Secondary battery
A novel manufacturing process for electrodes using graphene compounds involves a drying and heat treatment followed by chemical and thermal reduction, addressing dispersion and conductivity issues, resulting in improved electrode performance.
Patent Information
- Application Number
- JP2025122967
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2019-12-27
- Filing Date
- 2025-07-23
- Publication Date
- 2025-10-03
AI Technical Summary
Graphene's high specific surface area makes it difficult to disperse, leading to aggregation and reduced functionality as a conductive additive in electrodes, while RGO's defects affect conductivity, and existing methods struggle to prevent the active material and conductive additive from peeling off during reduction.
A method involving a drying treatment, followed by a heat treatment at specific temperatures, and then a chemical and thermal reduction process is applied to a mixture containing an active material, graphene compound, binder, and dispersion medium to enhance dispersion and conductivity.
The method ensures uniform distribution and strong binding of graphene compounds in the electrode, improving conductivity and preventing peeling, thereby enhancing the performance of the positive electrode.
Smart Images

Figure 2025146877000001_ABST
Abstract
Description
[Technical Field]
[0001] One embodiment of the present invention relates to an electrode for a secondary battery, a positive electrode for a secondary battery, a secondary battery, and a manufacturing method thereof. Alternatively, the present invention relates to an object, a process, a machine, a manufacture, or a composition of matter. Another embodiment 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 a manufacturing method thereof.
[0002] In this specification, the term "power storage device" refers to all elements and devices having a power storage function, including, for example, storage batteries (also called secondary batteries) such as lithium ion secondary batteries, lithium ion capacitors, all-solid-state batteries, and electric double layer capacitors.
[0003] In this specification, the term "electronic device" refers to any device having a power storage device, and includes electro-optical devices having a power storage device, information terminal devices having a power storage device, and the like. [Background technology]
[0004] In recent years, there has been active development of various power storage devices, including lithium-ion secondary batteries, lithium-ion capacitors, and air batteries, as well as all-solid-state batteries. Demand for high-power, high-capacity lithium-ion secondary batteries has rapidly expanded alongside the development of the semiconductor industry, and they are now essential to the modern information society as a rechargeable energy source, as they are used in a wide range of applications, including mobile phones, smartphones, laptop computers, and other portable information terminals, as well as portable music players, digital cameras, medical devices, and next-generation clean-energy vehicles, including hybrid vehicles (HVs), electric vehicles (EVs), and plug-in hybrid vehicles (PHVs).
[0005] A lithium ion secondary battery has at least a positive electrode and a negative electrode having an active material capable of reversibly inserting and extracting lithium ions, a separator positioned between the positive electrode and the negative electrode, and a non-aqueous electrolyte.
[0006] The positive electrode has a positive electrode active material and a positive electrode current collector, and is formed by applying a positive electrode slurry containing a conductive additive, a binder, and a positive electrode active material to the positive electrode current collector. Similarly, the negative electrode has a negative electrode active material and a negative electrode current collector, and is formed by applying a negative electrode slurry containing a conductive additive, a binder, and a negative electrode active material to the negative electrode current collector.
[0007] Conductive additives are added to efficiently establish a conductive path from the active material to the current collector. However, if the content of conductive additives in the positive or negative electrode is high, the amount of active material per electrode weight decreases, resulting in a decrease in battery capacity. Therefore, there is a demand for highly conductive conductive additives that can efficiently establish a conductive path with a small amount.
[0008] Therefore, in Patent Document 1, a conductive additive such as acetylene black (AB) or graphite particles is mixed to improve the electronic conductivity between active materials or between the active material and the current collector, thereby making it possible to provide a positive electrode active material with high electronic conductivity.
[0009] However, commonly used granular conductive additives such as acetylene black have large average particle sizes, ranging from several tens to several hundreds of nanometers, making it difficult for them to form surface contact with the active material, resulting in point contact. This results in high contact resistance between the active material and the conductive additive. On the other hand, increasing the amount of conductive additive to increase the number of contact points between the active material and the conductive additive reduces the ratio of the active material in the electrode, resulting in a decrease in the charge / discharge capacity of the battery.
[0010] In response to this, Patent Document 2 discloses the use of a single layer or multilayer of graphene (referred to as two-dimensional carbon in the document) as a conductive additive instead of a particulate conductive additive such as acetylene black. Because the single layer or multilayer of graphene has a two-dimensional extension, it improves the adhesion between the active material and the conductive additive, and between conductive additives themselves, thereby improving the conductivity of the electrode.
[0011] Graphene is a carbon material that has incredible electrical, mechanical, and chemical properties and is expected to be applied in a variety of fields, such as field-effect transistors and solar cells. However, graphene is known to be difficult to disperse. In order to use graphene as a conductive additive, it must be dispersed. Non-Patent Document 1 discloses an example of producing graphene by reducing graphene oxide (GO) with thiourea. Note that graphene obtained by reducing graphene oxide as described above is called RGO (reduced graphene oxide). [Prior art documents] [Patent documents]
[0012] [Patent Document 1] Japanese Patent Application Laid-Open No. 2002-110162 [Patent Document 2] Japanese Patent Application Laid-Open No. 2012-64571 [Non-patent literature]
[0013] [Non-Patent Document 1] Liu Y, et al. Journal of Nanoscience and Nanotechnology Carbon, 2011, 11, 10082 Summary of the Invention [Problem to be solved by the invention]
[0014] As mentioned above, graphene has a high specific surface area, making it difficult to disperse, and it can aggregate. When aggregated graphene is used as a conductive additive, it is difficult to ensure its full functionality. Furthermore, RGO has many defects due to oxidation and reduction, raising concerns about its conductivity. Therefore, a method is needed to prevent the active material and conductive additive from peeling off, even during reduction.
[0015] In view of the above, an object of one embodiment of the present invention is to provide a novel method for manufacturing a positive electrode. Alternatively, an object of one embodiment of the present invention is to provide a novel power storage device. Another object of one embodiment of the present invention is to provide a novel positive electrode slurry. Another object of one embodiment of the present invention is to provide a novel positive electrode.
[0016] Note that the description of these problems does not preclude the existence of other problems. Note that one embodiment of the present invention does not necessarily solve all of these problems. Note that problems other than these can be extracted from the description in the specification, drawings, and claims. [Means for solving the problem]
[0017] In one embodiment of the present invention, a mixture containing an active material, a conductive additive having a graphene compound, a binder, and a dispersion medium is applied to a current collector, the mixture is subjected to a drying treatment, the mixture is subjected to a heat treatment at a temperature higher than that of the drying treatment, the graphene compound in the mixture is reduced by a chemical reaction using a reducing agent, and the mixture is subjected to a thermal reduction treatment at a temperature higher than that of the heat treatment.
[0018] In one aspect of the present invention, a mixture containing an active material, a conductive additive having a graphene compound, a binder, and a dispersion medium is applied to a current collector, the mixture is subjected to a drying treatment, the mixture is subjected to a heat treatment at a higher temperature and for a longer time than those in the drying treatment, the graphene compound in the mixture is reduced by a chemical reaction using a reducing agent, and the mixture is subjected to a thermal reduction treatment at a higher temperature than those in the heat treatment.
[0019] In the above configuration, the temperature of the drying treatment is RT or higher and 90°C or lower.
[0020] In the above configuration, the temperature of the heat treatment is 120°C or higher and 140°C or lower.
[0021] In the above configuration, the temperature of the thermal reduction treatment is 120°C or higher and 180°C or lower.
[0022] In the above configuration, the temperature of the heat treatment is 120°C or higher and 140°C or lower, and the temperature of the thermal reduction treatment is 120°C or higher and 180°C or lower.
[0023] In the above configuration, the graphene compound is RGO. [Effects of the Invention]
[0024] According to one embodiment of the present invention, a novel method for manufacturing a positive electrode can be provided. According to another embodiment of the present invention, a novel power storage device can be provided. According to another embodiment of the present invention, a novel positive electrode slurry can be provided. According to another embodiment of the present invention, a novel positive electrode can be provided. [Brief explanation of the drawings]
[0025] [Figure 1] FIG. 1 is a diagram illustrating an example of a method for producing an electrode. [Figure 2] FIG. 2 is a diagram illustrating an example of a method for producing an electrode. [Figure 3] FIG. 3A is a perspective view of a secondary battery, FIG. 3B is a cross-sectional perspective view thereof, and FIG. 3C is a cross-sectional schematic view thereof during charging. [Figure 4] 4A is a perspective view of a secondary battery, FIG. 4B is a cross-sectional perspective view thereof, FIG. 4C is a perspective view of a battery pack including a plurality of secondary batteries, and FIG. 4D is a top view thereof. [Figure 5] 5A and 5B are diagrams illustrating an example of a secondary battery. [Figure 6] 6A and 6B are diagrams illustrating a laminated secondary battery. [Figure 7] 7A and 7B are diagrams illustrating an example of a secondary battery. [Figure 8] 8A, 8B, 8C, 8D, and 8E are perspective views showing electronic devices. [Figure 9]FIG. 9 shows the charge / discharge curves of the samples prepared in the examples. DETAILED DESCRIPTION OF THE INVENTION
[0026] Hereinafter, embodiments of the present invention will be described in detail with reference to the drawings. However, the present invention is not limited to the following description, and it will be readily understood by those skilled in the art that various modifications can be made to the embodiments and details. Furthermore, the present invention should not be interpreted as being limited to the description of the embodiments shown below.
