Electrode and battery
By optimizing the distribution of rubber-based and water-soluble binders across multiple layers in the electrode, the internal resistance and adhesiveness issues in secondary batteries are addressed, enhancing battery performance.
Patent Information
- Application Number
- PCT/JP2024/045562
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2023-12-27
- Filing Date
- 2024-12-23
- Publication Date
- 2025-07-03
AI Technical Summary
Existing electrodes in secondary batteries, such as lithium-ion batteries, face challenges in reducing internal resistance and improving adhesiveness between layers while minimizing binder usage, leading to potential delamination issues.
The electrode design incorporates a specific distribution of rubber-based and water-soluble binders across four layers, adhering to relational expressions that optimize binder ratios and tortuosity, thereby enhancing adhesiveness and reducing internal resistance.
This design effectively reduces the internal resistance and improves the cycle characteristics of batteries by optimizing binder distribution, resulting in better adhesiveness and performance.
Smart Images

Figure JP2024045562_03072025_PF_FP_ABST
Abstract
Description
Electrodes and batteries
[0001] The present disclosure relates to electrodes and batteries.
[0002] In recent years, secondary batteries such as lithium-ion batteries have been widely used in applications requiring high capacity, such as in-vehicle applications and power storage applications. The electrodes that constitute such batteries have a significant impact on battery performance. For this reason, various studies have been conducted on electrodes.
[0003] An electrode is usually composed of a current collector and an electrode mixture layer containing an electrode active material and a binder. For example, Patent Document 1 discloses a technique for improving the adhesion between layers in an electrode having a plurality of electrode mixture layers while suppressing the amount of binder. Specifically, Patent Document 1 discloses a technique for improving the adhesion between active material layers and between the current collector and the active material layers in a laminate for a secondary battery having a first active material layer and a second active material layer that function as the electrode mixture layers, and a current collector, by making the binder present in a larger amount in a specific region.
[0004] Japanese Patent Application Laid-Open No. 2020-161299
[0005] According to the technology disclosed in Patent Document 1, when an electrode mixture layer is composed of multiple layers, the problem of interlayer peeling can be avoided by improving the adhesion between the layers. However, electrodes are required not only to avoid the problem of peeling but also to improve the characteristics of batteries.
[0006] The present disclosure provides an electrode that can reduce the internal resistance of a battery.
[0007] The electrode of the present disclosure comprises: an electrode current collector; and an electrode mixture layer disposed on the electrode current collector, wherein the electrode mixture layer contains an electrode active material and a binder, and the binder contains a rubber-based binder and a water-soluble binder, and the electrode mixture layer is divided into four equal parts in the thickness direction to produce four divided layers, which are referred to in order from the surface side of the electrode mixture layer toward the electrode current collector as a first divided layer, a second divided layer, a third divided layer, and a fourth divided layer, and the mass ratio (%) of the rubber-based binder contained in the first divided layer to the total mass of the rubber-based binder contained in the electrode mixture layer is denoted as A1, the mass ratio (%) of the rubber-based binder contained in the second divided layer is denoted as B1, the mass ratio (%) of the rubber-based binder contained in the third divided layer is denoted as C1, and the mass ratio (%) of the rubber-based binder contained in the fourth divided layer is denoted as When the mass ratio (%) of the rubber-based binder contained in the electrode mixture layer is D1, the mass ratio (%) of the water-soluble binder contained in the first division layer relative to the total mass of the water-soluble binder contained in the electrode mixture layer is A2, the mass ratio (%) of the water-soluble binder contained in the second division layer is B2, the mass ratio (%) of the water-soluble binder contained in the third division layer is C2, and the mass ratio (%) of the water-soluble binder contained in the fourth division layer is D2, the electrode mixture layer satisfies the following relational expressions (1), (2), and (3): A1 + D1 < B1 + C1 (1) A2 + D2 < B2 + C2 (2) A1 < A2 (3)
[0008] According to the technology of the present disclosure, an electrode that can reduce the internal resistance of a battery can be provided.
[0009] Fig. 1 is a cross-sectional view showing a schematic configuration of an electrode according to embodiment 1. Fig. 2 is a longitudinal cross-sectional view showing a schematic example of a battery according to embodiment 2.
[0010] [Findings that Form the Basis of the Present Disclosure] The present inventors have conducted extensive research and found that in order to improve battery characteristics, specifically to reduce internal resistance, it is necessary to appropriately control the binder distribution in the electrode, taking into consideration the type of binder. This has led the present inventors to conceive of the electrode of the present disclosure, which will be described below.
[0011] Hereinafter, embodiments of the present disclosure will be described in detail with reference to the drawings. The present disclosure is not limited to the following embodiments.
[0012] [Embodiments of the Present Disclosure] (Embodiment 1) Fig. 1 is a cross-sectional view showing a schematic configuration of an electrode according to Embodiment 1. An electrode 10 according to Embodiment 1 includes an electrode current collector 11 and an electrode mixture layer 12 disposed on the electrode current collector 11. The electrode mixture layer 12 contains an electrode active material and a binder. The binder contains a rubber-based binder and a water-soluble binder. That is, the electrode mixture layer 12 contains both a rubber-based binder and a water-soluble binder.
[0013] Here, the four divided layers resulting from dividing the electrode mixture layer 12 into four equal parts in the thickness direction are referred to as a first divided layer 12a, a second divided layer 12b, a third divided layer 12c, and a fourth divided layer 12d, in that order from the surface 121 side of the electrode mixture layer 12 toward the electrode current collector 11 side. Furthermore, the mass ratio (%) of the rubber-based binder contained in the first divided layer 12a to the total mass of the rubber-based binder contained in the electrode mixture layer 12 is represented by A1, the mass ratio (%) of the rubber-based binder contained in the second divided layer 12b is represented by B1, the mass ratio (%) of the rubber-based binder contained in the third divided layer 12c is represented by C1, and the mass ratio (%) of the rubber-based binder contained in the fourth divided layer 12d is represented by D1. Furthermore, the mass ratio (%) of the water-soluble binder contained in the first division layer 12a to the total mass of the water-soluble binder contained in the electrode mixture layer 12 is A2, the mass ratio (%) of the water-soluble binder contained in the second division layer 12b is B2, the mass ratio (%) of the water-soluble binder contained in the third division layer 12c is C2, and the mass ratio (%) of the water-soluble binder contained in the fourth division layer 12d is D2. In this case, the electrode mixture layer 12 satisfies the following relational expressions (1), (2), and (3): A1 + D1 < B1 + C1 (1), A2 + D2 < B2 + C2 (2), and A1 < A2 (3).
[0014] In the present disclosure, the surface 121 of the electrode mixture layer 12 means the surface that comes into contact with the electrolyte when the electrode 10 constitutes a battery, and is located on the opposite side to the surface facing the electrode current collector 11.
[0015] The first divided layer 12a, the second divided layer 12b, the third divided layer 12c, and the fourth divided layer 12d are virtual layers obtained by assuming that the electrode mixture layer 12 is divided into four equal parts in the thickness direction. Therefore, the electrode mixture layer 12 is not limited to a configuration consisting of multiple layers. The electrode mixture layer 12 may be formed of a single layer or multiple layers. Furthermore, when the electrode mixture layer 12 is formed of multiple layers, the number of layers is not particularly limited. The electrode mixture layer 12 may have a two-layer structure, a three-layer structure, a four-layer structure, or a five-layer or more structure.
[0016] The distribution of the rubber-based binder and the water-soluble binder in the electrode mixture layer 12 is controlled so that the electrode mixture layer 12 satisfies the above-mentioned relational expressions (1), (2), and (3). As a result, the electrode 10 according to embodiment 1 can reduce the internal resistance of the battery, specifically the direct current internal resistance (DCR).
[0017] When the above relational expressions (1) and (2) are satisfied, both the rubber-based binder and the water-soluble binder are present in a greater mass ratio in the intermediate region in the thickness direction of the electrode mixture layer 12. That is, in the region including the surface 121 of the electrode mixture layer 12 and the region close to the electrode current collector 11, the rubber-based binder and the water-soluble binder are present in a smaller mass ratio than in the intermediate region. By distributing both the rubber-based binder and the water-soluble binder in this manner, it is believed that it is possible to effectively reduce the resistance, for example, at the contact interface between the electrode mixture layer 12 and the electrode current collector 11, and at the contact interface between the electrode 10 and the electrolyte when the electrode 10 constitutes a battery. Furthermore, when the above relational expression (3) is satisfied, in the region including the surface 121 of the electrode mixture layer 12, the mass ratio A2 of the water-soluble binder, which generally has low resistance, is greater than the mass ratio A1 of the rubber-based binder, which generally has high resistance. It is believed that controlling the distribution of the rubber binder and the water-soluble binder in this manner in the region including the surface 121 of the electrode mixture layer 12 can effectively reduce the resistance at the contact interface between the electrode 10 and the electrolyte when the electrode 10 is used to form a battery. For these reasons, it is believed that an electrode 10 having an electrode mixture layer 12 that satisfies the above relational expressions (1), (2), and (3) can reduce the internal resistance of the battery.
[0018] The electrode 10 having the electrode mixture layer 12 that satisfies the above relational expression (3) can also improve the cycle characteristics of the battery.
[0019] Furthermore, the electrode 10 according to embodiment 1, in which the electrode mixture layer 12 satisfies both of the above relational expressions (1) and (2), can achieve excellent adhesion in the electrode mixture layer 12 and further excellent adhesion between the electrode mixture layer 12 and the current collector 11, similar to the electrode disclosed in Patent Document 1.
