Claims
- 1. A method of forming a ceramic body with nanostructures on at least one surface thereof, the method comprising:
(a) compressing ceramic particulate at a pressure sufficient to form a solid body; (b) sintering the solid body at a temperature and for a period sufficient to bond the particulate in the solid body into one or more ceramic crystals; (c) exposing the solid body to a reducing environment at a temperature and for a period sufficient to form nanostructures on at least a portion of the exterior surface of the solid body.
- 2. The method in accordance with claim 1, wherein the ceramic particulate further comprises titania.
- 3. The method in accordance with claim 1, wherein the reducing environment further comprises a hydrogen-containing gas flowing over the solid body at a sufficient gas flow rate to form said nanostructures.
- 4. The method in accordance with claim 1, wherein said pressure is greater than about 0 MPa.
- 5. The method in accordance with claim 1, wherein said pressure is about 400 MPa.
- 6. The method in accordance with claim 1, wherein the step of sintering is carried out at a temperature of less than 1,400 degrees Celsius.
- 7. The method in accordance with claim 6, wherein the step of sintering is carried out at a temperature of about 1,200 degrees Celsius.
- 8. The method in accordance with claim 7, wherein the step of sintering is carried out for about 6 hours.
- 9. The method in accordance with claim 3, wherein the hydrogen-containing gas further comprises a majority inert gas and a minority hydrogen-containing gas.
- 10. The method in accordance with claim 9, wherein the hydrogen-containing gas is hydrogen.
- 11. The method in accordance with claim 9, wherein the hydrogen-containing gas is water.
- 12. The method in accordance with claim 9, wherein the step of heat treating is carried out at a temperature of about 700 degrees Celsius.
- 13. The method in accordance with claim 12, wherein the step of heat treating is carried out for a period of about 8 hours.
- 14. The method in accordance with claim 1, wherein the step of heat treating is carried out at a flow rate between about 100 and about 500 milliliters per minute.
- 15. The method in accordance with claim 14, wherein the flow rate is at least about 500 milliliters per minute.
- 16. The method in accordance with claim 1, wherein the nanostructures formed further comprise nanofibers.
- 17. The ceramic body produced according to the process of claim 1.
- 18. A method of forming a metal oxide body with nanostructures on at least one surface thereof, the method comprising:
(a) compressing metal oxide particulate at a pressure greater than 0 MPa to form a solid body; (b) sintering the solid body in air at a temperature of less than 1,400 degrees Celsius; and then (c) heat treating the solid body in a gas mixture containing a majority of an inert gas and a minority of a hydrogen-containing gas at a gas flow rate, a temperature and for a period sufficient to cause nanostructures to form on at least a portion of the exterior surface of the solid body.
- 19. The method in accordance with claim 18, wherein the nanostructures formed further comprise nanofibers.
- 20. The method in accordance with claim 18, wherein said pressure is about 400 MPa.
- 21. The method in accordance with claim 18, wherein the step of sintering is carried out at a temperature of about 1,200 degrees Celsius.
- 22. The method in accordance with claim 21, wherein the step of sintering is carried out for about 6 hours.
- 23. The method in accordance with claim 18, wherein the inert gas is nitrogen.
- 24. The method in accordance with claim 18, wherein the hydrogen-containing gas is hydrogen.
- 25. The method in accordance with claim 18, wherein the hydrogen-containing gas is water.
- 26. The method in accordance with claim 18, wherein said gas flow rate is between about 100 and about 500 milliliters per minute.
- 27. The method in accordance with claim 26, wherein the gas flow rate is at least about 500 milliliters per minute.
- 28. The method in accordance with claim 18, wherein the step of heat treating is carried out at a temperature of about 700 degrees Celsius.
- 29. The method in accordance with claim 28, wherein the step of heat treating is carried out for a period of about 8 hours.
- 30. The metal oxide body produced according to the process of claim 18.
- 31. A method of forming a titania body with nanofibers on at least one surface thereof, the method comprising:
(a) compressing titania particulate at a pressure of about 400 MPa to form a solid body; (b) sintering the solid body in air at a temperature between about 1,100 and about 1,400 degrees Celsius for about 6 hours; and then (c) heat treating the solid body in gas containing about 95 percent inert gas and about 5 percent hydrogen with a gas flow rate between about 100 and about 500 milliliters per minute and a gas temperature of about 700 degrees Celsius.
- 32. The method in accordance with claim 31, wherein the step of sintering is carried out at a temperature of about 1,200 degrees Celsius.
- 33. The method in accordance with claim 31, wherein the flow rate is at least about 500 milliliters per minute.
- 34. The titania body produced according to the process of claim 31.
- 35. A titania solid body having a plurality of fibers on the surface thereof, said fibers having a diameter in a range from about 15 nanometers to about 50 nanometers.
- 36. The titania solid body in accordance with claim 35, wherein the titania is the rutile phase.
- 37. The titania solid body in accordance with claim 35, wherein the solid body contains a plurality of titania crystals.
- 38. The titania solid body in accordance with claim 35, further comprising a pair of electrically conductive bodies having opposite electrical polarity mounted to the body.
- 39. A sensor comprising:
(a) a titania solid body having a plurality of fibers on the surface thereof, said fibers having diameters in a range between about 15 and about 50 nanometers; and (b) a resistance measuring means electrically connected to the solid body.
REFERENCES TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional Application No. 60/416,124 filed Oct. 4, 2002.
Provisional Applications (1)
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Number |
Date |
Country |
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60416124 |
Oct 2002 |
US |