Claims
- 1. A proton conductor comprising: a carbon cluster derivative comprising a plurality of functional groups so as to be capable of transferring a plurality of protons between each of the functional groups of the carbon cluster derivative; and a plurality of carbon clusters each including one or more of the functional groups wherein the carbon clusters are bonded together.
- 2. The proton conductor according to claim 1, wherein the carbon clusters have a substantially fullerene structure.
- 3. A proton conductor comprising a polymer comprising a fullerene structure having one or more proton releasing groups.
- 4. The proton conductor according to claim 3, wherein the polymer comprises a polymer main chain including the fullerene structure.
- 5. The proton conductor according to claim 3, wherein the polymer comprises a polymer side chain including the fullerene structure.
- 6. The proton conductor according to claim 3, wherein the proton releasing group is selected from the group consisting of —OH, —OSO3H, —SO3H, —COOH, —OPO(OH)3, and —PO(OH)2 and combinations thereof.
- 7. The proton conductor according to claim 3, wherein the fullerene structure includes an electron attracting group.
- 8. The proton conductor according to claim 3, wherein the electron attracting group is selected from the group consisting of a nitro group, a carbonyl group, a carboxyl group, a nitrile group, an alkyl halide group, a halogen group and combinations thereof.
- 9. The proton conductor according to claim 3, further comprising a binder material.
- 10. The proton conductor according to claim 3, wherein the binder material has substantially no electrical conductivity.
- 11. The proton conductor according to claim 3, wherein the binder material is selected from the group consisting of polyfluoroethylene, polyvinylidene fluoride, and polyvinyl alcohol and combinations thereof.
- 12. A proton conductor comprising a polymer comprising a fullerene structure having one or more proton releasing groups wherein the fullerene structure includes a plurality of fullerene molecules bonded together.
- 13. The proton conductor according to claim 12 wherein the fullerene molecules are bonded directly together.
- 14. The proton conductor according to claim 12 wherein the fullerene molecules are bonded together via a spacer molecule.
- 15. An ionic conductor comprising a polymer comprising carbon clusters having one or more ion releasing group wherein the carbon clusters are bonded together via a spacer molecule.
- 16. The ionic conductor according to claim 15 wherein the spacer molecule includes a hydrocarbon radical selected from the group consisting of an aliphatic radical, an alicyclic radical, an aromatic radical and combinations thereof.
- 17. The ionic conductor according to claim 15 wherein the spacer molecule includes about 1 to about 20 carbon atoms.
- 18. The ionic conductor according to claim 15 wherein the spacer molecule includes a fluorine atom.
- 19. The ionic conductor according to claim 18 wherein the ion releasing group is selected from the group consisting of —OH and an atomic group containing —OH.
- 20. The ionic conductor according to claim 15 wherein the spacer molecule includes an ion dissociating group.
- 21. The ionic conductor according to claim 20 wherein the ion dissociating group is selected from the group consisting of hydroxyl group (—OH), hydrogensulfate ester group (—OSO2OH), sulfonic acid group (—SO2OH), carboxyl group (—COOH), phosphonic acid residue (—PO(OH)2), dihydrogenphosphate ester group (—OPO(OH)2) and combinations thereof.
- 22. The ionic conductor according to claim 15 wherein the ion dissociating group includes a chemical species selected from the group consisting of proton (H+), lithium ion (Li+), sodium ion (Na+), potassium ion (K+), magnesium ion (Mg2+), calcium ion (Ca2+), strontium ion (Sr2+), and barium ion (Ba2+) and combinations thereof.
- 23. The ionic conductor according to claim 15 wherein the functional group of the ion dissociating group includes a proton dissociating group represented by —XH where X is selected from the group consisting of an arbitrary atom and an atomic group that is divalent.