[0020] Here, in this specification, a rubber-based binder refers to a binder containing a rubber-based polymer compound. The rubber-based polymer compound is not particularly limited as long as it is a polymer compound having rubber elasticity. Examples of rubber-based polymer compounds include styrene-butadiene rubber, high-styrene rubber, ethylene-propylene rubber, butyl rubber, chloroprene rubber, butadiene rubber, isoprene rubber, acrylonitrile-butadiene rubber, acrylonitrile rubber, fluororubber, acrylic rubber, and silicone rubber. The rubber-based binder may be, for example, at least one selected from the group consisting of styrene-butadiene rubber, high-styrene rubber, ethylene-propylene rubber, butyl rubber, chloroprene rubber, butadiene rubber, isoprene rubber, acrylonitrile-butadiene rubber, acrylonitrile rubber, fluororubber, acrylic rubber, and silicone rubber.
[0021] In this specification, the term "water-soluble binder" refers to a binder containing a water-soluble polymer compound. The water-soluble polymer compound is not particularly limited, but examples include synthetic polymer-based water-soluble polymer compounds (hereinafter referred to as "synthetic polymer compounds") and polysaccharide-based water-soluble polymer compounds (hereinafter referred to as "polysaccharide polymer compounds"). The water-soluble binder may contain one type selected from synthetic polymer compounds and polysaccharide polymer compounds, either singly or in combination of two or more types. Examples of synthetic polymer compounds include polyvinyl alcohol, polyvinylpyrrolidone, polyethylene oxide, polymethacrylic acid, polyacrylic acid, and derivatives thereof. Examples of polysaccharide polymer compounds include cellulose or a salt thereof, carboxymethyl cellulose or a salt thereof (CMC-Na, etc.), and the like. The water-soluble binder may contain, for example, at least one selected from the group consisting of polyvinyl alcohol, polyvinylpyrrolidone, polyethylene oxide, derivatives of polyvinyl alcohol, derivatives of polyvinylpyrrolidone, derivatives of polyethylene oxide, polymethacrylic acid (MAA), salts of polymethacrylic acid (MAA-Na, MAA-K, etc., which may also be partially neutralized salts), polyacrylic acid (PAA), salts of polyacrylic acid (PAA-Na, PAA-K, etc., which may also be partially neutralized salts), cellulose, salts of cellulose, carboxymethyl cellulose, and salts of carboxymethyl cellulose.
[0022] The mass ratios of the rubber binder in the first segment layer 12a, the second segment layer 12b, the third segment layer 12c, and the fourth segment layer 12d can be determined by elemental mapping of a cross section along the thickness direction of the electrode mixture layer 12. Quantitative analysis of the rubber binder by elemental mapping can be performed using an electron probe microanalyzer (EPMA). When the rubber binder to be measured contained in the electrode mixture layer 12 is, for example, a rubber polymer compound having a C=C bond, bromine, for example, is added to the C=C bond, and the bromine is analyzed by elemental mapping using EPMA on the cross section of the electrode mixture layer 12. This allows the content of the rubber binder in each of the segment layers to be determined. Because bromine selectively undergoes an addition reaction with the C=C bond, it is suitable as an element for staining the rubber polymer compound having a C=C bond in the electrode mixture layer 12. The method for adding bromine to the rubber-based polymer compound is not particularly limited, and a gas-phase reaction in a bromine atmosphere or a method of immersing the electrode 10 in a bromine solution may be used. When the rubber-based binder to be measured contained in the electrode mixture layer 12 is a rubber-based polymer compound that does not have a C═C bond, the content of the rubber-based binder may be measured by elemental mapping using an EPMA using a cross section of the electrode mixture layer 12 along the thickness direction that has been stained with osmium tetroxide.
[0023] The EPMA conditions are set, for example, as follows: Electron beam diameter: about 1 μm Acceleration voltage: about 15 kV Beam current: about 50 nA Number of pixels: about 255×255 pixels Measurement time: about 30 msec / pixel
[0024] The mass ratios of the water-soluble binder in the first segment layer 12a, the second segment layer 12b, the third segment layer 12c, and the fourth segment layer 12d can be determined by elemental mapping of a cross section along the thickness direction of the electrode mixture layer 12. Quantitative analysis of the water-soluble binder by elemental mapping can be performed using EPMA. If the water-soluble binder to be measured contained in the electrode mixture layer 12 is, for example, a water-soluble polymer compound having a carboxyl group, the carboxyl group can be modified with, for example, ruthenium, and the ruthenium can be analyzed by elemental mapping using EPMA to determine the content of the water-soluble binder in each of the above-mentioned segments. Even if the water-soluble binder to be measured contained in the electrode mixture layer 12 is a water-soluble polymer compound without a carboxyl group, the content of the water-soluble binder can be measured by modifying the water-soluble polymer compound with a metal element that can modify the specific functional groups constituting the water-soluble polymer compound, and then analyzing the element used for the modification by elemental mapping.
[0025] The electrode mixture layer 12 may satisfy the following relational expressions (4) and (5): A1<B1 (4) A2<B2 (5)
[0026] Since the electrode mixture layer 12 satisfies the above-mentioned relational expressions (4) and (5), i.e., the mass ratio A1 of the rubber-based binder in the first division layer 12a is smaller than the mass ratio B1 of the rubber-based binder in the second division 12b, and the mass ratio A2 of the water-soluble binder in the first division layer 12a is smaller than the mass ratio B2 of the water-soluble binder in the second division 12b, the electrode 10 of embodiment 1 can further reduce the internal resistance of the battery.
[0027] The electrode mixture layer 12 may satisfy the following relational expression (6): B2+C2<B1+C1 (6)
[0028] Since the electrode mixture layer 12 satisfies the above-mentioned relational expression (6), that is, since the mass ratio of the rubber-based binder (i.e., B1+C1) is greater than the mass ratio of the water-soluble binder (i.e., B2+C2) in the middle region in the thickness direction of the electrode mixture layer 12 constituted by the second divided layer 12b and the third divided layer 12c, the electrode 10 according to embodiment 1 can further reduce the internal resistance of the battery.
[0029] The electrode mixture layer 12 may satisfy the following relational expression (7): 57%<B1+C1<65% (7)
[0030] When the electrode mixture layer 12 satisfies the above-mentioned relational expression (7), i.e., when the mass ratio of the rubber binder (i.e., B1+C1) is greater than 57% and less than 65% in the intermediate region in the thickness direction of the electrode mixture layer 12 constituted by the second segment layer 12b and the third segment layer 12c, the electrode 10 according to embodiment 1 can further reduce the internal resistance of the battery. B1+C1 may be 58% or more, or 59% or more. Furthermore, B1+C1 may be 64% or less, or 63% or less.
[0031] The electrode mixture layer 12 may satisfy the following relational expression (8): 55%<B2+C2<60% (8)
[0032] When the electrode mixture layer 12 satisfies the above-mentioned relational expression (8), i.e., when the mass ratio of the water-soluble binder (i.e., B2 + C2) is greater than 55% and less than 60% in the intermediate region in the thickness direction of the electrode mixture layer 12 constituted by the second segment layer 12b and the third segment layer 12c, the electrode 10 according to embodiment 1 can further reduce the internal resistance of the battery. B2 + C2 may be 56% or more. Furthermore, B2 + C2 may be 59% or less, or 58% or less.
[0033] The content of the rubber binder in the electrode mixture layer 12 is, for example, 0.5% by mass or more and 2.0% by mass or less.
[0034] The content of the water-soluble binder in the electrode mixture layer 12 is, for example, 1.0 mass % or more and 3.0 mass % or less.
[0035] The content of the rubber binder in the binder contained in the electrode mixture layer 12 is, for example, 14.0 mass % or more and 66.0 mass % or less.
[0036] The content of the water-soluble binder in the binder contained in the electrode mixture layer 12 is, for example, 33.0 mass % or more and 86.0 mass % or less.
[0037] The mass ratio between the rubber-based binder and the water-soluble binder contained in the electrode mixture layer 12 is not particularly limited, but for example, the content of the rubber-based binder is lower than the content of the water-soluble binder.
[0038] When the tortuosity of the first segment layer 12a in the thickness direction is τA and the tortuosity of the fourth segment layer 12d in the thickness direction is τD, the electrode mixture layer 12 may satisfy the following relational expression (9): τA<τD (9)
[0039] In the electrode mixture layer, the tortuosity is an index showing the degree of curvature of the voids (pores) formed in the electrode mixture layer through which the electrolyte passes. The smaller the tortuosity, the less the curvature of the void path. The tortuosity of the electrode mixture layer is the value obtained by dividing the path (path length) from the start point to the end point of the void in the electrode mixture layer by the linear distance from the start point to the end point of the void in the electrode mixture layer. When the path length is the same as the linear distance from the start point to the end point of the void in the electrode mixture layer, the tortuosity is 1.
[0040] The tortuosity τA of the first segment layer 12a is the distance (path length) from the start point to the end point of the void in the first segment layer 12a divided by the linear distance from the start point to the end point of the void in the first segment layer 12a. The tortuosity τD of the fourth segment layer 12d is the distance (path length) from the start point to the end point of the void in the fourth segment layer 12d divided by the linear distance from the start point to the end point of the void in the fourth segment layer 12d. The electrode mixture layer 12 satisfies the above relational expression (9). In other words, the tortuosity τD of the fourth segment layer 12d located on the electrode current collector 11 side is increased to increase the packing density of the electrode active material particles, and the tortuosity τA of the first segment layer 12a located on the surface side is decreased to improve the rate characteristics of the battery. As a result, the electrode 10 according to embodiment 1 can realize a battery with improved cycle characteristics during high-rate charge / discharge.
