Anti-breaking current collector, cathode sheet and battery
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-27
- Publication Date
- 2026-08-11
AI Technical Summary
因此需要增加集流体的厚度来增加极片的抗拉强度,但是增加集流体的厚度又会使得电池的能量密度降低
[0007]根据本实用新型第一方面实施例的防断裂集流体,至少具有如下有益效果:其中在电池进行充放电的过程中,会出现膨胀和收缩现象,从而对防断裂集流体造成拉伸的效果。首先第一箔材层和第三箔材层具有较高的延伸系数,从而使得第一箔材层和第三箔材层具有较大的弹性变量。在对防断裂集流体进行拉伸时,第一箔材层和第三箔材层发生弹性变形,而波浪设置的第二箔材层发生形变被拉直。此时具有较大的抗拉强度的第二箔材层承受较大的拉力,阻止第一箔材层和第三箔材层发生较大的弹性变形。从而即有效避免了第一箔材层和第三箔材层发生较大弹性变形而出现断裂,还有效避免了第二箔材层可弹性变形的范围过小而使得防断裂集流体受到的拉力过大而发生断裂。同时还有效降低了防断裂集流体的厚度,从而有效提升电池的能量密度。
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Figure CN224625556U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of new energy technology, and in particular to a fracture-resistant current collector, cathode sheet and battery. Background Technology
[0002] Currently, with the increasing market demand for consumer batteries, battery active materials have shifted from traditional graphite to silicon. Silicon's high specific capacity can significantly increase cell capacity, but its expansion (>300%) places higher demands on the overall cell reliability. In the current collector, the electrode fails to withstand the large expansion of silicon. Therefore, increasing the current collector thickness is necessary to increase the tensile strength of the electrode; however, increasing the current collector thickness reduces the battery's energy density. Therefore, a new anti-breakage current collector is needed that can effectively reduce the current collector thickness while enhancing its tensile strength. Utility Model Content
[0003] This invention aims to solve at least one of the technical problems existing in the prior art. To this end, this invention proposes a fracture-resistant current collector, which can effectively enhance the tensile strength of the current collector.
[0004] This utility model also proposes a fracture-resistant cathode sheet.
[0005] This utility model also proposes a fracture-resistant battery.
[0006] According to a first aspect of the present invention, an anti-fracture current collector includes: a first foil layer, a second foil layer, and a third foil layer; the elongation coefficients of the first foil layer and the third foil layer are greater than the elongation coefficient of the second foil layer, and the tensile strength of the second foil layer is greater than the tensile strength of the first foil layer and the third foil layer; the second foil layer is wavy along a first direction, the first direction being the length extension direction of the anti-fracture current collector, and the second foil layer has a first wavy surface and a second wavy surface opposite to each other along a second direction, the second direction being the thickness direction of the second foil layer; the first foil layer is fixedly disposed on the first wavy surface, and the third foil layer is disposed on the second wavy surface.
[0007] According to the first aspect of the present invention, the anti-fracture current collector has at least the following beneficial effects: During the charging and discharging process of the battery, expansion and contraction occur, resulting in a stretching effect on the anti-fracture current collector. Firstly, the first and third foil layers have high elongation coefficients, thus giving them large elastic variables. When the anti-fracture current collector is stretched, the first and third foil layers undergo elastic deformation, while the corrugated second foil layer deforms and is straightened. At this time, the second foil layer, with its higher tensile strength, withstands a greater tensile force, preventing the first and third foil layers from undergoing large elastic deformation. This effectively avoids breakage due to large elastic deformation of the first and third foil layers, and also effectively prevents the anti-fracture current collector from breaking due to excessive tensile force caused by an insufficient range of elastic deformation of the second foil layer. Simultaneously, it effectively reduces the thickness of the anti-fracture current collector, thereby effectively increasing the energy density of the battery.
[0008] According to some embodiments of the present invention, a third wavy surface is provided on the side of the first foil layer facing the second foil layer, and the third wavy surface is attached and fixed to the first wavy surface.
