Non-aqueous electrolyte secondary batteries
By covering positive electrode tab ends with a protective layer and positioning negative electrode tabs to avoid burrs, the risk of short circuits is mitigated, ensuring high safety and energy density in non-aqueous electrolyte secondary batteries.
Patent Information
- Application Number
- JP2022508127
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-03-19
- Filing Date
- 2021-02-08
- Publication Date
- 2025-10-17
- Estimated Expiration
- 2041-02-08
AI Technical Summary
The risk of burrs forming at the base of positive electrode tabs in non-aqueous electrolyte secondary batteries, particularly when maximizing positive electrode area for capacity, can lead to short circuits due to potential contact with the negative electrode through the separator.
The positive electrode tab ends are covered with a protective layer containing an insulator, and the negative electrode tab ends are positioned to avoid facing the burrs, with a minimum distance of 0.1 mm maintained between the protective layer edge and the negative electrode edge, ensuring the positive and negative electrodes are not directly aligned, thus preventing short circuits.
This configuration enhances safety by preventing short circuits and allows for high volumetric energy density without compromising manufacturing accuracy or efficiency.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present disclosure relates to a non-aqueous electrolyte secondary battery. [Background technology]
[0002] A non-aqueous electrolyte secondary battery such as a lithium ion battery has a structure in which an electrode assembly is housed in an exterior body having an opening, and the opening is sealed with a sealing plate. The electrode assembly has a structure in which a positive electrode and a negative electrode are stacked with a separator interposed therebetween.
[0003] For example, Patent Document 1 discloses an electrode assembly in which multiple positive and negative electrode plates are stacked with separators between them, and an electrode assembly in which long positive and negative electrode plates are stacked and wound with long separators between them. In the electrode assembly in which multiple positive and negative electrode plates are stacked with separators between them, a positive electrode tab portion for current collection extends from each positive electrode plate, and a negative electrode tab portion for current collection extends from each negative electrode plate. In the wound electrode assembly, multiple positive electrode tab portions extend from the long positive electrode plate, and multiple negative electrode tab portions extend from the long negative electrode plate. By winding, the multiple positive electrode tab portions are positioned opposite each other, and the multiple negative electrode tab portions are also positioned opposite each other. Patent Document 2 also discloses an electrode assembly in which multiple positive and negative electrode plates are stacked with separators between them, and positive and negative electrode tabs extend from both the positive and negative electrode plates, respectively.
[0004] In addition, all types of batteries are designed so that the negative electrode active material has a larger capacity than the positive electrode active material, and in batteries in which positive and negative electrode plates are stacked face to face, the design is such that the area where the active material of the positive electrode plate is applied is always within the area where the active material of the negative electrode plate is applied, and the area where the negative electrode active material is applied exceeds (extends over) the area where the positive electrode active material is applied. In order to maximize the capacity of the battery, the areas where the positive and negative electrode active materials are applied are designed to be as large as possible. [Prior art documents] [Patent documents]
[0005] [Patent Document 1] Japanese Patent Application Laid-Open No. 2013-175407 [Patent Document 2] Chinese Patent Registration No. 100590927 Summary of the Invention
[0006] In batteries in which tabs for current collection are formed on the positive and negative electrode plates as disclosed in Patent Documents 1 and 2, there is a risk of burrs being generated when cutting parts of the positive and negative electrode plates to form the tabs. Burrs are particularly likely to be generated when forming corners, and the base of the tabs is a part where burrs are likely to be generated.
[0007] However, when the positive electrode plate is designed to have as large an area as possible coated with the positive electrode active material in order to increase battery capacity, the base of the positive electrode tab ends up overlapping the negative electrode plate. Although the two are separated by a separator, if a burr occurs at the base of the positive electrode tab, the burr is metal and can break through the separator and come into contact with the negative electrode plate, potentially causing a short circuit.
