casing as an example of an energy storage device. If the secondary battery using a film-like casing has a flexible structure, it can be mounted on an electronic device that has at least a part of a flexible component, and the secondary battery can be bent in accordance with the deformation of the electronic device.
[0184] Figure 1 shows an external view of a secondary battery 500, which uses a film-like outer casing. Figures 2A and 2B show the A1-A2 and B1-B2 cross-sections, respectively, indicated by the dashed lines in Figure 1. The secondary battery 500 includes a positive electrode 503 having a positive electrode current collector 501 and a positive electrode active material layer 502, a negative electrode 506 having a negative electrode current collector 504 and a negative electrode active material layer 505, a separator 507, an electrolyte 508, and an outer casing 509. The separator 507 is installed between the positive electrode 503 and the negative electrode 506, which are located inside the outer casing 509. The inside of the outer casing 509 is filled with the electrolyte 508.
[0185] In the secondary battery 500 shown in Figures 1 and 2, the positive lead electrode 510 is ultrasonically bonded to the positive current collector 501 of the positive electrode 503, and the negative lead electrode 511 is ultrasonically bonded to the negative current collector 504 of the negative electrode 506. The positive current collector 501 and the negative current collector 504 can also serve as terminals for obtaining electrical contact with the outside. In this case, lead electrodes may be omitted, and parts of the positive current collector 501 and the negative current collector 504 may be exposed to the outside from the outer casing 509.
[0186] Furthermore, although the positive lead electrode 510 and the negative lead electrode 511 are arranged on the same side in Figure 1, they may be arranged on different sides, as shown in Figure 3. Thus, the secondary battery according to one aspect of the present invention offers a high degree of design freedom because the lead electrodes can be freely arranged. Therefore, the design freedom of products using the secondary battery according to one aspect of the present invention can be increased. In addition, the productivity of products using the secondary battery according to one aspect of the present invention can be increased.
[0187] <Exterior> In the secondary battery 500, the outer casing 509 can be, for example, a film in which a polymer layer or the like is coated on both sides of a thin metal film. More specifically, for example, a thin metal film with excellent flexibility such as aluminum, stainless steel, copper, or nickel can be used as the thin metal film, a first polymer layer can be provided on the inner surface of the outer casing, and a second polymer layer can be provided on the outer surface of the outer casing, resulting in a three-layer film consisting of the first polymer layer, the thin metal film on the first polymer layer, and the second polymer layer on the thin metal film. The first and second polymer layers are preferably insulating synthetic resin films. Furthermore, thermoplastic resins can be used as the first and second polymer layers, and it is particularly preferable to use a thermoplastic resin for the first polymer layer.
[0188] As the first and second polymer layers, films made of materials that suppress reaction with ionic liquids, such as polyethylene, polypropylene, polycarbonate, ionomer, polyamide, polyester, etc., can be used. For example, nylon can be used as the polyamide.
[0189] In Figure 2, as an example, the number of opposing positive electrode active material layers and negative electrode active material layers is set to five. However, the number of electrode pairs is not limited to five; it can be more or fewer. A larger number of electrode layers allows for a secondary battery with a larger capacity. Conversely, a smaller number of electrode layers allows for a thinner and more flexible secondary battery.
[0190] In the above configuration, the outer casing 509 of the secondary battery can be deformed such that the minimum radius of curvature is, for example, 3 mm or more and 30 mm or less, more preferably 3 mm or more and 10 mm or less. The film that forms the outer casing of the secondary battery is composed of one or two sheets, and in the case of a laminated secondary battery, the cross-sectional structure of the curved battery is a structure sandwiched between two curves of the outer casing film.
[0191] [Example of a method for manufacturing a secondary battery] Next, an example of a method for manufacturing a secondary battery will be described.
[0192] First, the negative electrode 506, the separator 507, and the positive electrode 503 are laminated. FIG. 4A shows an external view of the positive electrode 503 and the negative electrode 506. The positive electrode 503 has a positive electrode current collector 501, and the positive electrode active material layer 502 is formed on the surface of the positive electrode current collector 501. Also, the positive electrode 503 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 the negative electrode active material layer 505 is formed on the surface of the negative electrode current collector 504. Also, the negative electrode 506 has a region where the negative electrode current collector 504 is partially exposed, that is, a tab region. The area and shape of the tab regions of the positive electrode and the negative electrode are not limited to the example shown in FIG. 4A.
[0193] FIG. 4B shows the laminated negative electrode 506, separator 507, and positive electrode 503. Here, an example of using five sets of negative electrodes and four sets of positive electrodes is shown. Next, the tab regions of the positive electrodes 503 are joined to each other, and the positive electrode lead electrode 510 is joined to the tab region of the outermost positive electrode. For the joining, for example, ultrasonic welding or the like may be used. Similarly, the tab regions of the negative electrodes 506 are joined to each other, and the negative electrode lead electrode 511 is joined to the tab region of the outermost negative electrode.
[0194] Next, the negative electrode 506, the separator 507, and the positive electrode 503 are arranged on the exterior body 509.
[0195] Next, as shown in FIG. 4C, the exterior body 509 is bent at the portion indicated by the broken line. Then, the outer peripheral portion of the exterior body 509 is joined. For the joining, for example, thermocompression bonding or the like may be used. At this time, a region that is not joined to a part (or one side) of the exterior body 509 (hereinafter referred to as an inlet) is provided so that the electrolytic solution 508 can be put in later.
[0196] Next, electrolyte 508 (not shown) is introduced into the casing 509 through an inlet provided in the casing 509. For example, as shown in Figure 5A, the casing 509 is sealed with a sealing portion 521 along the first edge and a sealing portion 522 along the second edge, but the third edge is not sealed. Here, in the sealing portion 522, a bonding layer may be inserted between the positive electrode lead electrode 510 and the casing 509, and between the negative electrode lead electrode 511 and the casing 509, thereby sealing the casing 509. Next, electrolyte 508 is introduced through an opening located on the third edge. After that, as shown in Figure 5B, the sealing portion 523 along the third edge is sealed. It is preferable to introduce the electrolyte 508 under a reduced pressure atmosphere or an inert atmosphere. Finally, the inlet is bonded. In this way, a laminate-type secondary battery 500 can be manufactured.
[0197] Next, we will explain the aging process after the secondary battery has been manufactured. It is preferable to perform aging after the secondary battery has been manufactured. An example of aging conditions is described below. First, charging is performed at a rate of 0.001C to 0.2C. The temperature should be, for example, above room temperature and below 50°C. Here, if the reaction potential of the positive or negative electrode exceeds the range of the potential window of the electrolyte 508, decomposition of the electrolyte may occur due to the charging and discharging of the secondary battery. If gas is generated due to the decomposition of the electrolyte, and that gas accumulates in the cell, a region will be created where the electrolyte cannot come into contact with the electrode surface. In other words, the effective reaction area of the electrode decreases, which corresponds to an increase in effective resistance.
[0198] Furthermore, if the resistance becomes excessively high, the negative electrode potential decreases, causing lithium insertion into the graphite and simultaneously leading to lithium deposition on the graphite surface. This lithium deposition can lead to a decrease in capacity. For example, if a film or other substance grows on the surface after lithium deposition, the surface-deposited lithium cannot be re-dissolved, resulting in an increase in lithium that does not contribute to capacity. Also, if the deposited lithium physically collapses and loses conductivity with the electrode, lithium that does not contribute to capacity will be produced. Therefore, it is preferable to release the gas before the potential of the negative electrode reaches the lithium potential due to the increase in charging voltage.
[0199] Furthermore, after degassing, the device may be held in a charged state for, for example, 1 hour to 100 hours at a temperature higher than room temperature, preferably 30°C to 60°C, more preferably 35°C to 50°C. During the initial charging, the electrolyte decomposed on the surface forms a film on the graphite surface. Therefore, it is conceivable that the formed film may become denser by holding the device at a temperature higher than room temperature after degassing.
[0200] [Example of stacking of positive electrode, negative electrode, and separator] Next, various examples of stacking of positive, negative, and separator electrodes are shown.
[0201] In the configuration shown in Figure 6A, a single separator 123 is folded multiple times so as to be sandwiched between the positive electrode active material layer 122 and the negative electrode active material layer 126. In the configuration shown in Figure 6A, at the positive electrode 111, the positive electrode active material layer 122 is provided on both sides or one side of the positive electrode current collector 121, and at the negative electrode 115, the negative electrode active material layer 126 is provided on both sides or one side of the negative electrode current collector 125. In the configuration shown in Figure 6A, six sets of positive electrode active material layers 122 and negative electrode active material layers 126 face each other with the separator 123 in between, and it is preferable to fold the separator 123 at least five times. Furthermore, the separator 123 may not only be provided so as to be sandwiched between the positive electrode active material layer 122 and the negative electrode active material layer 126, but may also be extended to bundle multiple positive electrodes 111 and negative electrodes 115 together.
[0202] Figure 6D shows an example in which a wound separator covers multiple electrode assemblies. Figure 6B is a cross-sectional view of the first electrode assembly 130, and Figure 6C is a cross-sectional view of the second electrode assembly 131. Figure 6D is a cross-sectional view taken along the dashed line A1-A2 in Figure 1. Note that in Figure 6D, the first electrode assembly 130, the second electrode assembly 131, and the separator 123 are shown separately for clarity.
[0203] As shown in Figure 6B, in the first electrode assembly 130, a positive electrode 111a having a positive electrode active material layer 122 on both sides of a positive electrode current collector 121, a separator 123, a negative electrode 115a having a negative electrode active material layer 126 on both sides of a negative electrode current collector 125, a separator 123, and a positive electrode 111a having a positive electrode active material layer 122 on both sides of a positive electrode current collector 121 are stacked in this order. Also, as shown in Figure 6C, in the second electrode assembly 131, a negative electrode 115a having a negative electrode active material layer 126 on both sides of a negative electrode current collector 125, a separator 123, a positive electrode 111a having a positive electrode active material layer 122 on both sides of a positive electrode current collector 121, a separator 123, and a negative electrode 115a having a negative electrode active material layer 126 on both sides of a negative electrode current collector 125 are stacked in this order.
[0204] As shown in Figure 6D, the secondary battery 500 has a plurality of first electrode assemblies 130 and a plurality of second electrode assemblies 131. Furthermore, as shown in Figure 6D, the plurality of first electrode assemblies 130 and the plurality of second electrode assemblies 131 are covered by a wound separator 123.
[0205] [Example 2 of a secondary battery] The wound body 950 shown in Figure 7A has a negative electrode 931, a positive electrode 932, and a separator 933. The wound body 950 is a wound body in which the negative electrode 931 and the positive electrode 932 are stacked on top of each other with the separator 933 in between, and the stacked sheets are wound up. Note that multiple stacks of the negative electrode 931, positive electrode 932, and separator 933 may be stacked further. The number of stacks of the negative electrode 931, positive electrode 932, and separator 933 should be appropriately designed according to the required capacitance and element volume.
[0206] As shown in Figure 7B, the secondary battery 913 shown in Figure 7C can be manufactured by housing the aforementioned wound body 950 in a space formed by bonding a film 981, which serves as the outer casing, and a film 982 having a recess, by thermocompression or the like. The wound body 950 has terminals 951 and terminals 952 and is impregnated with an electrolyte inside the film 981 and the film 982 having a recess. Terminals 951 and 952 are, for example, lead electrodes.
