Claims
- 1. A method for making a palladium alloy composite membrane comprising:
providing a porous substrate with a support surface for supporting a palladium alloy film, wherein said porous substrate has a pore size adjacent to said support surface of less than about 200 nm; seeding said support surface with palladium crystallites to produce an activated surface; first plating, over said activated surface, a palladium film; second plating, over said palladium film, an alloying material other than silver; and annealing said porous substrate, palladium film, and alloying material so that there is intermetallic diffusion of said alloying material into said palladium film to produce a palladium alloy film over said porous substrate.
- 2. A method, as claimed in claim 1, wherein:
said pore size is less than about 100 nm.
- 3. A method, as claimed in claim 1, wherein:
said pore size is less than about 50 nm.
- 4. A method, as claimed in claim 1, wherein:
said pore size is less than about 20 nm.
- 5. A method, as claimed in claim 1, wherein:
said pore size is greater than about 5 nm.
- 6. A method, as claimed in claim 1, wherein:
said substrate comprises an asymmetric porous substrate with a pore size gradient.
- 7. A method, as claimed in claim 1, wherein:
said step of first plating having a duration that is chosen based on said pore size and a desired palladium alloy film thickness.
- 8. A method, as claimed in claim 1, wherein:
said step of second plating having a duration that is chosen based on said pore size and a desired palladium alloy film thickness.
- 9. A method, as claimed in claim 1, wherein:
said steps of first plating and second plating are performed so as to produce a desired weight percentage for at least one of said palladium and said alloying material.
- 10. A method, as claimed in claim 9, wherein:
said desired weight percentage is chosen based on a desired hydrogen flux for said palladium alloy film.
- 11. A method, as claimed in claim 1, wherein:
said alloying material is copper; and said steps of first plating and second plating are performed so that said palladium alloy film is about 40% by weight copper.
- 12. A method, as claimed in claim 1, further comprising:
subjecting, after said step of annealing, said porous substrate and said palladium alloy film to an oxidation and reduction.
- 13. A method for making a palladium alloy composite membrane comprising:
providing a porous substrate with a support surface for supporting a palladium alloy film, wherein said porous substrate has a pore size adjacent to said support surface; seeding said support surface with palladium crystallites to produce an activated surface; first plating, over said activated surface, a palladium film; second plating, over said palladium film, an alloying material other than silver; and annealing said porous substrate, palladium film, and alloying material so that there is intermetallic diffusion of said alloying material and said palladium film to produce a palladium alloy film over said porous substrate; wherein said pore size is determinative of a minimum thickness for said palladium alloy film that is substantially free of leaks; wherein said steps of first plating, second plating and annealing are performed so as to produce a palladium alloy film with a film thickness that is equal or greater than said minimum thickness.
- 14. A method, as claimed in claim 13, wherein:
said palladium alloy film thickness is less than about 10 microns.
- 15. A method, as claimed in claim 13, wherein:
said palladium alloy film thickness is less than about 5 microns.
- 16. A method, as claimed in claim 13, wherein:
said palladium alloy film thickness is less than about 2 microns.
- 17. A method, as claimed in claim 13, wherein:
said palladium alloy film thickness equal to or less than about 1 micron.
- 18. A method, as claimed in claim 13, wherein:
said steps of first plating and second plating are performed so as to produce a desired weight percentage for at least one of said palladium and said alloying material.
- 19. A method, as claimed in claim 18, wherein:
said desired weight percentage is chosen based on a desired hydrogen flux for said palladium alloy film.
- 20. A method, as claimed in claim 13, further comprising:
subjecting, after said step of annealing, said porous substrate and said palladium alloy film to an oxidation and reduction.
- 21. A method, as claimed in claim 13, wherein:
said step of providing comprises providing an oxide ceramic substrate.
- 22. A method, as claimed in claim 13, wherein:
said step of providing comprises providing a non-oxide ceramic substrate.
- 23. A method, as claimed in claim 13, wherein:
said step of providing comprises providing a sintered/porous metal substrate.
- 24. A method, as claimed in claim 13, wherein:
said step of providing comprises providing a multi-layer substrate with a sintered/porous metal layer and a ceramic layer, wherein said support layer comprises said ceramic layer.
- 25. A method, as claimed in claim 13, wherein:
said step of providing comprises providing an asymmetric porous substrate with a pore size gradient.
- 26. A method, as claimed in claim 13, wherein:
said alloying material is selected from Groups VIII and IB.
- 27. A method for making a palladium alloy composite membrane comprising:
providing a porous substrate with a support surface for supporting a palladium alloy film; seeding said support surface with palladium crystallites to produce an activated surface; first plating, over said activated surface, a palladium film; second plating, over said palladium film, an alloying material; annealing said porous substrate, palladium film, and alloying material so that there is intermetallic diffusion of said alloying material and said palladium film to produce a palladium alloy film over said porous substrate; and subjecting, after said step of annealing, said porous substrate and said palladium alloy film to an oxidation and reduction.
- 28. A method, as claimed in claim 27, wherein:
said step of providing comprises providing a porous substrate that has a pore size adjacent to said support surface of less than about 200 nm.
- 29. A method, as claimed in claim 27, wherein:
said step of providing comprises providing an asymmetric porous substrate with a pore size gradient.
- 30. A method, as claimed in claim 27, wherein:
said porous substrate has a pore size adjacent to said support surface and said pore size is determinative of a minimum thickness for said palladium alloy film that is substantially free of leaks; and said steps of first plating, second plating and annealing are performed so as to produce a palladium alloy film with a film thickness that is equal to or greater than said minimum thickness.
- 31. A method, as claimed in claim 27, wherein:
said step of providing comprises cleaning said surface prior to said step of seeding.
- 32. A method,as claimed in claim 27, wherein:
said step of providing comprises shaping said porous substrate.
- 33. A method, as claimed in claim 27, wherein:
said step of providing comprises sealing a surface of said porous substrate other than said support surface.
- 34. A palladium alloy composite membrane comprising:
a porous substrate having a support surface; and a palladium alloy film, other than a palladium-silver alloy film, bonded to said support surface of said porous substrate; wherein said palladium alloy film has a thickness of less than about 10 microns.
- 35. A palladium alloy composite membrane, as claimed in claim 34, wherein:
said thickness is less than about 5 microns.
- 36. A palladium alloy composite membrane, as claimed in claim 34, wherein:
said thickness is less than about 2 microns.
- 37. A palladium alloy composite membrane, as claimed in claim 34, wherein:
said thickness is less than about 1.5 microns.
- 38. A palladium alloy composite membrane, as claimed in claim 34, wherein:
said porous substrate comprises an asymmetric porous substrate with a pore size gradient.
- 39. A palladium alloy composite membrane, as claimed in claim 34, wherein:
said palladium alloy film having a desired weight percentage for at least one of said palladium and an alloy material, said weight percentage being chosen based upon a desired hydrogen flux.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional Patent Application Serial No. 60/369,674, entitled “PROCESS FOR PREPARING PALLADIUM ALLOY COMPOSITE MEMBRANES FOR USE IN HYDROGEN SEPARATION, PALLADIUM ALLOY COMPOSITE MEMBRANES AND PRODUCTS INCORPORATING OR MADE FROM THE MEMBRANES”, and filed by Fernando Roa, J. Douglas Way and Stephen N. Paglieri on April 3, which application is incorporated by reference into this application in its entirety.
Provisional Applications (1)
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Number |
Date |
Country |
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60369674 |
Apr 2002 |
US |