IP Library › Granted Patent US 9,012,075
Granted Patent B2
US 9,012,075 · App. 13/355,623 · Granted Apr 21, 2015

Fade-resistant high capacity electrodes for a lithium-ion battery

Inventors: Mark W. Verbrugge (Troy, MI); Sampath K. Vanimisetti (Karnataka, IN); Ramakrishnan Narayanrao (Karnataka, IN)
Assignee: GM Global Technology Operations LLC
H01M4/134H01M4/1395H01M4/366H01M4/386H01M4/387H01M4/628H01M10/0525Y02E60/122Y02T10/7011
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Quick Facts
Patent No.
US 9,012,075
App. No.
13/355,623
Granted
Apr 21, 2015
Kind
B2
Abstract

The gravimetric and volumetric efficiency of lithium ion batteries may be increased if higher capacity materials like tin and silicon are substituted for carbon as the lithium-accepting host in the negative electrode of the battery. But both tin and silicon, when fully charged with lithium, undergo expansions of up to 300% and generate appreciable internal stresses. These internal stresses, which will develop on each discharge-charge cycle, may lead to a progressive reduction in battery capacity, also known as battery fade. The effects of the internal stresses may be significantly reduced by partially embedding tin or silicon nanowires in the current collector. Additional benefit may be obtained if a 5 to 50% portion of the nanowire length at its embedded end are coated or masked with a composition which impedes lithium diffusion. Methods for embedding and masking the nanowires are described.

Claims (12)

1. A negative electrode for a lithium ion battery comprising a current collector having a surface and a plurality lithium-accepting nanowires, each nanowire having ends, a length and a nanometer-sized diameter, in which an end of each of the nanowires is embedded in the current collector and the nanowires extend outwardly from the current collector for infiltration with a suitable lithium-conducting electrolyte, each nanowire having a circumferential coating of a lithium diffusion-inhibiting material over a portion of its length extending from the surface of the current collector, the lithium diffusion-inhibiting coating serving to mitigate fracture-inducing stresses occurring in the lithium-accepting nanowire during lithiation and delithiation.

2. The negative electrode for a lithium ion battery recited in claim 1 in which the circumferentially-coated portion of the nanowire extends over a length of between about 5% and about 50% of the length of the nanowire.

3. The negative electrode for a lithium ion battery recited in claim 1 in which the circumferentially-coated portion of the nanowire extends over a length of between about 5% and about 25% of the length of the nanowire.

4. The negative electrode for a lithium ion battery recited in claim 1 in which the circumferentially-coated portion of the nanowire extends over a length of between about 5% and about 15% of the length of the nanowire.

5. The negative electrode for a lithium ion battery recited in claim 1 in which the current collector comprises substantially copper.

6. The negative electrode for a lithium ion battery recited in claim 1 in which the lithium-accepting nanowire comprises substantially one of silicon or tin.

7. The negative electrode for a lithium ion battery recited in claim 2 in which the lithium diffusion inhibiting material is one or more of titanium, copper, nickel and gold.

8. A lithium ion battery comprising a negative electrode comprising a current collector having a surface and a plurality lithium-accepting nanowires, each nanowire having ends, a length and a nanometer-sized diameter, in which an end of each of the nanowires is embedded in the current collector and the nanowires extend outwardly from the current collector for infiltration with a suitable lithium-conducting electrolyte, each nanowire having a circumferential coating of a lithium diffusion-inhibiting material over a portion of its length extending from the surface of the current collector, the lithium diffusion-inhibiting coating serving to mitigate fracture-inducing stresses occurring in the lithium-accepting nanowire during lithiation and delithiation.

9. The lithium ion battery comprising a negative electrode recited in claim 8 in which the circumferentially-coated portion of the nanowire extends over a length of between about 5% and about 50% of the length of the nanowire.

10. The lithium ion battery comprising a negative electrode recited in claim 8 , the electrode comprising a current collector in which the current collector comprises substantially copper.

11. The lithium ion battery comprising a negative electrode recited in claim 8 in which the lithium-accepting nanowires comprise substantially one of silicon or tin.

12. The lithium ion battery comprising a negative electrode recited in claim 8 in which the lithium diffusion inhibiting material is one or more of titanium, copper, nickel and gold.

Assignments (3)
RELEASE OF SECURITY INTEREST Recorded Nov 7, 2014
From: WILMINGTON TRUST COMPANY
To: GM GLOBAL TECHNOLOGY OPERATIONS LLC
Reel/Frame 034287/0415 →
SECURITY AGREEMENT Recorded Jun 26, 2013
From: GM GLOBAL TECHNOLOGY OPERATIONS LLC
To: WILMINGTON TRUST COMPANY
Reel/Frame 030694/0500 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 23, 2012
From: VERBRUGGE, MARK W.; VANIMISETTI, SAMPATH K.; NARAYANRAO, RAMAKRISHNAN
To: GM GLOBAL TECHNOLOGY OPERATIONS LLC
Reel/Frame 027573/0904 →
Continuity (1)
Related Publication 20130189576A1 · Jul 25, 2013