[0207] The film 981 and the film 982 having a recess can be made of the materials and form described for the exterior body 509.
[0208] Furthermore, although Figures 7B and 7C show an example using two films, a space may be formed by folding a single film, and the aforementioned wound body 950 may be housed in that space.
[0209] Figure 8 also shows an example where a rectangular prism-shaped case is used as the housing 930. For example, a rectangular prism-shaped can can be used as the housing 930. Alternatively, the housing 930 may have a shape such as a cylinder. For cans, refer to the description of battery cans described later.
[0210] The wound body 950 is impregnated with an electrolyte solution inside the housing 930. Terminal 952 is in contact with the housing 930, while terminal 951 is not in contact with the housing 930 due to the use of an insulating material or the like. In Figure 8, for convenience, the housing 930 is shown separated, but in reality, the wound body 950 is covered by the housing 930, and terminals 951 and 952 extend outside the housing 930. The housing 930 can be made of a metal material (e.g., aluminum) or a resin material.
[0211] [Example of a battery pack 1] Figures 9A and 9B show the external view of the battery pack. The battery pack includes a circuit board 900 and a secondary battery 913. A label 910 is attached to the secondary battery 913. Furthermore, as shown in Figure 9B, the secondary battery 913 has terminals 951 and 952. The circuit board 900 is secured with a seal 915.
[0212] The circuit board 900 has terminal 911 and a battery control circuit 912. Terminal 911 is connected to terminal 951, terminal 952, antenna 914, and battery control circuit 912 via the circuit board 900. Multiple terminals 911 may be provided, and each of the multiple terminals 911 may be used as a control signal input terminal, a power supply terminal, etc.
[0213] The battery control circuit 912 may be provided on the back surface of the circuit board 900. The antenna 914 is not limited to a coil shape; for example, it may be linear or plate-shaped. Furthermore, antennas such as planar antennas, aperture antennas, traveling wave antennas, EH antennas, magnetic field antennas, and dielectric antennas may be used. Alternatively, the antenna 914 may be a flat conductor. This flat conductor can function as one of the conductors for electric field coupling. In other words, the antenna 914 may function as one of the two conductors of the capacitor. This allows for power exchange not only through electromagnetic and magnetic fields, but also through electric fields.
[0214] The battery pack has a layer 916 between the antenna 914 and the secondary battery 913. The layer 916 has the function of shielding, for example, the electromagnetic field from the secondary battery 913. For the layer 916, a magnetic material can be used, for example.
[0215] Furthermore, it is preferable that the battery pack includes a temperature sensor.
[0216] <Battery control circuit> The battery control circuit 912 can be used as a battery control circuit. Preferably, the battery control circuit 912 has a charging control circuit. Furthermore, the battery control circuit 912 has a switch. This switch can be configured, for example, using a transistor.
[0217] A first transmission path, connected to terminal 951 of the secondary battery 913 and transmitting power output from the secondary battery 913, is electrically connected to the terminal of the charge control circuit of the battery control circuit 912. A second transmission path, connected to terminal 952 of the secondary battery 913, is electrically connected to a switch provided in the battery control circuit 912. This switch has the function of interrupting the second transmission path. The switch controls conduction and interruption operations and can also be called a switching means that switches between supply and interruption.
[0218] If the battery control circuit 912 detects an abnormality such as a micro-short circuit, it can interrupt the second transmission path by inputting a signal to the gate of the switch that interrupts the second transmission path. By interrupting the second transmission path, the supply of current from the charger or the supply of current to the mobile device equipped with the secondary battery 913 can be stopped. Furthermore, by holding the signal voltage applied to the gate of the switch that interrupts the second transmission path in a memory circuit (including a transistor using an oxide semiconductor), the interruption can be maintained for a long period of time. Therefore, a highly safe charging control system can be achieved.
[0219] When the secondary battery 913 is charged by supplying power from the charger, the secondary battery 913 enters a charging state, and the battery control circuit 912 monitors the behavior of electrodes 971 and 972, such as voltage and current. If an abnormality is detected, the second transmission path is cut off to stop charging.
[0220] A charger refers to a device that has an adapter to connect to an external power source, or a device that transmits power using wireless signals. Note that chargers may also be built into electronic devices such as mobile devices.
[0221] <Example of temperature-based control> Next, an example of controlling a secondary battery according to one aspect of the present invention in accordance with ambient temperature will be described. Temperature can be measured using a temperature sensor.
[0222] A secondary battery according to one aspect of the present invention can be repeatedly charged and discharged at an extremely high charging voltage. Furthermore, as shown in the embodiments described later, in a secondary battery according to one aspect of the present invention, the secondary battery can be stably and repeatedly operated at a higher charging voltage when the temperature is lower.
[0223] The following describes an example of controlling the charging conditions according to temperature in a secondary battery according to one embodiment of the present invention.
[0224] If the charging temperature is between the first temperature and the second temperature, the maximum charging voltage shall be the first value. If the charging temperature is at or above the second temperature, the maximum charging voltage shall be the second value.
[0225] For example, the first temperature is between 5°C and 15°C, and the second temperature is between 25°C and 55°C. Alternatively, the first temperature is between 8°C and 15°C, and the second temperature is between 30°C and 55°C.
[0226] The first value is 0.02V or more higher than the second value, or 0.04V or more higher, or 0.06V or more higher, or 0.08V or more higher, for example, 0.05V.
[0227] The first value is 4.45V or more and 4.6V or less, more preferably 4.47V or more and less than 4.6V, even more preferably 4.47V or more and less than 4.55V, 4.49V or more and less than 4.53V, for example, about 4.5V.
[0228] As described above, by controlling the charging conditions of secondary batteries, it is possible to suppress the degradation of secondary batteries and extend their lifespan.
[0229] [Example of a battery pack 2] Note that the structure of the battery pack is not limited to that shown in Figure 9.
[0230] For example, as shown in Figures 10A and 10B, antennas may be provided on each of the opposing pairs of faces of the secondary battery 913 shown in Figures 9A and 9B. Figure 10A is an external view showing one of the pair of faces, and Figure 10B is an external view showing the other of the pair of faces. For parts that are the same as those of the secondary battery shown in Figures 8A and 8B, the explanation of the secondary battery shown in Figures 9A and 9B can be appropriately applied.
[0231] As shown in Figure 10A, an antenna 914 is provided on one of the pair of surfaces of the secondary battery 913 with a layer 916 in between, and as shown in Figure 10B, an antenna 918 is provided on the other of the pair of surfaces of the secondary battery 913 with a layer 917 in between. The layer 917 has the function of shielding, for example, the electromagnetic field from the secondary battery 913. For the layer 917, a magnetic material can be used, for example.
[0232] By adopting the above structure, the size of both antenna 914 and antenna 918 can be increased. Antenna 918 has a function that allows for data communication with external devices, for example. Antenna 918 can be fitted with an antenna of a shape that is applicable to antenna 914, for example. As a communication method between the secondary battery and other devices via antenna 918, response methods that can be used between the secondary battery and other devices, such as NFC (Near Field Communication), can be applied.
[0233] Alternatively, as shown in Figure 10C, a display device 920 may be provided on the secondary battery 913 shown in Figures 9A and 9B. The display device 920 is electrically connected to terminal 911. Note that a label 910 does not need to be provided on the part where the display device 920 is provided. Note that for the same parts as the secondary battery shown in Figures 9A and 9B, the explanation of the secondary battery shown in Figures 9A and 9B can be appropriately applied.
[0234] The display device 920 may display, for example, an image indicating whether or not it is charging, or an image indicating the amount of stored power. The display device 920 can be, for example, electronic paper, liquid crystal display, or electroluminescent (EL) display. For example, using electronic paper can reduce the power consumption of the display device 920.
[0235] Alternatively, as shown in Figure 10D, a sensor 921 may be provided on the secondary battery 913 shown in Figures 9A and 9B. The sensor 921 is electrically connected to terminal 911 via terminal 922. For parts that are the same as those of the secondary battery shown in Figures 9A and 9B, the explanation of the secondary battery shown in Figures 9A and 9B can be appropriately applied.
[0236] The sensor 921 may have the function of measuring, for example, displacement, position, velocity, acceleration, angular velocity, rotational speed, distance, light, liquid, magnetism, temperature, chemical substances, sound, time, hardness, electric field, current, voltage, power, radiation, flow rate, humidity, gradient, vibration, odor, or infrared radiation. By providing the sensor 921, for example, data indicating the environment in which the secondary battery is placed (such as temperature) can be detected and stored in the memory of the battery control circuit 912.
[0237] Furthermore, an example of the structure of the secondary battery 913 will be explained using Figures 11A to 11E.
[0238] [Various configuration examples] Figure 11A shows a schematic top view of a bendable secondary battery 250. Figures 11B, 11C, 11D, and 11E are schematic cross-sectional views along cutting lines C1-C2, C3-C4, A1-A2, and B1-B2 in Figure 11A, respectively. The secondary battery 250 comprises an outer casing 251 and an electrode stack 210 housed inside the outer casing 251. The electrode stack 210 has a structure in which at least a positive electrode 211a and a negative electrode 211b are stacked. Leads 212a electrically connected to the positive electrode 211a and lead 212b electrically connected to the negative electrode 211b extend to the outside of the outer casing 251. In addition to the positive electrode 211a and the negative electrode 211b, an electrolyte (not shown) is sealed in the region enclosed by the outer casing 251. Although not shown in Figure 11B, for example, a separator is placed between the positive electrode 211a and the negative electrode 211b.
[0239] Next, the outer casing 251 will be explained using Figures 11B, 11C, 11D, and 11E.
[0240] The outer casing 251 has a film-like shape and is folded in half so as to sandwich the positive electrode 211a and the negative electrode 211b. The outer casing 251 has a folded portion 261, a pair of sealing portions 262, and a sealing portion 263. The pair of sealing portions 262 are provided sandwiching the positive electrode 211a and the negative electrode 211b and can also be called side seals. The sealing portion 263 has a portion that overlaps with leads 212a and 212b and can also be called a top seal.
[0241] The outer casing 251 preferably has a wave-like shape in which ridges 271 and valleys 272 are alternately arranged in the portion that overlaps with the positive electrode 211a and the negative electrode 211b. Furthermore, the sealing portions 262 and 263 of the outer casing 251 are preferably flat.
[0242] Figure 11B shows a cross-section cut at the point where it overlaps with the ridge line 271, and Figure 11C shows a cross-section cut at the point where it overlaps with the valley line 272. Both Figures 11B and 11C correspond to the widthwise cross-sections of the secondary battery 250 and the positive electrode 211a and negative electrode 211b.
[0243] Here, distance La is defined as the distance between the end of the negative electrode 211b in the width direction, i.e., the end of the negative electrode 211b, and the seal portion 262. When the secondary battery 250 is deformed, such as by bending, the positive electrode 211a and the negative electrode 211b deform so that they are offset from each other in the length direction, as will be described later. In this case, if distance La is too short, the casing 251 and the positive electrode 211a and the negative electrode 211b will rub strongly against each other, and the casing 251 may be damaged. In particular, if the metal film of the casing 251 is exposed, there is a risk that the metal film will be corroded by the electrolyte. Therefore, it is preferable to set distance La as long as possible. On the other hand, if distance La is made too large, the volume of the secondary battery 250 will increase.
[0244] Furthermore, the greater the combined thickness of the stacked positive electrode 211a and negative electrode 211b, the greater the distance La between the positive electrode 211a and negative electrode 211b and the seal portion 262.