- 24. The ionic conductor according to claim 15 wherein the polymer includes at least one functional group selected from the group consisting of bis-sulfonylimide group (—SO2—NH—SO2—), bis-sulfonylmethylene group (—SO2—CH2—SO2—), bis-carbonylimide group (—CO—NH—CO—), and sulfonylcarbonylimide group (—CO—NH—SO2—).
- 25. The ionic conductor according to claim 24 wherein an electron attractive functional group binds to one end or both ends of the functional group.
- 26. The ionic conductor according to claim 25 wherein the electron attractive functional group is selected from the group consisting of —CX2— and —CX3 where X includes a halogen atom.
- 27. The ionic conductor according to claim 15 wherein the carbon cluster includes a spherical carbon cluster molecule Cn where n is an integer selected from the group consisting of 36, 60, 70, 76, 78, 80, 82, 84, and combinations thereof.
- 28. The ionic conductor according to claim 15 wherein the carbon cluster includes fullerene.
- 29. The ionic conductor according to claim 15 wherein the carbon cluster further includes an electron attractive functional group.
- 30. The ionic conductor according to claim 29 wherein the electron attractive functional group includes at least one chemical species selected from the group consisting of nitro group (—NO2), carbonyl group (—CO—), carboxyl group (—COOH), nitrile group (—CN), halogenated alkyl group, halogen group and combinations thereof.
- 31. The ionic conductor according to claim 15 wherein the polymer is mixed with a binder.
- 32. The ionic conductor according to claim 31 wherein the binder is a material with low electron conductivity.
- 33. The ionic conductor according to claim 32 wherein the binder is at least one material selected from the group consisting of polyfluoroethylene, polyvinylidene fluoride, polyvinyl alcohol and combination thereof.
- 34. A process for producing an ionic conductor, the process comprising the steps of:
reacting a plurality of carbon clusters with a plurality of connecting molecules having one or more halogen atoms attached to both terminal ends thereof; forming a carbon cluster polymer that includes one or more halogen groups; and substituting at least one of the halogen groups with an ion dissociating group.
- 35. The process for producing an ionic conductor as defined in claim 34, wherein the connecting group has at least one hydrocarbon group selected from the group consisting of aliphatic hydrocarbon groups, alicyclic hydrocarbon groups, aromatic hydrocarbon groups and derivatives thereof.
- 36. The process for producing an ionic conductor as defined in claim 34, wherein the halogen includes at least one chemical species selected from the group consisting of iodine, bromine, and chlorine.
- 37. An ionic conductor comprising at least a polymer of carbon clusters having the formula (1):
- 38. The ionic conductor according to claim 37 wherein the polymer does not include the R2 group such that the ion-dissociating group (-Zy−qMx+p) is bonded directly to the residue (Q) of the carbon cluster.
- 39. The ionic conductor as defined in claim 37, wherein the -Zy− includes at least one chemical species selected from the group consisting of sulfonic acid group anion (—SO3−), bis-sulfonylimide group anion (—SO2—N−—SO2—), hydrogensulfate ester group anion (—OSO3−), carboxyl group anion (—COO−), sulfonamide group anion (—SO2NH31 —), phosphonic acid residue anion (—PO32−), and dihydrogenphosphate ester group anion (—OPO32−).
- 40. The ionic conductor as defined in claim 37, wherein said Mx− is selected from the group consisting of hydrogen ion (H+), lithium ion (Li+), sodium ion (Na+), potassium ion (K+), magnesium ion (Mg2+), calcium ion (Ca2+), strontium ion (Sr2+), barium ion (Ba2+) and combinations thereof.
- 41. The ionic conductor as defined in claim 37, wherein the carbon cluster polymer includes at least one functional group selected from the group consisting of bis-sulfonylimide group (—SO2—NH—SO2—), bis-sulfonylmethylene group (—SO2—CH2—SO2—), biscarbonylimide group (—CO—NH—CO—), and sulfonylcarbonylimide group (—CO—NH—SO2—).
- 42. The ionic conductor as defined in claim 41, wherein an electron attractive functional group binds to one end or both ends of the functional group.
