Claims
- 1. In a reactive multilayer structure comprising alternating layers of materials that react exothermically to produce one or more reaction products, each of the layers having a thickness in the range 1-10,000 nanometers and the multilayer structure having a total thickness in the range 10 micrometer to 1 centimeter, the improvement wherein:
the materials of respective alternating layers react by a self-propagating reduction/oxidation reaction or a self-propagating reduction/formation reaction.
- 2. The improved reactive structure of claim 1 wherein one or more of the alternating layers comprises material in particle form.
- 3. The improved reactive structure of claim 1 wherein each pair of alternating layers comprises a first layer including a material α in elemental form and a second layer including a compound of the form βΓx, the layers reacting exothermically to produce reaction products of the form β and αΓy, where α, β, Γ are elements and x, y are integers or fractions, and where the initial compound, βΓx, has a lower heat of formation than the final compound, αΓy.
- 4. The improved reactive structure of claim 3 where the compound is an oxide.
- 5. The improved reactive structure of claim 3 where the compound is selected from the group consisting of Fe2O3, CuO, ZnO, and NiB.
- 6. The improved reactive structure of claim 3 where the element is Al and the compound is selected from the group consisting of Fe2O3, CuO, and ZnO.
- 7. The improved reactive structure of claim 3 where the element is a transition element and the initial compound is a boride, silicide or carbide.
- 8. The improved reactive structure of claim 7 where the transition element is selected from the group consisting of Ti, Zr, and Hf and the compound is selected from the group consisting of NiB, FeB, FeSi, Cu3Si, Ni3C and Fe3C.
- 9. The improved reactive structure of claim 3 where the element is Pt or Pd and the initial compound is an aluminide.
- 10. The improved reactive structure of claim 9 where the aluminide is CuAl2 or TiAl3.
- 11. The improved reactive structure of claim 3 where the element is a metal.
- 12. The improved reactive structure of claim 11 where the metal is Fe, Cu or Ni.
- 13. The process of bonding two bodies comprising the steps of:
disposing between the two bodies an improved reactive structure in accordance with claim 1; pressing the bodies against the reactive structure; and igniting the reactive structure.
- 14. The method of claim 13 wherein the reactive structure produces a ductile reaction product that can serve as a solder or braze material for bonding the two bodies.
- 15. The method of claim 14 wherein the ductile reaction product comprises metal.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional Application Serial No. 60/201,292 filed by T. P. Weihs et al. on May 2, 2000 and entitled “Reactive Multilayer Foils”. It is related to U.S. patent application Ser. No. ______ filed by M. E. Reiss et al. concurrently herewith and entitled “Method of Making Reactive Multilayer Foil and Resulting Product” and U.S. patent application Ser. No. ______ filed by T. P. Weihs et al. concurrently herewith and entitled “Freestanding Reactive Multilayer Foils”. These three related applications are incorporated herein by reference.
GOVERNMENT INTEREST
[0002] This invention was made with government support under NSF Grant Nos. DMR-9702546 and DMR-9632526, and The Army Research Lab/Advanced Materials Characterization Program through Award No. 019620047. The government has certain rights in the invention.
Provisional Applications (1)
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Number |
Date |
Country |
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60201292 |
May 2000 |
US |