[0245] More specifically, when the total thickness of the stacked positive electrode 211a, negative electrode 211b, and separator 214 (not shown) is t, the distance La is preferably 0.8 to 3.0 times the thickness t, preferably 0.9 to 2.5 times, and more preferably 1.0 to 2.0 times. By setting the distance La within this range, a compact and highly reliable battery against bending can be realized.
[0246] Furthermore, when the distance between the pair of sealing portions 262 is denoted as distance Lb, it is preferable to make the distance Lb sufficiently larger than the width of the positive electrode 211a and the negative electrode 211b (here, the width Wb of the negative electrode 211b). This allows a portion of the positive electrode 211a and the negative electrode 211b to shift in the width direction even when the secondary battery 250 is subjected to repeated bending or other deformation, thereby effectively preventing friction between the positive electrode 211a and the negative electrode 211b and the outer casing 251.
[0247] For example, it is preferable that the difference between the distance Lb between the pair of sealing portions 262 and the width Wb of the negative electrode 211b is 1.6 times or more and 6.0 times or less, preferably 1.8 times or more and 5.0 times or less, and more preferably 2.0 times or more and 4.0 times or less, the thickness t of the positive electrode 211a and the negative electrode 211b.
[0248] Furthermore, Figure 11D is a cross-section including the lead 212a, and corresponds to the longitudinal cross-section of the secondary battery 250, the positive electrode 211a, and the negative electrode 211b. As shown in Figure 11D, it is preferable that there is a space 273 between the longitudinal ends of the positive electrode 211a and the negative electrode 211b and the outer casing 251 at the bent portion 261. The lead 212a is joined to the positive electrode 211a in region 215a.
[0249] Figure 11E shows a schematic cross-sectional view of the secondary battery 250 when bent. Figure 11E corresponds to the cross-section along the cutting line B1-B2 in Figure 11A.
[0250] When the secondary battery 250 is bent, a portion of the outer casing 251 located on the outside of the bend stretches, while another portion located on the inside contracts. More specifically, the outer portion of the outer casing 251 deforms in such a way that the wave amplitude is small and the wave period is large. On the other hand, the inner portion of the outer casing 251 deforms in such a way that the wave amplitude is large and the wave period is small. In this way, the deformation of the outer casing 251 relieves the stress on the outer casing 251 that accompanies the bending, so the material constituting the outer casing 251 does not need to expand or contract. As a result, the secondary battery 250 can be bent with little force without the outer casing 251 being damaged.
[0251] Furthermore, as shown in Figure 11E, when the secondary battery 250 is bent, the positive electrode 211a and the negative electrode 211b shift relative to each other. At this time, since one end of the multiple stacked positive electrodes 211a and negative electrodes 211b on the seal portion 263 side is fixed by the fixing member 217, the amount of shift increases the closer they are to the bent portion 261. As a result, the stress on the positive electrode 211a and the negative electrode 211b is relieved, and the positive electrode 211a and the negative electrode 211b themselves do not need to expand or contract. Consequently, the secondary battery 250 can be bent without damaging the positive electrode 211a and the negative electrode 211b.
[0252] Furthermore, because there is a space 273 between the positive electrode 211a and the negative electrode 211b and the outer casing 251, the positive electrode 211a and the negative electrode 211b, which are located on the inside when bent, can shift relative to each other without coming into contact with the outer casing 251.
[0253] The radius of curvature of a surface will be explained using Figures 12A, 12B, and 12C. In Figure 12A, in the plane 1701 obtained by cutting through the curved surface 1700, a portion of the curve 1702 contained in the curved surface 1700 is approximated as an arc of a circle, and the radius of that circle is taken as the radius of curvature 1703, with the center of the circle being taken as the center of curvature 1704. Figure 12B shows a top view of the curved surface 1700. Figure 12C shows a cross-sectional view obtained by cutting the curved surface 1700 with plane 1701. When a curved surface is cut by a plane, the radius of curvature of the curve appearing in the cross-section will differ depending on the angle of the plane relative to the curved surface and the cutting position, but in this specification, the smallest radius of curvature is taken as the radius of curvature of the surface.
[0254] When a secondary battery, which has electrodes and electrolyte 1805 sandwiched between two films as an outer casing, is curved, the radius of curvature 1802 of film 1801 on the side closer to the center of curvature 1800 of the secondary battery is smaller than the radius of curvature 1804 of film 1803 on the side further from the center of curvature 1800 (Figure 13A). When the secondary battery is curved to form an arc-shaped cross-section, compressive stress is applied to the surface of the film closer to the center of curvature 1800, and tensile stress is applied to the surface of the film further from the center of curvature 1800 (Figure 13B). By forming a pattern with concave or convex portions on the surface of the outer casing, the effects of strain can be kept within an acceptable range even when compressive or tensile stress is applied in this way. Therefore, the secondary battery can be deformed so that the minimum radius of curvature of the outer casing on the side closer to the center of curvature is, for example, 3 mm to 30 mm, more preferably 3 mm to 10 mm.
[0255] Furthermore, the cross-sectional shape of the secondary battery is not limited to a simple arc shape; it can have a shape that includes an arc in part, such as the shape shown in Figure 13C, or a wavy shape (Figure 13D), or an S-shape. If the curved surface of the secondary battery has multiple centers of curvature, the minimum radius of curvature of the outer casing closest to the center of curvature of the two outer casings can be deformed so that, among the radii of curvature at each of the multiple centers of curvature, the curved surface with the smallest radius of curvature has a minimum radius of curvature of, for example, 3 mm to 30 mm, more preferably 3 mm to 10 mm.
[0256] [Cylindrical rechargeable battery] An example of a cylindrical secondary battery will be explained with reference to Figure 14A. As shown in Figure 14A, the cylindrical secondary battery 400 has a positive electrode cap (battery cover) 401 on the top surface and a battery casing (outer casing) 402 on the sides and bottom. The positive electrode cap 401 and the battery casing (outer casing) 402 are insulated from each other by a gasket (insulating packing) 410.
[0257] Figure 14B is a schematic diagram showing a cross-section of a cylindrical secondary battery. The cylindrical secondary battery shown in Figure 14B has a positive electrode cap (battery cover) 601 on the top surface and a battery casing (outer casing) 602 on the sides and bottom. The positive electrode cap and the battery casing (outer casing) 602 are insulated from each other by a gasket (insulating packing) 610.
[0258] Inside the hollow cylindrical battery casing 602, a battery element is provided, in which a strip-shaped positive electrode 604 and a negative electrode 606 are wound with a separator 605 in between. Although not shown, the battery element is wound around a center pin. The battery casing 602 is closed at one end and open at the other. The battery casing 602 can be made of a metal such as nickel, aluminum, or titanium, which is corrosion-resistant to the electrolyte, or an alloy of these metals or an alloy of these metals with other metals (for example, stainless steel). Furthermore, it is preferable to coat the battery casing 602 with nickel, aluminum, or the like to prevent corrosion by the electrolyte. Inside the battery casing 602, the 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. In addition, a non-aqueous electrolyte (not shown) is injected into the inside of the battery casing 602 in which the battery element is provided. The non-aqueous electrolyte can be the same as that used in coin-type secondary batteries.
[0259] Since the positive and negative electrodes used in cylindrical storage batteries are wound, it is preferable to form active material on both sides of the current collector. 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 metal materials such as aluminum. The positive electrode terminal 603 is resistance-welded to the 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 disconnects the electrical connection between the positive electrode cap 601 and the positive electrode 604 when the rise in the internal pressure of the battery exceeds a predetermined threshold. Furthermore, the PTC element 611 is a thermal resistance element whose resistance increases when the temperature rises, and it prevents abnormal heat generation by limiting the current amount through the increase in resistance. Barium titanate (BaTiO3) based semiconductor ceramics can be used for the PTC element.
[0260] Figure 14C shows an example of an energy storage system 415. The energy storage system 415 has multiple secondary batteries 400. The positive electrode of each secondary battery is in contact with a conductor 424 separated by an insulator 425 and is electrically connected. The conductor 424 is electrically connected to a control circuit 420 via wiring 423. The negative electrode of each secondary battery is also electrically connected to the control circuit 420 via wiring 426. The battery control circuit 912 described above can be used as the control circuit 420.
[0261] Figure 14D shows an example of an energy storage system 415. The energy storage system 415 has multiple secondary batteries 400, which are sandwiched between conductive plates 413 and 414. The multiple secondary batteries 400 are electrically connected to the conductive plates 413 and 414 by wiring 416. The multiple secondary batteries 400 may be connected in parallel, in series, or connected in parallel and then in series. By configuring an energy storage system 415 with multiple secondary batteries 400, a large amount of power can be extracted.
[0262] Multiple secondary batteries 400 may be connected in parallel and then further connected in series.
[0263] A temperature control device may be provided between the multiple secondary batteries 400. When a secondary battery 400 overheats, it can be cooled by the temperature control device, and when a secondary battery 400 becomes too cold, it can be heated by the temperature control device. This makes the performance of the energy storage system 415 less susceptible to the influence of ambient temperature.
[0264] Furthermore, in Figure 14D, the energy storage system 415 is electrically connected to the control circuit 420 via wiring 421 and wiring 422. Wiring 421 is electrically connected to the positive terminals of the multiple secondary batteries 400 via conductive plate 413, and wiring 422 is electrically connected to the negative terminals of the multiple secondary batteries 400 via conductive plate 414.
[0265] [Example 3 of battery packs] Next, an example of an energy storage system according to one aspect of the present invention will be described with reference to Figure 15.
[0266] Figure 15A shows the external appearance of the secondary battery pack 531. Figure 15B is a diagram illustrating the configuration of the secondary battery pack 531. The secondary battery pack 531 includes a circuit board 540 and a secondary battery 513. A label 529 is attached to the secondary battery 513. The circuit board 540 is secured by a seal 515. The secondary battery pack 531 also has an antenna 517.
[0267] In the secondary battery pack 531, for example, as shown in Figure 15B, a control circuit 590 is located on the circuit board 540. The circuit board 540 is electrically connected to terminal 514. The circuit board 540 is also electrically connected to the antenna 517, one of the positive and negative leads 551 of the secondary battery 513, and the other of the positive and negative leads 552. The battery control circuit 912 described above can be applied to the control circuit 590.
[0268] Alternatively, as shown in Figure 15C, the system may have a circuit system 590a provided on the circuit board 540 and a circuit system 590b electrically connected to the circuit board 540 via terminals 514. For example, a portion of the control circuit in one aspect of the present invention may be provided in circuit system 590a, and another portion in circuit system 590b.
[0269] The antenna 517 is not limited to a coil shape; for example, it may be linear or plate-shaped. Alternatively, antennas such as planar antennas, aperture antennas, traveling wave antennas, EH antennas, magnetic field antennas, and dielectric antennas may be used. Alternatively, the antenna 517 may be a flat conductor. This flat conductor can function as one of the conductors for electric field coupling. In other words, the antenna 517 may function as one of the two conductors of the capacitor. This allows for power exchange not only through electromagnetic and magnetic fields, but also through electric fields.
[0270] The secondary battery pack 531 has a layer 519 between the antenna 517 and the secondary battery 513. The layer 519 has the function of shielding, for example, the electromagnetic field from the secondary battery 513. For the layer 519, a magnetic material can be used, for example.
[0271] As the secondary battery 513, the various secondary batteries mentioned above can be used.