[0009] According to some embodiments of the present invention, the third foil layer has a fourth wavy surface on the side facing the second foil layer, and the fourth wavy surface is attached and fixed to the second wavy surface.
[0010] According to some embodiments of the present invention, the crest of the first wave surface is fixedly connected to the first foil layer, and the crest of the second wave surface is fixedly connected to the third foil layer.
[0011] According to some embodiments of the present invention, the crest of the first wave surface is provided with a first connecting plane, and the first connecting plane is fixedly connected to the first foil layer; and / or, the crest of the second wave surface is provided with a second connecting plane, and the second connecting plane is fixedly connected to the third foil layer.
[0012] According to some embodiments of the present invention, the thickness of the second foil layer is E, and the distance between the crest and trough of the first wave surface in the second direction is C, where 0.1E≤C≤0.2E.
[0013] According to some embodiments of the present invention, the width of the first connecting plane in the first direction is B, the interval between adjacent wave crests on the first wave surface is A, and the distance between the wave crest and wave trough of the first wave surface in the second direction is C, where C≤1 / 2A≤B.
[0014] According to some embodiments of the present invention, the thickness of the first foil layer and the third foil layer is D, the thickness of the second foil layer is E, and 1 / 4E≤D≤1 / 2E.
[0015] The anti-fracture cathode sheet according to the second aspect of the present invention includes the anti-fracture current collector as described in any of the above embodiments.
[0016] The anti-breakage battery according to a third aspect of the present invention includes the anti-breakage battery described in the above embodiments.
[0017] Additional aspects and advantages of this invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description
[0018] Figure 1 This is a schematic diagram of the anti-fracture current collector of this utility model;
[0019] Figure 2 This is a schematic diagram of the explosion structure of the anti-fracture current collector of this utility model;
[0020] Figure 3 This is a schematic diagram of the structure of the second foil layer of the anti-fracture current collector of this utility model.
[0021] Icon labels:
[0022] 1. First foil layer; 11. Third wavy surface; 2. Second foil layer; 21. First wavy surface; 22. Second wavy surface; 23. First connecting plane; 24. Second connecting plane; 3. Third foil layer; 31. Fourth wavy surface. Detailed Implementation
[0023] The embodiments of this utility model are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this utility model, and should not be construed as limiting this utility model.
[0024] In the description of this utility model, it should be understood that the orientation descriptions, such as up and down, are based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.
[0025] In the description of this utility model, "multiple" refers to two or more. The use of "first" and "second" is for distinguishing technical features only and should not be construed as indicating or implying relative importance, or implicitly indicating the number of technical features or their sequential relationship.
[0026] In the description of this utility model, unless otherwise explicitly defined, terms such as "setting," "installation," and "connection" should be interpreted broadly, and those skilled in the art can reasonably determine the specific meaning of the above terms in this utility model in conjunction with the specific content of the technical solution.
[0027] The high energy density of silicon-based battery cells is primarily attributed to the superior performance of silicon-based anode materials in electrochemical reactions. Specifically, when silicon alloys with lithium ions, its theoretical specific capacity reaches 4200 mAh / g, more than ten times that of traditional graphite anode materials. This significant capacity advantage gives silicon unparalleled potential in improving battery energy density. Furthermore, silicon has a low electrochemical lithium intercalation potential, approximately 0.4V vs. Li / Li+, which not only prevents lithium plating but also further enhances battery safety and stability. In addition, silicon resources are abundant in the Earth's crust and readily available, making it widely considered an ideal choice for next-generation high-energy-density lithium-ion battery anode materials.
