Claims
- 1. A laminate article, comprising:
a substrate; a biaxially textured (RE1xRE2(1−x))2O3 buffer layer over said substrate, wherein 0<x<1 and RE1 and RE2 are each selected from the group consisting of Nd, Sm, Eu, Ho, Er, Lu, Gd, Tb, Dy, Tm, and Yb.
- 2. The laminate article according to claim 1, wherein x=1 .
- 3. The laminate article according to claim 1, wherein said (RE1xRE2(1−x))2O3 buffer layer is deposited using sol-gel.
- 4. The laminate article according to claim 1, wherein said (RE1xRE2(1−x))2O3 buffer layer is deposited using metal-organic decomposition.
- 5. The laminate article according to claim 1, further comprising a layer of YBCO over said (RE1xRE2(1−x))2O3 buffer layer.
- 6. The laminate article according to claim 5, wherein said YBCO layer is on a surface of said (RE1xRE2(1−x))2O3 buffer layer.
- 7. The laminate article according to claim 5, further comprising a layer of CeO2 between said YBCO layer and said (RE1xRE2(1−x))2O3 buffer layer.
- 8. The laminate article according to claim 7, further comprising a layer of YSZ between said CeO2 layer and said (RE1xRE2(1−x))2O3 buffer layer.
- 9. The laminate article according to claim 1, wherein said substrate is biaxially textured.
- 10. The laminate article according to claim 9, wherein said substrate is selected from the group consisting of nickel, copper, iron, aluminum, and alloys containing any of the foregoing.
- 11. A laminate article, comprising:
a substrate ; a biaxially textured buffer layer over said substrate, wherein the buffer layer is selected from the group consisting of Y2O3 and CeO2.
- 12. The laminate article according to claim 11, wherein said buffer layer is deposited using sol-gel.
- 13. The laminate article according to claim 11, wherein said buffer layer is deposited using metal-organic decomposition.
- 14. The laminate article according to claim 1, wherein said metal substrate is biaxially textured.
- 15. The laminate article according to claim 9, wherein said metal substrate is nickel.
- 16. A method of forming a buffer layer on a metal substrate, comprising the steps of:
coating a substrate with a coating solution; pyrolyzing said coating solution to form a biaxially textured (RE1xRE2(1−x))2O3 buffer layer over the substrate, wherein 0<x<1 and RE1 and RE2 are each selected from the group consisting of Nd, Sm, Eu, Ho, Er, Lu, Gd, Tb, Dy, Tm, and Yb.
- 17. The method according to claim 16, further comprising the step of cold rolling the metal substrate to form a biaxially textured metal substrate, said cold rolling step before said coating step.
- 18. The method according to claim 16, further comprising the step of sonification of the metal substrate before said coating step.
- 19. The method according to claim 16, wherein the coating solution is a rare earth methoxyethoxide in 2-methoxyethanol.
- 20. The method according to claim 19, wherein the rare earth is selected from the group consisting of Nd, Sm, Eu, Ho, Er, Lu, Gd, Tb, Dy, Tm, and Yb.
- 21. The method according to claim 16, wherein said pyrolyzing step includes heating the coating solution to between about 600-800° C.
- 22. The method according to claim 16, wherein RE1 and RE2 are each selected from the group consisting of Sm, Eu, Ho, Er, Lu, Gd, Tb, Dy, Tm, and Yb and said pyrolyzing step includes heating the coating solution to between about 600-1000° C.
- 23. The method according to claim 16, wherein RE1 and RE2 are each selected from the group consisting of Eu, Ho, Er, Lu, Gd, Tb, Dy, Tm, and Yb and said pyrolyzing step includes heating the coating solution to between about 600-1100° C.
- 24. The method according to claim 16, wherein RE1 and RE2 a are each selected from the group consisting of Ho, Er, Lu, Gd, Tb, Dy, Tm, and Yb and said pyrolyzing step includes heating the coating solution to between about 600-1200° C.
- 25. The method according to claim 16, wherein RE1 and RE2 are each selected from the group consisting of Ho, Er, Lu, Tb, Dy, Tm, and Yb and said pyrolyzing step includes heating the coating solution to between about 600-800° C.
- 26. The method according to claim 16, wherein x=1.
- 27. The method according to claim 16, wherein the substrate is biaxially textured.
- 28. The method according to claim 27, wherein the substrate is selected from the group consisting of nickel, copper, iron, aluminum, and alloys containing any of the foregoing.
- 29. The method according to claim 16, wherein said pyrolizing step is in a reducing atmosphere.
- 30. The method according to claim 29, wherein said pyrolyzing step further includes introducing at least one of water or oxygen gas into the atmosphere to reduce processing temperatures during said pyrolizing step.
- 31. A method of forming a buffer layer on a metal substrate, comprising the steps of:
coating a substrate with a coating solution; pyrolyzing said coating solution to form a biaxially textured buffer layer over the substrate, wherein the buffer layer is selected from the group consisting Of Y2O3 and CeO2.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This is a Continuation-In-Part of application Ser. No. 08/922,173 filed Sep. 2, 1997.
STATEMENT REGARDING FEDERALLY SPONSORED RESEARCH AND DEVELOPMENT
[0002] This invention was made with government support under contract DE-AC05-96OR22464, awarded by the United States Department of Energy to Lockheed Martin Energy Research Corporation, and the United States Government has certain rights in this invention.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
08922173 |
Sep 1997 |
US |
Child |
09409120 |
Sep 1999 |
US |