[0272] This embodiment can be appropriately combined with descriptions of other embodiments.
[0273] (Embodiment 2) This embodiment describes an example of an energy storage system equipped with a secondary battery and a battery control circuit according to one aspect of the present invention.
[0274] Figure 16A is a conceptual diagram of an energy storage system in which a battery control circuit 912 formed on a flexible film substrate is mounted on a secondary battery 913. The circuit board 900 is constructed using a flexible substrate. Figures 16B, 16C, and 16D illustrate the method for manufacturing the energy storage system shown in Figure 16A.
[0275] Figure 16B shows the secondary battery 913. The secondary battery 913 has terminals 951 and 952. Figure 16C shows the circuit board 900 spread out.
[0276] As shown in Figure 16D, the circuit board 900 can be bent and attached to the secondary battery 913 in a wrapped manner to form the energy storage system shown in Figure 16A.
[0277] An energy storage system according to one aspect of the present invention comprises a secondary battery 913 and a battery control circuit 912. The battery control circuit 912 also includes a switch, which can be configured using, for example, a transistor.
[0278] Furthermore, a power storage system according to one aspect of the present invention preferably includes a layer 916 and an antenna 914 formed on a circuit board 900. The layer 916 is, for example, an insulating sheet. The antenna 914 is electrically connected to, for example, a battery control circuit 912. The battery control circuit 912 includes, for example, circuits for sending and receiving signals from the antenna 914, such as a modulation circuit, a demodulation circuit, etc.
[0279] A first transmission path, connected to terminal 951 of the secondary battery 913 and transmitting power output from the secondary battery 913, is electrically connected to the terminal of the charging control circuit via electrode 971. A second transmission path, connected to terminal 952 of the secondary battery 913, is connected via electrode 972 to a switch that interrupts the second transmission path. The switch controls conduction and interruption operations and can also be called a switching means that switches between supplying and interrupting power.
[0280] The manufacturing method for forming the battery control circuit 912 on the circuit board 900 involves forming it on a semiconductor substrate, then using a peeling method to peel it off and fixing it onto the circuit board 900. Known techniques can be used for the peeling method. Alternatively, the battery control circuit 912 may be formed on a semiconductor substrate, the back surface may be polished, and then it may be fixed onto the circuit board 900. Alternatively, it may be partially cut using a laser beam, so-called laser cutting, and then fixed onto the circuit board 900. Alternatively, the battery control circuit 912 may be directly formed on the circuit board 900. Furthermore, it is also possible to peel off the battery control circuit 912 formed on a glass substrate and fix it onto the circuit board 900.
[0281] If the battery control circuit 912 detects an abnormality such as a micro-short circuit, it can interrupt the second transmission path by inputting a signal to the gate of the switch that interrupts the second transmission path. By interrupting the second transmission path, the supply of current from the charger or the supply of current to electronic devices connected to the battery control circuit 912 can be stopped. Furthermore, by holding the signal voltage applied to the gate of the switch that interrupts the second transmission path in a memory circuit (including a transistor using an oxide semiconductor), the interruption can be maintained for a long period of time. Therefore, a highly safe energy storage system can be achieved.
[0282] When the secondary battery 913 is charged by supplying power from the charger, the secondary battery 913 enters a charging state, and the battery control circuit 912 monitors the behavior of electrodes 971 and 972, such as voltage and current. If an abnormality is detected, the second transmission path is cut off to stop charging.
[0283] A charger refers to a device that has an adapter to connect to an external power source, or a device that transmits power using wireless signals. Note that chargers may also be built into electronic devices such as mobile devices.
[0284] This embodiment can be appropriately combined with descriptions of other embodiments.
[0285] (Embodiment 3) This embodiment shows an example in which a secondary battery according to one aspect of the present invention is mounted on a vehicle. Examples of vehicles include automobiles, motorcycles, bicycles, and the like.
[0286] A secondary battery according to one embodiment of the present invention has high energy density, a long lifespan, and excellent reliability. Furthermore, using a secondary battery according to one embodiment of the present invention in combination with a battery control circuit may further extend the lifespan of the secondary battery, which is preferable. In addition, using a secondary battery according to one embodiment of the present invention in combination with a battery control circuit can enhance the safety of electronic devices, vehicles, etc., in which the secondary battery is installed.
[0287] The following describes an example of mounting a power storage system, which combines a secondary battery according to one aspect of the present invention with a battery control circuit, in a vehicle. However, in the configuration shown below, the power storage system mounted in the vehicle may also be configured without the battery control circuit described above. For example, only the secondary battery according to one aspect of the present invention may be applied to the vehicle shown below.
[0288] By installing energy storage systems in vehicles, next-generation clean energy vehicles such as hybrid vehicles (HV), electric vehicles (EV), or plug-in hybrid vehicles (PHV) can be realized.
[0289] Figures 17A, 17B, and 17C illustrate a vehicle using an energy storage system according to one aspect of the present invention. The automobile 8400 shown in Figure 17A is an electric vehicle that uses an electric motor as a power source for driving. Alternatively, it is a hybrid vehicle that can appropriately select and use an electric motor and an engine as power sources for driving. By using one aspect of the present invention, a vehicle with a long driving range can be realized. The automobile 8400 has an energy storage system. The energy storage system can not only drive the electric motor 8406 but also supply power to light-emitting devices such as headlights 8401 and interior lights (not shown).
[0290] Furthermore, the energy storage system can supply power to the display devices of the 8400 vehicle, such as the speedometer and tachometer. It can also supply power to the navigation system and other systems of the 8400 vehicle.
[0291] The automobile 8500 shown in Figure 17B can be charged by receiving power from an external charging facility via a plug-in method or contactless power supply method to the energy storage system 8024 installed in the automobile 8500. Figure 17B shows the state in which the energy storage system 8024 installed in the automobile 8500 is being charged from a ground-mounted charging device 8021 via a cable 8022. When charging, the charging method and connector specifications can be carried out as appropriate using a prescribed method such as CHAdeMO® or Combo. The charging device 8021 may be a charging station installed in a commercial facility or a household power supply. For example, the energy storage system 8024 installed in the automobile 8500 can be charged by an external power supply using plug-in technology. Charging can be performed by converting AC power to DC power via a conversion device such as an AC / DC converter.
[0292] Although not shown in the diagram, the vehicle can also be charged by mounting a power receiving device on the vehicle and receiving power wirelessly from a ground-based power transmission device. In this wireless power supply method, by incorporating the power transmission device into the road or exterior wall, charging can be performed not only when the vehicle is stopped but also while it is in motion. Furthermore, this wireless power supply method can be used to transmit and receive power between vehicles. In addition, solar panels can be installed on the exterior of the vehicle to charge the energy storage system when the vehicle is stopped or in motion. Electromagnetic induction or magnetic resonance methods can be used for such wireless power supply.
[0293] Furthermore, Figure 17C shows an example of a two-wheeled vehicle using a power storage system according to one embodiment of the present invention. The scooter 8600 shown in Figure 17C is equipped with a power storage system 8602, side mirrors 8601, and turn signals 8603. The power storage system 8602 can supply electricity to the turn signals 8603.
[0294] Furthermore, the scooter 8600 shown in Figure 17C can accommodate the energy storage system 8602 in the under-seat storage compartment 8604. The energy storage system 8602 can be stored in the under-seat storage compartment 8604 even if the under-seat storage compartment 8604 is small.
[0295] Furthermore, Figure 18A shows an example of an electric bicycle using an energy storage system according to one embodiment of the present invention. The energy storage system according to one embodiment of the present invention can be applied to the electric bicycle 8700 shown in Figure 18A.
[0296] The electric bicycle 8700 is equipped with a power storage system 8702. The power storage system 8702 can supply electricity to the motor that assists the rider. The power storage system 8702 is also portable, and Figure 18B shows it detached from the bicycle. The power storage system 8702 also incorporates multiple batteries 8701, which are part of a power storage system according to one embodiment of the present invention, and the remaining battery level and other information can be displayed on a display unit 8703. The power storage system 8702 also has a control circuit 8704 according to one embodiment of the present invention. The control circuit 8704 is electrically connected to the positive and negative electrodes of the batteries 8701. The battery control circuit shown in the previous embodiment can be used as the control circuit 8704.
[0297] This embodiment can be appropriately combined with descriptions of other embodiments.
[0298] (Embodiment 4) This embodiment describes an example of mounting a secondary battery according to one aspect of the present invention in an electronic device.
[0299] A secondary battery according to one embodiment of the present invention has high energy density, a long lifespan, and excellent reliability. Furthermore, using a secondary battery according to one embodiment of the present invention in combination with a battery control circuit may further extend the lifespan of the secondary battery, which is preferable. In addition, using a secondary battery according to one embodiment of the present invention in combination with a battery control circuit can enhance the safety of electronic devices, vehicles, etc., in which the secondary battery is installed.
[0300] The following describes an example of mounting an energy storage system, which combines a secondary battery according to one aspect of the present invention with a battery control circuit, in an electronic device. However, in the configuration shown below, the energy storage system mounted in the electronic device may also be configured without the battery control circuit described above. For example, only the secondary battery according to one aspect of the present invention may be applied to the electronic device shown below.
[0301] Figures 19A and 19B show an example of a foldable tablet terminal (including a clamshell terminal). The tablet terminal 9600 shown in Figures 19A and 19B includes a housing 9630a, a housing 9630b, a movable part 9640 connecting housings 9630a and 9630b, a display unit 9631, a display mode switch 9626, a power switch 9627, a power saving mode switch 9625, a fastener 9629, and an operation switch 9628. By using a flexible panel for the display unit 9631, a tablet terminal with a larger display area can be created. Figure 19A shows the tablet terminal 9600 in an open state, and Figure 19B shows the tablet terminal 9600 in a closed state.
[0302] Furthermore, the tablet terminal 9600 has a power storage unit 9635 inside the housing 9630a and housing 9630b. The power storage unit 9635 is provided across housing 9630a and housing 9630b, passing through the movable part 9640.
[0303] The display unit 9631 can be partially designated as a touch panel area, allowing data input by touching the displayed operation keys. Furthermore, by touching the location where the keyboard display switching button on the touch panel is displayed with a finger or stylus, keyboard buttons can be displayed on the display unit 9631.
[0304] Furthermore, the display mode switch 9626 allows switching between portrait and landscape orientations, and selecting between monochrome and color displays. The power saving mode switch 9625 optimizes the display brightness according to the amount of ambient light detected by the light sensor built into the tablet terminal 9600 during use. The tablet terminal may also incorporate other detection devices such as gyroscopes, accelerometers, and other sensors that detect tilt, in addition to the light sensor.
[0305] Figure 19B shows the tablet terminal in a closed state, comprising a housing 9630, a solar cell 9633, and an energy storage system according to one embodiment of the present invention. The energy storage system comprises a control circuit 9634 and an energy storage body 9635. The control circuit 9634 can be the battery control circuit shown in the previous embodiment.
[0306] Furthermore, since the tablet terminal 9600 is foldable, the casings 9630a and 9630b can be folded together when not in use. Folding protects the display unit 9631, thereby increasing the durability of the tablet terminal 9600.
[0307] In addition, the tablet terminals shown in Figures 19A and 19B may have functions such as displaying various information (still images, videos, text images, etc.), displaying a calendar, date, or time on the display unit, a touch input function for touch input operation or editing of the information displayed on the display unit, and a function for controlling processing by various software (programs).
