Claims
- 1. A reversible hydrogen storage composition having a hydrogenated state from which hydrogen is liberated and a dehydrogenated state which absorbs gaseous hydrogen to produce said hydrogenated state, wherein said hydrogenated state comprises:
a hydrided mechanically alloyed crystalline composition of lithium and an element selected from the group consisting of: a) at least one metal M which forms a hydride, said hydrided composition liberating hydrogen to form a dehydrogenated state comprising LiH and said at least one metal M; b) at least one element E, said hydrided composition liberating hydrogen to form a dehydrogenated state comprising a compound of lithium and said at least one element E, or a solid solution of lithium and said at least one element E; and c) at least one metal M and at least one element E, as defined above, said hydrogenated state liberating hydrogen at a temperature of 100 to 300° C., and said hydrogenated state being regenerated from said dehydrogenated state at a temperature of 100° C. to 350° C. under a gaseous hydrogen atmosphere at a pressure of 5 to 60 atmospheres.
- 2. A composition according to claim 1 wherein said hydrided composition comprises said lithium and said element a).
- 3. A composition according to claim 1 wherein said hydrided composition comprises said lithium and said element b).
- 4. A composition according to claim 1 wherein said hydrided composition comprises said lithium and said element c).
- 5. A composition according to claim 2 wherein said at least one metal M is one which does not form an intermetallic compound or solid-state solution with lithium, as reflected by phase equilibrium diagrams.
- 6. A composition according to claim 2 wherein said at least one metal M is selected from Be, Mg, Ti, V and Zr.
- 7. A composition according to claim 2, wherein said hydrided composition is represented by formula (I),
- 8. A composition according to claim 5, wherein said hydrided composition comprises said lithium and said element a).
- 9. A composition according to claim 6, wherein said hydrided composition comprises said lithium and said element a).
- 10. A composition according to claim 2 wherein said hydrided composition is represented by formula (II):
- 11. A composition according to claim 10 wherein said hydrogenated state has an x-ray diffraction pattern as illustrated in FIG. 2 and said dehydrogenated state has an x-ray diffraction pattern as illustrated in FIG. 3.
- 12. A composition according to claim 3 wherein said at least one element E is selected from C, B, Si, P, Zn, Mn, Ni, Fe, Cr, Cu, Al, Ca, Na or K.
- 13. A composition according to claim 11 wherein the molar ratio of Li to said at least one element E is 7 : 1 to 1 : 2.
- 14. A composition according to claim 4 wherein said at least one metal M is selected from Be, Mg, Ti, V and Zr and said at least one element E is selected from C, B, Si, P, Zn, Mn, Ni, Fe, Cr, Cu, Al, Ca, Na or K.
- 15. A composition according to claim 1, wherein the mechanically alloyed crystalline composition is in particulate form having been ball milled to a fine particulate size below 100 nanometers.
- 16. A composition according to claim 1, in said hydrogenated state.
- 17. A composition according to claim 1, in said dehydrogenated state.
- 18. A method of producing a source of hydrogen gas comprising:
liberating hydrogen from a reversible hydrogen storage composition having a hydrogenated state from which hydrogen is liberated and a dehydrogenated state which absorbs gaseous hydrogen to produce said hydrogenated state, wherein said hydrogenated states comprises: a) at least one metal M which forms a hydride, said hydrided composition liberating hydrogen to form a dehydrogenated state comprising LiH and said at least one metal M; b) at least one element E, said hydrided composition liberating hydrogen to form a dehydrogenated state comprising a compound of lithium and said at least one element E, or a solid solution of lithium and said at least one element E; and c) at least one metal M and at least one element E, as defined above, at a temperature of 100 to 300° C., with formulation of the dehydrogenated state of said composition, removing the liberated hydrogen, and regenerating said hydrogenated state by exposing said dehydrogenated to hydrogen gas at a temperature of 100° C. to 350° C. under a hydrogen pressure of 5 to 60 atm.
- 19. A method of producing a reversible hydrogen storage composition having a hydrogenated state from which hydrogen is liberated and a dehydrogenated state which absorbs gaseous hydrogen to produce said hydrogenated state, wherein said hydrogenated state comprises:
a hydrided mechanically alloyed crystalline composition of lithium and an element selected from the group consisting of: a) at least one metal M which forms a hydride, said hydrided composition liberating hydrogen to form a dehydrogenated state comprising LiH and said at least one metal M; b) at least one element E, said hydrided composition liberating hydrogen to form a dehydrogenated state comprising a compound of lithium and said at least one element E, or a solid solution of lithium and said at least one element E; and c) at least one metal M and at least one element E, as defined above, said hydrogenated state liberating hydrogen at a temperature of 100 to 300° C., and said hydrogenated state being regenerated from said dehydrogenated state at a temperature of 100° C. to 350° C. under a gaseous hydrogen atmosphere at a pressure of 5 to 60 atmospheres, the method comprising: ball milling at least one lithium component selected from elemental lithium and lithium hydride with: (A) a component selected from:
i) at least one metal M, as defined above,a hydride thereof, or a mixture thereof; ii) at least one element E, as defined above, and iii) at least one of a metal M, as defined above, and a hydride thereof; and (B) at least one element E, as defined above, to form a lithium-based composition, and, when necessary or desired hydrogenating the lithium-based composition.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This Application is a Continuation of PCT/CA 98/00946, filed Oct. 7, 1998, in which the United States of America was designed and elected, and which remains pending in the International phase until Apr. 7, 2001.
Continuations (1)
|
Number |
Date |
Country |
Parent |
PCT/CA98/00946 |
Nov 1998 |
US |
Child |
09820836 |
Mar 2001 |
US |