IP Library Granted Patent US 7,294,435
Granted Patent B2
US 7,294,435 · App. 10/846,694 · Granted Nov 13, 2007

Positive electrode active material for nonaqueous electrolyte secondary battery, positive electrode mixture for nonaqueous electrolyte secondary battery, and nonaqueous electrolyte secondary battery

Assignee: Nichia Corporation
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Quick Facts
Patent No.
US 7,294,435
App. No.
10/846,694
Granted
Nov 13, 2007
Kind
B2
Abstract

Disclosed is a positive electrode active material for a nonaqueous electrolyte secondary battery containing at least a lithium-transition metal composite oxide of a spinel structure, in which at least one kind of element which may become tetravalent exists on at least a surface of the lithium-transition metal composite oxide, and concentration of the element which may become tetravalent on the surface of the lithium-transition metal composite oxide is higher than concentration of the element which may become tetravalent inside the lithium-transition metal composite oxide. A use of this positive electrode active material can improve cycle characteristics and high rate characteristics without reducing the charge-discharge capacity of the lithium-transition metal composite oxide.

Claims (32)

1. A positive electrode active material for a nonaqueous electrolyte secondary battery containing at least a lithium-transition metal composite oxide of a spinel structure, in which the lithium-transition metal composite oxide is represented by the general formula Li 1+a Mg b Mn 2−a−b B c F d O 4+e , (where, -0.2 ≦a ≦0.2, 0.005≦b ≦0.10, 0.002≦c≦0.02, 0.0025≦d≦0.01 and -0.5≦e≦0.5).

2. The positive electrode active material for a nonaqueous electrolyte secondary battery according to claim 1 ,

wherein fluorine exists on at least a surface of the lithium-transition metal composite oxide, and

a concentration of the fluorine on the surface of the lithium-transition metal composite oxide is higher than a concentration of the fluorine inside the lithium-transition metal composite oxide.

3. The positive electrode active material for a nonaqueous electrolyte secondary battery according to claim 2 ,

wherein magnesium exists on at least the surface of the lithium-transition metal composite oxide, and

a concentration of the magnesium on the surface of the lithium-transition metal composite oxide is higher than a concentration of the magnesium inside the lithium-transition metal composite oxide.

4. The positive electrode active material for a nonaqueous electrolyte secondary battery according to claim 3 ,

wherein the concentration of the magnesium inside the lithium-transition metal composite oxide is higher than the concentration of the fluorine inside the lithium-transition metal composite oxide.

5. The positive electrode active material for a nonaqueous electrolyte secondary battery according to claim 2 ,

wherein boron exists on at least the surface of the lithium-transition metal composite oxide, and

a concentration of the boron on the surface of the lithium-transition metal composite oxide is higher than a concentration of the boron inside the lithium-transition metal composite oxide.

6. A positive electrode active material for a nonaqueous electrolyte secondary battery comprising:

a lithium-transition metal composite oxide of a spinel structure, wherein the lithium-transition metal composite oxide is represented by the general formula Li 1+a Mg b Ti c Mn 2−a−b−c B d O 4+e , (where, −0.2≦a≦0.2, 0.005≦b≦0.10, 0.005≦c≦0.05, 0.002≦d≦0.02 and −0.5≦e≦0.5).

7. The positive electrode active material for a nonaqueous electrolyte secondary battery according to claim 6 ,

wherein boron and magnesium exist on at least a surface of the lithium-transition metal composite oxide,

a concentration of the boron on the surface of the lithium-transition metal composite oxide is higher than a concentration of the boron inside the lithium-transition metal composite oxide, and

a concentration of the magnesium on the surface of the lithium-transition metal composite oxide is higher than a concentration of the magnesium inside the lithium-transition metal composite oxide.

8. The positive electrode active material for a nonaqueous electrolyte secondary battery according to claim 7 ,

wherein the concentration of the magnesium inside the lithium-transition metal composite oxide is higher than the concentration of the boron inside the lithium-transition metal composite oxide.

9. The positive electrode active material for a nonaqueous electrolyte secondary battery according to claim 7 ,

wherein the concentration of the titanium inside the lithium-transition metal composite oxide is higher than the concentration of the boron inside the lithium-transition metal composite oxide.

10. A nonaqueous electrolyte secondary battery, comprising:

a strip positive electrode constituted by forming, on at least one side of a strip positive electrode current collector, a positive electrode active material layer employing the positive electrode active material for a nonaqueous electrolyte secondary battery according to claim 1 ;

a strip negative electrode constituted by forming, on at least one side of a strip negative electrode current collector, a negative electrode active material layer employing, as a negative electrode active material, a lithium metal, a lithium alloy, a carbon material capable of intercalating and deintercalating lithium ions or a compound capable of intercalating and deintercalating the lithium ions; and

a strip separator,

wherein the strip positive electrode and the strip negative electrode laminated with the strip separator between the strip positive electrode and the strip negative electrode are wound a plurality of times to form a winding of the strip positive electrode and the strip negative electrode with the strip separator intervening between the strip positive electrode and the strip negative electrode.

11. A nonaqueous electrolyte secondary battery, comprising:

a strip positive electrode constituted by forming, on at least one side of a strip positive electrode current collector, a positive electrode active material layer employing the positive electrode active material for a nonaqueous electrolyte secondary battery according to claim 6 ;

a strip negative electrode constituted by forming, on at least one side of a strip negative electrode current collector, a negative electrode active material layer employing, as a negative electrode active material, a lithium metal, a lithium alloy, a carbon material capable of intercalating and deintercalating lithium ions or a compound capable of intercalating and deintercalating the lithium ions; and

a strip separator,

wherein the strip positive electrode and the strip negative electrode laminated with the strip separator between the strip positive electrode and the strip negative electrode are wound a plurality of times to form a winding of the strip positive electrode and the strip negative electrode with the strip separator intervening between the strip positive electrode and the strip negative electrode.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 17, 2004
From: MIYAMOTO, YOSHIFUMI; KOBAYASHI, KENICHI
To: NICHIA CORPORATION
Reel/Frame 015344/0723 →
Priority Claims (3)
JP 2003-136834 · May 15, 2003 · national
JP 2003-297069 · Aug 21, 2003 · national
JP 2003-333063 · Sep 25, 2003 · national
Continuity (1)
Related Publication 20040229124A1 · Nov 18, 2004