[0308] The solar cell 9633 mounted on the surface of the tablet device can supply power to the touch panel, display unit, or video signal processing unit, etc. The solar cell 9633 can be installed on one or both sides of the housing 9630, allowing for an efficient configuration of charging the energy storage unit 9635.
[0309] Figures 19A and 19B illustrate a configuration in which the control circuit using the battery control circuit described in the previous embodiment is applied to a foldable tablet terminal, but other configurations are also possible. For example, as shown in Figure 19C, it can also be applied to a clamshell-type notebook personal computer. Figure 19C illustrates a notebook personal computer 9601, which has a display unit 9631 in a casing 9630a and a keyboard unit 9650 in a casing 9630b. The notebook personal computer 9601 contains the control circuit 9634 described in Figures 19A and 19B, and a battery storage unit 9635. The control circuit 9634 can be the battery control circuit described in the previous embodiment.
[0310] Figure 20 shows an example of another electronic device. In Figure 20, the display device 8000 is an example of an electronic device that implements an energy storage system according to one aspect of the present invention. Specifically, the display device 8000 corresponds to a display device for receiving TV broadcasts and has a housing 8001, a display unit 8002, a speaker unit 8003, a secondary battery 8004, etc. The detection system according to one aspect of the present invention is provided inside the housing 8001. The display device 8000 can receive power from a commercial power source or it can use power stored in the secondary battery 8004.
[0311] The display unit 8002 can use semiconductor display devices such as liquid crystal displays, light-emitting devices equipped with light-emitting elements such as organic EL elements in each pixel, electrophoretic displays, DMDs (Digital Micromirror Devices), PDPs (Plasma Display Panels), and FEDs (Field Emission Displays).
[0312] Furthermore, the voice input device 8005 also uses a secondary battery. The voice input device 8005 has the energy storage system shown in the previous embodiment. In addition to a wireless communication element, the voice input device 8005 has multiple sensors (optical sensor, temperature sensor, humidity sensor, pressure sensor, illuminance sensor, motion sensor, etc.) including a microphone, and can control other devices, such as the power operation of the display device 8000 or the light intensity adjustment of the lighting device 8100, by the user's command. The voice input device 8005 allows peripheral devices to be operated by voice and serves as a substitute for a manual remote control.
[0313] Furthermore, the voice input device 8005 has wheels or mechanical means of movement, and is configured to move in the direction from which the user's voice can be heard, accurately hear commands with its built-in microphone, and display the content on the display unit 8008, or to allow touch input operation of the display unit 8008.
[0314] Furthermore, the voice input device 8005 can also function as a charging dock for a personal digital assistant (PDTA) such as a smartphone 8009. The PDTA 8009 and the voice input device 8005 can exchange power via wired or wireless connections. Indoors, the PDTA 8009 does not need to be carried around, and it is desirable to ensure the necessary capacity while avoiding overloading and degrading the secondary battery. Therefore, it is desirable that the voice input device 8005 be able to manage and maintain the secondary battery. In addition, since the voice input device 8005 has a speaker 8007 and a microphone, hands-free conversation is possible even while the PDTA 8009 is charging. Furthermore, if the capacity of the secondary battery of the voice input device 8005 decreases, it can be moved in the direction of the arrow and charged wirelessly from the charging module 8010 connected to an external power source.
[0315] The voice input device 8005 may also be placed on a stand. Alternatively, the voice input device 8005 may be moved to a desired position using wheels or mechanical means of transport, or it may be fixed in a desired position, such as on the floor, without a stand or wheels.
[0316] Furthermore, the term "display device" includes all information display devices, such as those for receiving TV broadcasts, personal computers, and advertising displays.
[0317] In Figure 20, the fixed lighting device 8100 is an example of an electronic device using a secondary battery 8103 controlled by a microprocessor (including an APS) that controls charging. Specifically, the lighting device 8100 includes a housing 8101, a light source 8102, a secondary battery 8103, etc. In Figure 20, the case in which the secondary battery 8103 is installed inside the ceiling 8104 to which the housing 8101 and light source 8102 are installed is illustrated, but the secondary battery 8103 may also be installed inside the housing 8101. The lighting device 8100 can receive power from a commercial power source or it can use power stored in the secondary battery 8103.
[0318] Although Figure 20 illustrates a fixed lighting device 8100 installed on the ceiling 8104, the secondary battery 8103 can also be used in fixed lighting devices installed on other locations such as the side wall 8105, floor 8106, window 8107, etc., or in tabletop lighting devices.
[0319] Furthermore, the light source 8102 can be an artificial light source that artificially generates light using electricity. Specifically, examples of the above artificial light sources include incandescent light bulbs, discharge lamps such as fluorescent lamps, and light-emitting elements such as LEDs and organic EL elements.
[0320] In Figure 20, an air conditioner having an indoor unit 8200 and an outdoor unit 8204 is an example of an electronic device using a secondary battery 8203. Specifically, the indoor unit 8200 has a housing 8201, an air outlet 8202, a secondary battery 8203, etc. In Figure 20, the case in which the secondary battery 8203 is provided in the indoor unit 8200 is illustrated, but the secondary battery 8203 may also be provided in the outdoor unit 8204. Alternatively, the secondary battery 8203 may be provided in both the indoor unit 8200 and the outdoor unit 8204. The air conditioner can receive power from a commercial power source or it can use power stored in the secondary battery 8203.
[0321] In Figure 20, the electric refrigerator-freezer 8300 is an example of an electronic device using a secondary battery 8304. Specifically, the electric refrigerator-freezer 8300 includes a casing 8301, a refrigerator door 8302, a freezer door 8303, a secondary battery 8304, etc. In Figure 20, the secondary battery 8304 is installed inside the casing 8301. The electric refrigerator-freezer 8300 can receive power from a commercial power source or use power stored in the secondary battery 8304.
[0322] Furthermore, by storing power in the secondary battery during periods when electronic devices are not in use, particularly during periods when the proportion of the total amount of power supplied by the commercial power source that is actually used (referred to as the power usage rate) is low, it is possible to suppress the increase in the power usage rate outside of these periods. For example, in the case of the electric refrigerator-freezer 8300, power is stored in the secondary battery 8304 at night when the temperature is low and the refrigerator door 8302 and freezer door 8303 are not opened or closed. Then, during the daytime when the temperature is high and the refrigerator door 8302 and freezer door 8303 are opened and closed, the secondary battery 8304 can be used as an auxiliary power source, thereby keeping the daytime power usage rate low.
[0323] In addition to the electronic devices described above, secondary batteries can be installed in any electronic device. According to one aspect of the present invention, the cycle characteristics of the secondary battery are improved. Therefore, by installing a microprocessor (including APS) that controls charging, which is one aspect of the present invention, in the electronic device described in this embodiment, the electronic device can be made to have a longer lifespan. This embodiment can be implemented in appropriate combination with other embodiments.
[0324] Figures 21A to 21G show examples of implementing an energy storage system according to one aspect of the present invention in electronic devices. Examples of electronic devices to which an energy storage system according to one aspect of the present invention is applied include television equipment (also called televisions or television receivers), monitors for computers, digital cameras, digital video cameras, digital photo frames, mobile phones (also called mobile phones or mobile phone devices), portable game consoles, personal information terminals, sound playback devices, and large game machines such as pachinko machines.
[0325] Figure 21A shows an example of a mobile phone. The mobile phone 7400 includes a display unit 7402 built into the housing 7401, as well as operation buttons 7403, an external connection port 7404, a speaker 7405, a microphone 7406, and the like. The mobile phone 7400 also has a power storage system according to one embodiment of the present invention. The power storage system according to one embodiment of the present invention includes, for example, a storage battery 7407 and a battery control circuit as shown in the previous embodiment.
[0326] Figure 21B shows the mobile phone 7400 in a bent state. When the mobile phone 7400 is deformed by an external force and the entire device is bent, the storage battery 7407 located inside may also be bent. In such cases, it is preferable to use a flexible storage battery as the storage battery 7407. Figure 21C shows the bent state of the flexible storage battery. A control circuit 7408 is electrically connected to the storage battery. The battery control circuit shown in the previous embodiment can be used as the control circuit 7408.
[0327] Furthermore, the flexible shape of the battery allows it to be incorporated into the interior or exterior walls of houses and buildings, or along the curved surfaces of the interior or exterior of automobiles.
[0328] Figure 21D shows an example of a bangle-type display device. The portable display device 7100 has a housing 7101, a display unit 7102, operation buttons 7103, and a power storage system according to one embodiment of the present invention. The power storage system according to one embodiment of the present invention has, for example, a storage battery 7104 and a battery control circuit as shown in the previous embodiment.
[0329] Figure 21E shows an example of a wristwatch-type personal information terminal. The personal information terminal 7200 includes a housing 7201, a display unit 7202, a band 7203, a buckle 7204, operation buttons 7205, input / output terminals 7206, and the like.
[0330] The 7200 personal digital assistant (PDCA) can run various applications such as mobile phone calls, email, document viewing and creation, music playback, internet communication, and computer games.
[0331] The display unit 7202 has a curved display surface, allowing it to display information along the curved surface. Furthermore, the display unit 7202 is equipped with a touch sensor, allowing it to be operated by touching the screen with a finger or stylus. For example, touching the icon 7207 displayed on the display unit 7202 can launch an application.
[0332] The operation button 7205 can be assigned various functions, including time setting, power on / off, wireless communication on / off, silent mode activation / deactivation, and power saving mode activation / deactivation. For example, the functions of the operation button 7205 can be freely configured by the operating system built into the personal digital assistant 7200.
[0333] Furthermore, the 7200 portable information terminal is capable of performing standardized short-range wireless communication. For example, it can communicate with a wireless-enabled headset to enable hands-free calling.
[0334] Furthermore, the portable information terminal 7200 is equipped with an input / output terminal 7206, which allows for direct data exchange with other information terminals via a connector. It can also be charged via the input / output terminal 7206. Note that charging may also be performed wirelessly without using the input / output terminal 7206.
[0335] The portable information terminal 7200 has a power storage system according to one embodiment of the present invention. The power storage system includes a storage battery and a battery control circuit as shown in the previous embodiment.
[0336] The portable information terminal 7200 preferably has sensors. For example, it is preferable that the sensor includes human body sensors such as fingerprint sensors, pulse sensors, and body temperature sensors, as well as touch sensors, pressure sensors, and acceleration sensors.
[0337] Figure 21F shows an example of an armband-type display device. The display device 7300 has a display unit 7304 and a secondary battery according to one embodiment of the present invention. The display device 7300 may also be equipped with a touch sensor on the display unit 7304 and can also function as a portable information terminal.
[0338] The display unit 7304 has a curved display surface, allowing it to display information along the curved surface. Furthermore, the display device 7300 can change its display status via standardized short-range wireless communication.
[0339] Furthermore, the display device 7300 is equipped with input / output terminals, allowing it to directly exchange data with other information terminals via connectors. It can also be charged via the input / output terminals. Note that charging may also be performed wirelessly without using the input / output terminals.
[0340] By using a secondary battery according to one embodiment of the present invention as a secondary battery in everyday electronic devices, it is possible to provide lightweight and long-lasting products. Examples of everyday electronic devices include electric toothbrushes, electric shavers, and electric beauty devices. For the secondary batteries in these products, there is a demand for a stick-shaped, small, lightweight, and high-capacity secondary battery that is easy for the user to hold.
