Negative electrode for secondary battery, and secondary battery
The negative electrode design with regions of varying swelling rates addresses uneven pressure distribution in secondary batteries, improving high-rate charge/discharge performance by equalizing pressure and reducing metallic lithium deposition.
Patent Information
- Application Number
- PCT/JP2025/009119
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-03-27
- Filing Date
- 2025-03-11
- Publication Date
- 2025-10-02
AI Technical Summary
Conventional secondary batteries with wound electrode assemblies experience uneven pressure distribution during charging, leading to metallic lithium deposition on the inner periphery and reduced cycle performance due to high-rate charge-discharge cycles.
A negative electrode design with a first region and a second region having different swelling rates, where the first region is positioned closer to the inner periphery, and the ratio of areas and swelling rates are defined by a two-variable function to equalize pressure distribution.
The design effectively alleviates pressure concentration on the inner periphery, suppressing deterioration in high-rate charge/discharge characteristics and enhancing cycle performance.
Smart Images

Figure JP2025009119_02102025_PF_FP_ABST
Abstract
Description
Negative electrode for secondary battery and secondary battery
[0001] The present disclosure relates to a negative electrode for a secondary battery and a secondary battery.
[0002] Conventionally, secondary batteries equipped with a wound electrode assembly in which long positive and negative electrodes are wound with a separator interposed therebetween have been widely used. In the wound electrode assembly, when the electrodes expand due to charging of the battery, pressure concentrates more on the inner periphery of the electrode assembly than on the outer periphery, resulting in uneven pressure distribution in the radial direction of the electrode assembly.
[0003] For example, Patent Document 1 discloses a negative electrode constituting a wound electrode assembly, the negative electrode including a first active material and a second negative electrode active material having a larger expansion coefficient during charging than the first active material, and further discloses that, when the ratio of the mass of the second negative electrode active material to the total mass of the first negative electrode active material and the second negative electrode active material is defined as the second negative electrode active material ratio, the ratio of the second negative electrode active material on the inner end side of the winding is smaller than the ratio of the second negative electrode active material on the outer end side of the winding. Patent Document 1 also discloses that a negative electrode having the above configuration can relieve pressure applied near the inner end side of the electrode assembly and suppress the occurrence of internal short circuits near the inner end side of the electrode assembly.
[0004] International Publication No. 2022 / 024712
[0005] However, with conventional technology, it is difficult to alleviate the pressure concentrated on the inner periphery of the electrode body and to equalize the pressure distribution in the radial direction of the electrode body during high-rate charging. As a result, metallic lithium is deposited on the inner periphery of the electrode body during high-rate charge-discharge cycles, resulting in a problem of reduced cycle performance.
[0006] Therefore, an object of the present disclosure is to provide a negative electrode for a secondary battery and a secondary battery that can suppress the deterioration of high-rate charge / discharge characteristics.
[0007] The negative electrode for a secondary battery according to the present disclosure comprises a long negative electrode core and a negative electrode mixture layer disposed on the negative electrode core, and a region from one end to the other end in the longitudinal direction of the negative electrode mixture layer includes a first region and a second region having different negative electrode plate swelling rates, the first region having a smaller negative electrode plate swelling rate than the second region, and a total area (S1+2 ) to the area of the first region (S 1 ) ratio (S 1 / S 1+2 ) is x, and the negative electrode plate charging swelling rate (E 2 The negative electrode plate charging swelling rate (E 1 ) ratio (E 1 / E 2 ) is y, the two-variable function f(x, y) = 21.5x - 5.59x 2 -2.00y+1.73y 2 It is characterized in that |f(x, y)|≦3 is satisfied in −20.7xy−3.37.
[0008] The secondary battery according to the present disclosure comprises an electrode body in which the negative electrode for the secondary battery and the positive electrode are wound with a separator interposed therebetween, and the negative electrode for the secondary battery is characterized in that the first region is positioned closer to the inner periphery of the electrode body than the second region.
[0009] According to the present disclosure, it is possible to provide a negative electrode for a secondary battery and a secondary battery capable of suppressing deterioration in high-rate charge / discharge characteristics.
[0010] 1 is a cross-sectional view of a secondary battery according to an embodiment; 2 is a plan view showing an example of a negative electrode before winding; 3 is a color-mapped view of the radial position of the electrode body at which maximum pressure occurs; 4 is a reference graph showing the relationship between the distance from one end of the negative electrode mixture layer to a measurement point (measurement point distance) and the negative electrode thickness;
[0011] Hereinafter, an example of an embodiment of a negative electrode for a secondary battery according to the present disclosure and a secondary battery using the negative electrode will be described with reference to the drawings. Note that the negative electrode and secondary battery according to the present disclosure are not limited to the embodiment described below.
[0012] Fig. 1 is a cross-sectional view of a secondary battery according to an embodiment. The secondary battery 10 shown in Fig. 1 includes a wound electrode assembly 14 formed by winding a positive electrode 11 and a negative electrode 12 with a separator 13 interposed therebetween, an electrolyte, insulating plates 18 and 19 disposed above and below the electrode assembly 14, respectively, and a battery case 15 for accommodating the above components. The battery case 15 is composed of a cylindrical case body 16 with a bottom and a sealing body 17 that closes the opening of the case body 16. Examples of the battery case 15 include a cylindrical or rectangular metal case, a resin case (so-called pouch-type) formed by laminating a resin sheet, and the like.
[0013] The electrolyte has, for example, ion conductivity (for example, lithium ion conductivity). The electrolyte may be a liquid electrolyte (electrolytic solution) or a solid electrolyte.
[0014] The liquid electrolyte (electrolytic solution) contains, for example, a non-aqueous solvent and an electrolyte salt dissolved in the non-aqueous solvent. Examples of the non-aqueous solvent include esters, ethers, nitriles, amides, and mixed solvents of two or more of these. Examples of the non-aqueous solvent include ethylene carbonate (EC), ethyl methyl carbonate (EMC), dimethyl carbonate (DMC), diethyl carbonate (DEC), and mixed solvents of these. The non-aqueous solvent may contain a halogen-substituted compound (e.g., fluoroethylene carbonate) in which at least a portion of the hydrogen atoms of these solvents are substituted with halogen atoms such as fluorine. Examples of the electrolyte salt include LiPF 6 Lithium salts such as
[0015] Furthermore, examples of the solid electrolyte that can be used include solid or gel-like polymer electrolytes, inorganic solid electrolytes, and the like. The polymer electrolyte includes, for example, a lithium salt and a matrix polymer, or a non-aqueous solvent, a lithium salt, and a matrix polymer. For example, a polymer material that absorbs a non-aqueous solvent and gels is used as the matrix polymer. Examples of the polymer material include fluororesin, acrylic resin, and polyether resin. For example, the inorganic solid electrolyte can be a material known in all-solid-state lithium ion secondary batteries (e.g., oxide-based solid electrolytes, sulfide-based solid electrolytes, halogen-based solid electrolytes, and the like). While the above-exemplified electrolytes are non-aqueous electrolytes, the electrolyte is not limited to non-aqueous electrolytes and may be an aqueous electrolyte.