[0027] Graphene can be said to be a material that is electrically conductive and has a structure in which hexagons consisting of six carbon atoms are formed into a two-dimensional sheet. Other examples of such materials include carbon nanotubes. In addition, the number of layers of graphene is not particularly limited in this specification, and it may be single-layer graphene, multi-layer graphene, thin-layer graphene, or few-layer graphene.
[0028] Graphene can be produced by reducing graphene oxide to obtain RGO, as described above, or by physically exfoliating graphite. When reducing graphene oxide, it is difficult to remove all of the oxygen contained in the graphene, and some oxygen remains on the RGO. On the other hand, when graphene is produced by physically exfoliating graphite, the resulting graphene contains only trace amounts of oxygen. The oxygen content of graphene produced by physically exfoliating graphite is preferably 0 atomic% to 4 atomic% or more than 0 atomic% to 4 atomic% or more than 0 atomic% to 4 atomic%, more preferably 0 atomic% to 2 atomic% or more than 0 atomic% to 2 atomic%.
[0029] In this specification and the like, graphene includes single-layer graphene and multi-layer graphene having 2 to 100 layers. Single-layer graphene refers to a sheet of carbon molecules with a single atomic layer having π bonds. Graphene oxide refers to a compound obtained by oxidizing the graphene, and is a plurality of graphenes in which the distance between the single-layer graphenes is greater than 0.34 nm and less than 1.5 nm. In multi-layer graphene, strong interactions occur between the single-layer graphenes. However, graphene oxide contains polar functional groups such as epoxy groups, carbonyl groups, carboxyl groups, and hydroxyl groups, which reduces the interactions between the single-layer graphenes. Therefore, the distance between the single-layer graphenes in graphene oxide is greater than the distance between the single-layer graphenes in multi-layer graphene.
[0030] (Embodiment 1) In this embodiment, an electrode using graphene and a graphene compound as a conductive additive will be described.
[0031] To obtain an electrode, first, an electrode mixture composition is prepared. The electrode mixture composition contains an active material (hereinafter, particulate active material is also referred to as active material particles) and a conductive additive. The electrode mixture composition may contain a dispersion medium (also referred to as a solvent) and a binder, and may be in the form of a slurry or a paste.
[0032] Compounds that have graphene as their basic skeleton and can be used as conductive additives are called "graphene compounds." Graphene, graphene oxide, and RGO (reduced graphene oxide) are all types of graphene compounds.
[0033] Graphene is a carbon material with a crystalline structure in which hexagonal carbon skeletons are arranged in a plane, and has astonishing electrical, mechanical, and chemical properties.
[0034] Graphene compounds also have excellent electrical properties, such as high electrical conductivity, and excellent physical properties, such as high flexibility and high mechanical strength. Graphene compounds are preferred because they enable surface contact with low contact resistance and may reduce electrical resistance. Graphene compounds also have a planar shape and may be very conductive even when thin, allowing a small amount of graphene to efficiently form a conductive path within the active material layer. Therefore, using a graphene compound as a conductive additive is preferred because it increases the contact area between the active material and the conductive additive.
[0035] Graphene oxide is particularly preferred because of its extremely high dispersibility in solvents. When graphene oxide is reduced to form graphene (RGO), some oxygen may remain in the graphene without being completely eliminated, and the graphene may have alkyl groups linked by ether bonds or ester bonds. Furthermore, alcohol intercalated in the graphene may remain in the graphene without being completely eliminated.
[0036] Furthermore, a binder may be added to the mixture of graphene oxide and the active material. By adding the binder, the active material and graphene oxide can be bound together so that the graphene oxide is kept uniformly mixed in the active material.
[0037] Here, the electrode using graphene oxide is subjected to a reduction treatment. Methods for reducing graphene oxide include reduction by heating (hereinafter referred to as thermal reduction), electrochemical reduction by applying a potential to the electrode in an electrolyte solution at which graphene oxide is reduced (hereinafter referred to as electrochemical reduction), and reduction by a chemical reaction using a reducing agent (hereinafter referred to as chemical reduction). At least one of chemical reduction and thermal reduction can be applied as the reduction treatment, but it is more preferable to perform both chemical reduction and thermal reduction.
[0038] Chemical reduction and thermal reduction differ in the functional groups that are easily reduced. Reducing agents are effective at reducing the carbonyl groups (C=O) and carboxyl groups (-COOH) in graphene oxide through proton addition. On the other hand, thermal reduction is effective at reducing the hydroxyl groups (-OH) in graphene oxide through dehydration. Therefore, performing both chemical and thermal reduction can achieve more efficient reduction and increase the conductivity of the reduced graphene oxide.
[0039] In particular, it is preferable to carry out a thermal reduction treatment after the chemical reduction treatment, since this can further improve the conductivity of the graphene that is formed.
[0040] The reduction treatment can eliminate oxygen contained in the graphene oxide, thereby forming an active material layer containing graphene. Note that not all of the oxygen contained in the graphene oxide is eliminated, and some of the oxygen may remain in the graphene.
[0041] On the other hand, the chemical reduction treatment may cause a decrease in the binding strength between the active material and graphene oxide in the electrode mixture composition. For example, when the binder dissolves in the solvent used in the chemical reduction treatment, the binding strength between the active material and graphene oxide weakens, which increases the likelihood of the electrode collapsing in a subsequent process, such as the active material or graphene oxide peeling off from the current collector.
[0042] Therefore, the electrode mixture composition is subjected to a heat treatment before the chemical reduction treatment, which can strengthen the binding force between the active material and graphene oxide in the electrode mixture composition.
[0043] For example, the heat treatment is preferably performed under conditions that allow at least a portion of the binder to crystallize. Crystallization of the binder makes the binder less soluble in the solvent used in the chemical reduction treatment, thereby preventing a decrease in the binding strength between the active material and graphene oxide. Therefore, the heat treatment is preferably performed at a temperature that is equal to or higher than the temperature at which the binder crystallizes and equal to or lower than the temperature at which the binder melts.
[0044] Furthermore, since the reduction rate tends to decrease when a chemical reduction treatment is performed after a thermal reduction treatment, it is advisable to appropriately select conditions for the heat treatment that make it difficult for heat reduction to occur. Therefore, when a thermal reduction treatment is performed after a chemical reduction treatment, it is advisable to set the heat treatment at a temperature lower than the set temperature for the thermal reduction treatment and for a shorter time than the set time for the thermal reduction treatment.
[0045] <Production method> A method for manufacturing an electrode mixture composition and an electrode according to one embodiment of the present invention will be described below with reference to Fig. 1. Note that a mixture containing an active material and a conductive additive may also be referred to as an electrode mixture composition.
[0046] First, a mixture 101 containing at least a dispersion medium and an active material and a graphene compound serving as a conductive additive is prepared (step S11 in FIG. 1). These are mixed (step S12 in FIG. 1) to obtain a mixture 102 (step S13 in FIG. 1). Note that the graphene compound may be one or more of graphene, graphene oxide, and RGO.
[0047] In step S11, the mixing amount of the active material and the graphene compound is important. If the amount of active material is large, the capacity of the produced positive electrode or negative electrode will be large, but the content of the graphene compound, which is a conductive additive, will be relatively small. If the amount of conductive additive is too small, the conductivity will be low and the battery characteristics will deteriorate. Therefore, the mixing amount of the active material and the graphene compound is preferably such that the amount of graphene compound is large enough to ensure conductivity while maximizing the amount of active material.
[0048] The dispersion medium is preferably a polar solvent, such as N-methyl-2-pyrrolidone (abbreviation: NMP), N,N-dimethylformamide (abbreviation: DMF), or dimethyl sulfoxide (abbreviation: DMSO).
[0049] Next, a binder is prepared (step S21 in FIG. 1), and the mixture 102 and the binder are mixed (step S22 in FIG. 1) to obtain a mixture 103 (step S23 in FIG. 1).