[0341] Figure 21G is a perspective view of a device also known as a tobacco-containing smoking device (electronic cigarette). In Figure 21G, the electronic cigarette 7500 consists of an atomizer 7501 including a heating element, a secondary battery 7504 that supplies power to the atomizer, and a cartridge 7502 including a liquid supply bottle and sensors. To enhance safety, a protection circuit to prevent overcharging and over-discharging of the secondary battery 7504 may be electrically connected to the secondary battery 7504. The secondary battery 7504 shown in Figure 21G has external terminals so that it can be connected to a charging device. Since the secondary battery 7504 is the tip when held, it is desirable that its total length is short and its weight is light. A secondary battery according to one aspect of the present invention has high capacity and good cycle characteristics, so it is possible to provide a small and lightweight electronic cigarette 7500 that can be used for a long time over a long period of time.
[0342] Next, an example of an electronic device equipped with a battery control circuit according to one aspect of the present invention will be described with reference to Figure 22.
[0343] Robot 7000 is equipped with a secondary battery, an illuminance sensor, a microphone, a camera, a speaker, a display, various sensors (infrared sensor, ultrasonic sensor, acceleration sensor, piezoelectric sensor, light sensor, gyro sensor, etc.), and a movement mechanism. By applying a battery control circuit according to one aspect of the present invention to the secondary battery of Robot 7000, the secondary battery can be controlled and protected.
[0344] The microphone has the function of detecting acoustic signals such as the user's voice and ambient sounds. The speaker has the function of emitting audio signals such as voice and warning sounds. Robot 7000 can analyze the audio signals input via the microphone and emit the necessary audio signals from the speaker. Robot 7000 can communicate with the user using the microphone and speaker.
[0345] The camera has the function of capturing images of the area around the robot 7000. The robot 7000 also has the function of moving using a mobility mechanism. The robot 7000 can capture images of its surroundings using the camera and analyze the images to detect obstacles and other issues during its movement.
[0346] The aircraft 7120 is equipped with propellers, cameras, and a secondary battery, and has the capability to fly autonomously.
[0347] Furthermore, by applying a battery control circuit according to one aspect of the present invention to the secondary battery of the aircraft 7120, in addition to weight reduction, control and protection of the secondary battery can be achieved.
[0348] The cleaning robot 7140 includes a secondary battery, a display located on the top, multiple cameras located on the sides, brushes, control buttons, and various sensors. Although not shown, the cleaning robot 7140 is also equipped with wheels and a suction port. The cleaning robot 7140 is self-propelled, can detect dirt, and can suck up the dirt from a suction port located on the bottom. By applying a power storage system equipped with a battery control circuit according to one embodiment of the present invention, which is electrically connected to the secondary battery of the cleaning robot 7140, the number of components used can be reduced, and abnormalities such as micro-shorts in the secondary battery can be detected.
[0349] An electric vehicle 7160 is shown as an example of a mobile device. The electric vehicle 7160 has a secondary battery, tires, brakes, steering system, camera, etc. By applying a power storage system equipped with a battery control circuit according to one aspect of the present invention connected to the secondary battery of the electric vehicle 7160, the number of components used can be reduced and abnormalities such as micro-shorts in the secondary battery can be detected.
[0350] Although electric vehicles are described above as an example of a mobile device, the mobile device is not limited to electric vehicles. For example, mobile devices can also include trains, monorails, ships, and aerial vehicles (helicopters, unmanned aerial vehicles (drones), airplanes, rockets, etc.). By applying a power storage system equipped with a battery control circuit according to one aspect of the present invention, which is electrically connected to the secondary battery of these mobile devices, the number of components used can be reduced, and abnormalities such as micro-shorts in the secondary battery can be detected.
[0351] A secondary battery equipped with a battery control circuit according to one aspect of the present invention can be incorporated into a smartphone 7210, a PC 7220 (personal computer), a game console 7240, and the like.
[0352] The smartphone 7210 is an example of a portable information terminal. The smartphone 7210 has a microphone, camera, speaker, various sensors, and a display unit. These peripheral devices are controlled by a charging control circuit. By applying a power storage system equipped with a battery control circuit according to one aspect of the present invention, which is electrically connected to the secondary battery of the smartphone 7210, the number of components used can be reduced, and the secondary battery can be controlled and protected, thereby enhancing safety.
[0353] The PC7220 is an example of a notebook PC. By applying a power storage system equipped with a battery control circuit according to one embodiment of the present invention, which is electrically connected to the secondary battery of a notebook PC, the number of components used can be reduced, and the secondary battery can be controlled and protected, thereby enhancing safety.
[0354] Game console 7240 is an example of a portable game console. Game console 7260 is an example of a home console. A controller 7262 is connected to game console 7260 wirelessly or via a wired connection. By applying a power storage system equipped with a battery control circuit according to one aspect of the present invention to controller 7262, the number of components used can be reduced, and the secondary battery can be controlled and protected, thereby enhancing safety.
[0355] Figure 23A shows an example of a wearable device. Wearable devices use rechargeable batteries as a power source. Furthermore, to enhance water resistance during everyday use or outdoor activities, there is a demand for wearable devices that can be charged wirelessly, in addition to wired charging with exposed connectors.
[0356] For example, it can be mounted on a spectacle-type device 490 as shown in Figure 23A. The spectacle-type device 490 has a frame 490a and a display unit 490b. By mounting the secondary battery in the temple portion of the curved frame 490a, a lightweight spectacle-type device 490 can be made with good weight balance and a long continuous usage time.
[0357] Furthermore, it can be mounted on a headset-type device 491. The headset-type device 491 has at least a microphone section 491a, a flexible pipe 491b, and an earphone section 491c. A secondary battery can be provided inside the flexible pipe 491b or the earphone section 491c.
[0358] Furthermore, it can be mounted on a device 402 that can be directly attached to the body. A secondary battery 402b can be provided within the thin housing 402a of the device 402.
[0359] Furthermore, it can be mounted on a device 403 that can be attached to clothing. A secondary battery 403b can be provided within the thin housing 403a of the device 403.
[0360] Furthermore, it can be mounted on a belt-type device 406. The belt-type device 406 has a belt section 406a and a wireless power supply / receiving section 406b, and a secondary battery can be mounted inside the belt section 406a.
[0361] Furthermore, it can be mounted on a wristwatch-type device 405. The wristwatch-type device 405 has a display unit 405a and a strap unit 405b, and a secondary battery can be provided in either the display unit 405a or the strap unit 405b.
[0362] The display unit 405a can display not only the time, but also various other information such as incoming emails and phone calls.
[0363] Furthermore, since the wristwatch-type device 405 is a wearable device that is worn directly on the wrist, it may be equipped with sensors to measure the user's pulse, blood pressure, etc. This allows for the accumulation of data on the user's exercise level and health, which can be used to help maintain their health.
[0364] A detailed explanation of the wristwatch-type device 405 shown in Figure 23A is provided below.
[0365] Figure 23B shows a perspective view of the wristwatch-type device 405 after it has been removed from the arm.
[0366] A side view is also shown in Figure 23C. Figure 23C shows the internal structure of the secondary battery 913. The secondary battery 913 is located in a position that overlaps with the display unit 405a, making it small and lightweight.
[0367] Furthermore, it is preferable that the wristwatch-type device 405 has a battery control circuit that is electrically connected to the secondary battery 913.
[0368] This embodiment can be appropriately combined with descriptions of other embodiments.
[0369] (Notes regarding the descriptions in this specification, etc.) The above embodiments and a description of each component in those embodiments are provided below.
[0370] The configurations shown in each embodiment can be appropriately combined with the configurations shown in other embodiments to form one aspect of the present invention. Furthermore, if multiple configuration examples are shown within a single embodiment, these configuration examples can be appropriately combined.
[0371] Furthermore, the content described in one embodiment (even if only a part of it) can be applied to, combined with, or substituted for other content described in the same embodiment (even if only a part of it), and / or content described in one or more other embodiments (even if only a part of it).
[0372] The content described in the embodiments refers to the content described using various figures or the content described using text in the specification in each embodiment.
[0373] Furthermore, a diagram (even a part of it) described in one embodiment can be combined with another part of that diagram, another diagram (even a part of it) described in that embodiment, and / or a diagram (even a part of it) described in one or more other embodiments to form even more diagrams.
[0374] Furthermore, in this specification, block diagrams classify components by function and show them as independent blocks. However, in actual circuits, it is difficult to separate components by function, and there may be cases where multiple functions are involved in a single circuit, or where a single function is involved across multiple circuits. Therefore, the blocks in the block diagrams are not limited to the components described in the specification, and can be appropriately rephrased depending on the situation.
[0375] Furthermore, in the drawings, the size, layer thickness, or area are shown at arbitrary sizes for the sake of explanation. Therefore, they are not necessarily limited to that scale. Also, the drawings are schematic for clarity and are not limited to the shapes or values shown in the drawings. For example, they may include variations in signals, voltages, or currents due to noise, or variations in signals, voltages, or currents due to timing differences.
[0376] In this specification and other documents, when describing the connection relationships of a transistor, the terms "one of the source or drain" (or first electrode or first terminal) and "the other of the source or drain" (or second electrode or second terminal) are used for the other of the source and drain. This is because the source and drain of a transistor vary depending on the transistor's structure or operating conditions. The terms source and drain of a transistor can be appropriately rephrased as source (drain) terminal or source (drain) electrode, depending on the context.
[0377] Furthermore, in this specification, the terms "electrode" and "wiring" do not functionally limit these components. For example, "electrode" may be used as part of "wiring," and vice versa. Moreover, the terms "electrode" and "wiring" also include cases where multiple "electrodes" or "wiring" are formed as a single unit.
[0378] Furthermore, in this specification, voltage and potential may be used interchangeably as appropriate. Voltage is the potential difference from a reference potential; for example, if the reference potential is the ground voltage, then voltage can be replaced with potential. Ground potential does not necessarily mean 0V. Note that potential is relative, and depending on the reference potential, it may change the potential applied to wiring, etc.
[0379] In this specification, terms such as "film" and "layer" may be interchanged depending on the context or situation. For example, the term "conductive layer" may be changed to "conductive film." Or, for example, the term "insulating film" may be changed to "insulating layer."
[0380] In this specification, a switch refers to a device that has the function of controlling whether or not to allow current to flow by being in a conductive state (on state) or a non-conductive state (off state). Alternatively, a switch refers to a device that has the function of selecting and switching the path through which current flows.
[0381] In this specification, channel length refers, for example, to the distance between the source and drain in the region where the semiconductor (or the part of the semiconductor through which current flows when the transistor is ON) and the gate overlap in a top view of a transistor, or in the region where the channel is formed.
[0382] In this specification, channel width refers, for example, to the length of the region where the semiconductor (or the part of the semiconductor through which current flows when the transistor is ON) and the gate electrode overlap, or the region in which the channel is formed, where the source and drain face each other.
[0383] In this specification, "A and B are connected" includes not only those that are directly connected, but also those that are electrically connected. Here, "electrically connected" means that when there is an object between A and B that has some kind of electrical effect, it enables the exchange of electrical signals between A and B. [Examples]
[0384] In this embodiment, a method for manufacturing a secondary battery according to one aspect of the present invention and the characteristics of the manufactured secondary battery will be described.
[0385] [Fabrication of positive electrode active material] The positive electrode active material was prepared.