[0016] The case body 16 is, for example, a cylindrical metal container with a bottom. A gasket 28 is provided between the case body 16 and the sealing body 17 to ensure airtightness inside the battery. The case body 16 has, for example, a protruding portion 22, which is a portion of the side surface that protrudes inward and supports the sealing body 17. The protruding portion 22 is preferably formed in an annular shape along the circumferential direction of the case body 16, and supports the sealing body 17 on its upper surface.
[0017] The sealing body 17 has a structure in which a filter 23, a lower valve body 24, an insulating member 25, an upper valve body 26, and a cap 27 are stacked in this order from the electrode body 14 side. Each component constituting the sealing body 17 has, for example, a disk or ring shape, and all components except for the insulating member 25 are electrically connected to each other. The lower valve body 24 and the upper valve body 26 are connected to each other at their respective centers, and the insulating member 25 is interposed between their respective peripheral edges. If the internal pressure of the secondary battery 10 increases due to heat generation caused by an internal short circuit or the like, for example, the lower valve body 24 may deform and rupture, pushing the upper valve body 26 toward the cap 27, thereby interrupting the current path between the lower valve body 24 and the upper valve body 26. If the internal pressure further increases, the upper valve body 26 may rupture, and gas may be discharged from the opening of the cap 27.
[0018] In the secondary battery 10 shown in Fig. 1, a positive electrode lead 20 attached to the positive electrode 11 passes through a through-hole in the insulating plate 18 and extends toward the sealing body 17, and a negative electrode lead 21 attached to the negative electrode 12 passes outside the insulating plate 19 and extends toward the bottom of the case body 16. The positive electrode lead 20 is connected by welding or the like to the underside of a filter 23, which is the bottom plate of the sealing body 17, and a cap 27, which is the top plate of the sealing body 17 and is electrically connected to the filter 23, serves as the positive electrode terminal. The negative electrode lead 21 is connected by welding or the like to the inner bottom surface of the case body 16, and the case body 16 serves as the negative electrode terminal.
[0019] The positive electrode 11, the negative electrode 12, and the separator 13 that constitute the secondary battery 10 will be further described below.
[0020] The positive electrode 11 includes a long positive electrode core and a positive electrode mixture layer disposed on the positive electrode core. The positive electrode core can be a foil of a metal such as aluminum, an aluminum alloy, stainless steel, or titanium that is stable within the potential range of the positive electrode 11, or a film having such a metal disposed on its surface.
[0021] The positive electrode mixture layer contains, for example, a positive electrode active material, a conductive agent, and a binder. The positive electrode mixture layer may be provided on only one side of the positive electrode core, or on both sides. The positive electrode mixture layer is produced, for example, by applying a positive electrode mixture slurry containing a positive electrode active material, a conductive agent, and a binder onto the positive electrode core, drying the coating, and then compressing it. N-methyl-2-pyrrolidone (NMP), for example, is used as the dispersion medium for the positive electrode mixture slurry. A protective layer containing inorganic particles and a binder may be disposed between the positive electrode core and the positive electrode mixture layer, or on the positive electrode mixture layer.
[0022] The positive electrode active material uses a lithium transition metal composite oxide containing transition metal elements such as Ni, Co, and Mn. Examples of metal elements contained in the lithium transition metal composite oxide include Ni, Co, Mn, Al, Be, B, Na, Mg, Si, K, Ca, Sc, Ti, V, Cr, Fe, Cu, Zn, Ga, Sr, Y, Zr, Nb, Mo, In, Sn, Sb, Ba, Ta, W, Pb, and Bi. Among these, it is preferable to contain at least one of Ni, Co, and Mn. Examples of suitable composite oxides include lithium transition metal composite oxides containing Ni, Co, and Mn, and lithium transition metal composite oxides containing Ni, Co, and Al. One type of lithium transition metal composite oxide may be used alone, or multiple types may be used in combination.
[0023] The lithium transition metal composite oxide has, for example, a layered rock salt structure. Examples of the layered rock salt structure include a layered rock salt structure belonging to the space group R-3m and a layered rock salt structure belonging to the space group C2 / m. Among these, a layered rock salt structure belonging to the space group R-3m is preferred from the viewpoints of high capacity and stability of the crystal structure. The content of the positive electrode active material is, for example, 90% by mass or more and 99% by mass or less with respect to the mass of the positive electrode mixture layer. From the viewpoint of increasing the capacity of the battery, the density of the positive electrode mixture layer is preferably 3.3 g / cc or more, and, for example, 3.3 cc or more and 3.8 g / cc or less.
[0024] Examples of the conductive agent contained in the positive electrode mixture layer include carbon black such as acetylene black and ketjen black, graphite, carbon nanotubes (CNT), carbon nanofibers, graphene, metal fibers, metal powder, and conductive whiskers. One type of conductive agent may be used alone, or multiple types may be used in combination. The content of the conductive agent is, for example, 0.1% by mass or more and 5% by mass or less relative to the mass of the positive electrode mixture layer.
[0025] Examples of binders contained in the positive electrode mixture layer include fluorine-containing resins such as polytetrafluoroethylene (PTFE) and polyvinylidene fluoride (PVDF), olefin resins such as polyethylene, polypropylene, ethylene-propylene-isoprene copolymer, and ethylene-propylene-butadiene copolymer, acrylic resins such as polyacrylonitrile (PAN), polyimide, polyamide, and ethylene-acrylic acid copolymer, styrene butadiene copolymer (SBR), carboxymethyl cellulose (CMC) or a salt thereof, polyacrylic acid (PAA) or a salt thereof, polyvinyl alcohol (PVA), and polyethylene oxide (PEO). One type of binder may be used alone, or multiple types may be used in combination. The content of the binder is, for example, 0.1% to 5% of the mass of the positive electrode mixture layer.
[0026] 2 is a plan view showing an example of a negative electrode before winding. The negative electrode 12 has a long negative electrode core 30 and a negative electrode mixture layer 32 disposed on the negative electrode core 30. For the negative electrode core 30, a foil of a metal that is stable within the potential range of the negative electrode 12, such as copper, a copper alloy, stainless steel, nickel, or a nickel alloy, or a film having such a metal disposed on its surface can be used.