[0041] The electrode mixture layer 12 may satisfy the following relational expression (10): 0.3≦τA / τD<1 (10)
[0042] A battery with improved cycle characteristics during high-rate charge and discharge can be achieved when the electrode mixture layer 12 satisfies the above relational expression (10), that is, when the ratio (τA / τD) of the tortuosity τA of the first segment layer 12a to the tortuosity τD of the fourth segment layer 12d is 0.3 or more and less than 1. Hereinafter, the ratio of the tortuosity τA of the first segment layer 12a to the tortuosity τD of the fourth segment layer 12d will be referred to as the tortuosity ratio τA / τD.
[0043] The electrode mixture layer 12 may satisfy the following relational expression (11): 0.4≦τA / τD<0.8 (11)
[0044] When the electrode mixture layer 12 satisfies the above relational expression (11), that is, when the tortuosity ratio τA / τD is 0.4 or more and less than 0.8, a battery with further improved cycle characteristics during high-rate charge and discharge can be realized.
[0045] The tortuosity τA of the first divided layer 12a is, for example, 1.2 or more and 4.5 or less, and may be 1.5 or more and 3.0 or less.
[0046] The tortuosity τD of the fourth divided layer 12d is, for example, 1.5 or more and 5.0 or less, and may be 2.0 or more and 4.0 or less.
[0047] In this specification, the tortuosity τA of the first segment layer 12a and the tortuosity τD of the fourth segment layer 12d are calculated by the following formulas (I) and (II), respectively. In formula (I), fA is the path length (abbreviated as path length) of the medial axis passing through the surfaces facing each other in the thickness direction of the first segment layer 12a, and sA is the length of the straight line connecting the start point and end point of the path of fA (abbreviated as straight line distance between start and end points). In formula (II), fD is the path length (abbreviated as path length) of the medial axis passing through the surfaces facing each other in the thickness direction of the fourth segment layer 12d, and sD is the length of the straight line connecting the start point and end point of the path of fD (abbreviated as straight line distance between start and end points). The sample used to evaluate the tortuosity is evaluated in a fully discharged state. τA=fA / sA...(I) τD=fD / sD...(II)
[0048] The path length and linear distance are determined by cross-sectional observation and image analysis of the electrode mixture layer 12 using a 3D scanning electron microscope (3D SEM, for example, Ethos NX-5000 manufactured by Hitachi High-Technologies Corporation).
[0049] The specific method for calculating the curvature ratio is as follows.
[0050] (1) Construction of a three-dimensional structure The electrode mixture layer 12 for constructing a three-dimensional structure using a 3DSEM is placed on the sample stage of the 3DSEM, and continuous cross-sectional slicing and cross-sectional observation are performed alternately. The observation is performed at an acceleration voltage of 5 kV. The obtained two-dimensional continuous images are binarized using three-dimensional image analysis software (e.g., EXFACT VR manufactured by Nippon Visual Science Co., Ltd.), and the images are then joined together to construct a three-dimensional structure. The three-dimensional structure is preferably 100 μm × 100 μm × 100 μm or larger.
[0051] (2) Identification of the first divided layer 12a and the fourth divided layer 12d In the image of the three-dimensional structure obtained in (1) above, when the thickness is divided into four equal parts, the region located closest to the surface is identified as the first divided layer 12a, and the region located closest to the electrode current collector 11 is identified as the fourth divided layer 12d.
[0052] (3) Determination of fA, fD, sA, and sD in the first divided layer 12a and the fourth divided layer 12d In the image of the three-dimensional structure acquired in (1) above, the first divided layer 12a and the fourth divided layer 12d were identified by (2) above, and the voids extracted by binarization were thinned to determine the axis passing through the center of the void (medial axis). Medial axes present in the cube that penetrate in a direction perpendicular to the surface of the electrode current collector 11 were extracted, and for paths with branches within a single path, the shortest path was determined as the path length (fA and fD) of the first divided layer 12a and the fourth divided layer 12d, respectively.
[0053] (4) Calculation of the tortuosity of the first divided layer 12a and the fourth divided layer 12d Using the average values of the path lengths (fA and fD) of the first divided layer 12a and the fourth divided layer 12d obtained in (3) above and the average values of the straight-line distances (sA and sD) connecting the paths, the tortuosity of the first divided layer 12a and the second divided layer 12d is calculated according to the above formulas (I) and (II).
[0054] The electrode 10 of the first embodiment may be a negative electrode or a positive electrode. The electrode 10 of the first embodiment is, for example, a negative electrode. Both the negative electrode and the positive electrode may have the configuration of the electrode 10 described above.
[0055] The electrode 10 of the first embodiment can be produced, for example, by applying an electrode mixture slurry, in which an electrode mixture containing an electrode active material and a binder is dispersed in a dispersion medium, to the surface of an electrode current collector and drying the coating to form an electrode mixture layer 12. The dried coating may be rolled as necessary. The electrode mixture layer 12 may be formed on one surface or both surfaces of the electrode current collector 11.
[0056] In forming the electrode mixture layer 12, the number of times the electrode mixture slurry is applied is not particularly limited. For example, the electrode mixture layer 12 may be formed by a single application of the electrode mixture slurry. In this case, by appropriately adjusting the drying conditions of the coating film, it is possible to prepare an electrode mixture layer 12 in which the arrangement of the rubber-based binder and the water-soluble binder is controlled so as to satisfy the above-mentioned relational expressions (1), (2), and (3). Furthermore, by appropriately adjusting the drying conditions of the coating film, it is possible to prepare an electrode mixture layer 12 in which the arrangement of the rubber-based binder and the water-soluble binder is controlled so as to further satisfy one or more of the above-mentioned relational expressions (4) to (8).
[0057] The electrode mixture layer 12 may be formed by multiple coatings of the electrode mixture slurry. In this case, for example, multiple electrode mixture slurries with different compositions may be used for coating. When multiple electrode mixture slurries with different compositions are used, for example, multiple electrode mixture slurries are prepared in which at least one of the following is appropriately adjusted: the content ratio of the rubber-based binder to the water-soluble binder; and the compounding ratio of the materials constituting the electrode active material (e.g., the compounding ratio of artificial graphite to natural graphite). The electrode mixture layer 12 can be prepared by selecting appropriate electrode mixture slurries for the electrode current collector side region, the intermediate region, and the surface region. This makes it easier to prepare an electrode mixture layer 12 in which the arrangement of the rubber-based binder and the water-soluble binder is controlled so as to satisfy the above-mentioned relational expressions (1), (2), and (3). The above-mentioned artificial graphite and natural graphite are examples of carbon materials, which are examples of electrode active materials. Furthermore, by selecting an appropriate electrode mixture slurry in this manner, it is also possible to prepare an electrode mixture layer 12 in which the arrangement of the rubber-based binder and the water-soluble binder is controlled so as to further satisfy one or more of the above-mentioned relational expressions (4) to (8).
[0058] To prepare the electrode mixture layer 12 so that the tortuosity τA of the first segment layer 12a and the tortuosity τD of the fourth segment layer 12d satisfy the above-mentioned relational expression (9), for example, multiple types of electrode active materials may be used. For example, active materials A and B made of different materials are prepared as the electrode active materials, and multiple electrode mixture slurries with different blending ratios of the active materials A and B are prepared. For example, by changing the blending ratios of the active materials A and B between the electrode mixture slurry for preparing the region corresponding to the first segment layer 12a and the electrode mixture slurry for preparing the region corresponding to the fourth segment layer 12d, the tortuosity τA of the first segment layer 12a and the tortuosity τD of the fourth segment layer 12d can be controlled to satisfy the above-mentioned relational expression (9).
[0059] Each component of the electrode 10 of the first embodiment will be specifically described below.
[0060] [Electrode Current Collector] When the electrode 10 is a negative electrode, the electrode current collector 11 is a negative electrode current collector. The negative electrode current collector may be a sheet or film made of a metal material such as stainless steel, nickel, copper, or an alloy thereof. The sheet or film may be porous or non-porous. Examples of the sheet or film include metal foil and metal mesh. A carbon material such as carbon may be applied to the surface of the negative electrode current collector as a conductive auxiliary material.
[0061] When the electrode 10 is a positive electrode, the electrode current collector 11 is a positive electrode current collector. The positive electrode current collector can be a sheet or film made of a metal material such as aluminum, stainless steel, titanium, or an alloy thereof. Aluminum and its alloys are inexpensive and easy to form into a thin film, making them suitable materials for the positive electrode current collector. The sheet or film may be porous or non-porous. Examples of the sheet or film include metal foil and metal mesh. A carbon material such as carbon may be applied to the surface of the positive electrode current collector as a conductive auxiliary material.
[0062] [Electrode Mixture Layer] The electrode mixture layer 12 contains an electrode active material and a binder.
[0063] The thickness of the electrode mixture layer 12 is, for example, 50 μm or more and 150 μm or less.
[0064] When the electrode 10 is a negative electrode, the electrode mixture layer 12 is a negative electrode mixture layer, and the negative electrode mixture layer includes a negative electrode active material. The negative electrode active material can be a material capable of absorbing and releasing metal ions (e.g., lithium ions). The negative electrode active material includes, for example, at least one selected from the group consisting of carbon materials and materials capable of forming an alloy with lithium. Examples of carbon materials include graphite. Furthermore, it is preferable to include a Si-based material in order to increase the capacity of secondary batteries. Here, the Si-based material refers to a material containing Si. Examples of Si-based materials include Si, Si alloys, and Si compounds. The Si-based material may also be, for example, composite particles including an ion-conducting phase and a silicon phase (from one perspective, silicon particles) dispersed within the ion-conducting phase. The ion-conducting phase is a phase that conducts ions, and includes, for example, at least one selected from the group consisting of a silicate phase, an aluminate phase, a carbon phase, and a silicon oxide phase. One of these negative electrode active materials may be used alone, or two or more of them may be used in combination.
