Claims
- 1. A method of separating a first and a second fullerene in a fullerene material comprising the steps of:
(c) introducing the fullerene material into a solvent; (d) forming a stable fullerene cation from the first fullerene, wherein the solvent is selected so that at least one of the fullerene cation or the second fullerene is soluble therein; and (c) separating the fullerene cation or a salt thereof from the second fullerene.
- 2. The method of claim 1 wherein the stable fullerene cation is formed using an electrode in an electrolyte solution.
- 3. The method of claim 1 wherein the stable fullerene cation is formed using a chemical oxidizing agent.
- 4. The method of claim 1 wherein the stable fullerene cation is formed using a protonation agent.
- 5. The method of claim 1 wherein the stable fullerene cation is formed using a electrophilic agent which is not a protonation agent.
- 6. The method of claim 1, wherein the oxidation potential of the first and second fullerene differ by at least about 0.10 V using the ferrocene standard.
- 7. The method of claim 1, wherein the oxidation potential of the first and second fullerene differ by at least about 0.30 V using the ferrocene standard.
- 8. The method of claim 1, wherein the stable fullerene cation is formed from endohedral fullerenes, higher fullerenes, endohedral metallofullerenes, or mixtures thereof.
- 9. The method of claim 1 wherein the stable fullerene cation is formed from a small bandgap fullerene.
- 10. The method of claim 1, wherein the stable fullerene cation is formed from an endohedral metallofullerene containing a metal selected from the group consisting of the lanthanide, transition, alkali, alkaline earth, and actinide metals.
- 11. The method of claim 10, wherein the metal is selected from the group consisting of Sc, Y, La, Sm, Eu, Tm, Yb, Ce, Pr, Nd, Gd, Tb, Dy, Ho, Lu, and Er.
- 12. The method of claim 11, wherein the metal is Gd, La, or Y.
- 13. The method of claim 1, wherein the stable fullerene cation is formed from an endohedral fullerene containing an element selected from the group consisting of radioactive elements.
- 14. The method of claim 1, wherein the second fullerene and the fullerene cation are both substantially soluble in the solvent and the fullerene cation is separated from the second fullerene by decreasing the polarity of the solvent to precipitate a salt of the fullerene cation and separating the fullerene cation salt precipitate from the solvent.
- 15. The method of claim 14 wherein the first fullerene is substantially soluble in the solvent.
- 16. The method of claim 14 wherein the first fullerene is substantially insoluble in the solvent.
- 17. The method of claim 1, wherein the first and second fullerene are substantially soluble in the solvent, the fullerene cation is substantially insoluble in the solvent, and the fullerene cation is separated from the second fullerene by precipitating a salt of the fullerene cation and separating the fullerene cation salt precipitate from the solvent.
- 18. The method of claim 1, wherein the first and second fullerene are substantially insoluble in the solvent, the fullerene cation is substantially soluble in the solvent, and the fullerene cation is separated from the second fullerene by separating the insoluble second fullerene from the solvent.
- 19. The method of claim 1 further comprising step (d) returning the fullerene cation to its original charge state.
- 20. The method of claim 1, further comprising step (d) reducing the fullerene cation with a reducing agent.
- 21. A method of purifying a selected fullerene from a fullerene material containing the selected fullerene and an undesired fullerene comprising the steps of:
(a) introducing the fullerene material into a solvent; (b) forming a stable fullerene cation from one of the selected fullerene or the undesired fullerene; (c) decreasing the polarity of the solvent to precipitate a salt of the fullerene cation; and (d) separating the solvent from the precipitated fullerene cation salt.
- 22. The method of claim 21, wherein the fullerene cation is formed by oxidizing the selected fullerene.
- 23. The method of claim 21, wherein the fullerene cation is formed by oxidizing the undesired fullerene.
- 24. The method of claim 21 wherein the fullerene cation is formed using a protonation agent.
- 25. The method of claim 21 wherein the fullerene cation is formed using a electrophilic agent which is not a protonation agent.