[0027] In the example shown in Fig. 2 , the negative electrode 12 has exposed portions 30a and 30b at one end 33a and the other end 33b in the electrode plate longitudinal direction, where the negative electrode core 30 is exposed. The electrode plate longitudinal direction of the negative electrode 12 is the winding direction of the negative electrode 12. In Fig. 2 , the one end 33a of the negative electrode 12 in the electrode plate longitudinal direction is the winding start end of the negative electrode 12, and the other end 33b of the negative electrode 12 in the electrode plate longitudinal direction is the winding end end of the negative electrode 12. In other words, the exposed portion 30a on the winding start end side of the negative electrode 12 is located on the innermost side of the electrode body 14, and the exposed portion 30b on the winding end side of the negative electrode 12 is located on the outermost side of the electrode body 14.
[0028] A negative electrode lead (not shown) is connected to the exposed portion 30b on the winding end side of the negative electrode 12. The negative electrode lead may be connected to both the exposed portions 30a and 30b, or to either one of the exposed portions 30a and 30b.
[0029] The negative electrode mixture layer 32 contains an active material and a binder, and is provided in an area excluding the exposed portions 30a and 30b on one or both surfaces of the negative electrode core 30. A protective layer containing inorganic particles and a binder may be disposed between the negative electrode core 30 and the negative electrode mixture layer 32, or on the negative electrode mixture layer 32.
[0030] As shown in FIG. 2 , the negative electrode 12 has a first region 12a and a second region 12b that are divided in the longitudinal direction of the negative electrode mixture layer 32 from one longitudinal end to the other longitudinal end of the negative electrode mixture layer 32. The first region 12a has a smaller negative electrode plate swelling rate than the second region 12b. The negative electrode plate swelling rate is the ratio of the thickness of the negative electrode 12 in the secondary battery 10 in a charged state to the thickness of the negative electrode 12 in the secondary battery 10 in a discharged state minus 1. That is, the negative electrode plate swelling rate (E 1 ) is the thickness (T d1 ) of the negative electrode 12 in the first region 12 a of the secondary battery 10 in a charged state relative to the thickness (T c1 ) ratio (T c1 / T d1 ) minus 1 (T c1 / T d1 -1) (or the value expressed as a percentage). In addition, the negative electrode plate charging swelling rate (E 2 ) is the thickness (T d2 ) of the negative electrode 12 in the second region 12b of the secondary battery 10 in a charged state relative to the thickness (T c2 ) ratio (T c2 / T d2 ) minus 1 (T c2 / T d2 −1) (or the value expressed as a percentage). The method for measuring the negative electrode plate swelling rate upon charging will be described later.
[0031] The first region 12a is disposed closer to the winding start end of the negative electrode 12 than the second region 12b. That is, when the negative electrode 12 is wound, the first region 12a is located closer to the inner periphery of the electrode body 14 than the second region 12b.
[0032] In the negative electrode 12 of this embodiment, the total area (S 1+2 ) of the first region 12a relative to the area (S 1 ) ratio (S 1 / S 1+2 ) is x, and the negative electrode plate charging swelling rate (E 2 ) the negative electrode plate swelling rate (E 1 ) ratio (E 1 / E 2 ) is y, the two-variable function f(x, y) = 21.5x - 5.59x 2 -2.00y+1.73y 2 In the case of -20.7xy-3.37, |f(x, y)|≦3 is satisfied. Note that the first region 12a and the second region 12b are two regions divided in the longitudinal direction of the negative electrode mixture layer 32 in the region from one end to the other in the longitudinal direction of the negative electrode mixture layer 32, and therefore the above-mentioned area can be replaced with length. Specifically, the total area of the first region 12a and the second region 12b may be replaced with the sum of the lengths of the first region 12a and the second region 12b in the longitudinal direction of the negative electrode mixture layer 32 (or the length from one end to the other in the longitudinal direction of the negative electrode mixture layer 32), and the area of the first region 12a may be replaced with the length of the first region 12a in the longitudinal direction of the negative electrode mixture layer 32. In the following, an example of area will be described.
[0033] The inventors have determined that the total area (S 1+2 ) of the first region 12a relative to the area (S 1 ) ratio (S 1 / S 1+2 ) and the negative electrode plate charge swelling rate (E 2 ) the negative electrode plate swelling rate (E 1 ) ratio (E 1 / E 2A wound electrode model was constructed with a negative electrode in which y, where x and y are varied, and the radial pressure distribution generated in the electrode model in a charged state was calculated by simulation. The simulation was performed using Abaqus, an integrated finite element analysis software developed by Dassault Systèmes. As a result, it was confirmed that by changing x and y, the maximum pressure generated in the electrode model shifts from the radial center of the electrode model to the inner periphery or the outer periphery. Furthermore, it was confirmed that when the maximum pressure occurs in the radial middle of the electrode model or its vicinity, the maximum pressure is small and non-uniformity in the radial pressure distribution of the electrode body 14 is suppressed.
[0034] 3 is a diagram in which the radial position of the electrode body where the maximum pressure occurs is color-mapped based on the simulation results. In the mapping image of FIG. 3, the horizontal axis is x(S 1 / S 1+2 ) and the vertical axis is y(E 1 / E 2 ) and is mapped with a color according to the radial position of the electrode body where the maximum pressure occurs with respect to x and y. In the color mapping, for example, at the radial position of the electrode body where the maximum pressure occurs, the radial center of the electrode body (score 0) is shown in green, the position where the negative electrode has been wound three times from the radial center of the electrode body to the inner or outer periphery side (score 3) is shown in yellow, and the position where the negative electrode has been wound six times from the radial center of the electrode body to the inner or outer periphery side (score 6) is shown in red.
[0035] As mentioned above, the inventors have found from the above simulation results that the maximum pressure is small and the non-uniformity of the radial pressure distribution of the electrode body is suppressed when the maximum pressure occurs in the radial middle part of the electrode body and its vicinity. The range of the radial middle part of the electrode body and its vicinity is the region from the radial center part of the electrode body to the position where the negative electrode is wound three times on the inner or outer periphery side. The region from the radial center part of the electrode body to the position where the negative electrode is wound three times on the inner or outer periphery side is the region surrounded by the dotted line in Figure 3, and the above-mentioned two-variable function f(x, y) = 21.5x - 5.59x 2 -2.00y+1.73y 2In -20.7xy-3.37, this is the region where |f(x, y)|≦3 is satisfied. That is, by satisfying |f(x, y)|≦3, the maximum pressure generated in the electrode body is kept low, and the non-uniformity of the radial pressure distribution of the electrode body is suppressed. And, what is noteworthy in this embodiment is that, based on the simulation results using x and y as parameters, not only was |f(x, y)|≦3 derived in the above-mentioned two-variable function f(x, y), but as shown in the following examples, by using a negative electrode that actually satisfies |f(x, y)|≦3, it is possible to suppress the deterioration of high-rate charge and discharge characteristics.