[0008] The nonaqueous electrolyte secondary battery according to the present disclosure comprises an electrode assembly including a positive electrode plate and a negative electrode plate, a rectangular exterior body having an opening and housing the electrode assembly, a sealing plate sealing the opening, an electrode terminal provided on the sealing plate, a first current collector disposed between the electrode assembly and the sealing plate and connected to the electrode terminal, a second current collector disposed between the electrode assembly and a side wall of the rectangular exterior body and connected to the first current collector, and a tab group extending from the electrode assembly towards the side wall and connected to the second current collector, the second current collector being a flat plate having a surface parallel to the side wall, and the tab group including a positive electrode tab group formed by bundling a plurality of positive electrode tabs extending from the positive electrode plate, and the The positive electrode plate has a negative electrode tab group formed by bundling a plurality of negative electrode tabs extending from the negative electrode plate, and is bent parallel to the side wall on the side of the connection with the second current collector. The positive electrode plate has a positive electrode core and a positive electrode active material applied to the positive electrode core. The positive electrode tab extends from the positive electrode core, and the end of the positive electrode core on the side from which the positive electrode tab extends and its vicinity are covered on the surface with a protective layer containing an insulator, and the protective layer is exposed. In the electrode body, the positive electrode plate and the negative electrode plate are stacked with a separator interposed between them, and one end of the negative electrode plate faces the protective layer of the positive electrode plate.
[0009] The positive electrode tab group may be located on one end surface of the electrode assembly, and the negative electrode tab group may be located on the other end surface of the electrode assembly.
[0010] It is preferable that the distance between the edge of the protective layer and one edge of the negative electrode plate is 0.1 mm or more in plan view.
[0011] The protective layer may also be provided on a part of the positive electrode tab.
[0012] The insulating material may be an inorganic oxide.
[0013] In the nonaqueous electrolyte secondary battery according to the present disclosure, the end portion of the positive electrode plate from which the positive electrode tab extends is covered with a protective layer, and the end of the negative electrode plate faces the protective layer, thereby ensuring high safety. [Brief explanation of the drawings]
[0014] [Figure 1] FIG. 1 is a perspective view showing a nonaqueous electrolyte secondary battery according to an embodiment of the present disclosure. [Figure 2] FIG. 2 is a cross-sectional view of the battery shown in FIG. [Figure 3] FIG. 3 is a diagram showing a second current collector according to an embodiment of the present disclosure. [Figure 4] FIG. 4 is a plan view of a positive electrode plate according to an embodiment of the present disclosure. [Figure 5] FIG. 5 is a plan view of a negative electrode plate according to an embodiment of the present disclosure. [Figure 6] FIG. 6 is a plan view of an electrode assembly according to an embodiment of the present disclosure. [Figure 7] FIG. 7 is a schematic diagram showing the positional relationship between the positive electrode plate, the negative electrode plate, and the separator according to an embodiment of the present disclosure. [Figure 8] FIG. 8 is a schematic diagram showing the positional relationship between the positive electrode plate, the negative electrode plate, and the separator according to a comparative embodiment. [Figure 9] FIG. 9 is a view showing the vicinity of the connection portion between the second current collector and the tab group before the tab group is bent. [Figure 10] FIG. 10 is a view showing the vicinity of the connection portion between the second current collector and the tab group after the tab group has been folded. [Figure 11] FIG. 11 is a perspective view showing an electrode assembly in which the tab group is connected to a second current collector before the tab group is folded. [Figure 12] FIG. 12 is a diagram showing an electrode assembly including a plurality of electrode bodies. [Figure 13] FIG. 13 is a diagram showing a group of multiple electrode assemblies connected to each other by first current collectors and second current collectors, and a sealing plate. DETAILED DESCRIPTION OF THE INVENTION
[0015] Hereinafter, embodiments of the present disclosure will be described in detail with reference to the drawings. The following description of the preferred embodiments is merely exemplary in nature and is not intended to limit the present disclosure, its applications, or its uses. In the following drawings, for the sake of simplicity, components having substantially the same functions are designated by the same reference numerals.
[0016] <Overall battery configuration> Fig. 1 is a perspective view showing a nonaqueous electrolyte secondary battery according to the present disclosure. Fig. 2 is a cross-sectional view of the battery of Fig. 1 taken parallel to the plane of the paper. As shown in Figs. 1 and 2, a nonaqueous electrolyte secondary battery 20 includes a battery case 100 made up of a rectangular outer casing 1 having an opening and a bottomed, square cylindrical shape, and a sealing plate 2 that seals the opening of the rectangular outer casing 1.