- 26. A method for separating C60 and C70 fullerenes from a fullerene material containing a first fullerene and C60 and C70 fullerenes comprising the steps of:
(a) introducing the fullerene material into a solvent; (b) forming a stable fullerene cation from the first fullerene, wherein the fullerene cation and the C60 and C70 fullerenes are all soluble in the solvent; (c) decreasing the polarity of the solvent to precipitate a salt of the fullerene cation; and (d) separating the solvent containing the C60 and C70 fullerenes from the fullerene cation salt precipitate.
- 27. A method for preparing an endohedral fullerene substantially free of C60 and C70 fullerenes comprising the steps of:
(a) introducing the fullerene material into a solvent, the fullerene material containing C60 and C70 fullerenes and an endohedral fullerene; (b) forming a stable fullerene cation from the endohedral fullerene wherein the endohedral fullerene cation and the C60 and C70 fullerenes are all soluble in the solvent; (c) decreasing the polarity of the solvent to precipitate a salt of the endohedral fullerene cation; and (d) separating the solvent containing the C60 and C70 fullerenes from the endohedral fullerene cation salt.
- 28. A method for separation of soluble and easily oxidizable M@C2n from a fullerene material comprising the steps of:
(a) subliming the fullerene material, thereby separating the M@C2, from any giant fullerenes and nonfullerenes; (b) contacting the sublimed fullerene material with an oxidizing agent in a first solvent, thereby forming a first solution containing a M@C2n cation, wherein the first solvent is selected so that the M@C2n cation and any soluble fullerenes are soluble therein; (c) filtering the first solution to remove any solids, thereby separating the M@C2n cation from any fullerenes insoluble in the first solvent; (d) precipitating the M@C2n cation from the first solution to form a first precipitate containing a salt of the M@C2n cation, thereby separating the M@C2n cation from any fullerenes that remain in the first solution; (e) dissolving the first precipitate in a second solvent thereby forming a second solution containing the M@C2n cation, wherein the second solvent is selected so that the M@C2n cation is soluble and that any soluble fullerenes are substantially insoluble therein; thereby separating the M@C2n cation from any fullerenes which did not dissolve in the second solvent; (f) reacting the filtered second solution with an anion metathesis agent, thereby forming a second precipitate containing a salt of the M@C2n cation, thereby separating the M@C2n cation salt from any fullerenes remaining in the second solution; (g) dissolving the second precipitate in a third solvent, wherein the third solvent is selected so that the M@C2n cation and any soluble fullerenes are soluble therein; (h) contacting the third solution with an oxidant thereby forming the M@C2, cation in solution; (i) precipitating the M@C2n cation from the third solution to form a third precipitate containing a salt of the M@C2n cation, thereby separating the M@C2n cation from any fullerenes remaining in the third solution.
- 29. A method for separation of soluble and easily oxidizable M@C2n from a fullerene material comprising the steps of:
(a) subliming the fullerene material, thereby separating the M@C2n from any giant fullerenes and nonfullerenes; (b) contacting the sublimed fullerene material with AgSbF6 in ODCB, thereby forming a first solution containing a M@C2n cation; (c) filtering the first solution to remove any solids, thereby separating the M@C2n cation from any fullerenes insoluble in ODCB; (d) precipitating the M@C2n cation from the first solution to form a first precipitate containing a salt of the M@C2n cation, thereby separating the M@C2n cation from any fullerenes that remain in the first solution; (e) dissolving the first precipitate in CH2Cl2, thereby forming a second solution containing the M@C2n cation and separating the M@C2n cation from any fullerenes which did not dissolve in the CH2Cl2; (f) reacting the filtered second solution with n-Bu4NCl, thereby forming a second precipitate containing a salt of the M@C2n cation, thereby separating the M@C2n cation salt from any fullerenes remaining in the second solution; (g) dissolving the second precipitate in ODCB, thereby forming a third solution; (h) contacting the third solution with AgSbF6 thereby forming the M@C2n cation in solution; I (i) precipitating the M@C2n cation from the third solution to form a third precipitate containing a salt of the M@C2n cation, thereby separating the M@C2n cation from any fullerenes remaining in the third solution.