[0386] First, a first mixture containing magnesium and fluorine was prepared. The molar ratio of LiF to MgF2 was weighed to LiF:MgF2 = 1:3, and acetone was added as a solvent for wet mixing and grinding. Mixing and grinding were performed using a ball mill with zirconia balls at 400 rpm for 12 hours. The processed material was collected and was used as the first mixture.
[0387] Next, lithium cobaltate was prepared as a composite oxide containing lithium and cobalt. More specifically, Cellseed C-10N manufactured by Nippon Chemical Industrial Co., Ltd. was prepared.
[0388] Next, the magnesium in the first mixture was weighed so that its atomic weight was 0.5 atomic percent relative to the molecular weight of lithium cobalt oxide, and the mixture was dry-mixed. Mixing was performed using a ball mill with zirconia balls at 150 rpm for 1 hour. The processed material was collected and used as the second mixture.
[0389] Next, the second mixture was placed in an alumina crucible and annealed in an oxygen-atmosphere muffle furnace at 850°C for 60 hours. The alumina crucible was covered during annealing. The oxygen flow rate was 10 L / min. The heating was increased at 200°C / hr and cooled for more than 10 hours. The material after heat treatment was used as the positive electrode active material.
[0390] [Fabrication of the positive electrode] Next, a positive electrode was fabricated using the positive electrode active material prepared above. The positive electrode active material prepared above, acetylene black (AB), and polyvinylidene fluoride (PVDF) were mixed in a weight ratio of positive electrode active material:AB:PVDF = 95:3:2, and a slurry was prepared using NMP as the solvent. The prepared slurry was coated onto a current collector, and the solvent was evaporated. Then, after pressing at 179 kN / m at 120°C, pressing at 1249 kN / m was performed to form a positive electrode active material layer on the current collector, thereby fabricating the positive electrode P1. The amount of positive electrode active material supported in the positive electrode P1 was varied depending on the battery cell used. 20 μm thick aluminum foil was used as the current collector. The positive electrode active material layer was provided on one side of the current collector.
[0391] [Fabrication of the negative electrode] A negative electrode was fabricated using graphite as the negative electrode active material.
[0392] Negative electrodes were fabricated using two types of graphite. The first type had a specific surface area of 6.3 m². 2 Spheroidized natural graphite with an average particle size of 15 μm was used, mixed with CMC-Na and SBR in a weight ratio of graphite:CMC-Na:SBR = 97:1.5:1.5, and a slurry was prepared using water as the solvent. As a second type, a specific surface area of 1.5 m² was prepared. 2 Using MCMB graphite at a weight of / g, a slurry was prepared by mixing it with a conductive additive, CMC-Na, and SBR in a ratio of graphite:conductive additive:CMC-Na:SBR = 96:1:1:2 (by weight), and water was used as the solvent.
[0393] The degree of polymerization of the CMC-Na used ranged from 600 to 800, and the viscosity of the aqueous solution when used as a 1-weight% aqueous solution ranged from 300 mPa·s to 500 mPa·s. In addition, VGCF(registered trademark)-H (manufactured by Showa Denko K.K., fiber diameter 150 nm, specific surface area 13 m²), a vapor-grown carbon fiber, was used as a conductive additive. 2 / g) was used.
[0394] Each prepared slurry was coated onto a current collector and dried to create a negative electrode active material layer on the current collector. 18 μm thick copper foil was used as the current collector. The negative electrode active material layer was provided on both sides of the current collector.
[0395] The negative electrode using the first type of graphite is designated as negative electrode N1, and the negative electrode using the second type of graphite is designated as negative electrode N2. The amount of negative electrode active material supported in negative electrode N1 and negative electrode N2 was varied depending on the battery cell used.
[0396] [Manufacturing of secondary batteries] Using the positive and negative electrodes prepared as described above, a secondary battery with a film casing was fabricated.
[0397] A 50 μm thick cellulose was used as the separator.
[0398] The positive electrode, separator, negative electrode, separator, and positive electrode were stacked in that order. Two positive electrodes were positioned such that the positive electrode active material on one side of the current collector faced the negative electrode active material and separator in between.
[0399] Leads were attached to the positive and negative electrodes, respectively.
[0400] A laminate consisting of a positive electrode, a negative electrode, and a separator was sandwiched between two halves of a folded outer casing, with the laminate positioned so that one end of the lead protruded outside the outer casing. Next, one side of the outer casing was left open, while the other sides were sealed.
[0401] A film consisting of a polypropylene layer, an acid-modified polypropylene layer, an aluminum layer, and a nylon layer was used as the outer casing. The film thickness was approximately 110 μm. The outer casing film was folded so that the nylon layer was on the outer side and the polypropylene layer was on the inner side. The thickness of the aluminum layer was approximately 40 μm, the thickness of the nylon layer was approximately 25 μm, and the combined thickness of the polypropylene layer and the acid-modified polypropylene layer was approximately 45 μm.
[0402] Next, under an argon gas atmosphere, the electrolyte was injected through the side that remained open.
[0403] A total of five types of electrolytes (electrolytes Sol_1, Sol_2, Sol_3, Sol_4, and Sol_5) were prepared, and one of these electrolytes was used in each secondary battery.
[0404] Electrolytes Sol_1 and Sol_2 are described below. EMI-FSA, shown in structural formula (G11), was used as the solvent. In Electrolyte Sol_1, LiFSA (lithium bis(fluorosulfonyl)amide) was used as the electrolyte, with a concentration of 2.15 mol / L. In Electrolyte Sol_2, LiTFSA (lithium bis(trifluoromethanesulfonyl)amide) was used as the electrolyte, with a concentration of 1.50 mol / L.
[0405] [ka]
[0406] The electrolyte solution Sol_3 is described below. BMI-FSA, shown in structural formula (G12), was used as the solvent. LiFSA (lithium bis(fluorosulfonyl)amide) was used as the electrolyte. The concentration of the electrolyte relative to the electrolyte solution was 1.93 mol / L.
[0407] [ka]
[0408] This section describes the electrolyte solution Sol_4. P13-FSA, shown in structural formula (G13), was used as the solvent. LiFSA (lithium bis(fluorosulfonyl)amide) was used as the electrolyte. The electrolyte concentration in the electrolyte solution was 1.80 mol / L.
[0409] [ka]
[0410] The electrolyte Sol_5 is described below. A mixture of ethylene carbonate (EC) and diethyl carbonate (DEC) in a volume ratio of EC:DEC = 3:7 was used as the solvent. Lithium hexafluoride phosphate (LiPF6) was used as the electrolyte. The electrolyte concentration in the electrolyte solution was 1.00 mol / L.
[0411] Table 1 shows the solvent and electrolyte used in each electrolyte solution.
[0412] [Table 1]
[0413] Next, under reduced pressure, one side of the outer casing that had been left open was sealed.
[0414] The secondary battery was manufactured using the above process.
[0415] [aging] Next, we performed aging on the secondary battery.
[0416] First, the secondary battery was sandwiched between two plates and charged at CC (0.01C, capacity 15mAh / g). Then, the two plates were removed, the outer casing was cut at one side under an argon atmosphere to open it, the gas was released, and it was resealed. Here, CC represents constant current. The capacity of the secondary battery was calculated per unit weight of positive electrode active material. The C rate was calculated using 1C according to the charge-discharge cycle conditions. For the evaluation of cycle characteristics, the calculation was performed using a charging voltage of 190mAh / g at 4.4V, 210mAh / g at 4.45V, and 220mAh / g at 4.5V.
[0417] Next, the secondary battery was sandwiched between two plates and charged at CC (0.1C, capacity 120mAh / g). After that, the two plates were removed, and the battery was kept at 0°C for 24 hours. Then, under an argon atmosphere, one side of the casing was cut to open it, the gas was released, and the casing was resealed.
[0418] [Evaluation of charge / discharge characteristics] Next, the secondary battery was sandwiched between two plates, charged using CCCV (0.1C, initial current 0.01C), and discharged using CC (0.2C, 2.5V). The charging voltage was matched to the charging voltage used in the evaluation of the cycle characteristics. Here, CV represents a constant voltage.
[0419] Subsequently, charging was performed using CCCV (0.2C, initial current 0.01C), and discharging was performed using CC (0.2C, 2.5V), repeating the charging and discharging cycle three times. The charging voltage was matched to the charging voltage used in the evaluation of the cycle characteristics.
[0420] [Cycle Characteristics Evaluation 1] Next, the cycle characteristics of the secondary battery were evaluated at 25°C.
[0421] Cells Cel_1 to Cel_7, as shown in Table 2, were fabricated as battery cells. The combinations of positive electrode, negative electrode, and electrolyte solution used, along with the charge voltage, are shown in Table 2.
[0422] [Table 2]
[0423] In terms of C-rate and capacity ratio described later, the positive electrode capacity was set to 190 mAh / g when the charging voltage was 4.4V. When the charging voltage was 4.45V, the positive electrode capacity was set to 210 mAh / g. When the charging voltage was 4.5V, the positive electrode capacity was set to 220 mAh / g.
[0424] The amount of positive electrode active material supported in positive electrode P1 is approximately 6.5 mg / cm³ for cells Cel_1 to Cel_4. 2 Cells Cel_5 to Cel_7 contain approximately 11 mg / cm³ 2 That's what I decided.
[0425] The area of the positive electrode active material layer at positive electrode P1 is 8.194 cm². 2 That's what I decided.
[0426] The amount of negative electrode active material loaded onto negative electrodes N1 and N2 in each battery cell was adjusted so that the capacity ratio was approximately 77% to 83%. Here, the capacity ratio is the value expressed as a percentage of the positive electrode capacity to the negative electrode capacity. In calculating the capacity ratio, the negative electrode capacity was set to 330 mAh / g, based on the weight of the negative electrode active material. The amount of negative electrode active material loaded was calculated by dividing the total amount loaded on the negative electrode active material layers on both sides of the current collector by half.
[0427] Charging was performed using CCCV (0.2C, initial current 0.02C), and discharging was performed using CC (0.2C, 2.5V). The capacity of the secondary battery was calculated based on the weight of the positive electrode active material.
[0428] The evaluation results of the cycle characteristics at 25°C are shown in Figures 24A, 24B, and 25.
[0429] Figure 24A shows the cycle characteristics of cells Cel_1 to Cel_4, with the horizontal axis representing the number of cycles and the vertical axis representing the discharge capacity. Figure 24B shows a magnified view of the vertical axis in Figure 24A.
[0430] Figure 25 shows the cycle characteristics of cells Cel_5 to Cel_7.
[0431] Furthermore, the charge and discharge curves for cells Cel_1 to Cel_4 are shown in Figures 26A, 26B, 27A, and 27B, respectively. The solid line represents the curve for the first cycle, and the dotted line represents the curve for the 100th cycle. In each charge and discharge curve, the vertical axis represents the charging or discharging voltage, and the horizontal axis represents the capacity.
[0432] Figures 26A, 26B, 27A, and 27B show that in all cells Cel_1 to Cel_4, a good charge-discharge curve was obtained in the first cycle, even when the charging voltage was set to a very high value of 4.5V. This suggests that the positive electrode active material of one embodiment of the present invention exhibits high crystal structure stability even at high charging voltages.
[0433] Furthermore, as shown in Figures 24A and 24B, cells Cel_1, Cel_2, and Cel_3, which have an ionic liquid electrolyte, maintained a capacity value of more than 80% of the initial discharge capacity after 300 cycles, demonstrating extremely excellent characteristics.