[0028] However, while silicon-based battery cells exhibit high energy density, they also face the challenge of easy expansion. This problem stems from the significant volume changes silicon undergoes during charging and discharging. Specifically, when lithium ions are inserted into silicon, the silicon lattice expands; conversely, when lithium ions are extracted, the lattice contracts. This repeated volume change not only threatens the structural stability of the electrode material but also leads to overall cell expansion. More seriously, during lithium insertion, the outer amorphous LixSi layer expands, while the inner, uninserted portion remains unchanged. This uneven volume change generates significant stress within each silicon particle, ultimately causing cracking and pulverization. With continued charge-discharge cycles, this cracking and pulverization intensifies, new surfaces are continuously generated, and the solid electrolyte interphase (SEI) layer continues to form. This not only consumes a large amount of lithium ions, leading to continuous capacity decay, but also further exacerbates the cell expansion problem.
[0029] The fracture of the current collector in a battery cell can cause various adverse effects, such as decreased battery performance, increased risk of internal short circuits, reduced battery cycle life, and increased battery manufacturing costs. The current collector is a crucial component of the positive and negative electrodes in a lithium-ion battery cell. It carries the active material and collects current for output, converting chemical energy into electrical energy. When the current collector fractures, its ability to carry and transmit current is affected, leading to a decline in battery performance. This manifests as reduced battery capacity, increased internal resistance, and decreased charge / discharge efficiency. After the current collector fractures, burrs or sharp edges may form at the fracture site. These burrs or sharp edges may penetrate the separator between adjacent electrode layers, causing an internal short circuit. An internal short circuit not only reduces battery performance but may also trigger safety hazards such as overheating, expansion, or even explosion. The fracture of the current collector is often accompanied by the breakage and decomposition of active particles, which shortens the battery cycle life. The breakage of active particles blocks the internal conductive pathways, reducing electrochemical activity and accelerating battery degradation. Furthermore, the new surface created by the fracture may be exposed to the electrolyte, triggering electrolyte decomposition reactions and further leading to irreversible capacity loss. Current collector fracture can lead to a decrease in battery yield during manufacturing, thereby increasing manufacturing costs. Furthermore, repairing or replacing a fractured current collector requires additional repair and testing steps, which also increases production costs and time. In summary, current collector fracture in a battery cell negatively impacts battery performance, safety, cycle life, and manufacturing costs. Therefore, during battery design and manufacturing, the material and structural design of the current collector should be carefully considered to improve its strength and toughness and reduce the risk of fracture.
[0030] Reference Figure 1 , Figure 2 and Figure 3The anti-fracture current collector in the first embodiment of this utility model includes: a first foil layer 1, a second foil layer 2, and a third foil layer 3; the elongation coefficients of the first foil layer 1 and the third foil layer 3 are greater than the elongation coefficient of the second foil layer 2, and the tensile strength of the second foil layer 2 is greater than the tensile strength of the first foil layer 1 and the third foil layer 3; the second foil layer 2 is wavy along a first direction, which is the length extension direction of the anti-fracture current collector; the second foil layer 2 has a first wavy surface 21 and a second wavy surface 22 opposite to each other along a second direction, which is the thickness direction of the second foil layer 2; the first foil layer 1 is fixedly disposed on the first wavy surface 21, and the third foil layer 3 is disposed on the second wavy surface 22. To form the first wavy surface 21 and the second wavy surface 22, the second foil layer 2 is wavy, that is, the flat second foil layer 2 can be rolled into a wavy state by rolling. Specifically, a foil with a tensile strength of not less than 45 kgf / mm² can be used as the material of the second foil layer 2. The first foil layer 1 and the third foil layer 3 are made of foil with a tensile strength of not less than 34 kgf / mm² and an elongation of not less than 8%. When fixing the first foil layer 1 and the second foil layer 2, and when connecting the second foil layer 2 and the third foil layer 3, diffusion welding can be used. That is, in a vacuum or inert gas environment, pressure is applied in a second direction, that is, pressure is simultaneously applied to the side of the first foil layer 1 facing away from the second foil layer 2 and the side of the third foil layer 3 facing away from the second foil layer 2, while the temperature is controlled between 200-300°C and maintained for 10-60 minutes. This completes the fixing between the first foil layer 1 and the second foil layer 2, and between the second foil layer 2 and the third foil layer 3. When the battery expands, i.e., the anti-fracture current collector is stretched, the first foil layer 1 and the third foil layer 3 undergo elastic deformation, while the corrugated second foil layer 2 deforms and straightens. This effectively buffers the high-speed expansion rate of the battery in the early stages, thus preventing the anti-fracture current collector from breaking. When the first foil layer 1 and the second foil layer 2 undergo elastic deformation, the corrugated second foil layer 2 tends to be straightened. At this time, the second foil layer 2, with its higher tensile strength, withstands a greater tensile force, preventing the first foil layer 1 and the third foil layer 3 from undergoing large elastic deformation. This effectively prevents the first foil layer 1 and the third foil layer 3 from breaking due to large elastic deformation, and also effectively prevents the anti-fracture current collector from breaking due to excessive tensile force caused by an excessively small range of elastic deformation of the second foil layer 2. The silicon active material disposed on both sides of the anti-fracture current collector expands at a high rate in the early stages of battery charging and discharging. Preferably, the silicon content in the active material disposed on both sides of the anti-fracture current collector does not exceed 10%.