- 43. The ionic conductor according to claim 42, wherein the electron attractive functional group is selected from the group consisting of —CX2— and —CX3 where X denotes a halogen atom.
- 44. The ionic conductor according to claim 37, wherein the carbon number of the R1 and R2 groups range from 1 to 20.
- 45. The ionic conductor according to claim 37, wherein the carbon cluster includes a spherical carbon cluster molecule Cn where n is an integer selected from the group consisting of 36, 60, 70, 76, 78, 80, 82, 84 and combination thereof.
- 46. The ionic conductor according to claim 45, wherein the carbon cluster includes at least one of C60 and C70.
- 47. The ionic conductor according to claim 37 wherein the carbon cluster is fullerene.
- 48. The ionic conductor according to claim 37, wherein the carbon cluster further includes an electron attractive functional group.
- 49. The ionic conductor according to claim 48, wherein the electron attractive functional group includes at least one chemical species selected from the group consisting of nitro group (—NO2), carbonyl group (—CO—), carboxyl group (—COOH), nitrile group (—CN), halogenated alkyl group, and halogen group.
- 50. The ionic conductor according to claim 37, which includes no less than about 5 mass % of the carbon cluster residue.
- 51. The ionic conductor according to claim 37, wherein at least one of the R1 and R2 groups include at least one chemical group selected from the group consisting of aliphatic hydrocarbon groups, alicyclic hydrocarbon groups, aromatic hydrocarbon groups, and derivatives thereof, and a functional group containing at least one element selected from the group consisting of nitrogen (N), oxygen (O), phosphorus (P), sulfur (S), fluorine (F), chlorine (Cl), bromine (Br), and iodine (I).
- 52. The ionic conductor according to claim 37, which is synthesized from a precursor polymer having a molecular weight ranging from about 1,000 to about 5,000,000.
- 53. The ionic conductor according to claim 37, which is synthesized from a monomer containing the carbon cluster residue by any one of homopolymerization and copolymerization with another monomer.
- 54. The ionic conductor according to claim 37, wherein the ionic conductor includes a partially crosslinked structure.
- 55. The ionic conductor according to claim 54, wherein the partially crosslinked structure is formed by radical reaction via irradiation with any one of light and a radical initiator.
- 56. The ionic conductor according to claim 54, wherein the polymer is crosslinked by reaction of a crosslinking agent with any one of a sulfonyl halide group and a hydroxyl group.
- 57. The ionic conductor according to claim 56, wherein the crosslinking agent includes any one of polyisocyanate, dihalogen, epoxy, diazide, dicarboxylic acid, and bistrimethylsilylamide.
- 58. The ionic conductor according to claim 37, wherein the polymer is gelled with the aid of a gelling agent.
- 59. The ionic conductor according to claim 58, wherein the gelling agent is selected from the group consisting of propylene carbonate, ethylene carbonate and dimethoxyethane.
- 60. The ionic conductor according to claim 37, wherein the ionic conductor is formed by casting a mixture of the polymer and a binder.
- 61. The ionic conductor according to claim 60, wherein the binder is selected from the group consisting of polycarbonate, polyvinylidene fluoride, polyphenylene oxide and combination thereof.
- 62. A process for producing an ionic conductor at least including a polymer having a formula (1), the process comprising the steps of:
forming a carbon cluster polymer having a formula (2); and introducing an ion dissociating functional group into the carbon cluster polymer wherein 14where R1 includes any one of a hydrocarbon group and a derivative thereof; A1 and A2 is selected from the group consisting of an element including any one of nitrogen, phosphorus, oxygen, and sulfur, and a functional group containing one or more of the elements, wherein at least one of A1 and A2 is contained in the polymer; Q represents a residue of carbon cluster; R2 includes any one of a hydrocarbon group and a derivative thereof; Zy−qMx+p includes an ion-dissociating group where x, y, p, and q include a natural numbers such that px=qy; Mx+ represents a cation with a valence value of x; m represents a number of the ion-dissociating groups introduced into each of the carbon cluster residues; and n represents the degree of polymerization.
