Claims
- 1. An oxidation catalyst comprising a noble metal deposited over a modified carbon support, said modified support comprising a carbon support having a transition metal and nitrogen thereon, said transition metal being selected from the group consisting of iron and cobalt.
- 2. An oxidation catalyst as set forth in claim 1 wherein said modified support comprises a carbon support having a transition metal and nitrogen bound thereto, said transition metal being selected from the group consisting of iron and cobalt.
- 3. An oxidation catalyst as set forth in claim 2 comprising a transition metal/nitrogen composition bonded to said carbon support.
- 4. An oxidation catalyst as set forth in claim 3 wherein the noble metal is selected from the group consisting of platinum, palladium, rhodium, iridium, osmium, ruthenium and mixtures thereof.
- 5. An oxidation catalyst as set forth in claim 3 wherein the noble metal is platinum.
- 6. An oxidation catalyst as set forth in claim 3 wherein the concentration of the noble metal deposited at the surface of the modified carbon support is from about 2.5% to about 10% by weight of said catalyst.
- 7. An oxidation catalyst as set forth in claim 3 wherein said transition metal/nitrogen composition comprises an iron or cobalt nitride.
- 8. An oxidation catalyst as set forth in claim 3 wherein said transition metal/nitrogen composition comprises an active phase for the catalysis of a redox reaction.
- 9. An oxidation catalyst as set forth in claim 8 wherein said active phase is effective for catalyzing the reduction of molecular oxygen.
- 10. An oxidation catalyst as set forth in claim 3 comprising a particulate carbon support.
- 11. An oxidation catalyst as set forth in claim 10 wherein the transition metal/nitrogen composition comprises an iron or cobalt nitride and said iron or cobalt nitride comprises at least about 0.2% by weight of said catalyst.
- 12. An oxidation catalyst as set forth in claim 11 wherein said iron or cobalt nitride comprises from about 0.4% to about 6% by weight of said catalyst.
- 13. An oxidation catalyst as set forth in claim 10 wherein said catalyst comprises said transition metal/nitrogen composition in such proportion that the Fe, Co or the sum of (Fe+Co) of said transition metal/nitrogen composition constitutes at least about 0.1% by weight of said catalyst, and the nitrogen of said transition metal/nitrogen composition constitutes at least about 0.1% by weight of said catalyst.
- 14. An oxidation catalyst as set forth in claim 13 wherein said catalyst comprises said transition metal/nitrogen composition in such proportion that the Fe, Co or the sum of (Fe+Co) of said transition metal/nitrogen composition constitutes from about 0.1% to about 10% by weight of said catalyst, and the nitrogen of said transition metal/nitrogen composition constitutes from about 0.01% to about 10% by weight of said catalyst.
- 15. An oxidation catalyst as set forth in claim 14 wherein said catalyst comprises said transition metal/nitrogen composition in such proportion that the Fe, Co or the sum of (Fe+Co) of said transition metal/nitrogen composition constitutes from about 0.25% to about 7% by weight of said catalyst, and the nitrogen of said transition metal/nitrogen composition constitutes from about 0.1% to about 7% by weight of said catalyst.
- 16. An oxidation catalyst as set forth in claim 15 wherein said catalyst comprises said transition metal/nitrogen composition in such proportion that the Fe, Co or the sum of (Fe+Co) of said transition metal/nitrogen composition constitutes from about 0.5% to about 5% by weight of said catalyst, and the nitrogen of said transition metal/nitrogen composition constitutes from about 1% to about 5% by weight of said catalyst.
- 17. An oxidation catalyst as set forth in claim 15 wherein said catalyst comprises said transition metal/nitrogen composition in such proportion that the Fe, Co or the sum of (Fe+Co) of said transition metal/nitrogen composition constitutes from about 0.2% to about 3% by weight of said catalyst, and the nitrogen of said transition metal/nitrogen composition constitutes from about 0.2% to about 3% by weight of said catalyst.
- 18. An oxidation catalyst as set forth in claim 13 wherein said transition metal/nitrogen composition is substantially evenly distributed throughout the carbon particle.
- 19. An oxidation catalyst as set forth in claim 13 wherein said transition metal/nitrogen composition comprises an iron or cobalt nitride.
- 20. An oxidation catalyst as set forth in claim 19 wherein said transition metal/nitrogen composition comprises ε-Fe3N.