[0036] Even when the negative electrode 12 is charged at a high rate, the pressure concentrated on the inner periphery of the electrode body 14 is alleviated, and deterioration of the high-rate charge / discharge characteristics is suppressed. In this respect, it is sufficient for the two-variable function f(x, y) described above to satisfy |f(x, y)|≦3, but it is preferable for |f(x, y)|≦2, and it is more preferable for |f(x, y)|≦1.
[0037] The total area of the first region 12a and the second region 12b (S 1+2 ) of the first region 12a relative to the area (S 1 ) ratio (S 1 / S 1+2 ) x is preferably 0.20 or more and 0.50 or less, and more preferably 0.30 or more and 0.40 or less. When the range of x satisfies the above range, for example, a sufficient proportion of the first region 12a, which has a low negative electrode plate charge swelling rate, is arranged on the inner circumferential side of the electrode body 14. Therefore, even when high-rate charging is performed, the pressure concentrated on the inner circumferential side of the electrode body 14 is further alleviated, and deterioration of high-rate charge / discharge characteristics is further suppressed. The range of x may be a range relative to the ratio of the length of the first region 12a in the longitudinal direction of the negative electrode mixture layer 32 to the sum of the lengths of the first region 12a and the second region 12b in the longitudinal direction of the negative electrode mixture layer 32.
[0038] Negative plate charge expansion rate (E 2 ) the negative electrode plate swelling rate (E 1 ) ratio (E 1 / E 2) is preferably greater than 0.40 and equal to or less than 0.80, and more preferably equal to or greater than 0.55 and equal to or less than 0.70. When the range of y satisfies the above range, for example, the first region 12a, which has a sufficiently low negative electrode plate charge swelling rate, is disposed on the inner circumferential side of the electrode body 14. Therefore, even during high-rate charging, the pressure concentrated on the inner circumferential side of the electrode body 14 is further alleviated, and deterioration of the high-rate charge / discharge characteristics is further suppressed.
[0039] The negative electrode plate charge swelling ratio of the second region 12b is preferably 45% or less, and more preferably 15% to 40%. When the negative electrode plate charge swelling ratio of the second region 12b satisfies the above range, the radial pressure distribution of the electrode body 14 becomes more uniform even during high-rate charging, which may lead to a deterioration in high-rate charge / discharge characteristics. The negative electrode plate charge swelling ratio is measured as follows.
[0040] After charging the secondary battery 10 to an SOC of 100%, the negative electrode 12 is removed from the charged secondary battery 10 in an inert gas atmosphere, and the thickness of the negative electrode 12 is measured in a region from one longitudinal end to the other longitudinal end of the negative electrode mixture layer 32. The thickness of the negative electrode 12 is measured at 20 equally spaced points along the longitudinal direction of the negative electrode mixture layer 32. From the results of measuring the thickness of the negative electrode 12 at each measurement point, the thickness of the negative electrode 12 measured at each measurement point is plotted against the distance from one end of the negative electrode mixture layer 32 to the measurement point (measurement point distance).
[0041] FIG. 4 is a reference graph showing the relationship between the distance from one end of the negative electrode mixture layer to the measurement point (measurement point distance) and the negative electrode thickness. The measurement point distance on the horizontal axis of the graph shown in FIG. 4 is a relative value when the total length from one end to the other end of the negative electrode mixture layer 32 is set to 100. The curve in the graph of FIG. 4 is generated by performing function fitting on the above-mentioned plot, that is, the plot of the thickness of the negative electrode 12 measured at each measurement point distance against the measurement point distance, using the following formula: Thickness of the negative electrode 12 = 2Atanh((r-x) / B) + 2D In the formula, A is the thickness of the first region (T c1 ) and the thickness of the second region (T c2 ) difference (T c2 -T c1), B is the gradient of the first and second regions (indicating the rate at which the two regions change, with a small value for a rapid change and a large value for a gradual change), and D is the thickness of the first region (T c1 ) and the thickness of the second region (T c2 ) sum (T c2 +T c1 ), r is the measurement point distance. x is the total area (S 1+2 ) of the first region 12a relative to the area (S 1 ) ratio (S 1 / S 1+2 Alternatively, x is the ratio of the length of the first region 12 a in the longitudinal direction of the negative electrode mixture layer 32 to the sum of the lengths of the first region 12 a and the second region 12 b in the longitudinal direction of the negative electrode mixture layer 32.
[0042] When the negative electrode 12 has a first region 12a and a second region 12b with different negative electrode plate swelling rates during charging, as in the negative electrode 12 of this embodiment, the negative electrode is divided into two regions, a region where the negative electrode thickness is low and a region where the negative electrode thickness is higher than the low region, as shown in the curve in FIG. 4 . The thickness of the negative electrode 12 in the low region is then calculated by multiplying the thickness of the negative electrode 12 in the first region 12a in a charged state (T c1 ), and the thickness of the negative electrode 12 in the high region is the thickness (T c2 )
[0043] Next, the negative electrode 12 is removed from the secondary battery 10 in a fully discharged state, and the thickness of the negative electrode 12 is measured in a region from one longitudinal end to the other longitudinal end of the negative electrode mixture layer 32. The thickness of the negative electrode 12 is measured at 20 equally spaced points along the longitudinal direction of the negative electrode mixture layer 32. In a fully discharged state, there is no significant change in the thickness of the negative electrode 12 anywhere. Therefore, the average value of the measured thicknesses of the negative electrode 12 is calculated, and the calculated average value is used as the thickness (T d1 ) and the thickness (T d2 )
[0044] The thickness (T c1 ), the thickness of the negative electrode 12 in the first region 12a in the discharged state (T d1 ) to (Tc1 / T d1 −1) was calculated, and the calculated value was used as the negative electrode plate charging swelling rate (E 1 ) The calculated thickness (T c2 ), the thickness of the negative electrode 12 in the second region 12b in the discharged state (T d2 ) to (T c2 / T d2 -1) was calculated, and the calculated value was used as the negative electrode plate charging swelling rate (E 2 )
[0045] The negative electrode active material preferably includes a first active material and a second active material having different charge swelling rates. The first active material has a smaller charge swelling rate than the second active material. The charge swelling rate of the active material is determined as follows. A negative electrode is fabricated using a single active material (i.e., the first active material or the second active material) as the negative electrode active material, and the charge swelling rate of the negative electrode plate is measured in the same manner as described above. The measured charge swelling rate of the negative electrode plate is defined as the charge swelling rate of the active material.