[0434] Furthermore, as shown in Figure 25, it was found that even in cells where the amount of positive electrode active material and negative electrode active material was increased and the type of graphite was changed, excellent cycle characteristics could be obtained even when the charging voltage was increased to 4.5V.
[0435] From the above, it has been found that in a secondary battery according to one aspect of the present invention, remarkably superior characteristics can be obtained by using a superior positive electrode active material and an ionic liquid as the electrolyte.
[0436] [Cycle Characteristics Evaluation 2] Next, the cycle characteristics of the secondary battery were evaluated at 45°C.
[0437] Cells Cel_11 to Cel_23, as shown in Table 3, were fabricated as battery cells. The combinations of positive electrode, negative electrode, and electrolyte solution used, along with the charge voltage, are shown in Table 3.
[0438] [Table 3]
[0439] The amount of positive electrode active material supported in positive electrode P1 is approximately 6.5 mg / cm³ for cells Cel_11 to Cel_20. 2 Cells Cel_21 to Cel_23 contain approximately 11 mg / cm³ 2 That's what I decided.
[0440] The area of the positive electrode active material layer at positive electrode P1 is 8.194 cm². 2 That's what I decided.
[0441] The amount of negative electrode active material loaded in negative electrode N1 and negative electrode N2 in each battery cell was adjusted so that the capacity ratio was approximately 77% to 83%.
[0442] Charging was performed using CCCV (0.2C, initial current 0.02C), and discharging was performed using CC (0.2C, 2.5V). The capacity of the secondary battery was calculated based on the weight of the positive electrode active material.
[0443] The cycle characteristics of cells Cel_11 to Cel_13 at 45°C are shown in Figure 28A, the cycle characteristics of cells Cel_14 to Cel_16 are shown in Figure 28B, the cycle characteristics of cells Cel_17 to Cel_20 are shown in Figure 29A, and the cycle characteristics of cells Cel_21 to Cel_23 are shown in Figure 29B.
[0444] Figures 28A and 28B show that in cells using an ionic liquid as the electrolyte, the decrease in discharge capacity was extremely small even at a charging voltage of 4.45V. On the other hand, in cells using an organic electrolyte, a decrease in discharge capacity began to be observed at a charging voltage of 4.45V.
[0445] Figure 29A shows that when the charging voltage was set to 4.5V, a gradual decrease in discharge capacity was observed even in cells using ionic liquid as the electrolyte. On the other hand, Figures 24A and 24B show that good characteristics were obtained even when the charging voltage was 4.5V at 25°C. Therefore, it is suggested that by controlling the charging voltage according to the operating temperature range, the decrease in discharge capacity associated with the use of secondary batteries can be suppressed, resulting in longer-life secondary batteries.
[0446] Furthermore, as shown in Figure 29B, it was found that excellent cycle characteristics could be obtained at a charging voltage of 4.45V even in cells where the amount of positive electrode active material and negative electrode active material was increased, and the type of graphite was changed.
[0447] [Evaluation of rating characteristics] Next, the rate characteristics were evaluated at 10°C.
[0448] Cells Cel_31 to Cel_33, shown in Table 4, were fabricated as battery cells. The combinations of positive electrode, negative electrode, and electrolyte solution used, along with the charge voltage, are shown in Table 4.
[0449] [Table 4]
[0450] The amount of positive electrode active material supported in positive electrode P1 is approximately 6.5 mg / cm³. 2 The amount of negative electrode active material supported on negative electrode N1 was adjusted so that the volume ratio was approximately 84% to 87%.
[0451] In the positive electrode, the area of the positive electrode active material layer formed on the current collector is 8.194 cm². 2 That's what I decided.
[0452] Charging was performed using CCCV (0.2C, initial current 0.02C), and discharging was performed using CC (2.5V). Discharging was performed sequentially at discharge rates of 0.1, 0.2, 0.5, and 1[C]. The capacity of the secondary battery was calculated based on the weight of the positive electrode active material.
[0453] The cycle characteristics of cells Cel_31 to Cel_33 at 10°C are shown in Figures 30A, 30B, and 31, respectively.
[0454] Figures 30A, 30B, and 31 show that even under relatively low temperature conditions of 10°C, a discharge capacity of 98% or more of that at 0.1C could be obtained at a rate of 0.5C. Furthermore, at a rate of 1C, Cel_31 achieved a discharge capacity of 97% or more of that at 0.1C, demonstrating extremely excellent rate characteristics. However, a decrease in discharge capacity was observed with Cel_32, remaining at approximately 60% of that at 0.1C. [Explanation of Symbols]
[0455] 111: Positive electrode, 111a: Positive electrode, 115: Negative electrode, 115a: Negative electrode, 121: Positive electrode current collector, 122: Positive electrode active material layer, 123: Separator, 125: Negative electrode current collector, 126: Negative electrode active material layer, 130: Electrode assembly, 131: Electrode assembly, 211a: Positive electrode, 211b: Negative electrode, 212a: Lead, 212b: Lead, 214: Separator, 250: Secondary battery, 251: Outer casing, 400: Secondary battery, 401: Positive electrode cap, 402: Device, 402a: Housing, 402b: Secondary battery, 403: Device, 403a: Housing, 403b: Secondary battery, 405: Wristwatch-type device, 405a: Display unit, 405b: Belt unit, 406: Belt-type device, 406a: Belt unit, 406b: Wireless power supply / receiving unit, 413: Conductive plate, 414: Conductive plate, 415: Energy storage system, 416: Wiring, 420: Control circuit, 421: Wiring, 422: Wiring, 423: Wiring, 424: Conductor, 425: Insulator, 426: Wiring, 490: Glasses-type device, 490a: Frame, 490b: Display unit, 491: Headset-type device, 491a: Microphone unit, 491b: Flexible pipe, 491c: Earphone unit, 500: Secondary battery, 501: Positive electrode current collector, 50 2: Positive electrode active material layer, 503: Positive electrode, 504: Negative electrode current collector, 505: Negative electrode active material layer, 506: Negative electrode, 507: Separator, 508: Electrolyte, 509: Outer casing, 510: Positive electrode lead electrode, 511: Negative electrode lead electrode, 513: Secondary battery, 514: Terminal, 515: Seal, 517: Antenna, 519: Layer, 521: Sealing part, 522: Sealing part, 523: Sealing part, 529: Label, 531: Secondary battery pack, 540: Circuit board, 551: One side, 552: The other side, 590: Control circuit, 590a: Circuit system, 590b: Circuit system, 601: Positive electrode cap, 602: Battery Can, 603: Positive 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, 730: Charging control circuit, 900: Circuit board, 910: Label, 911: Terminal, 912: Battery control circuit, 913: Secondary battery, 914: Antenna, 915: Seal, 916: Layer, 917: Layer, 918: Antenna, 920: Display device, 921: Sensor, 922: Terminal, 930: Housing, 931: Negative electrode, 932: Positive electrode, 933: Separator, 950: Winding body, 951: Terminal, 952: Terminal,971: Electrode, 972: Electrode, 981: Film, 982: Film, 1700: Curved surface, 1701: Plane, 1702: Curve, 1703: Radius of curvature, 1704: Center of curvature, 1800: Center of curvature, 1801: Film, 1802: Radius of curvature, 1803: Film, 1804: Radius of curvature, 7000: Robot, 7100: Portable display device, 7101: Housing, 7102: Display unit, 7103: Operation buttons, 7104: Storage battery, 7120: Flying object, 7140: Cleaning robot, 7160: Electric vehicle, 7200: Portable information terminal, 7201: Housing, 7202: Display unit, 720 3: Band, 7204: Buckle, 7205: Operation Buttons, 7206: Input / Output Terminals, 7207: Icons, 7210: Smartphone, 7220: PC, 7240: Game Console, 7260: Game Console, 7262: Controller, 7300: Display Device, 7304: Display Unit, 7400: Mobile Phone, 7401: Casing, 7402: Display Unit, 7403: Operation Buttons, 7404: External Connection Port, 7405: Speaker, 7406: Microphone, 7407: Rechargeable Battery, 7408: Control Circuit, 7500: Electronic Cigarette, 7501: Atomizer, 7504: Rechargeable Battery, 8000: Display Device, 8001: Housing, 8002: Display unit, 8003: Speaker unit, 8004: Secondary battery, 8005: Voice input device, 8007: Speaker, 8008: Display unit, 8009: Portable information terminal, 8010: Charging module, 8021: Charging device, 8022: Cable, 8024: Energy storage system, 8100: Lighting device, 8101: Housing, 8102: Light source, 8103: Secondary battery, 8104: Ceiling, 8105: Side wall, 8106: Floor, 8107: Window, 8200: Indoor unit, 8201: Housing, 8202: Air outlet, 8203: Secondary battery, 8204: Outdoor unit, 8300: Electrical Refrigerator / freezer, 8301: enclosure, 8302: refrigerator door, 8303: freezer door, 8304: secondary battery, 8400: automobile, 8401: headlight, 8406: electric motor, 8500: automobile, 8600: scooter, 8601: side mirror, 8602: energy storage system, 8603: turn signal, 8604: under-seat storage, 8700: electric bicycle, 8701: battery, 8702: energy storage system, 8703: display unit, 8704: control circuit, 9600: tablet terminal, 9601: notebook personal computer, 9625: switch, 9626: switch,9627: Power switch, 9628: Operation switch, 9629: Fastener, 9630: Housing, 9630a: Housing, 9630b: Housing, 9630B: Housing, 9631: Display unit, 9633: Solar cell, 9634: Control circuit, 9635: Energy storage unit, 9640: Movable part, 9650: Keyboard unit,
Claims
1. It comprises a positive electrode, a negative electrode, an electrolyte, and an outer casing. The positive electrode has a positive electrode active material, The positive electrode active material comprises lithium, cobalt, oxygen, magnesium, and fluorine. The electrolyte has an ionic liquid, The aforementioned ionic liquid is a secondary battery having a compound represented by the following general formula (G7). 【Chemistry 1】 (In the formula, R 25 ~R 27 Each of these independently represents a main chain composed of a hydrogen atom, or two or more atoms selected from an alkyl group having 1 to 4 carbon atoms, a phenyl group, or atoms of C, O, Si, N, S, or P.
2. It comprises a positive electrode, a negative electrode, an electrolyte, and an outer casing. The positive electrode has a positive electrode active material, The positive electrode active material comprises lithium cobalt oxide, magnesium, and fluorine. The electrolyte has an ionic liquid, The aforementioned ionic liquid is a secondary battery having a compound represented by the following general formula (G7). 【Chemistry 2】 (In the formula, R 25 ~R 27 Each of these independently represents a main chain composed of a hydrogen atom, or two or more atoms selected from an alkyl group having 1 to 4 carbon atoms, a phenyl group, or atoms of C, O, Si, N, S, or P.
3. In Claim 1 or Claim 2, As the anion of the ionic liquid, (FSO 2 ), 2 N - Or (CF 3 SO 2 ), 2 N - A secondary battery having
4. In any one of Claims 1 to 3, A secondary battery wherein the electrolyte, in addition to the ionic liquid, comprises one or more selected from ethylene carbonate (EC), propylene carbonate (PC), butylene carbonate, chloroethylene carbonate, vinylene carbonate, γ-butyrolactone, γ-valerolactone, dimethyl carbonate (DMC), DEC, 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, and sultone.
5. In any one of Claims 1 to 4, The negative electrode is a secondary battery having graphite.
Citation Information
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