- 63. The process according to claim 62, wherein the polymer does not include the R2 group such that the ion-dissociating group (-Zy−qMx+p) is bonded directly to the residue (Q) of the carbon cluster
- 64. The process according to claim 62, wherein the process includes the steps of introducing an azide group into the polymer composed of the R1 and A1 groups, and reacting the azide group with the carbon cluster, thereby forming the carbon cluster polymer represented by the formula (2).
- 65. The process according to claim 62, wherein the carbon cluster polymer having the formula (2) is formed by performing a condensation reaction on the monomer containing the carbon clusters.
- 66. A process for producing an ionic conductor at least including a polymer having the formula (1), the process comprising the steps of:
forming a carbon cluster monomer having an ion dissociating functional group wherein the carbon cluster monomer has the formula (3); and forming a carbon cluster polymer having the formula (1) via a condensation reaction of the carbon cluster monomer wherein 15where R1 includes any one of a hydrocarbon group and a derivative thereof; A1 and A2 are selected from the group consisting of an element including nitrogen, phosphorus, oxygen, and sulfur, and a functional group including one or more of the elements, wherein at least one of A1 and A2 is contained in the polymer; Q includes a residue of carbon cluster; R2 includes any one of a hydrocarbon group and a derivative thereof; Zy−qMx+p includes an ion-dissociating group where x, y, p, and q represent natural numbers such that px=qy; Mx+ represents a cation with a valence value of x; m represents a number of the ion-dissociating groups introduced into each of the carbon cluster residues; n represents a degree of polymerization; R3 includes any one of a hydrocarbon group and a derivative thereof; and A3 is selected from the group consisting of an element including any one of nitrogen, phosphorus, oxygen, and sulfur, and a functional group containing one or more of the elements.
- 67. The process according to claim 66 wherein the polymer does not include the R2 group such that the ion-dissociating group (-Zy−qMx+p) is bonded directly to the residue (Q) of the carbon cluster.
- 68. An electrochemical device comprising a first electrode, a second electrode and an ionic conductor disposed between the first electrode and the second electrode wherein the ionic conductor is selected from the group consisting of a plurality of carbon clusters having one or more ion releasing group wherein the carbon clusters are bonded together via a spacer molecule, and at least a polymer of carbon clusters having the formula (1):
- 69. The ionic conductor according to claim 68 wherein the polymer does not include the R2 group such that the ion-dissociating group (-Zy−qMx+p) is bonded directly to the residue (Q) of the carbon cluster.
- 70. The electrochemical device according to claim 68, wherein the electrochemical device includes a fuel cell.
Priority Claims (4)
Number |
Date |
Country |
Kind |
H11-204038 |
Jul 1999 |
JP |
|
P2000-058116 |
Mar 2000 |
JP |
|
P2000-157509 |
May 2000 |
JP |
|
JP2002-210428 |
Jul 2002 |
JP |
|
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This patent application is a continuation-in-part of U.S. application Ser. No. 10/171,930, filed on Jun. 14, 2002, which is a continuation of U.S. patent application Ser. No. 09/619,166, filed Jul. 19, 2000 which is a continuation-in-part of U.S. application Ser. No. 09/396,866, filed on Sep. 15, 1999, the disclosures of which are herein incorporated by reference.
Continuations (1)
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Number |
Date |
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Parent |
09619166 |
Jul 2000 |
US |
Child |
10171930 |
Jun 2002 |
US |
Continuation in Parts (2)
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Number |
Date |
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Parent |
10171930 |
Jun 2002 |
US |
Child |
10280941 |
Oct 2002 |
US |
Parent |
09396866 |
Sep 1999 |
US |
Child |
09619166 |
Jul 2000 |
US |