Claims
- 1. A collection of particles comprising lithium manganese oxide, the collection of particles having an average diameter less than about 250 nm, wherein the collection of particles have a distribution of particle sizes in which at least about 95 percent of the particles have a diameter greater than about 40 percent of the average diameter and less than about 160 percent of the average diameter.
- 2. The collection of particles of claim 1 wherein the collection of particles have an average diameter from about 5 nm to about 100 nm.
- 3. The collection of particles of claim 1 wherein the collection of particles have an average diameter from about 5 nm to about 25 nm.
- 4. The collection of particles of claim 1 wherein the lithium manganese oxide has an approximate stoichiometry of LiMn.sub.2 O.sub.x, where x.gtoreq.3.8.
- 5. The collection of particles of claim 1 wherein the lithium manganese oxide has a cubic spinel crystal structure.
- 6. The collection of particles of claim 1 wherein the collection of particles includes effectively no particles with a diameter greater than about four times the average diameter.
- 7. The collection of particles of claim 1 wherein the collection of particles have a distribution of particle sizes in which at least about 95 percent of the particles have a diameter greater than about 60 percent of the average diameter and less than about 140 percent of the average diameter.
- 8. A method of making lithium manganese oxide particles comprising heating a mixture of manganese monoxide (MnO) particles and a lithium compound, the manganese monoxide particles having an average diameter less than about 250 nm.
- 9. The method of claim 8 wherein the lithium compound comprises LiNO.sub.3.
- 10. The method of claim 8 wherein the heating is performed at a temperature from about 200 to about 600.degree. C.
- 11. The method of claim 8 wherein the heating is performed under an atmosphere comprising O.sub.2.
- 12. The method of claim 8 wherein the lithium manganese oxide has a cubic spinel crystal structure.
- 13. A method of making lithium manganese oxide particles comprising heating a mixture of particles of a manganese oxide and a lithium compound, the particles of manganese oxide having an average diameter less than about 250 nm, wherein the resulting lithium manganese oxide particles have a distribution of particle sizes in which at least about 95 percent of the particles have a diameter greater than about 40 percent of the average diameter and less than about 160 percent of the average diameter.
- 14. The method of claim 13 wherein the lithium manganese oxide particles have an average diameter from about 5 nm to about 100 nm.
- 15. The method of claim 13 wherein the heating is performed at a temperature from about 200.degree. C. to about 500.degree. C.
- 16. The method of claim 13 wherein the lithium manganese oxide particles have a cubic spinel crystal structure.
- 17. The method of claim 13 wherein the manganese compound comprises a manganese oxide, with the manganese in an oxidation state from +2 to +4.
- 18. A collection of particles comprising lithium manganese oxide, the collection of particles having an average diameter from about 5 nm to about 50 nm, the lithium manganese oxide comprising Li.sub.2 Mn.sub.4 O.sub.9.
- 19. The collection of particles of claim 18 wherein the collection of particles have a distribution of particle sizes such that at least about 95 percent of the particles have a diameter greater than about 40 percent of the average diameter and less than about 160 percent of the average diameter.
- 20. A collection of particles comprising lithium manganese oxide, the collection of particles having an average diameter less than about 250 nm, the lithium manganese oxide having a lattice parameter along axis a of no more than 8.23 angstroms.
- 21. The collection of particles of claim 20 wherein the collection of particles have an average diameter from about 5 nm to about 50 nm.
- 22. A collection of particles comprising lithium manganese oxide, the collection of particles having an average diameter less than about 250 nm, the lithium manganese oxide comprising Li.sub.2 Mn.sub.4 O.sub.9, wherein the collection of particles have a distribution of particle sizes such that at least about 95 percent of the particles have a diameter greater than about 40 percent of the average diameter and less than about 160 percent of the average diameter.
CROSS REFERENCE TO RELATED APPLICATIONS
This application is a continuation-in-part of copending U.S. Patent Application to Kumar et al. Ser. No. 09/188,768, entitled "Composite Metal Oxide Particles," filed on Nov. 9, 1998, incorporated herein by reference.
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Continuation in Parts (1)
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188768 |
Nov 1998 |
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