[0017] The rectangular exterior housing 1 has a bottom 1a, a pair of first side walls 1b, 1c, and a pair of second side walls 1d, 1e. The pair of first side walls 1b, 1c are arranged facing each other. The pair of second side walls 1d, 1e are arranged facing each other. The pair of first side walls 1b, 1c are perpendicular to the longitudinal direction of the sealing plate 2, and the area of the pair of first side walls 1b, 1c is smaller than the area of the pair of second side walls 1d, 1e.
[0018] The rectangular exterior housing 1 accommodates an electrode assembly 3 including a positive electrode plate 4 and a negative electrode plate 5 together with an electrolyte. In this embodiment, the electrode assembly 3 is a flat electrode assembly in which the positive electrode plate 4 and the negative electrode plate 5 are wound with a separator interposed therebetween. The winding axis of the electrode assembly 3 extends perpendicular to the first side walls 1b and 1c and parallel to the second side walls 1d and 1e. Note that the electrode assembly 3 is not limited to a wound electrode assembly, and may be, for example, a laminated electrode assembly in which a plurality of positive electrode plates 4 and negative electrode plates 5 are stacked with a separator interposed therebetween.
[0019] In FIG. 2 , reference numeral 10 denotes an external insulating member disposed between the sealing plate 2 and the positive electrode terminal 8, and reference numeral 12 denotes an external insulating member disposed between the sealing plate 2 and the negative electrode terminal 9. Reference numeral 11 denotes an internal insulating member disposed between the sealing plate 2 and the first positive electrode current collector 61, and reference numeral 13 denotes an internal insulating member disposed between the sealing plate 2 and the first negative electrode current collector 71. Reference numeral 14 denotes a box- or bag-shaped insulating sheet disposed inside the rectangular outer casing 1 and accommodating the electrode assembly 3. Reference numeral 15 denotes an electrolyte injection hole provided in the sealing plate 2. Reference numeral 16 denotes a sealing member that seals the electrolyte injection hole 15. Reference numeral 17 denotes a gas release valve provided in the sealing plate 2.
[0020] In non-aqueous electrolyte secondary battery 20, one side is the positive electrode side and the other side is the negative electrode side in the direction in which the winding axis of electrode body 3 extends. The positive electrode side will be mainly described below, and a description of the negative electrode side may be omitted.
[0021] <Electrode body configuration> As shown in FIG. 4, the positive electrode plate 4 is in the form of a long strip, and has a region where a positive electrode active material layer 4a is formed on both sides of a positive electrode core (for example, aluminum foil). A plurality of positive electrode tabs 4b extend in a convex shape from the positive electrode core at one end in the short direction of the positive electrode plate 4. The surface of the positive electrode core at and near one end in the short direction of the positive electrode plate 4 is covered with a protective layer 4c. In other words, from one side (end) extending in the longitudinal direction of the positive electrode plate 4 to the positive electrode plate of 4 A protective layer 4c is provided with a constant width in the longitudinal central axis direction. A protective layer is also provided at the base of the positive electrode tab 4b. The protective layer 4c contains an insulating material, and may be, for example, a resin insulating layer or a layer containing ceramic, which is an inorganic oxide, and a resin binder. An example of the protective layer 4c is a layer containing alumina powder, a carbon material as a conductive material, and polyvinylidene fluoride as a binder.
[0022] 5, the negative electrode plate 5 is in the form of a long strip, and has a region where a negative electrode active material layer 5a is formed on both sides of a negative electrode core (e.g., copper foil). A plurality of negative electrode tabs 5b extend in a convex shape from the negative electrode core at one end in the short direction of the negative electrode plate 5.
[0023] As shown in Fig. 6, the positive electrode plate 4 and the negative electrode plate 5 are stacked with a separator interposed therebetween and wound together to form the electrode assembly 3. In the electrode assembly 3, the winding axis extends in the direction connecting the positive electrode tab group 40 and the negative electrode tab group 50 (the horizontal direction in Fig. 6), and of the end faces of the electrode assembly 3 perpendicular to the winding axis, the positive electrode tab group 40 is located on one end face, and the negative electrode tab group 50 is located on the other end face opposite thereto. This positional relationship makes it easy to prevent short circuits within the battery.