[0046] In the negative electrode mixture layer 32, the ratio of the mass of the first active material to the total mass of the first and second active materials is defined as the first active material ratio, and the ratio of the mass of the second active material to the total mass of the first and second active materials is defined as the second active material ratio. The first active material ratio in the first region 12a is preferably greater than the first active material ratio in the second region 12b, and the second active material ratio in the second region 12b is preferably greater than the second active material ratio in the first region 12a. This makes it possible to make the negative electrode plate charge swelling rate in the first region 12a smaller than the negative electrode plate charge swelling rate in the second region 12b. This reduces pressure concentrated on the inner circumferential side of the electrode body 14, thereby suppressing degradation of high-rate charge / discharge characteristics. Note that methods for making the negative electrode plate charge swelling rate in the first region 12a smaller than the negative electrode plate charge swelling rate in the second region 12b are not limited to the above, and may also be possible, for example, by using a larger amount of active material with a smaller particle size in the first region 12a or by reducing the content of binder in the first region 12a.
[0047] The negative electrode mixture layer 32 is produced, for example, as follows: A first negative electrode mixture slurry containing a negative electrode active material and a binder and a second negative electrode mixture slurry containing a negative electrode active material and a binder, the first negative electrode mixture slurry having a smaller first negative electrode active material ratio and a larger second negative electrode mixture ratio than the first negative electrode mixture slurry, are prepared. Using a multi-layer die coater, the first negative electrode mixture slurry is applied to the surface of the negative electrode core 30 corresponding to the first region 12 a. Then, the coating liquid is switched to the second negative electrode mixture slurry, and the second negative electrode mixture slurry is applied to the surface of the negative electrode core 30 corresponding to the second region 12 b. The coating film is dried and then compressed.
[0048] The negative electrode active material generally uses a carbon material that reversibly absorbs and releases lithium ions. Examples of carbon materials that function as the negative electrode active material include graphite, such as natural graphite, artificial graphite, and mixtures thereof. The negative electrode active material may include elements that alloy with Li, such as Si and Sn, or materials containing such elements. Among these, Si-containing materials are preferred. Furthermore, lithium titanate, which has a higher charge / discharge potential relative to metallic lithium than carbon materials, may also be used as the negative electrode active material. The content of the negative electrode active material is, for example, 90% by mass or more and 99.5% by mass or less, based on the mass of the negative electrode mixture layer 32.
[0049] From the viewpoint of charge swelling rate, it is preferable that the first active material is graphite and the second active material is a Si-containing material. For example, in terms of suppressing deterioration of high-rate charge / discharge characteristics, the content of the Si-containing material as the second active material is preferably 50 mass% or less, and more preferably 40 mass% or less, relative to the total mass of the first active material and the second active material in the negative electrode mixture layer 32. For example, in terms of increasing the capacity of the battery, the lower limit of the content of the Si-containing material as the second active material is preferably 6 mass% or more, more preferably 8 mass% or more, and even more preferably 10 mass% or more.
[0050] Examples of the Si-containing material include Si, Si alloys, and Si compounds. The Si-containing material may also be a composite particle containing an ion-conducting phase and a silicon phase (silicon particles in one respect) dispersed within the ion-conducting phase. Examples of the ion-conducting phase include a silicate phase, a carbon phase, and a silicon oxide phase.
[0051] The carbon phase may be composed of, for example, amorphous carbon. Examples of amorphous carbon constituting the carbon layer include hard carbon, soft carbon, and other amorphous carbon. Amorphous carbon has an average interplanar spacing d of (002) planes measured by, for example, X-ray diffraction. 002 The carbon material has a particle size of more than 0.34 nm.
[0052] The main component of the silicon oxide phase (for example, 95% by mass or more and 100% by mass or less) may be silicon dioxide. The composition of the composite particles containing the silicon oxide phase and the silicon phase dispersed therein is generally SiO x It can be expressed as: SiO x is a material in which silicon particles are amorphous SiO 2 The oxygen content ratio x to silicon is preferably, for example, 0.5≦x<2.0, and more preferably 0.8≦x≦1.5.
[0053] The silicate phase may satisfy the following conditions (1) and / or (2): (1) 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). (2) 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.
[0054] Regarding the above condition (1), 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 terms of, for example, a small irreversible capacity and a high initial charge / discharge efficiency.
[0055] 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.
[0056] 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 (0<z<2). Preferably, z satisfies the relationship 0<z<1, and z=1 / 2 (i.e., Li 2 Si 2 O 5 ) is more preferred.
[0057] The Si-containing 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.
[0058] 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-containing 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, in the range of 1 to 200 nm. The thickness of the conductive layer can be measured by observing the cross section of the Si-containing material using a SEM or TEM (transmission electron microscope).
[0059] Examples of the binder contained in the negative electrode mixture layer 32 include the same binders as those in the positive electrode 11. One type of binder may be used alone, or multiple types may be used in combination. The content of the binder is, for example, 0.1 mass % or more and 5 mass % or less with respect to the mass of the negative electrode mixture layer 32. The negative electrode mixture layer 32 may also contain a conductive agent.
[0060] [Separator] A porous sheet having ion permeability and insulating properties is used for the separator 13. Specific examples of the porous sheet include a microporous thin film, a woven fabric, and a nonwoven fabric. Suitable materials for the separator 13 include polyolefins such as polyethylene and polypropylene, and cellulose. The separator 13 may have a single-layer structure or a multi-layer structure. The separator 13 may have, for example, a multi-layer structure including a thermoplastic resin layer such as polyolefin and a cellulose fiber layer, a two-layer structure of polyethylene (PE) / polypropylene (PP), or a three-layer structure of PE / PP / PE.
[0061] A filler layer containing an inorganic filler may be disposed at the interface between the separator 13 and at least one of the positive electrode 11 and the negative electrode 12. Examples of inorganic fillers include oxides containing metal elements such as Ti, Al, Si, and Mg, and phosphate compounds. The filler layer can be formed by applying a slurry containing the filler to the surface of the positive electrode 11, the negative electrode 12, or the separator 13. In addition, a highly heat-resistant resin layer (heat-resistant layer) such as an aramid resin may be disposed on the surface of the separator 13. The separator 13 may have, for example, a substrate made of a porous sheet and a filler layer or heat-resistant layer disposed on the substrate.
[0062] The present disclosure will be further described below with reference to examples, but the present disclosure is not limited to these examples.