[0050] The amount of the binder to be mixed may be appropriately determined depending on the amounts of the graphene compound and the active material. By mixing the binder with the graphene compound dispersed so as to be in surface contact with a plurality of particles of the active material, the active material and the graphene compound can be bound together while maintaining the dispersed state. Depending on the ratio of the active material to the graphene compound, it may not be necessary to add a binder, but adding a binder can improve the strength of the electrode.
[0051] Examples of binders that can be used include polyvinylidene fluoride (PVDF), polyimide, polytetrafluoroethylene, polyvinyl chloride, ethylene propylene diene polymer, styrene-butadiene rubber, acrylonitrile-butadiene rubber, fluororubber, polyvinyl acetate, polymethyl methacrylate, polyethylene, and nitrocellulose.
[0052] Next, a dispersion medium is prepared (step S31 in FIG. 1), and the dispersion medium is added to and mixed with the mixture 103 until a predetermined viscosity is reached (step S32 in FIG. 1), and then the mixture is kneaded (step S33 in FIG. 1). Through these steps, the mixture 104 can be produced (step S34 in FIG. 1).
[0053] If the viscosity of the mixture 103 is approximately a predetermined level, the mixture 103 may be kneaded without adding a dispersion medium (without performing steps S31 and S32) to prepare the mixture 104. The dispersion medium used in this step may be the polar solvent described above. It is preferable to use the same dispersion medium as the one prepared in step S11.
[0054] Next, a current collector is prepared (step S41 in FIG. 1), and the mixture 104, which is the electrode mixture composition prepared in steps S11 to S34, is applied to one or both surfaces of the current collector by a coating method such as a roll coating method using an applicator roll or the like, a screen printing method, a doctor blade method, a spin coating method, or a bar coating method (step S42 in FIG. 1).
[0055] The electrode mixture composition applied to the current collector is dried by a method such as ventilation drying or reduced pressure (vacuum) drying (step S43 in FIG. 1). For example, the drying treatment may be a heat treatment. The atmosphere for the drying (heat treatment) is not particularly limited.
[0056] Here, the drying treatment is preferably carried out at a relatively low temperature of room temperature (RT) or higher and 120° C. or lower, preferably room temperature or higher and 90° C. or lower. In this specification, in numerical ranges described in stages, the upper or lower limit value described in a certain numerical range may be replaced with the upper or lower limit value of another numerical range described in stages.
[0057] In particular, when the drying treatment is performed at a high temperature, binder migration may occur. Specifically, the binder in the dispersion medium may move (also called migration) within the dispersion medium, which may cause the binder to become unevenly distributed within the dispersion medium, resulting in a high probability of a decrease in the strength of the electrode. Furthermore, the graphene compound and the active material may move within the dispersion medium, which may cause the graphene compound and the active material to be unevenly distributed within the dispersion medium. In other words, rapid heat treatment may cause unevenness in the electrode, which may result in peeling of the active material and the graphene compound.
[0058] Subsequently, a heat treatment is carried out at a temperature higher than that of the drying treatment (step S44 in FIG. 1). The atmosphere for the heat treatment is not particularly limited. Preferably, the heat treatment is carried out under reduced pressure (vacuum).
[0059] For example, the heat treatment is preferably carried out under conditions that allow at least a portion of the binder to crystallize, and therefore the heat treatment is preferably carried out at a temperature that is equal to or higher than the temperature at which the binder crystallizes and equal to or lower than the temperature at which the binder melts.
[0060] In addition, it is advisable to appropriately select conditions for the heat treatment that make it difficult for thermal reduction to occur. If thermal reduction occurs, the substituents that can be reduced by chemical reduction may change. Therefore, the reduction rate by chemical reduction may decrease.
[0061] Therefore, for example, the heat treatment is preferably carried out at a temperature of 120°C or higher and 170°C or lower, preferably 120°C or higher and 160°C or lower, and more preferably 120°C or higher and 140°C or lower.
[0062] By performing a drying treatment to evaporate the dispersion medium of the electrode mixture composition, and then performing a heat treatment at a temperature at which the binder crystallizes, the graphene compound and the active material in the electrode mixture composition can be prevented from being unevenly distributed, and the binding force between the active material and graphene oxide in the electrode mixture composition can be strengthened.
[0063] Therefore, it is preferable that the temperature of the heat treatment is higher than that of the preceding drying treatment (step S43) and lower than that of the subsequent thermal reduction treatment (step S45).It is also preferable that the time of the heat treatment is longer than that of the preceding drying treatment and shorter than that of the subsequent thermal reduction treatment.
[0064] As described above, the drying treatment and heat treatment can be carried out for 1 minute to 10 hours, preferably 1 minute to 1 hour, using hot air at 40° C. to 170° C. Note that by gradually increasing the temperature from the drying treatment to the heat treatment, an electrode with a uniform graphene compound and active material can be obtained.
[0065] Next, the electrode mixture composition on the heat-treated current collector is subjected to a reduction treatment (step S45 in FIG. 1). As a reduction method, chemical reduction is preferably used. In addition to chemical reduction, thermal reduction may also be applied.
[0066] The reducing agent used in the chemical reduction may be an organic acid such as ascorbic acid, hydrogen, sulfur dioxide, sulfurous acid, sodium sulfite, sodium hydrogen sulfite, ammonium sulfite, hydrazine, dimethylhydrazine, hydroquinone, or phosphorous acid.
[0067] When ascorbic acid is used as the reducing agent, ascorbic acid is first dissolved in a solvent. The solvent can be any one of water, NMP, and ethanol, or a mixture of these two or more. The current collector and electrode mixture composition prepared in step S44 are then immersed in the solution. This treatment can be carried out for, for example, 30 minutes to 10 hours, with approximately one hour being preferred. Heating is also preferred, as it can shorten the chemical reduction time. For example, the solution can be heated to a temperature between room temperature and 100°C, with approximately 60°C being preferred.
[0068] Alternatively, a thermal reduction treatment may be carried out after the chemical reduction treatment. The thermal reduction treatment is preferably carried out under reduced pressure. For example, a glass tube oven can be used for heating. The glass tube oven can be heated under reduced pressure of about 1 kPa.
[0069] The optimal heating temperature and time vary depending on the conductive additive and binder materials used. For example, when graphene oxide is used as the conductive additive and PVDF is used as the binder, the temperature is preferably at a level that sufficiently reduces the graphene oxide but does not adversely affect the PVDF, such as by crystallizing it. Specifically, the temperature should be between 125°C and 200°C, preferably between 125°C and 180°C.
[0070] At temperatures below 100°C, the reduction of graphene oxide may not proceed sufficiently, while temperatures above 250°C may have a negative effect on PVDF, causing the electrode mixture composition to easily peel off from the current collector.
[0071] The heating time is preferably 1 hour or more and 20 hours or less. If the heating time is less than 1 hour, graphene oxide may not be sufficiently reduced. If the heating time is more than 20 hours, productivity decreases.
[0072] Through the above steps, a positive electrode or a negative electrode having a graphene compound as a conductive additive can be produced (Step S46 in FIG. 1).
[0073] As described above, the electrode mixture composition may contain a binder and a dispersion medium in addition to the active material and the conductive additive. When the electrode mixture composition is prepared using acetylene black, which is often used as the conductive additive, there are no particular limitations on the procedure for mixing the dispersion medium, active material, conductive additive, and binder. However, when a graphene compound, particularly a graphene compound with a low oxygen content prepared by a method of physically (mechanically) exfoliating graphite, is used as the conductive additive as in one embodiment of the present invention, depending on the procedure for mixing the dispersion medium, active material, conductive additive, and binder, the graphene compound may aggregate, making it difficult to prepare an electrode that exhibits good battery characteristics.
[0074] 2, the mixture 101 may be prepared by mixing the dispersion medium and the active material (steps S01 and S02). By performing steps S01 and S02, the mixture 101 can be prepared with an appropriate viscosity or concentration, which is preferable. Note that the operations in FIG. 2 that are the same as those in FIG. 1 are the same as those in FIG. 1, and therefore detailed explanations thereof will be omitted.
[0075] <Material> Here, a manufacturing method and components of an electrode according to one embodiment of the present invention will be described.
[0076] ≪Active material≫ The material that can be used for the active material described above may be any material that can insert and extract carrier ions such as lithium ions, and a positive electrode active material or a negative electrode active material can be used.
[0077] <Cathode active material> As the positive electrode active material, for example, compounds such as LiFeO2, LiCoO2, LiNiO2, LiMn2O4, V2O5, Cr2O5, and MnO2 can be used.
[0078] Alternatively, a lithium-containing composite phosphate (general formula LiMPO4 (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. can be mentioned.
[0079] In particular, LiFePO4 is preferable because it satisfies the requirements for a cathode active material, such as safety, stability, high capacity density, high potential, and the presence of lithium ions that can be extracted during initial oxidation (charging), in a balanced manner.