[0024] Next, the positional relationship between the positive electrode plate 4 and the negative electrode plate 5 in the electrode assembly 3 will be described with reference to Figures 7 and 8. Figure 7 is a schematic diagram showing the positional relationship between the positive electrode plate 4, negative electrode plate 5, and separator 95 in this embodiment, and Figure 8 is a similar diagram showing the positive electrode plate 4, negative electrode plate 52, and separator 95 in a comparative embodiment.
[0025] As explained in the background art, batteries with a stacked positive and negative electrode plate structure are generally designed so that the area where the active material of the positive electrode plate is applied is always within the area where the active material of the negative electrode plate is applied, and so that the area where the negative electrode active material is applied extends beyond (protrudes from) the area where the active material of the negative electrode plate is applied. To ensure that the area where the negative electrode active material is applied extends beyond the area where the positive electrode active material is applied, as shown in FIG. 8 , it is common to position the end 52e (one end) of the negative electrode plate 52 opposite the end 52d from which the negative electrode tab 52b extends outward from the end 4d (the end of the protective layer 4c on the positive electrode plate 4) from which the positive electrode tab 4b extends. This ensures that the area where the negative electrode active material 52a is applied extends beyond the area where the positive electrode active material is applied, even if the position of the one end 52e of the negative electrode plate 52 is slightly misaligned with respect to the positive electrode plate 4 during the manufacturing process (winding process).
[0026] 8, one end 52e of the negative electrode plate 52 is located between an upper end 4f of the protective layer provided on the positive electrode tab 4b and the end 4d of the positive electrode plate 4. One end 95e of the separator 95 faces the negative electrode tab 52b of the negative electrode plate 52, and the other end 95d faces the positive electrode tab 4b of the positive electrode plate 4, so that the separator 95 covers the entire positive electrode active material layer 4a and the negative electrode active material layer 52a.
[0027] However, as position control during winding improved, the above settings became overly conservative in terms of positional accuracy in the manufacturing process, and safety design conditions were rarely reviewed. Furthermore, when forming the positive electrode tab, the base of the tab is a corner, which is prone to burrs, so if burrs were to occur at the base of the positive electrode tab 4b, there was a problem that the burrs from the positive electrode core could break through the separator 95 and come into contact with the negative electrode plate 52, causing a short circuit.
[0028] Therefore, in this embodiment, as shown in FIG. 7 , one end 5e of the negative electrode plate 5 is positioned inside the corresponding end 4d (end of the protective layer 4c) of the positive electrode plate 4, facing the protective layer 4c of the positive electrode plate 4. This positional relationship ensures that even if a burr is present at the base of the positive electrode tab, the negative electrode plate 5 is not located in a position facing the burr, preventing a short circuit caused by the burr. Furthermore, when the electrodes are stacked and wound with the separator 95 interposed therebetween to form the electrode assembly 3, the distance between the end 4d (the end of the protective layer 4c of the positive electrode plate 4) and one end 5e of the negative electrode plate 5 is preferably 0.1 mm or more in plan view (perpendicular to the surfaces of the positive electrode plate 4 and the negative electrode plate 5). This reliably prevents short circuits caused by burrs. A distance of 0.15 mm or more is even more preferable because it more reliably prevents short circuits.
[0029] The comparative embodiment shown in FIG. 8 and this embodiment shown in FIG. 7 are different only in the positions of one ends 5e, 52e of the negative electrode plates 5, 52, and otherwise have the same configuration and structure.
[0030] <Structure of current collection from electrode body> The sealing plate 2 is provided with a positive electrode terminal 8 and a negative electrode terminal 9 as external electrode terminals. The positive electrode terminal 8 is electrically connected to a positive electrode tab group 40 via a positive electrode current collector 6, which is composed of a first positive electrode current collector 61 and a second positive electrode current collector 62. The negative electrode terminal 9 is electrically connected to a negative electrode tab group 50 via a negative electrode current collector 7, which is composed of a first negative electrode current collector 71 and a second negative electrode current collector 72.