- 30. The method of claim 28 wherein M is selected from the group consisting of Sc, Y, La, Sm, Eu, Tm, Yb, Ce, Pr, Nd, Gd, Tb, Dy, Ho, Lu, and Er.
- 31. The method of claim 30 wherein M is Gd.
- 32. The method of claim 30 wherein M is Tm.
- 33. A method for the separation of insoluble M@C2n from a fullerene material comprising the steps of:
(a) subliming the fullerene material, thereby separating the M@C2n from any giant fullerenes and non-fullerenes; (b) contacting the sublimed fullerene material with an oxidizing agent in a solvent, thereby forming a solution containing soluble C2N+M@C2N and C2N; (c) filtering the solution to remove any solids, thereby separating the insoluble M@C2n from any fullerenes and any fullerene cations soluble in the solvent.
- 34. The method of claim 33, further comprising the step of washing the sublimed fullerene material to remove soluble fullerenes prior to step (b).
- 35. The method of claim 33 wherein M is a selected from the group consisting of SC, Y, La, Sm, Eu, Tm, Yb, Ce, Pr, Nd, Gd, Tb, Dy, Ho, Lu, and Er.
- 36. The method of claim 35 wherein M is Gd.
- 37. A method for the separation of soluble M@C2n cations from a fullerene material comprising the steps of:
(a) contacting the fullerene material with an oxidizing agent in a solvent, thereby forming a solution containing M@C2n cations; (b) filtering the solution to remove any solids, thereby separating the soluble M@C2n cations from any insoluble M@C2n and empty fullerenes soluble in the solvent.
- 38. The method of claim 37, further comprising the step of washing the sublimed fullerene material to remove soluble fullerenes prior to step (b).
- 39. The method of claim 37, further comprising the step of subliming the fullerene material, thereby separating the M@C2n from any giant fullerenes and non-fullerenes; prior to step (a).
- 40. A method for the separation of empty small bandgap fullerenes from a fullerene material containing insoluble M@C2n comprising the steps of:
(a) subliming the fullerene material, thereby separating the M@C2n and small bandgap fullerenes from any giant fullerenes and non-fullerenes; (b) contacting the sublimed fullerene material with a oxidizing agent in a solvent, thereby forming a solution containing empty small bandgap fullerene cations; (c) filtering the solution to remove the insoluble M@C2n from the soluble small bandgap fullerene cations.
- 41. The method of claim 40, further comprising the step of washing the sublimed fullerene material to remove soluble fullerenes prior to step (b).
- 42. A purified fullerene material comprising M@C2n+, wherein n≧36 and M is a trivalent metal, made by the process of claim 1.
- 43. The material of claim 42 wherein M is a selected from the group consisting of Ce, Pr, Nd, Gd, Tb, Dy, Ho, Lu and Er.
- 44. The material of claim 43 wherein M is Gd.
- 45. A purified fullerene material comprising M@C2n+, wherein n≧36 and M is a divalent metal, made by the process of claim 1.
- 46. The material of claim 45 wherein M is selected from the group consisting of Sm, Eu, Tm, and Yb.
- 47. A purified fullerene material comprising M@C2n+, wherein n≧30 and M is a divalent metal, made by the process of claim 1.
- 48. The material of claim 47, wherein M is selected from the group consisting of Sm, Eu, Tm, and Yb.
- 49. A purified fullerene material comprising M@C60 class fullerenes made by the method of claim 1.
- 50. The material of claim 49 wherein M is a selected from the group consisting of Sc, Y, La, Sm, Eu, Tm, Yb, Ce, Pr, Nd, Gd, Tb, Dy, Ho, Lu, and Er.
- 51. The material of claim 50 wherein M is Gd.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] The present application claims priority to U.S. provisional application serial No. 60/326,307, filed Oct. 1, 2001, which is incorporated herein by reference in its entirety.
STATEMENT REGARDING FEDERALLY SPONSORED RESEARCH OR DEVELOPMENT
[0002] This invention was made with U.S. Government support under National institutes of Health (NIH) Contract No. 5R44CA066363-03. The Government has certain rights in this invention.
Provisional Applications (1)
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Number |
Date |
Country |
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60326307 |
Oct 2001 |
US |