[0080] Examples of the lithium-containing composite metal oxide having a layered rock salt-type crystal structure include lithium cobalt oxide (LiCoO2), LiNiO2, LiMnO2, Li2MnO3, LiNi 0.8 Co 0.2 O2 and other NiCo-based (general formula is LiNi x Co 1-x O2 (0 < x < 1)), LiNi 0.5 Mn 0.5NiMn-based such as O2 (general formula: LiNi x Mn 1-x O2 (0 < x < 1)), LiNi 1 / 3 Mn 1 / 3 Co 1 / 3 O2 etc. NiMnCo-based (also referred to as NMC. General formula: LiNi x Mn y Co 1-x-y O2 (x > 0, y > 0, x + y < 1)) can be mentioned. Furthermore, Li(Ni 0.8 Co 0.15 Al 0.05 )O2, Li2MnO3 - LiMO2 (M = Co, Ni, Mn), etc. can also be mentioned.
[0081] In particular, LiCoO2 is preferable because it has advantages such as a large capacity, being more stable in the air compared to LiNiO2, and being thermally more stable compared to LiNiO2.
[0082] Examples of lithium-containing composite manganese oxides having a spinel-type crystal structure include, for example, LiMn2O4, Li 1+x Mn 2-x O4 (0 < x < 2), LiMn 2-x Al x O4 (0 < x < 2), LiMn 1.5 Ni 0.5 O4, etc.
[0083] When a small amount of lithium nickelate (LiNi 1-x M x O2 (0 < x < 1)) or LiNi 1-x M x O2 (0 < x < 1) (M = Co, Al, etc.)) is mixed with a lithium-containing composite manganese oxide having a spinel-type crystal structure containing manganese such as LiMn2O4, it has advantages such as suppressing the elution of manganese and is preferable.
[0084] Or, a lithium-containing composite silicate such as the general formula Li<00,00051>MSiO4 (M is one or more of Fe(II), Mn(II), Co(II), Ni(II), 0 ≤ j ≤ 2) can be used. Representative examples of the general formula Li (2-j) MSiO4 include Li (2-j) Fe (2-j) SiO4、Li (2-j) Mn (2-j) SiO4、Li (2-j) Co k SiO4、Li l Ni (2-j) SiO4等がある。
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[0092] [[ID=XXX]] [[ID=XXX]]<XXX]] [[ID=XXX]]
[0093] [[ID=XXX]] [[ID=XXX]]<000045'4> [[ID=XXX]]
[0094] (2-j) Fe (2-j) SiO4, Li (2-j) Mn (2-j) SiO4, Li (2-j) Co k SiO4, Li <@ l Ni (2-j)(2-j) FeSiO4, Li (2-j) NiSiO4, Li (2-j) CoSiO4, Li (2-j) MnSiO4, Li (2-j) Fe k Ni l SiO4, Li (2-j) Fe k Co l SiO4, Li (2-j) Fe k 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 u SiO4 (r + s + t + u is 1 or less, 0 < r < 1, 0 < s < 1, 0 < t < 1, 0 < u < 1), etc. can be mentioned.
[0085] Also, as the positive electrode active material, A xNasicon-type compounds represented by the general formula M2(XO4)3 (A = Li, Na, Mg, M = Fe, Mn, Ti, V, Nb, Al, X = S, P, Mo, W, As, Si) can be used. Examples of Nasicon-type compounds include Fe2(MnO4)3, Fe2(SO4)3, and Li3Fe2(PO4)3. Positive electrode active materials include compounds represented by the general formula Li2MPO4F, Li2MP2O7, and Li5MO4 (M = Fe and Mn), perovskite-type fluorides such as FeF3, metal chalcogenides (sulfides, selenides, tellurides) such as TiS2 and MoS2, lithium-containing composite vanadium oxides with an inverse spinel crystal structure such as LiMVO4, and vanadium oxides (VO5, VO6). 13 Materials such as manganese oxides, organic sulfur compounds, etc. can be used.
[0086] In addition, when the carrier ions are alkali metal ions or alkaline earth metal ions other than lithium ions, alkali metals (e.g., sodium, potassium, etc.) or alkaline earth metals (e.g., calcium, strontium, barium beryllium, magnesium, etc.) may be used as the positive electrode active material in place of lithium in the above-mentioned lithium-containing substance.
[0087] The positive electrode active material can be a granular active material consisting of secondary particles having an average particle size and particle size distribution, which is obtained by mixing raw material compounds in a predetermined ratio, firing the mixture, and then pulverizing, granulating, and classifying the fired product by an appropriate means.
[0088] <Negative electrode active material> As the negative electrode active material, for example, an alloy-based material or a carbon-based material can be used.
[0089] The negative electrode active material can be an element capable of undergoing charge-discharge reactions through alloying and dealloying reactions with lithium. For example, materials containing at least one of silicon, tin, gallium, aluminum, germanium, lead, antimony, bismuth, silver, zinc, cadmium, and indium can be used. These elements have a larger capacity than carbon, and silicon, in particular, has a high theoretical capacity of 4200 mAh / g. For this reason, silicon is preferred as the negative electrode active material. Compounds containing these elements can also be used. Examples include SiO, Mg2Si, Mg2Ge, SnO, SnO2, Mg2Sn, SnS2, V2Sn3, FeSn2, CoSn2, Ni3Sn2, Cu6Sn5, Ag3Sn, Ag3Sb, Ni2MnSb, CeSb3, LaSn3, La3Co2Sn7, CoSb3, InSb, and SbSn. Here, elements that can undergo charge-discharge reactions by alloying / dealloying reactions with lithium, and compounds containing such elements, are sometimes called alloy-based materials.
[0090] In this specification and the like, SiO refers to, for example, silicon monoxide. Alternatively, SiO refers to SiO x Here, x preferably has a value close to 1. For example, x is preferably 0.2 or more and 1.5 or less, and more preferably 0.3 or more and 1.2 or less.
[0091] Examples of carbonaceous materials that can be used include graphite, easily graphitizable carbon (soft carbon), non-graphitizable carbon (hard carbon), carbon nanotubes, graphene, and carbon black.
[0092] Examples of graphite include artificial graphite and natural graphite. Examples of artificial graphite include mesocarbon microbeads (MCMB), coke-based artificial graphite, and pitch-based artificial graphite. Here, spherical graphite having a spherical shape can be used as the artificial graphite. For example, MCMB may have a spherical shape and is preferred. Furthermore, it is relatively easy to reduce the surface area of MCMB, and this may be preferred. Examples of natural graphite include flake graphite and spherical natural graphite.
[0093] When lithium ions are inserted into graphite (when lithium-graphite intercalation compounds are formed), graphite exhibits a low potential similar to that of metallic lithium (0.05 V to 0.3 V vs. Li / Li + ) This allows lithium-ion secondary batteries to exhibit high operating voltages. Furthermore, graphite is preferred because it has advantages such as a relatively high capacity per unit volume, a relatively small volume expansion, low cost, and a higher level of safety compared to lithium metal.
[0094] In addition, titanium dioxide (TiO2), lithium titanium oxide (Li4Ti5O 12 ), lithium-graphite intercalation compound (Li x C6), niobium pentoxide (Nb2O5), tungsten oxide (WO2), molybdenum oxide (MoO2), and other oxides can be used.
[0095] In addition, the negative electrode active material is a composite nitride of lithium and transition metals, Li3N-type 3-x M x N (M=Co, Ni, Cu) can be used. For example, Li 2.6 Co 0.4 N3 has a large charge / discharge capacity (900mAh / g, 1890mAh / cm 3 ) and is preferred.
[0096] When a composite nitride of lithium and a transition metal is used, lithium ions are contained in the negative electrode active material, and therefore it can be preferably combined with a material that does not contain lithium ions, such as V2O5 or Cr3O8, as the positive electrode active material. Even when a material containing lithium ions is used as the positive electrode active material, the composite nitride of lithium and a transition metal can be used as the negative electrode active material by first desorbing the lithium ions contained in the positive electrode active material.
[0097] In addition, materials that undergo a conversion reaction can also be used as the negative electrode active material. For example, transition metal oxides that do not form alloys with lithium, such as cobalt oxide (CoO), nickel oxide (NiO), and iron oxide (FeO), can be used as the negative electrode active material. Materials that undergo a conversion reaction include oxides such as Fe2O3, CuO, Cu2O, RuO2, and Cr2O3, and CoS 0.89 It also occurs with sulfides such as NiS and CuS, nitrides such as Zn3N2, Cu3N and Ge3N4, phosphides such as NiP2, FeP2 and CoP3, and fluorides such as FeF3 and BiF3.