[0031] The first positive electrode current collector 61 has a generally L-shaped cross section and is disposed between the electrode body 3 and the sealing plate 2. Specifically, the first positive electrode current collector 61 has a first region disposed along the sealing plate 2 and a second region bent from an end of the first region. The second region extends along the first side wall 1b toward the bottom 1a. The first positive electrode current collector 61 is connected to the positive electrode terminal 8. The negative electrode side has a similar configuration.
[0032] The second positive electrode current collector 62 is disposed between the electrode body 3 and the first side wall 1b of the rectangular exterior body 1. Specifically, the second positive electrode current collector 62 is made of a flat plate having a surface parallel to the first side wall 1b, and extends along the first side wall 1b toward the bottom 1a. The second positive electrode current collector 62 is connected to the first positive electrode current collector 61. The negative electrode side has a similar configuration.
[0033] 3 shows the second positive electrode current collector 62. The second positive electrode current collector 62 has a structure in which a portion of a substantially rectangular flat plate is bent, and has a current collector connection portion 62a, an inclined portion 62b, and a tab connection portion 62c. The current collector connection portion 62a is connected to the first positive electrode current collector 61. The tab connection portion 62c is connected to the positive electrode tab group 40. The inclined portion 62b connects the current collector connection portion 62a and the tab connection portion 62c, and is inclined relative to both.
[0034] The current collector connection portion 62a is provided with a recess 62d. A through-hole 62e is formed in the recess 62d. The current collector connection portion 62a is joined to the first positive electrode current collector 61 in the recess 62d. Furthermore, the second positive electrode current collector 62 is provided with a fuse portion 66.
[0035] Next, the bending of the positive electrode tab group 40 and the connection between the positive electrode tab group 40 and the second positive electrode current collector 62 will be described. Note that the configuration and structure of the negative electrode side are almost the same as those of the positive electrode side, so only the positive electrode side will be described below. FIG. 9 shows the vicinity of the connection between the second positive electrode current collector 62 and the positive electrode tab group 40 before the positive electrode tab group 40 is bent. FIG. 11 shows the electrode assembly 3 in which the positive electrode tab group 40 is connected to the second positive electrode current collector 62 and the negative electrode tab group 50 is connected to the second negative electrode current collector 72 before the positive electrode tab group 40 and the negative electrode tab group 50 are bent.
[0036] The positive electrode tab group 40 is connected to the tab connection portion 62c of the second positive electrode current collector 62. Specifically, as shown in Fig. 9, before the positive electrode tab group 40 is bent, the positive electrode tab group 40 is placed on the tab connection portion 62c of the second positive electrode current collector 62, and then the tab connection portion 62c and the positive electrode tab group 40 are joined (welded) to each other, thereby forming the connection portion 63.
[0037] 9, the positive electrode tab group 40 is connected to the tab connection portion 62c of the second positive electrode current collector 62, closer to one side in the width direction of the flat plate constituting the second positive electrode current collector 62 (the right side in FIG. 9). In other words, the connection portion 63 between the positive electrode tab group 40 and the tab connection portion 62c is closer to the base side of the positive electrode tab group 40 in the width direction of the flat plate (one side in the width direction, the right side in FIG. 9). This makes it possible to more reliably form a curved shape near the base of the positive electrode tab group 40 when the positive electrode tab group 40 is bent.
[0038] 10 is a diagram showing the vicinity of the connection portion between the second positive electrode current collector 62 and the positive electrode tab group 40 after the positive electrode tab group 40 has been folded. By folding the positive electrode tab group 40, the tab connection portion 62c of the second positive electrode current collector 62, which was disposed approximately parallel to the first main surface 3a and the second main surface 3b of the electrode assembly 3 (see FIGS. 9 and 11), is oriented approximately perpendicular to the winding axis of the electrode assembly 3. In other words, the positive electrode tab group 40 is folded parallel to the first side wall 1b on the side of the connection portion 63 with the second positive electrode current collector 62. The folded positive electrode tab group 40 is fixed to the electrode assembly 3 with tape 80.
[0039] With this configuration, the positive electrode tab group 40 can be folded without bending the second positive electrode current collector 62. This makes it possible to fabricate a nonaqueous electrolyte secondary battery with a high volumetric energy density by a simple method.
[0040] As described above, the negative electrode side has the same configuration as the positive electrode side, and in FIG. 11, 72a is a current collector connection portion, 72b is an inclined portion, and 72c is a tab connection portion.