[0065] The negative electrode mixture layer may contain at least one negative electrode active material selected from the group consisting of graphite and Si-based materials. Graphite is recommended because it is less likely to deteriorate even when repeatedly charged and discharged at a deep depth. Carbon materials other than graphite may also be used as the negative electrode active material. Si-based materials exhibit a larger capacity than graphite, which is advantageous for increasing the capacity of the battery. To achieve high capacity while maintaining good cycle characteristics, graphite and Si-based materials may be used in combination as the negative electrode active material.
[0066] When the Si-based material is the composite particle and the ion-conducting phase is a carbon phase, the carbon phase may be composed of, for example, amorphous carbon. Examples of amorphous carbon that constitutes the carbon phase include hard carbon, soft carbon, and other amorphous carbons. Amorphous carbon is a carbon material in which the average interplanar spacing d002 of the (002) plane measured by X-ray diffraction exceeds 0.34 nm.
[0067] When the Si-based material is the composite particle and the ion-conducting phase is a silicon oxide phase, the main component of the silicon oxide phase may be silicon dioxide. Here, the main component of the silicon oxide phase is, for example, a component that accounts for 95% by mass or more and 100% by mass or less of the silicon oxide phase. The composition of the composite particle containing the silicon oxide phase and the silicon phase dispersed therein is, as a whole, SiO x It can be expressed as: SiO x has a structure in which silicon particles are dispersed in amorphous SiO. The oxygen content ratio x to silicon is preferably, for example, 0.5≦x<2.0, and more preferably 0.8≦x≦1.5.
[0068] When the Si-based material is the composite particle and the ion-conducting phase is a silicate phase, the silicate phase may satisfy the following conditions (A) and / or (B): (A) The silicate phase contains at least one element selected from the group consisting of alkali metal elements and Group 2 elements (Group 2 elements of the long periodic table). (B) The silicate phase contains element L. The element L is at least one element selected from the group consisting of B, Al, Zr, Nb, Ta, V, lanthanoids, Y, Ti, P, Bi, Zn, Sn, Pb, Sb, Co, Er, F, and W. Lanthanoids is a collective term for 15 elements ranging from lanthanum (La) with atomic number 57 to lutetium (Lu) with atomic number 71.
[0069] Regarding the above condition (A), examples of alkali metal elements include lithium (Li), potassium (K), and sodium (Na). Examples of Group 2 elements include magnesium (Mg), calcium (Ca), strontium (Sr), and barium (Ba). The inclusion of an alkali metal element and / or a Group 2 element may reduce the irreversible capacity of the silicate phase. A silicate phase containing lithium (hereinafter, sometimes referred to as a "lithium silicate phase") is preferable in that it has a small irreversible capacity and a high initial charge / discharge efficiency.
[0070] The lithium silicate phase may be an oxide phase containing Li, Si, and O, and may contain other elements. The atomic ratio of O to Si in the lithium silicate phase, O / Si, is, for example, greater than 2 and less than 4. Preferably, O / Si is greater than 2 and less than 3. The atomic ratio of Li to Si in the lithium silicate phase, Li / Si, is, for example, greater than 0 and less than 4.
[0071] The lithium silicate phase has the formula: Li 2z SiO (2+z) The lithium silicate phase may contain or be composed of a lithium silicate phase represented by the formula (0<z<2). Preferably, z satisfies the relationship 0<z<1, and more preferably z=1 / 2 (i.e., Li2Si2O5).
[0072] The Si-based material may also include composite particles containing an ion-conducting phase and a silicon phase dispersed within the ion-conducting phase, and a coating layer covering at least a portion of the surface of the composite particles.
[0073] The coating layer present on the surface of the composite particle may include, for example, a conductive layer. Forming a conductive layer on the surface of the composite particle may increase the conductivity of the Si-based material. A conductive material containing carbon is preferred as the conductive material constituting the conductive layer. Examples of conductive materials containing carbon include conductive carbon materials. Examples of conductive carbon materials include carbon black, graphite, and amorphous carbon (amorphous carbon) with low crystallinity. Amorphous carbon is preferred because it has a strong buffering effect on the silicon phase, which changes in volume during charging and discharging. The amorphous carbon may be either easily graphitized carbon (soft carbon) or difficult-to-graphitize carbon (hard carbon). Examples of carbon black include acetylene black and ketjen black. The thickness of the conductive layer may be, for example, 1 nm or more and 200 nm or less. The thickness of the conductive layer can be measured by observing the cross section of the Si-containing material using a scanning electron microscope (SEM) or a transmission electron microscope (TEM).
[0074] The content of the Si-based material is preferably 3% by mass or more, more preferably 5% by mass or more, and even more preferably 8% by mass or more, relative to the total amount of the negative electrode active material, from the viewpoint of increasing the capacity of the secondary battery, etc. Furthermore, from the viewpoint of increasing the capacity of the secondary battery and suppressing swelling of the negative electrode, the content of the Si-based material is preferably 3% by mass or more and 30% by mass or less, more preferably 5% by mass or more and 25% by mass or less, and even more preferably 8% by mass or more and 20% by mass or less, relative to the total amount of the negative electrode active material.
[0075] When the electrode 10 is a negative electrode, the description of the binder in the negative electrode mixture layer is the same as the description of the binder in the electrode mixture layer 12. That is, the negative electrode mixture layer contains a rubber-based binder and a water-soluble binder, and satisfies the above-mentioned relational expressions (1), (2), and (3). The negative electrode mixture layer may further satisfy one or more of the above-mentioned relational expressions (4) to (8).
[0076] When the electrode 10 is a negative electrode, the negative electrode mixture layer may satisfy the above-described characteristics of the tortuosity of the electrode mixture layer 12. That is, the negative electrode mixture layer may satisfy the above-described relational expression (9), and may further satisfy the above-described relational expression (10) or (11).
[0077] The negative electrode mixture layer may further contain other materials such as a conductive additive.
[0078] The conductive additive is used to reduce the resistance of the negative electrode. Examples of the conductive additive include carbon materials and conductive polymer compounds. Examples of the carbon material include carbon black, graphite, acetylene black, carbon nanotubes, carbon nanofibers, graphene, fullerene, and graphite oxide. Examples of the conductive polymer compound include polyaniline, polypyrrole, and polythiophene.
[0079] When the electrode 10 is a positive electrode, the electrode mixture layer 12 is a positive electrode mixture layer, and the positive electrode mixture layer includes a positive electrode active material. The positive electrode active material can be a material capable of absorbing and releasing metal ions (e.g., lithium ions). Examples of the positive electrode active material include lithium-containing transition metal oxides, lithium-containing transition metal phosphates, transition metal fluorides, polyanionic materials, fluorinated polyanionic materials, transition metal sulfides, transition metal oxysulfides, and transition metal oxynitrides. In particular, using a lithium-containing transition metal oxide or a lithium-containing transition metal phosphate as the positive electrode active material can reduce battery manufacturing costs and increase the average discharge voltage. Examples of lithium-containing transition metal oxides include lithium cobalt oxide, lithium nickel cobalt aluminum oxide, lithium nickel cobalt manganese oxide, and lithium nickel manganese oxide. Examples of lithium-containing transition metal phosphates include lithium iron phosphate, lithium vanadium phosphate, lithium cobalt phosphate, and lithium nickel phosphate.
[0080] When the electrode 10 is a positive electrode, the description of the binder in the positive electrode mixture layer is the same as the description of the binder in the electrode mixture layer 12. That is, the positive electrode mixture layer contains a rubber-based binder and a water-soluble binder, and satisfies the above-mentioned relational expressions (1), (2), and (3). The positive electrode mixture layer may further satisfy one or more of the above-mentioned relational expressions (4) to (8).
[0081] When the electrode 10 is a positive electrode, the positive electrode mixture layer may satisfy the above-described characteristics of the tortuosity of the electrode mixture layer 12. That is, the positive electrode mixture layer may satisfy the above-described relational expression (9), and may further satisfy the above-described relational expression (10) or (11).
[0082] The positive electrode mixture layer may further contain other materials such as a conductive additive, etc. As the conductive additive, materials that can be used in the negative electrode mixture layer can also be used in the positive electrode mixture layer.
[0083] (Embodiment 2) A battery according to Embodiment 2 includes a positive electrode, a negative electrode, and an electrolyte. At least one selected from the group consisting of the positive electrode and the negative electrode is the electrode according to Embodiment 1. This configuration allows the battery according to Embodiment 2 to have a reduced internal resistance. The negative electrode may be the electrode according to Embodiment 1.
[0084] 2 is a longitudinal cross-sectional view schematically illustrating an example of a battery according to embodiment 2. The battery 100 is a cylindrical battery including a cylindrical battery case, a wound electrode group 24, and an electrolyte (not shown). The electrode group 24 is housed in the battery case and is in contact with the electrolyte.
[0085] The battery case is composed of a case body 25, which is a cylindrical metal container with a bottom, and a sealing body 26 that seals the opening of the case body 25. A gasket 37 is disposed between the case body 25 and the sealing body 26. The gasket 37 ensures the airtightness of the battery case. Within the case body 25, insulating plates 27 and 28 are disposed on both ends of the electrode group 24 in the direction of the winding axis of the electrode group 24, respectively.
