IP Library Granted Patent US 8,182,939
Granted Patent B2
US 8,182,939 · App. 10/558,467 · Granted May 22, 2012

Anode material for lithium secondary cell with high capacity

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Quick Facts
Patent No.
US 8,182,939
App. No.
10/558,467
Granted
May 22, 2012
Kind
B2
Abstract

Disclosed is an anode material comprising a metal core layer capable of repetitive lithium intercalation/deintercalation; an amorphous carbon layer coated on the surface of the metal core layer, and a crystalline carbon layer coated on the amorphous carbon layer. The anode material not only maintains a high charge/discharge capacity, which is an advantage of a metal-based anode material, but also inhibits changes in the volume of a metal core layer caused by repetitive lithium intercalation/deintercalation in virtue of an amorphous carbon layer and a crystalline carbon layer, thereby improving the cycle life characteristics of cells.

Claims (32)

1. An anode material consisting essentially of:

a metal core layer capable of repetitive lithium intercalation/deintercalation;

an amorphous carbon layer coated on a totality of a surface of the metal core layer; and

a crystalline carbon layer coated on a totality of a surface of the amorphous carbon layer;

wherein the metal core layer consists of at least one metal selected from the group consisting of Si, Al, Sn, Sb, Bi, As, Ge and Pb.

2. The anode material according to claim 1 , wherein the ratio of the metal core layer to the amorphous carbon layer to the crystalline carbon layer is 90-10wt % :0.1-50 wt % :9-90 wt %.

3. The anode material according to claim 1 , wherein the amorphous carbon layer has an interlayer distance (d002) of carbon atom of 0.34 nm or more, and a thickness of 5 nm or more.

4. The anode material according to claim 1 , wherein the crystalline carbon layer has an interlayer distance (d002) of carbon atom ranged from 0.3354 nm to 0.35 nm, and a thickness ranged from 1 micron to 10 microns.

5. A secondary cell using an anode material, the anode material consisting essentially of:

a metal core layer capable of repetitive lithium intercalation/deintercalation;

an amorphous carbon layer coated on a totality of a surface of the metal core layer; and

a crystalline carbon layer coated on a totality of a surface of the amorphous carbon layer;

wherein the metal core layer consists of at least one metal selected from the group consisting of Si, Al, Sn, Sb, Bi, As, Ge and Pb.

6. The secondary cell according to claim 5 , wherein the ratio of the metal core layer to the amorphous carbon layer to the crystalline carbon layer is 90-10 wt %:0.1-50 wt %:9-90 wt %.

7. The secondary cell according to claim 5 , wherein the amorphous carbon layer has an interlayer distance (d002) of carbon atom of 0.34 nm or more, and a thickness of 5 nm or more.

8. The secondary cell according to claim 7 , wherein the crystalline carbon layer has an interlayer distance (d002) of carbon atom ranged from 0.3354 nm to 0.35 nm, and a thickness ranged from 1 micron to 10 microns.

9. A method for preparing an anode material, the method comprising:

coating an amorphous carbon layer on a metal core layer by a thin film deposition process, or coating pitch or organic material precursors on a metal core layer and heat treating to perform carbonization, thereby coating an amorphous carbon layer on the metal core layer; and

coating slurry containing crystalline carbonaceous materials on the surface of the amorphous carbon layer and drying to form a crystalline carbon layer,

wherein the anode material consists essentially of:

a metal core layer capable of repetitive lithium intercalation/deintercalation;

an amorphous carbon layer coated on a totality of a surface of the metal core layer; and

a crystalline carbon layer coated on a totality of a surface of the amorphous carbon layer; wherein the metal core layer consists of at least one metal selected from the group consisting of Si, Al, Sn, Sb, Bi, As, Ge and Pb.

10. A method for preparing an anode material, the method comprising:

mixing a metal forming a core layer with crystalline carbon; and

carrying out a mechanical alloying process to form an amorphous carbon layer and a crystalline carbon layer simultaneously on the metal core layer,

wherein the anode material consists essentially of:

a metal core layer capable of repetitive lithium intercalation/deintercalation;

an amorphous carbon layer coated on a totality of a surface of the metal core layer; and

a crystalline carbon layer coated on a totality of a surface of the amorphous carbon layer;

wherein the metal core layer consists of at least one metal selected from the group consisting of Si, Al, Sn, Sb, Bi, As, Ge and Pb.

11. The method according to claim 10 , wherein the mixing ratio of the metal to the crystalline carbon is 10-90:90-10.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 4, 2021
From: LG CHEM, LTD.
To: LG ENERGY SOLUTION, LTD.
Reel/Frame 058295/0068 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 28, 2005
From: KIM, YOU MIN; LEE, KI YOUNG; LEE, SEO JAE; ROH, SUK MYUNG; KWON, OU JUNG
To: LG CHEM, LTD.
Reel/Frame 017997/0275 →