[0031] According to some embodiments of this utility model, a third wavy surface 11 is provided on the side of the first foil layer 1 facing the second foil layer 2, and the third wavy surface 11 is attached and fixed to the first wavy surface 21. Through the cooperation of the first wavy surface 21 and the third wavy surface 11, the first foil layer 1 and the second foil layer 2 can be attached more tightly, and the tensile strength of the anti-breakage current collector can also be effectively enhanced.
[0032] According to some embodiments of this utility model, a fourth corrugated surface 31 is provided on the side of the third foil layer 3 facing the second foil layer 2, and the fourth corrugated surface 31 is adhered and fixed on the second corrugated surface 22. Through the cooperation of the second corrugated surface 22 and the fourth corrugated surface 31, the third foil layer 3 and the second foil layer 2 can be adhered more tightly, and the tensile strength of the anti-breakage current collector can also be effectively enhanced.
[0033] According to some embodiments of this utility model, the crest of the first wavy surface 21 is fixedly connected to the first foil layer 1, and the crest of the second wavy surface 22 is fixedly connected to the third foil layer 3. The crests can be fixed using various methods such as welding. Welding only the crests allows for easier and faster fixing, and also gives the second foil layer 2 greater freedom of movement when bending or straightening, reducing the resistance of the second foil.
[0034] According to some embodiments of this utility model, the crest of the first wavy surface 21 is provided with a first connecting plane 23, which is fixedly connected to the first foil layer 1; and / or, the crest of the second wavy surface 22 is provided with a second connecting plane 24, which is fixedly connected to the third foil layer 3. By providing the first plane, the connection area between the first foil layer 1 and the second foil layer 2 can be increased, thereby making the connection between the first foil layer 1 and the second foil layer 2 more robust. By providing the second plane, the connection area between the third foil layer 3 and the second foil layer 2 can be increased, thereby making the connection between the third foil layer 3 and the second foil layer 2 more robust.
[0035] According to some embodiments of this utility model, the thickness of the second foil layer 2 is E, and the distance between the crest and trough of the first wave surface 21 in the second direction is C, where 0.1E ≤ C ≤ 0.2E. The proportional relationship between the thickness E of the second foil layer 2 and the distance C between the crest and trough of the first wave surface 21 in the second direction has a crucial influence on the deformation of the second foil layer 2. When the thickness E of the second foil layer 2 is too large relative to C, the second foil layer 2 is difficult to straighten and deform, thus preventing the first foil layer 1 and the third foil layer 3 from buffering the rapid expansion in the early stage. When the thickness E of the second foil layer 2 is too small relative to C, not only will the first foil layer 1 and the third foil layer 3 break, but the second foil layer 2 will also undergo unexpected deformation during the cyclic expansion and contraction process.