[0086] Case body 25 has, for example, a step portion 31. Step portion 31 can be formed by partially pressing the side wall of case body 25 from the outside. Step portion 31 may be formed in an annular shape on the side wall of case body 25 along the circumferential direction of an imaginary circle defined by case body 25. In this case, sealing body 26 is supported by, for example, the surface of step portion 31 on the opening side.
[0087] Sealing body 26 includes a filter 32, a lower valve body 33, an insulating member 34, an upper valve body 35, and a cap 36. These components are stacked in this order in sealing body 26. Sealing body 26 is attached to the opening of case body 25 so that cap 36 is located on the outside of case body 25 and filter 32 is located on the inside of case body 25.
[0088] Each of the above-mentioned members constituting the sealing body 26 has, for example, a disk or ring shape. The above-mentioned members, except for the insulating member 34, are electrically connected to one another.
[0089] The electrode group 24 has a positive electrode 21, a separator 22, and a negative electrode 23. The positive electrode 21, the separator 22, and the negative electrode 23 are all strip-shaped. The width direction of the strip-shaped positive electrode 21 and the negative electrode 23 is, for example, parallel to the winding axis of the electrode group 24. The separator 22 is disposed between the positive electrode 21 and the negative electrode 23. The positive electrode 21 and the negative electrode 23 are spirally wound with the separator 22 interposed between these electrodes.
[0090] When observing the cross section of the battery 100 in a direction perpendicular to the winding axis of the electrode group 24, the positive electrodes 21 and negative electrodes 23 are stacked alternately in the radial direction of an imaginary circle defined by the case body 25, with a separator 22 interposed between these electrodes.
[0091] The positive electrode 21 is electrically connected to a cap 36, which also serves as a positive electrode terminal, via a positive electrode lead 29. One end of the positive electrode lead 29 is connected, for example, to near the center of the positive electrode 21 in the longitudinal direction of the positive electrode 21. The positive electrode lead 29 passes through a through-hole formed in the insulating plate 27 and extends from the positive electrode 21 to the filter 32. The other end of the positive electrode lead 29 is welded, for example, to the surface of the filter 32 on the electrode group 24 side.
[0092] The negative electrode 23 is electrically connected to the case body 25, which also serves as a negative electrode terminal, via a negative electrode lead 30. One end of the negative electrode lead 30 is connected to, for example, an end of the negative electrode 23 in the longitudinal direction of the negative electrode 23. The other end of the negative electrode lead 30 is welded to, for example, the inner bottom surface of the case body 25.
[0093] Each component of the battery 100 will be specifically described below.
[0094] The positive electrode 21 includes a material having the property of absorbing and releasing metal ions (e.g., lithium ions). The positive electrode 21 includes, for example, a positive electrode active material. The positive electrode 21 may include a positive electrode current collector and a positive electrode mixture layer supported on the surface of the positive electrode current collector. The positive electrode current collector and the positive electrode mixture layer are as described in the first embodiment. The positive electrode 21 may be the electrode 10 according to the first embodiment.
[0095] The negative electrode 23 includes a material having the property of absorbing and releasing metal ions (e.g., lithium ions). The negative electrode 23 includes, for example, a negative electrode active material. The negative electrode 23 may include a negative electrode current collector and a negative electrode mixture layer supported on the surface of the negative electrode current collector. The negative electrode current collector and the negative electrode mixture layer are as described in the first embodiment. The negative electrode 23 may be the electrode 10 according to the first embodiment.
[0096] The electrolyte may contain a non-aqueous solvent and a lithium salt dissolved in the non-aqueous solvent. The concentration of the lithium salt in the electrolyte may be, for example, 0.5 mol / L or more and 2 mol / L or less. By controlling the lithium salt concentration within the above range, an electrolyte having excellent ionic conductivity and appropriate viscosity can be obtained. However, the lithium salt concentration is not limited to the above.
[0097] The non-aqueous solvent may be a cyclic carbonate, a chain carbonate, a cyclic ether, a chain ether, a nitrile, an amide, etc. One selected from these solvents may be used, or two or more may be used in combination.
[0098] Examples of lithium salts that can be used include lithium hexafluorophosphate (LiPF), lithium tetrafluoroborate (LiBF), lithium perchlorate (LiClO), lithium bis(fluorosulfonyl)imide (LiFSI), lithium bis(trifluoromethanesulfonyl)imide (LiTFSI), lithium bisperfluoroethylsulfonylimide (LiN(SO2C2F5)2), LiAsF6, LiCF3SO3, and lithium difluoro(oxalato)borate. One selected from these electrolyte salts may be used, or two or more may be used in combination.
[0099] It is usually desirable to interpose a separator between the positive electrode and the negative electrode. The separator 22 has high ion permeability and adequate mechanical strength and insulating properties. The separator 22 can be made of a microporous thin film, a woven fabric, a nonwoven fabric, or the like. The separator 22 can be made of a polymer, for example. The polymer can be a polyolefin such as polypropylene or polyethylene.
[0100] In the battery according to the second embodiment, the electrolyte may be impregnated into a polymer provided as a separator, for example, i.e., the battery according to the second embodiment may have a structure in which the electrolyte and the polymer are used in combination.
[0101] The battery according to the second embodiment may further include a solid electrolyte as the electrolyte. That is, the battery according to the present disclosure may have a hybrid structure in which an electrolytic solution and a solid electrolyte are used in combination. Examples of solid electrolyte materials include halide solid electrolytes, sulfide solid electrolytes, oxide solid electrolytes, and organic polymer solid electrolytes. In the present disclosure, the term "halide solid electrolyte" refers to a solid electrolyte containing a halogen element as the main component of the anions. The term "sulfide solid electrolyte" refers to a solid electrolyte containing sulfur as the main component of the anions. The term "oxide solid electrolyte" refers to a solid electrolyte containing oxygen as the main component of the anions. The term "main component of the anions" refers to the anion with the largest mass among all the anions constituting the solid electrolyte.
[0102] As an example of the structure of the battery according to the second embodiment, the configuration example shown in FIG. 2 is described, i.e., a cylindrical nonaqueous electrolyte secondary battery in which a wound electrode group formed by winding a positive electrode and a negative electrode with a separator interposed therebetween and an electrolyte solution are housed in an outer casing. However, the battery according to the present disclosure is not limited to this configuration example. The battery according to the second embodiment may have any shape, such as a prismatic shape, a coin shape, a button shape, or a laminate shape. Furthermore, instead of the wound electrode group in the battery according to the second embodiment, an electrode group of another shape, such as an electrode group formed by stacking a positive electrode and a negative electrode with a separator interposed therebetween, may be used.
[0103] (Other Embodiments) (Additional Notes) The above description of the embodiments discloses the following techniques.
[0104] (Technology 1) An electrode current collector; and an electrode mixture layer disposed on the electrode current collector, wherein the electrode mixture layer contains an electrode active material and a binder, and the binder contains a rubber-based binder and a water-soluble binder, and the electrode mixture layer is divided into four equal parts in the thickness direction to produce four divided layers, which are designated, in order from the surface side of the electrode mixture layer toward the electrode current collector, as a first divided layer, a second divided layer, a third divided layer, and a fourth divided layer, and the mass ratio (%) of the rubber-based binder contained in the first divided layer to the total mass of the rubber-based binder contained in the electrode mixture layer is designated as A1, the mass ratio (%) of the rubber-based binder contained in the second divided layer is designated as B1, the mass ratio (%) of the rubber-based binder contained in the third divided layer is designated as C1, and the mass ratio (%) of the rubber-based binder contained in the fourth divided layer is designated as An electrode in which the electrode mixture layer satisfies the following relational expressions (1), (2), and (3): A1+D1<B1+C1 (1), A2+D2<B2+C2 (2), and A1<A2 (3), where D1 is the mass ratio (%) of the rubber-based binder contained in the electrode mixture layer to the total mass of the water-soluble binder contained in the first division layer, A2 is the mass ratio (%) of the water-soluble binder contained in the second division layer, B2 is the mass ratio (%) of the water-soluble binder contained in the third division layer, and D2 is the mass ratio (%) of the water-soluble binder contained in the fourth division layer.
[0105] With this configuration, the electrode according to the first technique can reduce the internal resistance of the battery.
[0106] (Technology 2) The electrode according to Technology 1, wherein the electrode mixture layer satisfies the following relational expressions (4) and (5): A1<B1 (4) A2<B2 (5)
[0107] With this configuration, the electrode according to Technique 2 can further reduce the internal resistance of the battery.
[0108] (Technology 3) The electrode according to Technology 1 or 2, wherein the electrode mixture layer satisfies the following relational expression (6): B2+C2<B1+C1 (6)
[0109] With this configuration, the electrode according to Technique 3 can further reduce the internal resistance of the battery.
[0110] (Technology 4) The electrode according to any one of Technologies 1 to 3, wherein the electrode mixture layer satisfies the following relational expression (7): 57%<B1+C1<65% (7)
[0111] With this configuration, the electrode according to the fourth technique can further reduce the internal resistance of the battery.
[0112] (Technology 5) The electrode according to any one of Technologies 1 to 4, wherein the electrode mixture layer satisfies the following relational expression (8): 55%<B2+C2<60% (8)
[0113] With this configuration, the electrode according to Technique 5 can further reduce the internal resistance of the battery.
