IP Library Patent Application 18649394
Patent Application
App. No. 18/649,394

NEGATIVE ELECTRODE PLATE, METHOD FOR PREPARING SAME, SECONDARY BATTERY CONTAINING SAME, AND ELECTRICAL DEVICE

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Quick Facts
Patent No.
US None
App. No.
18/649,394
Filed
Apr 29, 2024
Art Unit
1751
USPC
429/211
Abstract

This application provides a negative electrode plate and a method for preparing same. In the method, a metal foil is connected to a foamed metal current collector by roll welding, so as to form the negative electrode plate. The metal foil forms a tab of the negative electrode plate, and the foamed metal current collector includes a foamed metal layer of a porosity of 60% to 99%, and optionally 80% to 85%. The method reduces or avoids flying metal chips and cold solder joints, and improves mechanical strength and electrical conductivity of the electrode plate. This application also provides a negative electrode plate prepared by the method, a secondary battery containing the negative electrode plate, and an electrical device.

Claims (40)

1 . A method for preparing a negative electrode plate, comprising:

connecting a metal foil to a foamed metal current collector by roll welding, so as to form the negative electrode plate,

wherein the metal foil forms a tab of the negative electrode plate, and the foamed metal current collector comprises a foamed metal layer of a porosity of 60% to 99%.

2 . The method according to claim 1 , wherein the roll welding is an ultrasonic welding, and a power density of the welding is 2.0 to 28 W/cm 2 .

3 . The method according to claim 1 , wherein the roll welding is an ultrasonic welding, and a pressure during the welding is 0.1 MPa to 1.0 MPa.

4 . The method according to claim 1 , wherein the roll welding is an ultrasonic welding, and an amplitude of a welding head is 10 μm to 50 μm.

5 . The method according to claim 1 , wherein the roll welding comprises:

roll-welding the metal foil to one end, or roll-welding two metal foils to two opposite ends, of the foamed metal current collector along a length direction, wherein each metal foil overlaps at least a part of the foamed metal current collector and extends beyond the foamed metal current collector; and the at least a part that is overlapping forms a welding region (L 2 ), and an exceeding part of the extension forms an excess region (L 1 );

wherein, along a width direction of the foamed metal current collector, a dimension of the excess region (L 1 ) by percentage falls within a range of 2.5% to 12.5%, and a dimension of the welding region (L 2 ) by percentage falls within a range of 10% to 15%, based on a width of the foamed metal current collector; or

wherein, along the width direction of the foamed metal current collector, a dimension of the excess region (L 1 ) is 1 mm to 5 mm, and the dimension of the welding region (L 2 ) is 4 mm to 6 mm.

6 . The method according to claim 5 , wherein the metal foil is roll-welded to opposite surfaces of the foamed metal current collector at each end of the current collector along the length direction, and then the metal foils in two opposite excess regions (L 1 ) located at a same end are connected together.

7 . The method according to claim 1 , wherein

one end or each of two opposite ends of the foamed metal current collector extending along a length direction comprises a compressed section (L 3 ), and the compressed section comprises a transition region (LA) and a flat region (L 5 );

the metal foil is roll-welded to the flat region (L 5 ) at one end or two opposite ends of the foamed metal current collector, wherein each metal foil overlaps at least a part of the flat region (L 5 ) and extends beyond the flat region (L 5 ); and

the at least a part that is overlapping forms a flat welding region (L 6 ), and an exceeding part of the extension forms a flat excess region (L 7 );

wherein, along a width direction of the foamed metal current collector, a dimension of the flat welding region (L 6 ) by percentage falls within a range of 7.5% to 12.5%, and a dimension of the flat excess region (L 7 ) by percentage falls within a range of 2.5% to 24%, based on a width of the foamed metal current collector; or

wherein, along the width direction of the foamed metal current collector, a dimension of the flat welding region (L 6 ) is 3 mm to 5 mm, and the dimension of the flat excess region (L 7 ) is 1 mm to 6 mm.

8 . The method according to claim 7 , wherein the metal foil is roll-welded to opposite flat regions (L 5 ) of the foamed metal current collector at each end of the current collector along the length direction, and then the metal foils in two opposite flat excess regions (L 7 ) located at a same end are connected together.

9 . The method according to claim 1 , wherein

a thickness of the tab is 9 μm to 50 μm;

a width of the tab is 6 mm to 9 mm; and

a length of the tab is 2 mm to 15 mm.

10 . The method according to claim 1 , wherein

the foamed metal current collector is a foamed metal layer, a thickness of the foamed metal layer is 10 μm to 1000 μm; and

the foamed metal layer is formed by at least one of foamed nickel, foamed copper, foamed aluminum, foamed silver, foamed copper-aluminum alloy, or foamed copper-nickel alloy.

11 . The method according to claim 1 , wherein the foamed metal current collector is a composite formed by laminating a foamed metal layer, a metal foil layer, and a foamed metal layer sequentially;

wherein a thickness of each of the metal foam layers is 10 μm to 1000 μm, and a thickness of the metal foil layer is 5 μm to 100 μm; and

wherein the metal foil layer is at least one selected from a copper foil layer, a nickel foil layer, an aluminum foil layer, or a silver foil layer.

12 . A negative electrode plate, comprising a tab and a foamed metal current collector; wherein

the tab is formed of a metal foil, and the foamed metal current collector comprises a foamed metal layer of a porosity of 60% to 99%; and

the metal foil is connected to the foamed metal current collector by roll welding to form the negative electrode plate.

13 . The negative electrode plate according to claim 12 , wherein

a thickness of the tab is 9 μm to 50 μm;

a thickness of the foamed metal current collector is 10 μm to 1000 μm; and

a thickness ratio between the tab and the foamed metal current collector is 1:1 to 1:10.

14 . The negative electrode plate according to claim 12 , wherein a tensile force of the negative electrode plate is 10 to 20 N.

15 . The negative electrode plate according to claim 12 , wherein a weld seam resistance at a joint between the tab and the current collector is 1.0 to 1.8 mΩ.

16 . The negative electrode plate according to claim 12 , wherein the negative electrode plate is prepared by the method according to claim 1 .

17 . A secondary battery, comprising the negative electrode plate according to claim 12 .

18 . An electrical device, comprising the secondary battery according to claim 17 .

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 6, 2024
From: CONTEMPORARY AMPEREX TECHNOLOGY CO., LIMITED
To: CONTEMPORARY AMPEREX TECHNOLOGY (HONG KONG) LIMITED
Reel/Frame 068338/0402 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 29, 2024
From: WANG, MANMAN; LIU, FENG; GE, XIAOMING
To: CONTEMPORARY AMPEREX TECHNOLOGY CO., LIMITED
Reel/Frame 067259/0341 →