[0036] According to some embodiments of this utility model, the width of the first connecting plane in the first direction is B, the interval between adjacent wave crests on the first wave surface 21 is A, and the distance between the crest and trough of the first wave surface 21 in the second direction is C, where C ≤ 1 / 2A ≤ B. When the distance A between wave crests is too small relative to the distance C between the crest and trough of the first wave surface 21 in the second direction, the second foil layer 2 will not be able to maintain its shape well during the stretching and contraction process. When the distance A between wave crests is large relative to the width B of the first plane in the first direction, the amount of stretching and contraction will be small. Therefore, the distance A between wave crests is limited.
[0037] According to some embodiments of this utility model, the thickness of the first foil layer 1 and the third foil layer 3 is D, and the thickness of the second foil layer 2 is E, where 1 / 4E ≤ D ≤ 1 / 2E. When the thickness D of the first foil layer 1 and the third foil layer 3 is too large, not only is deformation difficult to occur, but the thickness of the anti-breakage current collector also increases, thereby reducing the energy density of the battery. When the thickness D of the first foil layer 1 and the third foil layer 3 is too small, the tensile strength of the anti-breakage current collector is reduced. Therefore, the thickness D of the first foil layer 1 and the third foil layer 3 is limited.
[0038] The anti-fracture cathode sheet according to the second aspect of the present invention includes the anti-fracture current collector of any of the above embodiments.
[0039] The anti-breakage battery according to a third aspect of the present invention includes the anti-breakage battery described in the above embodiments.
[0040] The embodiments of the present utility model have been described in detail above with reference to the accompanying drawings. However, the present utility model is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of the present utility model.
Claims
1. A fracture-resistant current collector, characterized in that, include: First foil layer, second foil layer and third foil layer; The elongation coefficients of the first foil layer and the third foil layer are greater than the elongation coefficient of the second foil layer, and the tensile strength of the second foil layer is greater than the tensile strength of the first foil layer and the third foil layer; The second foil layer is wavy along a first direction, which is the length extension direction of the anti-fracture current collector. The second foil layer is provided with a first wavy surface and a second wavy surface opposite each other along a second direction, which is the thickness direction of the second foil layer. The first foil layer is fixedly disposed on the first wave surface, and the third foil layer is disposed on the second wave surface.
2. The anti-fracture current collector according to claim 1, characterized in that, The first foil layer has a third wavy surface on the side facing the second foil layer, and the third wavy surface is attached and fixed to the first wavy surface.
3. The anti-fracture current collector according to claim 1, characterized in that, The third foil layer has a fourth wavy surface on the side facing the second foil layer, and the fourth wavy surface is attached and fixed to the second wavy surface.
4. The anti-fracture current collector according to claim 1, characterized in that, The crest of the first wave surface is fixedly connected to the first foil layer, and the crest of the second wave surface is fixedly connected to the third foil layer.
5. The anti-fracture current collector according to claim 1, characterized in that, The crest of the first wave surface is provided with a first connecting plane, which is fixedly connected to the first foil layer; and / or, the crest of the second wave surface is provided with a second connecting plane, which is fixedly connected to the third foil layer.
6. The anti-fracture current collector according to claim 1, characterized in that, The thickness of the second foil layer is E, and the distance between the crest and trough of the first wave surface in the second direction is C, where 0.1E≤C≤0.2E.
7. The anti-fracture current collector according to claim 5, characterized in that, The width of the first connecting plane in the first direction is B, the interval between adjacent wave crests on the first wave surface is A, and the distance between the wave crest and wave trough of the first wave surface in the second direction is C, where C≤1 / 2A≤B.
8. The anti-fracture current collector according to claim 7, characterized in that, The thickness of the first foil layer and the third foil layer is D, and the thickness of the second foil layer is E, where 1 / 4E ≤ D ≤ 1 / 2E.
9. A fracture-resistant cathode sheet, characterized in that, The anti-breakage current collector includes any one of claims 1-8.
10. A fracture-resistant battery, characterized in that, Includes the anti-fracture cathode sheet as described in claim 9.