[0098] As the conductive additive and binder that can be contained in the negative electrode active material layer, the same materials as the conductive additive and binder that can be contained in the positive electrode active material layer can be used.
[0099] <Current collector> When a positive electrode is produced, a positive electrode current collector is used as the current collector, and when a negative electrode is produced, a negative electrode current collector is used.
[0100] The positive electrode current collector can be made of a highly conductive material, such as a metal such as stainless steel, gold, platinum, aluminum, or titanium, or an alloy thereof. It is preferable that the material used for the positive electrode current collector does not dissolve at the potential of the positive electrode. Aluminum alloys containing elements that improve heat resistance, such as silicon, titanium, neodymium, scandium, or molybdenum, can also be used. The positive electrode current collector may also be made of a metal element that reacts with silicon to form a silicide. Examples of metal elements that react with silicon to form a silicide include zirconium, titanium, hafnium, vanadium, niobium, tantalum, chromium, molybdenum, tungsten, cobalt, and nickel. The current collector can be in the form of a foil, plate (sheet), mesh, punched metal, or expanded metal, as appropriate. It is preferable to use a current collector with a thickness of 5 μm to 30 μm.
[0101] The negative electrode current collector may be made of the same material as the positive electrode current collector, but it is preferable that the negative electrode current collector be made of a material that does not alloy with carrier ions such as lithium.
[0102] (Embodiment 2) In this embodiment, an example of the shape of a secondary battery including a positive electrode active material manufactured by the manufacturing method described in the previous embodiment will be described. The description in the previous embodiment can be referred to for the material used in the secondary battery described in this embodiment.
[0103] [Coin-type secondary battery] First, an example of a coin-type secondary battery will be described. Fig. 3A is an external view of a coin-type (single-layer flat) secondary battery, and Fig. 3B is a cross-sectional view thereof.
[0104] In a coin-type secondary battery 300, a positive electrode can 301, which also serves as a positive electrode terminal, and a negative electrode can 302, which also serves as a negative electrode terminal, are insulated and sealed by a gasket 303 made of polypropylene or the like. The positive electrode 304 is formed by a positive electrode current collector 305 and a positive electrode active material layer 306 provided in contact with the positive electrode current collector. The negative electrode 307 is formed by a negative electrode current collector 308 and a negative electrode active material layer 309 provided in contact with the negative electrode current collector.
[0105] It is to be noted that the positive electrode 304 and the negative electrode 307 used in the coin-type secondary battery 300 each only need to have an active material layer formed on one side.
[0106] Positive electrode can 301 and negative electrode can 302 can be made of a metal such as nickel, aluminum, or titanium that is corrosion-resistant to the electrolyte, or an alloy of these metals or an alloy of these metals with other metals (e.g., stainless steel). Furthermore, to prevent corrosion by the electrolyte, it is preferable to coat them with nickel, aluminum, or the like. Positive electrode can 301 is electrically connected to positive electrode 304, and negative electrode can 302 is electrically connected to negative electrode 307.
[0107] These negative electrode 307, positive electrode 304, and separator 310 are impregnated with an electrolyte, and as shown in FIG. 3(B), the positive electrode 304, separator 310, negative electrode 307, and negative electrode can 302 are stacked in this order with the positive electrode can 301 facing downwards, and the positive electrode can 301 and the negative electrode can 302 are crimped together via a gasket 303 to produce a coin-type secondary battery 300.
[0108] By using the active material layer described in the above embodiment for the positive electrode 304, the coin-type secondary battery 300 can be less susceptible to deterioration and highly safe.
[0109] [Separator] The secondary battery preferably has a separator. Examples of the separator include fibers containing cellulose, such as paper, nonwoven fabrics, glass fibers, ceramics, and synthetic fibers made of nylon (polyamide), vinylon (polyvinyl alcohol fiber), polyester, acrylic, polyolefin, and polyurethane. The separator is preferably formed into a bag shape and disposed so as to encase either the positive electrode or the negative electrode.
[0110] The separator may have a multilayer structure. For example, an organic material film such as polypropylene or polyethylene can be coated with a ceramic material, a fluorine-based material, a polyamide material, or a mixture of these. Examples of ceramic materials that can be used include aluminum oxide particles and silicon oxide particles. Examples of fluorine-based materials that can be used include PVDF and polytetrafluoroethylene. Examples of polyamide materials that can be used include nylon and aramid (meta-aramid, para-aramid).
[0111] Coating with ceramic materials improves oxidation resistance, suppressing separator degradation during high-voltage charging and discharging and improving the reliability of secondary batteries. Coating with fluorine-based materials also improves adhesion between the separator and electrodes, improving output characteristics. Coating with polyamide materials, especially aramid, improves heat resistance, improving the safety of secondary batteries.
[0112] For example, both sides of a polypropylene film may be coated with a mixed material of aluminum oxide and aramid, or the surface of the polypropylene film that contacts the positive electrode may be coated with a mixed material of aluminum oxide and aramid, and the surface that contacts the negative electrode may be coated with a fluorine-based material.
[0113] When a separator with a multilayer structure is used, the safety of the secondary battery can be maintained even if the overall thickness of the separator is thin, and therefore the capacity per volume of the secondary battery can be increased.
[0114] Here, we will explain the current flow during charging of a secondary battery using Figure 3C. When a lithium-based secondary battery is considered as a closed circuit, the movement of lithium ions and the flow of current are in the same direction. In lithium-based secondary batteries, the anode (positive electrode) and cathode (negative electrode) are interchanged during charging and discharging, and the oxidation and reduction reactions alternate. Therefore, the electrode with the higher reaction potential is called the positive electrode, and the electrode with the lower reaction potential is called the negative electrode. Therefore, in this specification, the positive electrode will be called the "positive electrode" or "+ electrode (plus electrode)," and the negative electrode will be called the "negative electrode" or "- electrode (minus electrode)," regardless of whether the battery is being charged or discharged, whether a reverse pulse current is being applied, or whether a charging current is being applied. Using the terms anode (positive electrode) and cathode (negative electrode), which are related to oxidation and reduction reactions, could lead to confusion because their meanings are reversed during charging and discharging. Therefore, the terms anode (positive electrode) and cathode (negative electrode) will not be used in this specification. If the terms anode and cathode are used, it should be clearly stated whether they are used during charging or discharging, and whether they correspond to the positive or negative pole.
[0115] 3C is connected to a charger to charge the secondary battery 300. As the charging of the secondary battery 300 progresses, the potential difference between the electrodes increases.
[0116] [Cylindrical secondary battery] An example of a cylindrical secondary battery will be described with reference to Figures 4A to 4D. As shown in Figure 4A, a cylindrical secondary battery 600 has a positive electrode cap (battery lid) 601 on the top surface and a battery can (external can) 602 on the side and bottom surfaces. The positive electrode cap and battery can (external can) 602 are insulated by a gasket (insulating packing) 610.
[0117] FIG. 4B is a schematic diagram showing the cross section of a cylindrical secondary battery. Inside a hollow cylindrical battery can 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 sandwiched between them. Although not shown, the battery element is wound around a center pin. One end of the battery can 602 is closed and the other end is open. The battery can 602 can be made of a metal that is corrosion-resistant to the electrolyte, such as nickel, aluminum, or titanium, or an alloy of these metals or alloys of these metals with other metals (e.g., stainless steel). Furthermore, a coating of nickel, aluminum, or the like is preferable to prevent corrosion by the electrolyte. Inside the battery can 602, the wound battery element, in which the positive electrode, negative electrode, and separator are wound, is sandwiched between a pair of opposing insulating plates 608 and 609. A nonaqueous electrolyte (not shown) is poured into the battery can 602, in which the battery element is provided. The non-aqueous electrolyte may be the same as that used in coin-type secondary batteries.
[0118] Because the positive and negative electrodes used in cylindrical secondary batteries are wound, it is preferable to form active materials 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 a metal material such as aluminum. The positive electrode terminal 603 is resistance-welded to a safety valve mechanism 612, and the negative electrode terminal 607 is resistance-welded to the bottom of the battery can 602. The safety valve mechanism 612 is electrically connected to the positive electrode cap 601 via a PTC (Positive Temperature Coefficient) element 611. The safety valve mechanism 612 cuts off the electrical connection between the positive electrode cap 601 and the positive electrode 604 when the internal pressure of the battery exceeds a predetermined threshold. The PTC element 611 is a thermosensitive resistor whose resistance increases as the temperature rises, and the increased resistance limits the amount of current to prevent abnormal heat generation. Barium titanate (BaTiO3) based semiconductor ceramics or the like can be used for the PTC element.
[0119] 4C , a module 615 may be configured by sandwiching a plurality of secondary batteries 600 between conductive plates 613 and 614. The plurality of secondary batteries 600 may be connected in parallel, in series, or in series after being connected in parallel. By configuring a module 615 having a plurality of secondary batteries 600, a large amount of power can be extracted.