[0041] The nonaqueous electrolyte secondary battery according to this embodiment can be made into a battery with high volumetric energy density by bending the positive electrode tab group 40 and the negative electrode tab group 50 without bending the second current collectors 62, 72, and one end 5e of the negative electrode plate 5 is positioned opposite the protective layer 4c of the positive electrode plate 4, thereby preventing short circuits within the battery.
[0042] (Other embodiments) The above-described embodiments are merely examples of the present invention, and the present invention is not limited to these examples. These examples may be combined with well-known, commonly used, or publicly known technologies, or may be partially replaced. Modified inventions that would be easily conceived by a person skilled in the art are also included in the present invention.
[0043] The nonaqueous electrolyte secondary battery 20 may include a plurality of electrode assemblies 3. FIG. 12 is a diagram showing an electrode assembly 300 including a plurality of electrode assemblies 3. As shown in FIG. 12, the nonaqueous electrolyte secondary battery 20 includes a plurality (two) of electrode assemblies 3. A second current collector 62 is connected to the positive electrode tab group 40 of each electrode assembly 3. The electrode assembly 300 is formed by arranging a plurality of electrode assemblies 3, 3 and fixing them together with tape 90. FIG. 13 is a diagram showing the electrode assembly 300 and sealing plate 2 connected to each other by a first positive electrode current collector 61 and a second positive electrode current collector 62. [Explanation of symbols]
[0044] 1. Rectangular exterior body 1b 1st side wall (side wall) 1c 1st side wall (side wall) 2 Sealing plate 3 Electrode body 4 positive electrode plate 4b Positive electrode tab 4c protective layer 5 negative electrode plate 5b Negative electrode tab 5e One end of the negative plate 8 Positive terminal (electrode terminal) 9 Negative terminal (electrode terminal) 20 Nonaqueous electrolyte secondary battery 40 Positive electrode tab group (tab group) 50 Negative electrode tab group (tab group) 61 First positive electrode current collector (first current collector) 62 Second positive electrode current collector (second current collector) 71 First negative electrode current collector (first current collector) 72 Second negative electrode current collector (second current collector) 95 Separator
Claims
1. an electrode assembly including a positive electrode plate and a negative electrode plate; a rectangular exterior body having an opening and accommodating the electrode body; a sealing plate that seals the opening; an electrode terminal provided on the sealing plate; a first current collector disposed between the electrode body and the sealing plate and connected to the electrode terminal; a second current collector disposed between the electrode body and a side wall of the rectangular exterior body and connected to the first current collector; a group of tabs extending from the electrode body toward the side wall and connected to the second current collector; Equipped with the second current collector is a flat plate having a surface parallel to the side wall, the tab group includes a positive electrode tab group formed by bundling a plurality of positive electrode tabs extending from the positive electrode plate and a negative electrode tab group formed by bundling a plurality of negative electrode tabs extending from the negative electrode plate, and is bent in parallel to the side wall on a connection portion side with the second current collector, the positive electrode tab group is located on one end surface of the electrode body, and the negative electrode tab group is located on the other end surface of the electrode body, the positive electrode plate includes a positive electrode core and a positive electrode active material applied to the positive electrode core, the positive electrode tab extends from the positive electrode core, and the end of the positive electrode core on the side from which the positive electrode tab extends and its vicinity are covered on the surface with a protective layer containing an insulator, and the protective layer is exposed; In the electrode assembly, the positive electrode plate and the negative electrode plate are stacked with a separator interposed therebetween, a nonaqueous electrolyte secondary battery, wherein one end of the negative electrode plate faces the protective layer of the positive electrode plate, but does not face the end of the positive electrode core from which the positive electrode tab extends.
2. 2. The nonaqueous electrolyte secondary battery according to claim 1, wherein the distance between an end of the protective layer and one end of the negative electrode plate is 0.1 mm or more in plan view.
3. 3. The nonaqueous electrolyte secondary battery according to claim 1, wherein the protective layer is also provided on a portion of the positive electrode tab.
4. 4. The nonaqueous electrolyte secondary battery according to claim 1, wherein the insulating material is an inorganic oxide.
Citation Information
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