Claims
- 1. A method of fabricating ternary TiNi-based alloys having high phase-change transition temperatures and optimal thermo-mechanical properties, the method comprising the steps of providing a first material comprised of the element Ti, providing a second material comprised of the element Ni and providing a third material comprised of an element other than Ti and Ni which when alloyed with Ti and Ni can produce a shape memory alloy, and forming an alloy of the elements of the first, second and third materials with the alloy being characterized in having the sum of the percentage composition of the elements that are from the left side of the periodic table being substantially 50 atomic percent, and the sum of the percentage composition of the elements that are from the right side of the periodic table being the remaining 50 atomic percent.
- 2. A method as in claim 1 in which the element of the third material is selected from the group consisting of Hf, Zr, Pd, Pt and Cu.
- 3. A method as in claim 1 in which the element from the left side of the periodic table in the third material is selected from the group consisting of Zr and Hf.
- 4. A method as in claim 1 in which the element from the right side of the periodic table in the third target is selected from the group consisting of Pd, PT and Cu.
- 5. A method as in claim 1 in which the first, second and third materials are comprised of respective first, second and third targets, and co-sputtering the elements of the first, second and third targets onto a substrate in the form of a thin film.
- 6. A method as in claim 5 in which the co-sputtering step is carried out by maintaining a 50/50 ratio of the rate at which the sum of the elements from the left side of the periodic table are co-sputtered onto the substrate in proportion to the rate at which the sum of the elements from the right side of the periodic table are co-sputtered onto the substrate.
- 7. A method as in claim 1 in which the atomic percentage compositions of the elements are controlled to an accuracy within 0.1%.
- 8. A method as in claim 1 in which the first material is comprised alloy TiNi alloy.
- 9. A method as in claim 1 in which the second material is comprised of Ni alloyed with an element selected from the group consisting of Hf, Zr, Pd, Pt and Cu.
- 10. A ternary TiNi-based alloy made by the method of claim 1.
- 11. A ternary TiNi-based alloy made by the method of claim 2.
- 12. A ternary TiNi-based alloy made by the method of claim 3.
- 11. A ternary TiNi-based alloy made by the method of claim 4.
- 12. A ternary TiNi-based alloy made by the method of claim 5.
- 13. A ternary TiNi-based alloy made by the method of claim 6.
- 14. A ternary TiNi-based alloy made by the method of claim 7.
- 15. A ternary TiNi-based alloy made by the method of claim 8.
- 16. A ternary TiNi-based alloy made by the method of claim 9.
STATEMENT OF GOVERNMENT RIGHTS
[0001] This invention was made under contract with an agency of the United States Government: Defense Advanced Research Projects Agency, U.S. Army Aviation & Missile Command, Contract No. DAAH01-01-C-R125.