[0120] FIG. 4D is a top view of the module 615. For clarity, the conductive plate 613 is shown with a dotted line. As shown in FIG. 4D, the module 615 may have conductive wires 616 that electrically connect the multiple secondary batteries 600. The conductive plate 613 can be superimposed on the conductive wires 616. A temperature control device 617 may also be provided between the multiple secondary batteries 600. When the secondary batteries 600 are overheated, they can be cooled by the temperature control device 617, and when the secondary batteries 600 are too cold, they can be heated by the temperature control device 617. This makes it less likely that the performance of the module 615 will be affected by the outside temperature.
[0121] By using the positive electrode active material manufactured by the manufacturing method described in the above embodiment for the positive electrode 604, the cylindrical secondary battery 600 can be one that is less susceptible to deterioration and has high safety.
[0122] [Example of secondary battery structure] Another structural example of the power storage device will be described with reference to FIGS. 5 and 6. FIG.
[0123] 5A shows the structure of wound body 950. Winding body 950 has a negative electrode 931, a positive electrode 932, and a separator 933. Winding body 950 is a wound body in which negative electrode 931 and positive electrode 932 are stacked on top of each other with separator 933 sandwiched therebetween, and the stacked sheet is wound. Note that multiple stacks of negative electrode 931, positive electrode 932, and separator 933 may be stacked.
[0124] A secondary battery 913 shown in Fig. 5B has a wound body 950 provided with terminals 951 and 952 inside a housing 930. The wound body 950 is impregnated with an electrolyte inside the housing 930. The terminal 952 contacts the housing 930, and the terminal 951 is not in contact with the housing 930 by using an insulating material or the like. Note that in Fig. 5B, for convenience, the housing 930 is shown separated, but in reality, the wound body 950 is covered by the housing 930, and the terminals 951 and 952 extend outside the housing 930. The housing 930 can be made of a metal material (e.g., aluminum) or a resin material.
[0125] [Laminated secondary battery] Next, an example of a laminated secondary battery will be described with reference to FIGS. 6A and 6B.
[0126] Fig. 6A shows an example of an external view of a laminated secondary battery 500. Fig. 6B shows another example of an external view of a laminated secondary battery 500.
[0127] 6A and 6B show a positive electrode 503, a negative electrode 506, a separator 507, an outer casing 509, a positive electrode lead electrode 510, and a negative electrode lead electrode 511.
[0128] The laminated secondary battery 500 has a plurality of wound or strip-shaped positive electrodes 503 , separators 507 , and negative electrodes 506 .
[0129] The wound body has a negative electrode 506, a positive electrode 503, and a separator 507. The wound body is formed by stacking the negative electrode 506 and the positive electrode 503 with the separator 507 sandwiched between them, in the same manner as the wound body described in Fig. 5A, and winding the laminated sheet.
[0130] A secondary battery may be provided in which a plurality of rectangular positive electrodes 503, separators 507, and negative electrodes 506 are arranged in a space formed by a film that serves as exterior body 509.
[0131] A method for producing a secondary battery having a plurality of rectangular positive electrodes 503, separators 507, and negative electrodes 506 will be described below.
[0132] First, the negative electrode 506, the separator 507, and the positive electrode 503 are laminated. In this embodiment, an example is shown in which five pairs of negative electrodes and four pairs of positive electrodes are used. Next, the tab regions of the positive electrodes 503 are joined together, and the positive electrode lead electrode 510 is joined to the tab region of the outermost positive electrode. For example, ultrasonic welding or the like may be used for joining. Similarly, the tab regions of the negative electrode 506 are joined together, and the negative electrode lead electrode 511 is joined to the tab region of the outermost negative electrode.
[0133] Next, the negative electrode 506 , the separator 507 and the positive electrode 503 are placed on the exterior body 509 .
[0134] The outer casing 509 may be a three-layer laminate film having a highly flexible thin metal film made of aluminum, stainless steel, copper, nickel, etc. on a film made of a material such as polyethylene, polypropylene, polycarbonate, ionomer, or polyamide, and further having an insulating synthetic resin film made of polyamide resin, polyester resin, etc. on the thin metal film as the outer surface of the outer casing.
[0135] The exterior body 509 is folded to sandwich the laminated layer. Then, the outer periphery of the exterior body 509 is joined. For example, thermocompression bonding may be used for the joining. During this joining, an area (hereinafter referred to as an inlet) that is not joined is provided in a part (or one side) of the exterior body 509 so that an electrolyte can be introduced later.
[0136] Next, the electrolyte solution is introduced into the inside of the exterior body 509 through an inlet provided in the exterior body 509. The introduction of the electrolyte solution is preferably carried out under a reduced pressure atmosphere or an inert atmosphere. Finally, the inlet is joined. In this manner, the secondary battery 500, which is a laminated secondary battery, can be produced.
[0137] By using the active material layer described in the above embodiment for the positive electrode 503, the secondary battery 500 can be less susceptible to deterioration and highly safe.
[0138] This embodiment mode can be freely combined with other embodiment modes.
[0139] (Embodiment 3) In this embodiment, the configuration of a solid-state secondary battery will be described. In this specification, the term "solid-state battery" refers not only to secondary batteries that use only a solid electrolyte, but also to batteries that use a polymer gel electrolyte, a small amount of electrolytic solution, or a combination of these.
[0140] As shown in FIG. 7A, a secondary battery 400, which is a solid-state battery according to one embodiment of the present invention, includes a positive electrode 410, a solid electrolyte layer 420, and a negative electrode 430. FIG. 7A illustrates a case where a solid electrolyte is used. When a solid electrolyte is used, the installation of a separator or spacer is unnecessary. Furthermore, since the entire battery can be solidified, there is no risk of leakage, and safety is dramatically improved.
[0141] The positive electrode 410 includes a positive electrode current collector 413 and a positive electrode active material layer 414. The positive electrode active material layer 414 includes a positive electrode active material 411 and a solid electrolyte 421. The positive electrode active material 411 can be the positive electrode active material described in the previous embodiment. The positive electrode active material layer 414 may include a conductive material and a binder. Examples of the conductive material include carbon materials such as carbon black (e.g., acetylene black (AB)), graphite particles, carbon nanotubes (CNTs), and fullerenes. Examples of the conductive material include metal powders and fibers of copper, nickel, aluminum, silver, and gold, as well as conductive ceramic materials. A graphene compound may also be used as the conductive material. Graphene compounds may have excellent electrical properties, such as high conductivity, and excellent physical properties, such as high flexibility and high mechanical strength. Graphene compounds have a planar shape. Graphene compounds enable surface contact with low contact resistance. Furthermore, even when thin, graphene compounds can exhibit very high conductivity, allowing for efficient formation of conductive paths within the active material layer with a small amount. Therefore, using a graphene compound as a conductive additive is preferable because it can increase the contact area between the active material and the conductive additive. It is also preferable because it can reduce electrical resistance. Examples of graphene compounds include graphene, multilayer graphene, multi-graphene, graphene oxide, multilayer graphene oxide, multi-graphene oxide, reduced graphene oxide, reduced multilayer graphene oxide, reduced multi-graphene oxide, and graphene quantum dots. Reduced graphene oxide is also known as reduced graphene oxide (hereinafter, RGO). Here, RGO refers to a compound obtained by reducing graphene oxide (GO). When using active material particles with a small particle size, such as active material particles with a diameter of 1 μm or less, the specific surface area of the active material particles is large, requiring more conductive paths connecting the active material particles. In such cases, it is particularly preferable to use a graphene compound that can efficiently form conductive paths even in a small amount.In this specification, graphene oxide refers to a material containing carbon and oxygen, having a sheet-like shape, and having functional groups, particularly epoxy groups, carboxy groups, or hydroxy groups. Furthermore, a mesh-like graphene compound sheet (hereinafter referred to as a graphene compound net or graphene net) can be formed by bonding multiple graphene compounds together. When an active material is coated with a graphene net, the graphene net can also function as a binder that binds the active material together. Therefore, the amount of binder can be reduced or eliminated, thereby improving the ratio of active material to the electrode volume or weight. In other words, the capacity of a secondary battery can be increased.
[0142] Solid electrolyte layer 420 has solid electrolyte 421. Solid electrolyte layer 420 is located between positive electrode 410 and negative electrode 430, and is a region that has neither positive electrode active material 411 nor negative electrode active material 431.