[0063] Example 1 [Fabrication of Positive Electrode] As a positive electrode active material, lithium nickel oxide (LiNi) containing cobalt and aluminum was used. 0.88 Co 0.09 Al 0.03 O 2 ) was used. The positive electrode active material, acetylene black, and polyvinylidene fluoride were mixed in a solids mass ratio of 98:1:1, and N-methylpyrrolidone (NMP) was used as a dispersion medium to prepare a positive electrode mixture slurry. The slurry was applied to both sides of a positive electrode core made of a long aluminum foil with a thickness of 15 μm, and the coating was dried and compressed to form a positive electrode mixture layer on both sides of the positive electrode core. An exposed core portion was formed in the center in the longitudinal direction of the positive electrode core, and a positive electrode lead was joined to the exposed portion.
[0064] [Negative Electrode Preparation] A negative electrode active material obtained by mixing graphite powder and a Si-containing material in a mass ratio of 94:6, a dispersion of styrene butadiene rubber, and sodium carboxymethyl cellulose were mixed in a solid content mass ratio of 98:1:1, and a first negative electrode mixture slurry was prepared using water as a dispersion medium. A negative electrode active material obtained by mixing graphite powder and a Si-containing material in a mass ratio of 88:12, a dispersion of styrene butadiene rubber, and sodium carboxymethyl cellulose were mixed in a solid content mass ratio of 98:1:1, and a second negative electrode mixture slurry was prepared using water as a dispersion medium. The first negative electrode mixture slurry was applied to the negative electrode core corresponding to the first region on both sides of a negative electrode core made of a long copper foil with a thickness of 8 μm, and then the second negative electrode mixture slurry was applied to the negative electrode core corresponding to the second region. The coating was then dried and compressed to obtain a negative electrode having a negative electrode mixture layer formed on both sides of the negative electrode core. The total area of the first and second regions (S 1+2 ) to the area of the first region (S 1 ) ratio (S 1 / S 1+2 ) x is 0.50. A core exposed portion was formed at the longitudinal end of the negative electrode core, and a negative electrode lead was joined to the core exposed portion.
[0065] In the negative electrode of Example 1, the negative electrode plate swelling rate during charging was measured. As a result, the negative electrode plate swelling rate during charging in the first region (E 1 ) is 21%, and the negative plate charging swelling rate (E 2 ) is 27%, and (E 1 / E 2 ) was 0.78. |f(x, y)|, calculated by substituting the values of x and y into the two-variable function f(x, y), was 2.59.
[0066] [Fabrication of Electrode Assembly] The positive electrode, the negative electrode, and a polyethylene separator were spirally wound around a cylindrical core member, and stop tapes were attached to both axial ends of the outermost surface to obtain a wound electrode assembly. At this time, the negative electrode was positioned so that the first region of the negative electrode was located closer to the inner periphery of the electrode assembly (toward the core member) than the second region. After forming the wound structure of the electrode assembly, the core member was removed to obtain a wound electrode assembly with a cavity formed in the core member.
[0067] [Preparation of non-aqueous electrolyte] 5 parts by mass of vinylene carbonate (VC) was added to 100 parts by mass of a mixed solvent in which ethylene carbonate (EC) and dimethyl carbonate (DMC) were mixed at a volume ratio of 1:3 (25°C), and LiPF 6 was dissolved in a concentration of 1.5 mol / L to prepare a non-aqueous electrolyte solution.
[0068] [Fabrication of Cylindrical Battery] After placing insulating plates above and below the electrode assembly, the negative electrode lead was welded to the inner bottom surface of a cylindrical outer can with a bottom, and the positive electrode lead was welded to the internal terminal plate of a sealing member, and the electrode assembly was housed in the outer can. Thereafter, a nonaqueous electrolyte solution was injected into the outer can under reduced pressure, and the opening of the outer can was sealed with a sealing member via a gasket, thereby obtaining a cylindrical battery.
[0069] Example 2 A negative electrode was fabricated in the same manner as in Example 1, except that the first negative electrode mixture slurry used a negative electrode active material in which graphite powder and a Si-containing material were mixed at a mass ratio of 91:9, and the second negative electrode mixture slurry used a negative electrode active material in which graphite powder and a Si-containing material were mixed at a mass ratio of 85:15. The negative electrode plate charge swelling rate of the negative electrode of Example 2 was measured, and the negative electrode plate charge swelling rate (E 1 ) is 24%, and the negative plate charging swelling rate (E 2 ) is 30%, and (E 1 / E 2 ) was 0.80, and |f(x, y)| was 2.78. A cylindrical battery was fabricated in the same manner as in Example 1 using the negative electrode of Example 2.
[0070] Example 3 In the second negative electrode mixture slurry, a negative electrode active material in which graphite powder and a Si-containing material were mixed at a mass ratio of 85:15 was used, and the total area (S 1+2 ) to the area of the first region (S 1 ) ratio (S 1 / S 1+2 A negative electrode was fabricated in the same manner as in Example 1, except that x was set to 0.20. In the negative electrode of Example 3, the negative electrode plate swelling rate during charging was measured, and the negative electrode plate swelling rate during charging (E 1 ) is 21%, and the negative plate charging swelling rate (E 2) is 30%, and (E 1 / E 2 ) was 0.70, and |f(x, y)| was 2.74. A cylindrical battery was fabricated in the same manner as in Example 1 using the negative electrode of Example 3.
[0071] Example 4 In the second negative electrode mixture slurry, a negative electrode active material in which graphite powder and a Si-containing material were mixed at a mass ratio of 82:18 was used, and the total area (S 1+2 ) to the area of the first region (S 1 ) ratio (S 1 / S 1+2 A negative electrode was fabricated in the same manner as in Example 1, except that x was set to 0.20. In the negative electrode of Example 4, the negative electrode plate swelling rate during charging was measured, and the negative electrode plate swelling rate during charging (E 1 ) is 21%, and the negative plate charging swelling rate (E 2 ) is 34%, and (E 1 / E 2 ) was 0.62, and |f(x, y)| was 2.43. A cylindrical battery was fabricated in the same manner as in Example 1 using the negative electrode of Example 4.
[0072] Example 5 In the second negative electrode mixture slurry, a negative electrode active material in which graphite powder and a Si-containing material were mixed at a mass ratio of 85:15 was used, and the total area (S 1+2 ) to the area of the first region (S 1 ) ratio (S 1 / S 1+2 A negative electrode was fabricated in the same manner as in Example 1, except that x was set to 0.40. In the negative electrode of Example 5, the negative electrode plate swelling rate during charging was measured. As a result, the negative electrode plate swelling rate during charging in the first region (E 1 ) is 21%, and the negative plate charging swelling rate (E 2 ) is 30%, and (E 1 / E 2 ) was 0.70, and |f(x, y)| was 2.00. A cylindrical battery was fabricated in the same manner as in Example 1 using the negative electrode of Example 5.