[0114] (Technology 6) The electrode according to any one of Technologies 1 to 5, wherein when the tortuosity in the thickness direction of the first segment layer is τA and the tortuosity in the thickness direction of the fourth segment layer is τD, the electrode mixture layer satisfies the following relational expression (9): τA<τD (9)
[0115] With this configuration, the electrode according to Technique 6 can realize a battery with improved cycle characteristics during high-rate charge / discharge.
[0116] (Technology 7) The electrode according to Technology 6, wherein the electrode mixture layer satisfies the following relational expression (10): 0.3≦τA / τD<1 (10)
[0117] With this configuration, the electrode according to Technology 7 can realize a battery with improved cycle characteristics during high-rate charge / discharge.
[0118] (Technology 8) The electrode according to Technology 7, wherein the electrode mixture layer satisfies the following relational expression (11): 0.4≦τA / τD<0.8 (11)
[0119] With this configuration, the electrode according to Technology 8 can realize a battery with further improved cycle characteristics during high-rate charge / discharge.
[0120] (Technology 9) The electrode according to any one of Technologies 1 to 8, wherein the electrode is a negative electrode.
[0121] With this configuration, the electrode according to Technique 9 can more effectively reduce the internal resistance of the battery.
[0122] (Technology 10) A battery comprising: a positive electrode; a negative electrode; and an electrolyte, wherein at least one selected from the group consisting of the positive electrode and the negative electrode is the electrode according to any one of Technologies 1 to 8.
[0123] With this configuration, the battery according to Technique 10 can reduce the internal resistance.
[0124] (Technology 11) The battery according to Technology 10, wherein the negative electrode is the electrode according to any one of Technology 1 to Technology 8.
[0125] With this configuration, the battery according to Technique 11 can more effectively reduce the internal resistance.
[0126] The present disclosure will be described in more detail below using examples. The following examples are merely examples of embodiments, and are not intended to limit the scope of the present disclosure.
[0127] [Example 1] (Preparation of negative electrode mixture slurry) Three negative electrode active materials were prepared: a first active material, a second active material, and a third active material. The first active material was graphite, which was artificial graphite. The second active material was graphite, which was natural graphite. The third active material was a Si-based material. The Si-based material used as the third active material was a composite material with a silicon oxide phase as the ion-conducting phase. Styrene butadiene rubber (SBR) was prepared as a rubber-based binder. Carboxymethyl cellulose (CMC) was prepared as a water-soluble binder.
[0128] In Example 1, two negative electrode mixture slurries, a first slurry and a second slurry, were prepared.
[0129] The first slurry was prepared by mixing the first active material, the second active material, and the third active material in a mass ratio of 72:18:10. The mixed active material, the rubber-based binder, and the water-soluble binder were mixed in a mass ratio of 100:1:2. Water was added as a dispersion medium to the negative electrode mixture, and the mixture was stirred using a mixer to prepare the first slurry.
[0130] The second slurry was prepared by adding water as a dispersion medium to a negative electrode mixture prepared by mixing the second active material and the third active material in a mass ratio of 90:10 (mass ratio) of the second active material:the third active material. The second slurry was prepared by adding water as a dispersion medium to a negative electrode mixture prepared by mixing the second active material, the rubber-based binder, and the water-soluble binder in a mass ratio of 100:1:2 (mass ratio) of the rubber-based binder:the water-soluble binder.
[0131] (Fabrication of Negative Electrode) Copper foil was used as the negative electrode current collector. The second slurry was applied to both sides of this negative electrode current collector, and the coating was dried to form a film with a thickness of 100 μm. The first slurry was applied to the surface of each of the prepared films, and the coating was dried to form a film with a thickness of 30 μm, which was then rolled to form a negative electrode mixture layer. That is, the negative electrode mixture layer was formed by a film formed with the first slurry and a film formed with the second slurry. A region of the negative electrode mixture layer roughly corresponding to the first divided layer was prepared using the first slurry, and regions roughly corresponding to the second, third, and fourth divided layers were prepared using the second slurry. An exposed portion in which the surface of the negative electrode current collector was exposed was provided in a portion of the negative electrode.
[0132] (Preparation of Positive Electrode Active Material) [Ni 0.90 Al 0.05 Mn 0.05 ] (OH)2 was calcined at 500°C for 8 hours to obtain a composite oxide (Ni 0.90 Al 0.05 Mn 0.05Next, LiOH and the composite oxide were mixed so that the molar ratio of Li to the total amount of Ni, Al, and Mn was 1.03:1 to obtain a mixture. This mixture was then subjected to an oxygen flow (10 cm) with an oxygen concentration of 95%. 3 The mixture was fired at a temperature rising rate of 2.0°C / min from room temperature to 650°C, and then at a temperature rising rate of 0.5°C / min from 650°C to 780°C, thereby obtaining a lithium-containing composite oxide.
[0133] (Preparation of Positive Electrode) The above positive electrode active material, acetylene black, and polyvinylidene fluoride were mixed in a mass ratio of 98:1:1, and N-methyl-2-pyrrolidone (NMP) was used as a dispersion medium to prepare a positive electrode mixture slurry. Next, the positive electrode mixture slurry was applied to a positive electrode current collector made of aluminum foil, the coating was dried and compressed, and then the positive electrode current collector was cut to a predetermined electrode size to obtain a positive electrode in which a positive electrode mixture layer was disposed on both sides of the positive electrode core. Note that an exposed portion was provided in part of the positive electrode, exposing the surface of the positive electrode current collector.
[0134] (Preparation of non-aqueous electrolyte (electrolyte solution)) A non-aqueous electrolyte (electrolyte solution) was prepared by dissolving LiPF at a concentration of 1.2 mol / L in a mixed solvent prepared by mixing ethylene carbonate (EC), ethyl methyl carbonate (EMC), and dimethyl carbonate (DMC) in a volume ratio of 3:3:4 (25°C).
[0135] (Preparation of Test Cell (Secondary Battery)) An aluminum lead was attached to the exposed portion of the positive electrode, and a nickel lead was attached to the exposed portion of the negative electrode. The positive and negative electrodes were spirally wound with a polyolefin separator between them to prepare a wound electrode body. Insulating plates were placed on the top and bottom of the electrode body, and the electrode body was housed in an outer can. The negative electrode lead was welded to the bottom of a cylindrical outer can with a bottom, and the positive electrode lead was welded to a sealing member. An electrolyte was poured into the outer can, and the opening of the outer can was sealed with a sealing member via a gasket to prepare a secondary battery as a test cell.
[0136] [Example 2] (Preparation of negative electrode mixture slurry) The negative electrode active materials used were the same first active material, second active material, and third active material as in Example 1. Furthermore, the same materials as in Example 1 were used for the rubber-based binder and water-soluble binder.
[0137] In Example 2, two negative electrode mixture slurries, a first slurry and a second slurry, were prepared.
[0138] The first slurry was prepared by adding water as a dispersion medium to a negative electrode mixture prepared by mixing the first active material and the third active material in a mass ratio of 90:10 (first active material:third active material). The first active material, a rubber-based binder, and a water-soluble binder were mixed in a mass ratio of 100:1:2 (mixed active material:rubber-based binder:water-soluble binder). The mixture was then stirred using a mixer to prepare a first slurry.
[0139] In the second slurry, the second active material and the third active material were used as the negative electrode active material. A mixed active material was used in which the second active material and the third active material were mixed at a mass ratio of 90:10. The mixed active material, a rubber-based binder, and a water-soluble binder were mixed at a mass ratio of 100:1:2. Water was then added as a dispersion medium to the negative electrode mixture, and the mixture was stirred using a mixer to prepare a second slurry.
[0140] (Fabrication of Negative Electrode) Copper foil was used as the negative electrode current collector. The second slurry was applied to both sides of this negative electrode current collector, and the coating was dried to form a film with a thickness of 100 μm. The first slurry was applied to the surface of each of the prepared films, and the coating was dried to form a film with a thickness of 30 μm, which was then rolled to form a negative electrode mixture layer. That is, the negative electrode mixture layer was formed by the film formed with the first slurry and the film formed with the second slurry. The region of the negative electrode mixture layer roughly corresponding to the first divided layer was prepared using the first slurry, and the regions roughly corresponding to the second divided layer, third divided layer, and fourth divided layer were prepared using the second slurry.
[0141] (Preparation of Positive Electrode Active Material and Positive Electrode) The positive electrode active material and positive electrode were prepared in the same manner as in Example 1.
[0142] (Preparation of Non-Aqueous Electrolyte (Electrolyte Solution)) A non-aqueous electrolyte solution was prepared in the same manner as in Example 1.
[0143] (Preparation of Test Cell (Secondary Battery)) A secondary battery was prepared as a test cell in the same manner as in Example 1, except that the negative electrode prepared in Example 2 was used.
[0144] [Example 3] (Preparation of negative electrode mixture slurry) The negative electrode active materials used were the same first active material, second active material, and third active material as in Example 1. Furthermore, the same materials as in Example 1 were used for the rubber-based binder and water-soluble binder.
[0145] In Example 3, two negative electrode mixture slurries, a first slurry and a second slurry, were prepared.
[0146] The first slurry was prepared by mixing the first active material, the second active material, and the third active material in a mass ratio of 72:18:10. The mixed active material, the rubber-based binder, and the water-soluble binder were mixed in a mass ratio of 100:1:1.5. Water was added as a dispersion medium to the negative electrode mixture, and the mixture was stirred using a mixer to prepare the first slurry.
[0147] In the second slurry, the second active material and the third active material were used as the negative electrode active material. A mixed active material was used in which the second active material and the third active material were mixed at a mass ratio of 90:10. The mixed active material, a rubber-based binder, and a water-soluble binder were mixed at a mass ratio of 100:1:2. Water was then added as a dispersion medium to the negative electrode mixture, and the mixture was stirred using a mixer to prepare a second slurry.