[0143] The negative electrode 430 includes a negative electrode current collector 433 and a negative electrode active material layer 434. The negative electrode active material layer 434 includes a negative electrode active material 431 and a solid electrolyte 421. The negative electrode active material layer 434 may also include a conductive material and a binder. When metallic lithium is used for the negative electrode 430, the negative electrode 430 may not include a solid electrolyte 421, as shown in FIG. 7B. Using metallic lithium for the negative electrode 430 is preferable because it can improve the energy density of the secondary battery 400. Note that in FIGS. 7A and 7B, the solid electrolyte 421, the positive electrode active material 411, and the negative electrode active material 431 are shown as spherical particles, which is an ideal particle shape. However, since they actually have various shapes, they are illustrated schematically for convenience.
[0144] The solid electrolyte 421 included in the solid electrolyte layer 420 and the material used for the solid electrolyte layer 420 may be, for example, a sulfide-based solid electrolyte, an oxide-based solid electrolyte, a halide-based solid electrolyte, or the like.
[0145] Sulfide-based solid electrolytes include thiosilicon-based (Li 10 GeP2S12 , Li 3.25 Ge 0.25 P 0.75 S4, etc.), sulfide glasses (70Li2S·30P2S5, 30Li2S·26B2S3·44LiI, 63Li2S·38SiS2·1Li3PO4, 57Li2S·38SiS2·5Li4SiO4, 50Li2S·50GeS2, etc.), sulfide crystallized glasses (Li7P3S 11 , Li 3.25 P 0.95 Sulfide-based solid electrolytes have the advantages of being highly conductive, being able to be synthesized at low temperatures, and being relatively soft, which makes it easy to maintain conductive paths even after charging and discharging.
[0146] Oxide-based solid electrolytes include materials with a perovskite crystal structure (La 2 / 3-x Li 3x TiO3, etc.), materials with NASICON-type crystal structure (Li 1-X Al X Ti 2-X (PO4)3, etc.), materials with garnet-type crystal structure (Li7La3Zr2O 12 etc.), materials with LISICON-type crystal structure (Li 14 ZnGeO 16 etc.), LLZO(Li7La3Zr2O 12 ), oxide glass (Li3PO4-Li4SiO4, 50Li4SiO4·50Li3BO3, etc.), oxide glass-ceramics (Li 1.07 Al 0.69 Ti 1.46 (PO4)3, Li 1.5 Al 0.5 Ge 1.5 Oxide-based solid electrolytes have the advantage of being stable in the atmosphere.
[0147] In this specification and the like, the NASICON-type crystal structure refers to a compound represented by M2(XO4)3 (M: transition metal, X: S, P, As, Mo, W, etc.), which has a structure in which MO6 octahedra and XO4 tetrahedra are arranged three-dimensionally, sharing vertices.
[0148] Halide-based solid electrolytes include LiAlCl4, Li3InBr6, LiF, LiCl, LiBr, LiI, etc. Composite materials in which these halide-based solid electrolytes are filled into the pores of porous alumina or porous silica can also be used as solid electrolytes.
[0149] Also, different types of solid electrolytes may be mixed and used.
[0150] The solid electrolyte may be mixed with an electrolytic solution.
[0151] The electrolyte to be mixed with the solid electrolyte is preferably a highly purified electrolyte with a low content of granular dust and elements other than the constituent elements of the electrolyte (hereinafter simply referred to as "impurities"). Specifically, the weight ratio of impurities to the electrolyte is preferably 1% or less, preferably 0.1% or less, and more preferably 0.01% or less.
[0152] In addition, additives such as vinylene carbonate, propane sultone (PS), tert-butylbenzene (TBB), fluoroethylene carbonate (FEC), lithium bis(oxalato)borate (LiBOB), or dinitrile compounds such as succinonitrile and adiponitrile may be added to the electrolyte solution mixed with the solid electrolyte. The concentration of the added material may be, for example, 0.1 wt % to 5 wt % of the total solvent.
[0153] Furthermore, a polymer gel electrolyte obtained by swelling a polymer with an electrolytic solution may be used as a material to be mixed with the solid electrolyte.
[0154] The use of a polymer gel electrolyte improves safety against leakage, etc. It also enables the secondary battery to be made thinner and lighter.
[0155] Examples of polymers that can be gelled include silicone gel, acrylic gel, acrylonitrile gel, polyethylene oxide gel, polypropylene oxide gel, and fluorine-based polymer gel.
[0156] Examples of polymers that can be used include polymers having a polyalkylene oxide structure, such as polyethylene oxide (PEO), PVDF, polyacrylonitrile, and copolymers containing these. For example, PVDF-HFP, a copolymer of PVDF and hexafluoropropylene (HFP), can be used. The polymer formed may also have a porous shape.
[0157] This embodiment mode can be freely combined with other embodiment modes.
[0158] (Fourth embodiment) In this embodiment, an example in which a secondary battery according to one embodiment of the present invention is mounted in an electronic device or a mobile object will be described.
[0159] 8A to 8E show examples of mounting the secondary battery in electronic equipment, as described in part of Embodiment 2. Examples of electronic equipment that uses the bendable secondary battery include television devices (also called televisions or television receivers), computer monitors, digital cameras, digital video cameras, digital photo frames, mobile phones (also called mobile phones or mobile phone devices), portable game machines, personal digital assistants, audio playback devices, and large game machines such as pachinko machines.
[0160] Furthermore, the secondary battery can be applied to a mobile object, typically an automobile. Examples of the automobile include next-generation clean energy automobiles such as hybrid electric vehicles (HEVs), electric vehicles (EVs), and plug-in hybrid electric vehicles (PHEVs), and the secondary battery can be applied as one of the power sources mounted on the automobile. The mobile object is not limited to an automobile. Examples of the mobile object include trains, monorails, ships, aircraft (helicopters, unmanned aerial vehicles (drones), airplanes, and rockets), electric bicycles, and electric motorcycles, and the secondary battery of one embodiment of the present invention can be applied to these mobile objects.
[0161] Furthermore, the secondary battery of this embodiment may be applied to a ground-mounted charging device installed in a house or a charging station installed in a commercial facility.
[0162] 8A shows an example of a mobile phone. Mobile phone 2100 includes a display unit 2102 built into a housing 2101, as well as operation buttons 2103, an external connection port 2104, a speaker 2105, and a microphone 2106. Mobile phone 2100 also includes a secondary battery 2107.
[0163] The mobile phone 2100 can execute various applications such as mobile phone calls, e-mail, document browsing and creation, music playback, internet communication, and computer games.
[0164] The operation button 2103 can be provided with various functions, such as time setting, power on / off operation, wireless communication on / off operation, silent mode activation / deactivation, power saving mode activation / deactivation, etc. For example, the functions of the operation button 2103 can be freely set by an operating system built into the mobile phone 2100.
[0165] The mobile phone 2100 is also capable of performing standardized short-range wireless communication, and can also make hands-free calls by communicating with a wirelessly enabled headset, for example.
[0166] The mobile phone 2100 also has an external connection port 2104, which allows direct data exchange with other information terminals via a connector. Charging can also be performed via the external connection port 2104. Charging may also be performed by wireless power supply without using the external connection port 2104.
[0167] The mobile phone 2100 preferably has a sensor, such as a fingerprint sensor, a pulse sensor, a body temperature sensor, or other human body sensor, a touch sensor, a pressure sensor, or an acceleration sensor.
[0168] FIG. 8B shows an unmanned aerial vehicle 2300 having multiple rotors 2302. The unmanned aerial vehicle 2300 is sometimes called a drone. The unmanned aerial vehicle 2300 includes a secondary battery 2301 according to one embodiment of the present invention, a camera 2303, and an antenna (not shown). The unmanned aerial vehicle 2300 can be remotely controlled via the antenna. The secondary battery according to one embodiment of the present invention is highly safe and can be used safely for a long period of time, making it suitable as a secondary battery to be installed in the unmanned aerial vehicle 2300.
[0169] As shown in FIG. 8C, a secondary battery 2602 including a plurality of secondary batteries 2601 of one embodiment of the present invention may be mounted in a hybrid electric vehicle (HEV), an electric vehicle (EV), a plug-in hybrid electric vehicle (PHEV), or other electronic devices.
[0170] 8D shows an example of a vehicle equipped with secondary battery 2602. Vehicle 2603 is an electric vehicle that uses an electric motor as a power source for traveling, or a hybrid vehicle that can appropriately select and use an electric motor or an engine as a power source for traveling.
[0171] Before being installed in a vehicle, lithium-ion batteries undergo performance tests, reliability tests, abuse tests, etc. In particular, reliability tests check to see if the battery is damaged or if there are any electrical contact defects due to random waves caused by vibrations while the vehicle is running or vibrations in the drivetrain.
[0172] For example, when a lithium-ion battery is dropped and hit, the internal structure of the battery moves downward, and the separator is sandwiched between the positive electrode current collector and the negative electrode plate, which may cause damage and lead to a short circuit during charging. Therefore, by using a secondary battery of one embodiment of the present invention having high electrode strength, a lithium-ion battery that can withstand a reliability test can be provided.
