IP Library Granted Patent US 9,601,773
Granted Patent B2
US 9,601,773 · App. 14/182,338 · Granted Mar 21, 2017

Anode materials for lithium-ion batteries

Inventors: Arumugam Manthiram (Austin, TX); Danielle Applestone (Mena, AR); Sukeun Yoon (St. Louis, MO)
Assignee: BOARD OF REGENTS, THE UNIVERSITY OF TEXAS SYSTEM
H01M4/58B82Y30/00C01G30/002C01G39/00C01G39/006H01M4/38H01M4/48H01M4/587C01P2002/72C01P2002/77C01P2004/03C01P2004/04C01P2004/64C01P2006/11C01P2006/40H01M4/485H01M4/505H01M4/525H01M10/052
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Quick Facts
Patent No.
US 9,601,773
App. No.
14/182,338
Granted
Mar 21, 2017
Kind
B2
Abstract

The current disclosure relates to an anode material with the general formula M y Sb-M′O x —C, where M and M′ are metals and M′O x —C forms a matrix containing M y Sb. It also relates to an anode material with the general formula M y Sn-M′C x —C, where M and M′ are metals and M′C x —C forms a matrix containing M y Sn. It further relates to an anode material with the general formula Mo 3 Sb 7 —C, where —C forms a matrix containing Mo 3 Sb 7 . The disclosure also relates to an anode material with the general formula M y Sb-M′C x —C, where M and M′ are metals and M′C x —C forms a matrix containing M y Sb. Other embodiments of this disclosure relate to anodes or rechargeable batteries containing these materials as well as methods of making these materials using ball-milling techniques and furnace heating.

Claims (26)

1. An anode material comprising the general formula Cu 2 Sb—Al 2 O 3 —C, wherein Al 2 O 3 —C forms a matrix containing Cu 2 Sb.

2. An anode material comprising the general formula M y Sb-M′O x —C,

wherein M y Sb is a metal antinomide alloy and M is selected from the group consisting of copper (Cu), molybdenum (Mo), nickel (Ni), titanium (Ti), or tin (Sn), and combinations thereof,

wherein M′O x is a metal oxide and M′ is selected from the group consisting of aluminum (Al), magnesium (Mg), titanium (Ti), vanadium (V), chromium (Cr), manganese (Mn), iron (Fe), cobalt (Co), nickel (Ni), zirconium (Zr), molybdenum (Mo), tungsten (W), niobium (Nb), or tantalum (Ta), and combinations thereof, and

wherein M′O x —C forms a matrix containing particulate M y Sb formed after the anode material has been cycled in an electrochemical cell.

3. The anode material of claim 2 , wherein M y Sb comprises particles with an average diameter of 500 nm or less.

4. The anode material of claim 2 , wherein the matrix comprises a conductive framework of M y that supports Sb.

5. The anode material of claim 2 , wherein M y Sb comprises particles with an average diameter of 200 nm or less.

6. The anode material of claim 2 , wherein M y Sb comprises particles with an average diameter of 100 nm or less.

7. The anode material of claim 2 , wherein M y Sb comprises particles with an average diameter of between 1 nm and 20 nm.

8. The anode material of claim 2 , wherein the anode material has a tap density of greater than 1 g/cm 3 .

9. A rechargeable battery comprising an electrochemical cell comprising an anode comprising an anode material comprising the general formula M y Sb-M′O x —C,

wherein M y Sb is a metal antinomide alloy and M is selected from the group consisting of copper (Cu), molybdenum (Mo), nickel (Ni), titanium (Ti), or tin (Sn), and combinations thereof,

wherein M′O x is a metal oxide and M′ is selected from the group consisting of aluminum (Al), magnesium (Mg), titanium (Ti), vanadium (V), chromium (Cr), manganese (Mn), iron (Fe), cobalt (Co), nickel (Ni), zirconium (Zr), molybdenum (Mo), tungsten (W), niobium (Nb), or tantalum (Ta), and combinations thereof, and

wherein M′O x —C forms a matrix containing particulate M y Sb formed after the anode material has been cycled in the electrochemical cell.

10. A rechargeable battery of claim 9 , comprising the general formula Cu 2 Sb—Al 2 O 3 —C, wherein Al 2 O 3 —C forms a matrix containing Cu 2 Sb.

11. The rechargeable battery of claim 9 , wherein M y Sb comprises particles with an average diameter of 500 nm or less.

12. The rechargeable battery of claim 9 , wherein the matrix comprises a conductive framework of M y that supports Sb.

13. The rechargeable battery of claim 9 , wherein M y Sb comprises particles with an average diameter of 200 nm or less.

14. The rechargeable battery of claim 9 , wherein M y Sb comprises particles with an average diameter of 100 nm or less.

15. The rechargeable battery of claim 9 , wherein M y Sb comprises particles with an average diameter of between 1 nm and 20 nm.

16. The rechargeable battery of claim 9 , wherein the anode material has a tap density of greater than 1 g/cm 3 .

17. The rechargeable battery of claim 9 , wherein the anode has a gravimetric capacity of between 380 and 650 mAh/g.

18. The rechargeable battery of claim 9 , wherein the anode has a volumetric capacity of between 450 and 1,000 Ah/L.

19. The rechargeable battery of claim 9 , wherein the battery retains at least 70% of its gravimetric or volumetric capacity after at least 1000 cycles.

20. The rechargeable battery of claim 9 , wherein the battery retains at least 70% of its gravimetric or volumetric capacity after at least 2000 cycles.

Assignments (2)
CONFIRMATORY LICENSE Recorded Dec 30, 2014
From: UNIVERSITY OF TEXAS AT AUSTIN, THE
To: ENERGY, UNITED STATES DEPARTMENT OF
Reel/Frame 034752/0741 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 25, 2014
From: MANTHIRAM, ARUMUGAM; APPLESTONE, DANIELLE; YOON, SUKEUN
To: BOARD OF REGENTS, THE UNIVERSITY OF TEXAS SYSTEM
Reel/Frame 032520/0511 →
Continuity (4)
Continuation PCTUS2012051173 · Aug 16, 2012
Provisional Application 61525532 · Aug 19, 2011
Provisional Application 61539135 · Sep 26, 2011
Related Publication 20140162125A1 · Jun 12, 2014