[0148] (Fabrication of Negative Electrode) Copper foil was used as the negative electrode current collector. The second slurry was applied to both sides of this negative electrode current collector, and the coating was dried to form a film with a thickness of 100 μm. The first slurry was applied to the surface of each of the prepared films, and the coating was dried to form a film with a thickness of 30 μm, which was then rolled to form a negative electrode mixture layer. That is, the negative electrode mixture layer was formed by the film formed with the first slurry and the film formed with the second slurry. The region of the negative electrode mixture layer roughly corresponding to the first divided layer was prepared using the first slurry, and the regions roughly corresponding to the second divided layer, third divided layer, and fourth divided layer were prepared using the second slurry.
[0149] (Preparation of Positive Electrode Active Material and Positive Electrode) The positive electrode active material and positive electrode were prepared in the same manner as in Example 1.
[0150] (Preparation of Non-Aqueous Electrolyte (Electrolyte Solution)) A non-aqueous electrolyte solution was prepared in the same manner as in Example 1.
[0151] (Preparation of Test Cell (Secondary Battery)) A secondary battery was prepared as a test cell in the same manner as in Example 1, except that the negative electrode prepared in Example 3 was used.
[0152] [Example 4] (Preparation of negative electrode mixture slurry) The negative electrode active materials used were the same first active material, second active material, and third active material as in Example 1. Furthermore, the same materials as in Example 1 were used for the rubber-based binder and water-soluble binder.
[0153] In Example 4, two negative electrode mixture slurries, a first slurry and a second slurry, were prepared.
[0154] The first slurry was prepared by mixing the first active material, the second active material, and the third active material in a mass ratio of 90:0:10. The mixed active material, the rubber-based binder, and the water-soluble binder were mixed in a mass ratio of 100:1:1.5. Water was added as a dispersion medium to the negative electrode mixture, and the mixture was stirred using a mixer to prepare the first slurry.
[0155] In the second slurry, the second active material and the third active material were used as the negative electrode active material. A mixed active material was used in which the second active material and the third active material were mixed at a mass ratio of 90:10. The mixed active material, a rubber-based binder, and a water-soluble binder were mixed at a mass ratio of 100:1:2. Water was then added as a dispersion medium to the negative electrode mixture, and the mixture was stirred using a mixer to prepare a second slurry.
[0156] (Fabrication of Negative Electrode) Copper foil was used as the negative electrode current collector. The second slurry was applied to both sides of this negative electrode current collector, and the coating was dried to form a film with a thickness of 100 μm. The first slurry was applied to the surface of each of the prepared films, and the coating was dried to form a film with a thickness of 30 μm, which was then rolled to form a negative electrode mixture layer. That is, the negative electrode mixture layer was formed by the film formed with the first slurry and the film formed with the second slurry. The region of the negative electrode mixture layer roughly corresponding to the first divided layer was prepared using the first slurry, and the regions roughly corresponding to the second divided layer, third divided layer, and fourth divided layer were prepared using the second slurry.
[0157] (Preparation of Positive Electrode Active Material and Positive Electrode) The positive electrode active material and positive electrode were prepared in the same manner as in Example 1.
[0158] (Preparation of Non-Aqueous Electrolyte (Electrolyte Solution)) A non-aqueous electrolyte solution was prepared in the same manner as in Example 1.
[0159] (Preparation of Test Cell (Secondary Battery)) A secondary battery was prepared as a test cell in the same manner as in Example 1, except that the negative electrode prepared in Example 4 was used.
[0160] Comparative Example 1 Preparation of Negative Electrode Mixture Slurry The negative electrode active materials used were the same first active material, second active material, and third active material as in Example 1. The rubber-based binder and water-soluble binder were also the same as those in Example 1.
[0161] The first slurry was prepared by mixing the first active material, the second active material, and the third active material in a mass ratio of 54:36:10. The mixed active material, the rubber-based binder, and the water-soluble binder were mixed in a mass ratio of 100:1:2. Water was added as a dispersion medium to the negative electrode mixture, and the mixture was stirred using a mixer to prepare the first slurry.
[0162] The second slurry was prepared by mixing the first active material, the second active material, and the third active material in a mass ratio of 45:45:10. The mixed active material, the rubber-based binder, and the water-soluble binder were mixed in a mass ratio of 100:1:2. Water was added as a dispersion medium to the negative electrode mixture, and the mixture was stirred using a mixer to prepare a second slurry.
[0163] (Preparation of Negative Electrode) Copper foil was used as the negative electrode current collector. The second slurry was applied to both sides of this negative electrode current collector, and the coating was dried to form a film with a thickness of 65 μm. The first slurry was applied to the surface of each prepared film, and the coating was dried to form a film with a thickness of 65 μm, which was then rolled to form a negative electrode mixture layer. That is, the negative electrode mixture layer was formed by the film formed with the first slurry and the film formed with the second slurry. Regions approximately corresponding to the first and second divided layers of the negative electrode mixture layer were prepared using the first slurry, and regions approximately corresponding to the third and fourth divided layers were prepared using the second slurry.
[0164] (Preparation of Positive Electrode Active Material and Positive Electrode) The positive electrode active material and positive electrode were prepared in the same manner as in Example 1.
[0165] (Preparation of Non-Aqueous Electrolyte (Electrolyte Solution)) A non-aqueous electrolyte solution was prepared in the same manner as in Example 1.
[0166] (Preparation of Test Cell (Secondary Battery)) A secondary battery was prepared as a test cell in the same manner as in Example 1, except that the negative electrode prepared in Comparative Example 1 was used.
[0167] Comparative Example 2 Preparation of Negative Electrode Mixture Slurry The negative electrode active materials used were the same first active material, second active material, and third active material as in Example 1. The rubber-based binder and water-soluble binder were also the same as those in Example 1.
[0168] In Comparative Example 2, two negative electrode mixture slurries, a first slurry and a second slurry, were prepared.
[0169] The first slurry was prepared by adding water as a dispersion medium to a negative electrode mixture prepared by mixing the first active material and the third active material in a mass ratio of 90:10 (first active material:third active material). The first active material, a rubber-based binder, and a water-soluble binder were mixed in a mass ratio of 100:2:2 (mixed active material:rubber-based binder:water-soluble binder). The mixture was then stirred using a mixer to prepare a first slurry.
[0170] In the second slurry, the second active material and the third active material were used as the negative electrode active material. A mixed active material was used in which the second active material and the third active material were mixed at a mass ratio of 90:10. The mixed active material, a rubber-based binder, and a water-soluble binder were mixed at a mass ratio of 100:1:2. Water was then added as a dispersion medium to the negative electrode mixture, and the mixture was stirred using a mixer to prepare a second slurry.
[0171] (Fabrication of Negative Electrode) Copper foil was used as the negative electrode current collector. The second slurry was applied to both sides of this negative electrode current collector, and the coating was dried to form a film with a thickness of 100 μm. The first slurry was applied to the surface of each of the prepared films, and the coating was dried to form a film with a thickness of 30 μm, which was then rolled to form a negative electrode mixture layer. That is, the negative electrode mixture layer was formed by the film formed with the first slurry and the film formed with the second slurry. The region of the negative electrode mixture layer roughly corresponding to the first divided layer was prepared using the first slurry, and the regions roughly corresponding to the second divided layer, third divided layer, and fourth divided layer were prepared using the second slurry.
[0172] (Preparation of Positive Electrode Active Material and Positive Electrode) The positive electrode active material and positive electrode were prepared in the same manner as in Example 1.
[0173] (Preparation of Non-Aqueous Electrolyte (Electrolyte Solution)) A non-aqueous electrolyte solution was prepared in the same manner as in Example 1.
[0174] (Preparation of Test Cell (Secondary Battery)) A secondary battery was prepared as a test cell in the same manner as in Example 1, except that the negative electrode prepared in Comparative Example 2 was used.
[0175] Comparative Example 3 Preparation of Negative Electrode Mixture Slurry The negative electrode active materials used were the same first active material, second active material, and third active material as in Example 1. The rubber-based binder and water-soluble binder were also the same as those in Example 1.
[0176] In Comparative Example 3, a mixed active material was used in which the first active material, the second active material, and the third active material were mixed so that the first active material, the second active material, and the third active material were mixed in a mass ratio of 45:45:10. This mixed active material, a rubber-based binder, and a water-soluble binder were mixed in a mass ratio of mixed active material:rubber-based binder:water-soluble binder = 100:1:2 to prepare a negative electrode mixture. Water was then added as a dispersion medium to the negative electrode mixture, and the mixture was stirred using a mixer to prepare a negative electrode slurry.
[0177] (Fabrication of Negative Electrode) A copper foil was used as a negative electrode current collector. The negative electrode slurry was applied to both sides of the negative electrode current collector, and the coatings were dried to form films with a thickness of 130 μm. The coatings were then rolled to form negative electrode mixture layers.
[0178] (Preparation of Positive Electrode Active Material and Positive Electrode) The positive electrode active material and positive electrode were prepared in the same manner as in Example 1.
[0179] (Preparation of Non-Aqueous Electrolyte (Electrolyte Solution)) A non-aqueous electrolyte solution was prepared in the same manner as in Example 1.
[0180] (Preparation of Test Cell (Secondary Battery)) A secondary battery was prepared as a test cell in the same manner as in Example 1, except that the negative electrode prepared in Comparative Example 3 was used.