[0173] A vehicle 2603 using an electric motor has multiple ECUs (Electronic Control Units), and the ECUs perform engine control and the like. The ECUs include a microcomputer. The ECUs are connected to a Controller Area Network (CAN) provided in the electric vehicle. The CAN is one of the serial communication standards used for in-vehicle LANs. By using the secondary battery of one embodiment of the present invention, the secondary battery can function as a power source for the ECU, thereby realizing a vehicle with high safety and a long cruising range.
[0174] The secondary battery can not only drive an electric motor (not shown) but also supply power to light-emitting devices such as headlights, room lights, etc. The secondary battery can also supply power to display devices and semiconductor devices such as a speedometer, a tachometer, and a navigation system that the vehicle 2603 has.
[0175] The vehicle 2603 can charge the secondary battery of the secondary battery 2602 by receiving power supply from an external charging facility using a plug-in system, a contactless power supply system, or the like.
[0176] FIG. 8E shows a state in which a vehicle 2603 is being charged via a cable from a ground-mounted charging device 2604. Charging may be performed using a predetermined charging method, connector specifications, or the like, such as CHAdeMO (registered trademark) or Combo. For example, plug-in technology can be used to charge a secondary battery 2602 mounted on the vehicle 2603 using external power supply. Charging can be performed by converting AC power to DC power via a conversion device such as an AC-DC converter. The charging device 2604 may be installed in a home as shown in FIG. 8E, or may be a charging station installed in a commercial facility.
[0177] Although not shown, a power receiving device can be mounted on a vehicle and power can be supplied contactlessly from a ground power transmitting device to charge the vehicle. In the case of this contactless power supply method, by incorporating a power transmitting device into a road or an exterior wall, charging can be performed not only while the vehicle is stopped but also while the vehicle is moving. This contactless power supply method can also be used to transmit and receive power between vehicles. Furthermore, a solar cell can be installed on the exterior of the vehicle to charge the secondary battery while the vehicle is stopped or moving. For such contactless power supply, an electromagnetic induction method or a magnetic field resonance method can be used.
[0178] 8E includes a power storage system 2612 including a secondary battery which is one embodiment of the present invention, and a solar panel 2610. The power storage system 2612 is electrically connected to the solar panel 2610 via wiring 2611 or the like. The power storage system 2612 may be electrically connected to a ground-mounted charging device 2604. The power obtained by the solar panel 2610 can be charged to the power storage system 2612. The power stored in the power storage system 2612 can be charged to a secondary battery 2602 included in a vehicle 2603 via the charging device 2604.
[0179] The power stored in the power storage system 2612 can also be supplied to other electronic devices in the house. Therefore, even when power cannot be supplied from a commercial power source due to a power outage or the like, the power storage system 2612 of one embodiment of the present invention can be used as an uninterruptible power supply, enabling the use of electronic devices.
[0180] This embodiment mode can be implemented in appropriate combination with other embodiment modes. [Example]
[0181] In this example, a secondary battery (Sample 1A) having a positive electrode containing reduced graphene oxide as a conductive material was fabricated, and its characteristics were evaluated.
[0182] <Preparation of secondary battery> For evaluation, a coin-type secondary battery of the CR2032 type (diameter 20 mm, height 3.2 mm) was fabricated.
[0183] Commercially available LCO (C-10N manufactured by Nippon Chemical Industry Co., Ltd.) was used as the positive electrode active material for the secondary battery. Graphene oxide (manufactured by Nishina Materials Co., Ltd., which was produced using the modified Hummers method in the oxidation process) was used as the conductive material. This will be reduced in a later process. PVDF (TA5130 manufactured by Solvay Co., Ltd.) was used as the binder. The positive electrode active material, conductive material, and binder were mixed in a ratio of 95:3:2 (by weight) to prepare a slurry. NMP was used as the solvent. The slurry was applied to a current collector. Aluminum foil was used as the current collector.
[0184] Next, a drying treatment was carried out in a ventilation drying oven, in which heat treatment was carried out for 1 hour at a set temperature of 50°C in a ventilated state, and then the set temperature was raised to 80°C and heat treatment was carried out at 80°C for 30 minutes.
[0185] Subsequently, a heat treatment was carried out at a set temperature of 130° C. for 10 hours under vacuum.
[0186] Next, the graphene oxide in the positive electrode active material layer was reduced.
[0187] First, chemical reduction was performed. L-ascorbic acid was used as the reducing agent for chemical reduction. The solvent was water:NMP = 1:9 (volume ratio), and a 0.078 mol / L L-ascorbic acid solution was prepared. The electrode coated with the positive electrode active material layer was immersed in the ascorbic acid solution and reacted at 60°C for 1 hour.
[0188] Subsequently, thermal reduction was carried out at a heating temperature of 170°C for 10 hours.
[0189] After the reduction treatment, the electrode was pressed at a linear pressure of 210 kN / m, and then pressed again at a linear pressure of 1467 kN / m to form a positive electrode.
[0190] Lithium metal was used as the counter electrode.
[0191] The electrolyte used in the electrolytic solution was 1 mol / L lithium hexafluorophosphate (LiPF6), and the electrolytic solution was a mixture of ethylene carbonate (EC) and diethyl carbonate (DEC) in a volume ratio of EC:DEC = 3:7, with 2 wt% vinylene carbonate (VC) added as an additive.
[0192] The separator was made of polypropylene with a thickness of 25 μm.
[0193] The positive electrode can and the negative electrode can were made of stainless steel (SUS).
[0194] <Battery characteristics and cycle characteristics> Next, a charge-discharge test was carried out on Sample 1A. Charge was performed using CCCV (0.5C, 4.2V, cut-off current 0.05C) and discharge was performed using CC (0.5C, cut-off voltage 2.5V), and measurements were taken at 25°C. In this example, 1C was set to 137mA / g.
[0195] The charge-discharge curve of Sample 1A is shown in Figure 9. Sample 1A was able to be charged and discharged sufficiently. Furthermore, the strength of the positive electrode active material layer of Sample 1A was also good.
[0196] Thus, the secondary battery using graphene oxide as the conductive material was excellent in terms of the strength of the positive electrode active material layer, discharge characteristics, etc. [Explanation of symbols]
[0197] 101 mixture, 102 mixture, 103 mixture, 104 mixture, 300 secondary battery, 301 positive electrode can, 302 negative electrode can, 303 gasket, 304 positive electrode, 305 positive electrode current collector, 306 positive electrode active material layer, 307 negative electrode, 308 negative electrode current collector, 309 negative electrode active material layer, 310 separator, 400 secondary battery, 410 positive electrode, 411 positive electrode active material, 413 positive electrode current collector, 414 positive electrode active material layer, 420 solid electrolyte layer, 421 solid electrolyte, 430 negative electrode, 431 negative electrode active material, 433 negative electrode current collector, 434 negative electrode active material layer, 500 secondary battery, 503 positive electrode, 506 negative electrode, 507 separator, 508 Electrolyte, 509 outer casing, 510 positive electrode lead electrode, 511 negative electrode lead electrode, 520 solid electrolyte layer, 600 secondary battery, 601 positive electrode cap, 602 battery can, 603 positive electrode terminal, 604 positive electrode, 605 separator, 606 negative electrode, 607 negative electrode terminal, 608 insulating plate, 609 insulating plate, 611 PTC element, 612 safety valve mechanism, 613 conductive plate, 614 conductive plate, 615 module, 616 conducting wire, 617 temperature control device, 904 positive electrode active material, 913 secondary battery, 930 housing, 931 negative electrode, 932 positive electrode, 933 separator, 950 wound body, 951 terminal, 952 terminal, 2100 mobile phone, 2101 housing, 2102 Display unit, 2103 operation button, 2104 external connection port, 2105 speaker, 2106 microphone, 2107 secondary battery, 2300 unmanned aerial vehicle, 2301 secondary battery, 2302 rotor, 2303 camera, 2601 secondary battery, 2602 secondary battery, 2603 vehicle, 2604 charging device, 2610 solar panel, 2611 wiring, 2612 power storage system
Claims
1. a plurality of positive electrode active material particles, a conductive material, an electrolyte solution, and a binder; the conductive material includes a graphene compound, the graphene compound has an alkyl group bonded by an ether bond or an ester bond, the graphene compound is in surface contact with the positive electrode active material particles, The binder is at least partially crystallized.
2. In claim 1, The secondary battery, wherein the binder is polyvinylidene fluoride.
3. In claim 1 or claim 2, The secondary battery, wherein the electrolyte comprises ethylene carbonate and diethyl carbonate.
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