[0073] Example 6 In the second negative electrode mixture slurry, a negative electrode active material in which graphite powder and a Si-containing material were mixed at a mass ratio of 82:18 was used, and the total area (S 1+2 ) to the area of the first region (S 1 ) ratio (S 1 / S 1+2 A negative electrode was fabricated in the same manner as in Example 1, except that x was set to 0.30. In the negative electrode of Example 6, the negative electrode plate swelling rate during charging was measured, and the negative electrode plate swelling rate during charging (E 1 ) is 21%, and the negative plate charging swelling rate (E 2 ) is 34%, and (E 1 / E 2 ) was 0.62, and |f(x, y)| was 1.84. A cylindrical battery was fabricated in the same manner as in Example 1 using the negative electrode of Example 6.
[0074] Example 7 A negative electrode was fabricated in the same manner as in Example 1, except that a negative electrode active material in the second negative electrode mixture slurry was a mixture of graphite powder and a Si-containing material in a mass ratio of 82:18. The negative electrode plate swelling rate during charging of the negative electrode of Example 7 was measured, and the negative electrode plate swelling rate during charging of the first region (E 1 ) is 21%, and the negative plate charging swelling rate (E 2 ) is 34%, and (E 1 / E 2 ) was 0.62, and |f(x, y)| was 1.00. A cylindrical battery was fabricated in the same manner as in Example 1 using the negative electrode of Example 7.
[0075] Example 8 In the second negative electrode mixture slurry, a negative electrode active material in which graphite powder and a Si-containing material were mixed at a mass ratio of 79:21 was used, and the total area (S 1+2 ) to the area of the first region (S 1 ) ratio (S 1 / S 1+2 A negative electrode was fabricated in the same manner as in Example 1, except that x was set to 0.40. In the negative electrode of Example 8, the negative electrode plate swelling rate during charging was measured. As a result, the negative electrode plate swelling rate during charging of the first region (E 1 ) is 20%, and the negative plate charging swelling rate (E 2 ) is 36%, and (E1 / E 2 ) was 0.56, and |f(x, y)| was 0.87. A cylindrical battery was fabricated in the same manner as in Example 1 using the negative electrode of Example 8.
[0076] Example 9 In the second negative electrode mixture slurry, a negative electrode active material in which graphite powder and a Si-containing material were mixed at a mass ratio of 79:21 was used, and the total area (S 1+2 ) to the area of the first region (S 1 ) ratio (S 1 / S 1+2 A negative electrode was fabricated in the same manner as in Example 1, except that x was set to 0.20. The negative electrode plate swelling rate during charging of the negative electrode of Example 9 was measured, and the negative electrode plate swelling rate during charging of the first region (E 1 ) is 20%, and the negative plate charging swelling rate (E 2 ) is 36%, and (E 1 / E 2 ) was 0.56, and |f(x, y)| was 2.18. A cylindrical battery was fabricated in the same manner as in Example 1 using the negative electrode of Example 9.
[0077] Example 10 A negative electrode was fabricated in the same manner as in Example 1, except that the first negative electrode mixture slurry used a negative electrode active material in which graphite powder and a Si-containing material were mixed at a mass ratio of 97:3, and the second negative electrode mixture slurry used a negative electrode active material in which graphite powder and a Si-containing material were mixed at a mass ratio of 76:24. The negative electrode plate charge swelling rate of the negative electrode of Example 10 was measured, and the negative electrode plate charge swelling rate (E 1 ) is 17%, and the negative plate charging swelling rate (E 2 ) is 40%, and (E 1 / E 2 ) was 0.43, and |f(x, y)| was 1.00. A cylindrical battery was fabricated in the same manner as in Example 1 using the negative electrode of Example 10.
[0078] Comparative Example 1 A negative electrode was fabricated in the same manner as in Example 1, except that a negative electrode active material obtained by mixing graphite powder and a Si-containing material in a mass ratio of 91:9, a dispersion of styrene butadiene rubber, and sodium carboxymethyl cellulose were mixed in a solids mass ratio of 98:1:1, and the negative electrode mixture slurry was applied to both sides of a negative electrode core using water as a dispersion medium. The negative electrode plate charge swelling rate of the negative electrode of Comparative Example 1 was measured and found to be 24%. A cylindrical battery was fabricated in the same manner as in Example 1 using the negative electrode of Comparative Example 1.
[0079] Comparative Example 2 A negative electrode was fabricated in the same manner as in Example 1, except that the first negative electrode mixture slurry used a negative electrode active material in which graphite powder and a Si-containing material were mixed in a mass ratio of 92:8. The negative electrode plate swelling rate during charging of the negative electrode of Comparative Example 2 was measured, and the negative electrode plate swelling rate during charging of the first region (E 1 ) is 23%, and the negative plate charging swelling rate (E 2 ) is 27%, and (E 1 / E 2 ) was 0.85, and |f(x, y)| was 3.26. A cylindrical battery was fabricated in the same manner as in Example 1 using the negative electrode of Comparative Example 2.
[0080] <Comparative Example 3> Total area of the first region and the second region (S 1+2 ) to the area of the first region (S 1 ) ratio (S 1 / S 1+2 A negative electrode was fabricated in the same manner as in Example 1, except that x was set to 0.20. In the negative electrode of Comparative Example 3, the negative electrode plate swelling rate during charging was measured, and the negative electrode plate swelling rate during charging (E 1 ) is 21%, and the negative plate charging swelling rate (E 2 ) is 27%, and (E 1 / E 2 ) was 0.78, and |f(x, y)| was 3.03. A cylindrical battery was fabricated in the same manner as in Example 1 using the negative electrode of Comparative Example 3.
[0081] [High-rate charge-discharge cycle test] Each battery of the example and comparative example was charged at a constant current of 0.8 C in a temperature environment of 25°C until the battery voltage reached 4.2 V. Then, the battery was discharged at a constant current of 0.8 C until the battery voltage reached 2.5 V. This charge-discharge cycle was repeated 200 times. The capacity retention rate of each battery of the example and comparative example in the high-rate charge-discharge cycle was calculated using the following formula, and the results are summarized in Table 1. Capacity retention rate = (discharge capacity at 200th cycle / discharge capacity at 1st cycle) x 100
[0082]
[0083] As shown in Table 1, all of Examples 1 to 10, which satisfied |f(x, y)|≦3, exhibited higher capacity retention rates during high-rate charge-discharge cycles than Comparative Examples 1 to 3, which satisfied |f(x, y)|>3. Therefore, it can be said that by using a negative electrode that satisfied |f(x, y)|≦3, it is possible to suppress the deterioration of high-rate charge-discharge cycle characteristics. Furthermore, among Examples 1 to 10, Examples 6, 7, 8, and 10, which satisfied |f(x, y)|≦1.84, were able to further suppress the deterioration of high-rate charge-discharge cycle characteristics.