[0181] Comparative Example 4 Preparation of Negative Electrode Mixture Slurry The negative electrode active materials used were the same first active material, second active material, and third active material as in Example 1. The rubber-based binder and water-soluble binder were also the same as those in Example 1.
[0182] In Comparative Example 4, two negative electrode mixture slurries, a first slurry and a second slurry, were prepared.
[0183] The first slurry was prepared by adding water as a dispersion medium to a negative electrode mixture prepared by mixing the first active material and the third active material in a mass ratio of 90:10 (first active material:third active material). The first active material, the rubber-based binder, and the water-soluble binder were mixed in a mass ratio of 100:0.5:1 (mixed active material:rubber-based binder:water-soluble binder). The mixture was then stirred using a mixer to prepare a first slurry.
[0184] In the second slurry, the second active material and the third active material were used as the negative electrode active material. A mixed active material was used in which the second active material and the third active material were mixed at a mass ratio of 90:10. The mixed active material, a rubber-based binder, and a water-soluble binder were mixed at a mass ratio of 100:1:2. Water was then added as a dispersion medium to the negative electrode mixture, and the mixture was stirred using a mixer to prepare a second slurry.
[0185] (Fabrication of Negative Electrode) Copper foil was used as the negative electrode current collector. The second slurry was applied to both sides of this negative electrode current collector, and the coating was dried to form a film with a thickness of 100 μm. The first slurry was applied to the surface of each of the prepared films, and the coating was dried to form a film with a thickness of 30 μm, which was then rolled to form a negative electrode mixture layer. That is, the negative electrode mixture layer was formed by the film formed with the first slurry and the film formed with the second slurry. The region of the negative electrode mixture layer roughly corresponding to the first divided layer was prepared using the first slurry, and the regions roughly corresponding to the second divided layer, third divided layer, and fourth divided layer were prepared using the second slurry.
[0186] (Preparation of Positive Electrode Active Material and Positive Electrode) The positive electrode active material and positive electrode were prepared in the same manner as in Example 1.
[0187] (Preparation of Non-Aqueous Electrolyte (Electrolyte Solution)) A non-aqueous electrolyte solution was prepared in the same manner as in Example 1.
[0188] (Preparation of Test Cell (Secondary Battery)) A secondary battery was prepared as a test cell in the same manner as in Example 1, except that the negative electrode prepared in Comparative Example 4 was used.
[0189] [Measurement of the mass ratio of rubber-based binder in the negative electrode mixture layer] For the negative electrodes of each Example and Comparative Example, the mass ratios A1, B1, C1, and D1 of the rubber-based binder in the negative electrode mixture layer were measured by element mapping using the following method. The results are shown in Table 1.
[0190] Quantitative analysis of the rubber binder by elemental mapping was performed using EPMA. The rubber binder used in the examples and comparative examples was SBR, i.e., a rubber polymer compound having a C=C bond. Bromine was added to the C=C bond of the SBR, and the bromine was analyzed by elemental mapping using EPMA on the cross section of the negative electrode mixture layer. This determined the content of the rubber binder in each divided layer. To add bromine to the rubber polymer compound, a method was used in which the negative electrode was immersed in a bromine solution. The EPMA conditions in the examples and comparative examples were as follows: Electron beam diameter: 1 μm, Acceleration voltage: 15 kV, Beam current: 50 nA, Number of pixels: 255 x 255 pixels, Measurement time: 30 msec / pixel.
[0191] [Measurement of mass ratio of water-soluble binder in negative electrode mixture layer] For the negative electrodes of each Example and Comparative Example, the mass ratios A2, B2, C2, and D2 of the water-soluble binder in the negative electrode mixture layer were measured by element mapping using the following method. The results are shown in Table 1.
[0192] Quantitative analysis of the water-soluble binder by elemental mapping was performed using EPMA. The water-soluble binder used in the examples and comparative examples was CMC, i.e., a water-soluble polymer compound having a carboxyl group. Ruthenium was added to the carboxyl group, and the cross section of the negative electrode mixture layer was analyzed for ruthenium bromine by elemental mapping using EPMA. This determined the content of the water-soluble binder in each divided layer. Ruthenium was added to the water-soluble polymer compound by immersing the negative electrode in a ruthenium-containing solution. The EPMA conditions were as follows: electron beam diameter: 1 μm, acceleration voltage: 15 kV, beam current: 50 nA, pixel count: 255 × 255 pixels, measurement time: 30 msec / pixel.
[0193] [Measurement of tortuosity in negative electrode mixture layer] For the negative electrodes of each example and comparative example, the tortuosity τA of the first divided layer and the tortuosity τD of the fourth divided layer were determined using the method described in embodiment 1. The tortuosity ratio τA / τD was calculated from the values of the tortuosity τA and the tortuosity τD. The results are shown in Table 1.
[0194] [Measurement of DCR] Using the test cells of each example and comparative example, the DCR of the cells was measured by the following method.
[0195] The test cells of each example and comparative example were initially charged and discharged under the following conditions. (Charge and Discharge Conditions) Initial charge and discharge conditions: Constant current charging was performed at a current of 0.5 It (625 mA) until the battery voltage reached 4.2 V. This was followed by constant voltage charging at a voltage of 4.2 V until the current reached 0.02 It (25 mA). Constant current discharging was then performed at a current of 0.5 It (625 mA) until the battery voltage reached 2.5 V.
[0196] Next, the batteries were charged and discharged under the following conditions, and the initial DC internal resistance (DCR) was measured using the following formula (a). The results are shown in Table 1.
[0197] (Charge / Discharge Conditions) At a temperature of 25°C, constant current charging was performed at a current of 0.3 It (375 mA) until the battery voltage reached 3.79 V. Further constant voltage charging was performed at a constant voltage of 3.79 V until the current value reached 0.02 It (25 mA). After a 2-hour pause, the battery was discharged for 10 seconds at a current of 0.2 It (250 mA).
[0198] (DCR calculation formula) DCR (mΩ) = (voltage immediately before discharge start - voltage 10 seconds after discharge start) / (discharge current density x electrode area) (a)
[0199] The results are shown in Table 1. Table 1 shows relative values when the DCR value of Comparative Example 1 is set as the reference (100%).
[0200]
[0201] (Discussion) As shown in Table 1, the batteries of Examples 1 to 4, which used negative electrodes having negative electrode mixture layers that satisfied the above relational expressions (1), (2), and (3), had lower DCRs than the batteries of Comparative Examples 1 to 4, which did not use electrodes having electrode mixture layers that satisfied the above relational expressions (1), (2), and (3). In other words, the electrodes having electrode mixture layers that satisfied the above relational expressions (1), (2), and (3) were able to improve the internal resistance of the batteries.
[0202] The technology of the present disclosure is useful for batteries such as lithium ion secondary batteries.
Claims
1. An electrode comprising a current collector and an electrode mixture layer disposed on the current collector, the electrode mixture layer containing an electrode active material and a binder, the binder containing a rubber-based binder and a water-soluble binder, for four divided layers formed by equally dividing the electrode mixture layer into four in the thickness direction, from the surface side of the electrode mixture layer toward the current collector side, they are a first divided layer, a second divided layer, a third divided layer, and a fourth divided layer in order, the mass ratio (%) of the rubber-based binder contained in the first divided layer to the total mass of the rubber-based binder contained in the electrode mixture layer is A1, the mass ratio (%) of the rubber-based binder contained in the second divided layer is B1, the mass ratio (%) of the rubber-based binder contained in the third divided layer is C1, and the mass ratio (%) of the rubber-based binder contained in the fourth divided layer is D1, and the mass ratio (%) of the water-soluble binder contained in the first divided layer to the total mass of the water-soluble binder contained in the electrode mixture layer is A2, the mass ratio (%) of the water-soluble binder contained in the second divided layer is B2, the mass ratio (%) of the water-soluble binder contained in the third divided layer is C2, and the mass ratio (%) of the water-soluble binder contained in the fourth divided layer is D2. When this is the case, the electrode mixture layer satisfies the following relational expressions (1), (2), and (3). Electrode. A1 + D1 < B1 + C1... (1) A2 + D2 < B2 + C2... (2) A1 < A2... (3) 2. The electrode according to claim 1, wherein the electrode mixture layer satisfies the following relational expressions (4) and (5). A1 < B1... (4) A2 < B2... (5) 3. The electrode according to claim 1, wherein the electrode mixture layer satisfies the following relational expression (6). B2 + C2 < B1 + C1... (6) 4. The electrode according to claim 1, wherein the electrode mixture layer satisfies the following relational expression (7). 57% < B1 + C1 < 65%... (7) 5. The electrode according to claim 1, wherein the electrode mixture layer satisfies the following relational expression (8). 55% < B2 + C2 < 60%... (8) 6. When the curvature rate in the thickness direction of the first divided layer is τA and the curvature rate in the thickness direction of the fourth divided layer is τD, the electrode mixture layer satisfies the following relational expression (9). The electrode according to claim 1. τA < τD... (9) 7. The electrode mixture layer satisfies the following relational expression (10). The electrode according to claim 6. 0.3 ≤ τA / τD < 1... (10) 8. The electrode mixture layer satisfies the following relational expression (11). The electrode according to claim 7. 0.4 ≤ τA / τD < 0.8... (11) 9. The electrode is a negative electrode. The electrode according to claim 1.
10. A battery comprising a positive electrode, a negative electrode, and an electrolyte, wherein at least one selected from the group consisting of the positive electrode and the negative electrode is the electrode according to any one of claims 1 to 8.
11. The negative electrode is the electrode according to any one of claims 1 to 8. The battery according to claim 10.
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