Claims
- 1. A process for forming a high-performance ceramic material, said method comprising consolidating a mixture of ceramic particles of less than 100 nm in diameter and single-wall carbon nanotubes into a continuous mass by compressing said mixture while passing an electric current through said mixture.
- 2. A process in accordance with claim 1 in which said ceramic particles are metal oxide particles.
- 3. A process in accordance with claim 2 in which said metal oxide particles are a member selected from the group consisting of alumina, magnesium oxide, magnesia spinel, titania, cerium oxide, yttria, and zirconia.
- 4. A process in accordance with claim 2 in which said metal oxide particles are alumina.
- 5. A process in accordance with claim 1 in which said single-wall carbon nanotubes constitute from about 1% to about 50% by volume of said mixture.
- 6. A process in accordance with claim 1 in which said single-wall carbon nanotubes constitute from about 3% to about 25% by volume of said mixture.
- 7. A process in accordance with claim 1 comprising compressing said mixture at a pressure of from about 10 MPa to about 200 MPa and a temperature of from about 800° C. to about 1,500° C., and said electric current is a pulsed direct current of from about 250 A/cm2 to about 10,000 A/cm2.
- 8. A process in accordance with claim 1 comprising compressing said mixture at a pressure of from about 40 MPa to about 100 MPa and a temperature of from about 900° C. to about 1,400° C., and said electric current is a pulsed direct current of from about 500 A/cm2 to about 5,000 A/cm2.
- 9. A process for forming a high-performance alumina-based ceramic material, said process comprising:
(a) forming a mixture of alumina powder and single-wall carbon nanotubes in which said single-wall carbon nanotubes constitute from about 4% to about 20% by volume of said mixture; and (b) consolidating mixture so activated into a continuous mass by compressing said mixture at a pressure of from about 40 MPa to about 100 MPa while exposing said mixture to a pulsed direct current of from about 500 A/cm2 to about 5,000 A/cm2.
- 10. A high-performance ceramic material prepared by the process of claim 1.
- 11. A high-performance ceramic material prepared by the process of claim 4.
- 12. A high-performance ceramic material prepared by the process of claim 6.
- 13. A high-performance ceramic material prepared by the process of claim 8.
- 14. A high-performance ceramic material prepared by the process of claim 9.
STATEMENT AS TO RIGHTS TO INVENTIONS MADE UNDER FEDERALLY SPONSORED RESEARCH OR DEVELOPMENT
[0001] This invention was made with financial support from the United States Government under Contract No. DAAD19-00-1-0185, awarded by the United States Army Research Office. The Federal Government therefore has certain rights in this invention.