[0084] The present disclosure will be further described by the following embodiments. Configuration 1: A negative electrode for a secondary battery comprising a long negative electrode core and a negative electrode mixture layer disposed on the negative electrode core, wherein a region from one end to the other end in the longitudinal direction of the negative electrode mixture layer includes a first region and a second region having different negative electrode plate swelling rates upon charging, the first region having a smaller negative electrode plate swelling rate upon charging than the second region, and a total area (S 1+2 ) to the area of the first region (S 1 ) ratio (S 1 / S 1+2 ) is x, and the negative electrode plate charging swelling rate (E 2 The negative electrode plate charging swelling rate (E 1 ) ratio (E 1 / E 2 ) is y, the two-variable function f(x, y) = 21.5x - 5.59x 2 -2.00y+1.73y 2A negative electrode for a secondary battery, wherein |f(x, y)|≦3 is satisfied in the formula -20.7xy-3.37. Configuration 2: A negative electrode for a secondary battery according to Configuration 1, wherein x satisfies 0.20≦x≦0.50. Configuration 3: A negative electrode for a secondary battery according to Configuration 1 or 2, wherein y satisfies 0.40<y≦0.80. Configuration 4: A negative electrode for a secondary battery according to any one of Configurations 1 to 3, wherein |f(x, y)|≦2 is satisfied. Configuration 5: A negative electrode for a secondary battery according to any one of Configurations 1 to 4, wherein |f(x, y)|≦1 is satisfied. Configuration 6: A negative electrode for a secondary battery, wherein |f(x, y)|≦1 is satisfied in the formula -20.7xy-3.37. 2 The negative electrode for a secondary battery according to any one of Configurations 1 to 5, wherein the ratio of the mass of the first active material to the total mass of the first active material and the second active material is defined as a first active material ratio, and the ratio of the mass of the second active material to the total mass of the first active material and the second active material is defined as a second active material ratio. The negative electrode for a secondary battery according to any one of Configurations 1 to 6, wherein the ratio of the mass of the first active material to the total mass of the first active material and the second active material is defined as a first active material ratio, and the ratio of the mass of the second active material to the total mass of the first active material and the second active material is defined as a second active material ratio. The negative electrode for a secondary battery according to Configuration 7, wherein the first active material is graphite and the second active material is a Si-containing material. A secondary battery negative electrode according to Aspect 9, wherein the content of the Si-containing material in the negative electrode mixture layer is 50 mass % or less with respect to the total mass of the first active material and the second active material in the negative electrode mixture layer. A secondary battery comprising: an electrode assembly in which the negative electrode for a secondary battery according to any one of Aspects 1 to 9 and a positive electrode are wound with a separator interposed therebetween; and the negative electrode for a secondary battery is provided so that the first region is located closer to the inner periphery of the electrode assembly than the second region.
[0085] REFERENCE SIGNS LIST 10 secondary battery, 11 positive electrode, 12 negative electrode, 12a first region, 12b second region, 13 separator, 14 electrode body, 15 battery case, 16 case body, 17 sealing body, 18, 19 insulating plate, 20 positive electrode lead, 21 negative electrode lead, 22 protruding portion, 23 filter, 24 lower valve body, 25 insulating member, 26 upper valve body, 27 cap, 28 gasket, 30 negative electrode core body, 30a, 30b exposed portion, 32 negative electrode mixture layer, 33a one end, 33b other end.
Claims
1. A negative electrode for a secondary battery comprising a long negative electrode core and a negative electrode mixture layer disposed on the negative electrode core, wherein a region from one end to the other end in the longitudinal direction of the negative electrode mixture layer includes a first region and a second region having different negative electrode plate swelling rates upon charging, the first region having a smaller negative electrode plate swelling rate upon charging than the second region, and the total area (S 1+2 ) to the area of the first region (S 1 ) ratio (S 1 / S 1+2 ) is x, and the negative electrode plate charging swelling rate (E 2 The negative electrode plate charging swelling rate (E 1 ) ratio (E 1 / E 2 ) is y, the two-variable function f(x, y) = 21.5x - 5.59x 2 -2.00y+1.73y 2 A negative electrode for a secondary battery, which satisfies |f(x, y)|≦3 in the formula −20.7xy−3.
37.
2. The negative electrode for a secondary battery according to claim 1, wherein x satisfies the relationship 0.20≦x≦0.
50.
3. The negative electrode for a secondary battery according to claim 1 or 2, wherein the y satisfies 0.40<y≦0.
80.
4. The negative electrode for a secondary battery according to claim 1 or 2, wherein |f(x, y)|≦2 is satisfied.
5. The negative electrode for a secondary battery according to claim 1 or 2, wherein |f(x, y)|≦1 is satisfied.
6. The negative electrode plate charging swelling rate (E 2 3. The negative electrode for a secondary battery according to claim 1, wherein the ratio of the total mass of the negative electrode to the total mass of the secondary battery is 45% or less.
7. The negative electrode for a secondary battery according to claim 1 or 2, wherein the negative electrode mixture layer comprises a first active material and a second active material having different charge swelling rates, the first active material having a smaller charge swelling rate than the second active material, and wherein, when a first active material ratio is a ratio of the mass of the first active material to the total mass of the first active material and the second active material, and a second active material ratio is a ratio of the mass of the second active material to the total mass of the first active material and the second active material, the first active material ratio in the first region is larger than the first active material ratio in the second region, and the second active material ratio in the second region is larger than the second active material ratio in the first region.
8. The negative electrode for a secondary battery according to claim 7, wherein the first active material is graphite and the second active material is a Si-containing material.
9. The negative electrode for a secondary battery according to claim 8, wherein the content of the Si-containing material in the negative electrode mixture layer is 50 mass % or less relative to the total mass of the first active material and the second active material in the negative electrode mixture layer.
10. A secondary battery comprising an electrode body in which the negative electrode and positive electrode for the secondary battery according to claim 1 or 2 are wound together with a separator interposed therebetween, wherein the negative electrode for the secondary battery is arranged so that the first region is located closer to the inner periphery of the electrode body than the second region.
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