- 21. An oxidation catalyst as set forth in claim 20 wherein said transition metal/nitrogen composition further comprises an iron source selected from the group consisting of iron oxides, iron carbides, and metallic iron.
- 22. An oxidation catalyst as set forth in claim 10 wherein said transition metal/nitrogen composition comprises an iron nitride and superparamagnetic iron.
- 23. An oxidation catalyst as set forth in claim 22 wherein said transition metal/nitrogen composition as determined from Mössbauer spectra comprises from about 30% to about 70% by weight ξ-Fe3N and from about 5% to about 20% by weight superparamagnetic iron.
- 24. An oxidation catalyst as set forth in claim 23 wherein said transition metal/nitrogen composition as determined from Mössbauer spectra further comprises an additional iron species selected from iron (III) oxide particles, α-iron, isolated iron atoms and mixtures thereof.
- 25. An oxidation catalyst as set forth in claim 24 wherein said transition metal/nitrogen composition as determined from Mössbauer spectra further comprises from about 20% to about 30% by weight iron (III) oxide particles, from about 15% to about 25% by weight α-iron, and from about 10% to about 20% by weight isolated iron atoms.
- 26. An oxidation catalyst as set forth in claim 10 wherein the atomic ratio of transition metal to nitrogen in said transition metal/nitrogen composition is from about 1:4 to about 3:1.
- 27. An oxidation catalyst as set forth in claim 3 wherein said modified support is effective for reduction of oxygen as characterized by an increased reduction current relative to an untreated carbon support under reference conditions wherein the catalyst serves as an electrode that is cycled in the range of +0.1 to +0.5 volts vs. an Ag/AgCl electrode in the cyclic voltammetric reduction of oxygen at 70° C. in an electrolytic medium consisting of 0.1M H3PO4.
- 28. An oxidation catalyst as set forth in claim 3 wherein the catalyst is characterized as yielding less than 1.2 mmole of carbon monoxide per gram of catalyst when a dry sample of the catalyst, after being heated at a temperature of about 500° C. for about 1 hour in a hydrogen atmosphere and before being exposed to an oxidant following the heating in the hydrogen atmosphere, is heated in a helium atmosphere from about 200 to about 900° C. at a rate of about 10° C. per minute, and then at about 900° C. for about 30 minutes.
- 29. An oxidation catalyst as set forth in claim 3 wherein the catalyst is characterized as having a ratio of carbon atoms to oxygen atoms of at least about 30:1 at the surface as measured by x-ray photoelectron spectroscopy after the catalyst is heated at a temperature of about 500° C. for about 1 hour in a hydrogen atmosphere and before the catalyst is exposed to an oxidant following the heating in the hydrogen atmosphere.
- 30. An oxidation catalyst as set forth in claim 29 wherein the catalyst is further characterized as having a ratio of oxygen atoms to noble metal atoms at the surface which is less than 7:1 after the catalyst is heated at a temperature of about 500° C. for about 1 hour in a hydrogen atmosphere and before the catalyst is exposed to an oxidant following the heating in the hydrogen atmosphere.
- 31. A process for the preparation of a redox catalyst, the process comprising:
pyrolyzing a source of iron or cobalt and a source of nitrogen on a carbon support surface to provide a modified carbon support comprising iron or cobalt and nitrogen thereon; and thereafter depositing a noble metal on said modified carbon support.
- 32. A process as set forth in claim 31 wherein said source of iron or cobalt and said source of nitrogen is an iron or cobalt co-ordination complex comprising nitrogen-containing organic ligands.
- 33. A process as set forth in claim 31, wherein said pyrolysis is conducted at a temperature of from about 400° to about 1200° C.
- 34. A process as set forth in claim 31, wherein said pyrolysis is conducted at a temperature of from about 600° to about 1100° C.
- 35. A process as set forth in claim 31, wherein said pyrolysis is conducted at a temperature of about 1000° C.
- 36. A process as set forth in claim 32 wherein said nitrogen-containing organic ligands comprise five or six membered heterocyclic rings comprising nitrogen.
- 37. A process as set forth in claim 32 wherein said nitrogen-containing organic ligands are selected from the group consisting of porphyrins, porphyrin derivatives, polyacrylonitrile, phthalocyanines, pyrrole, substituted pyrroles, polypyrroles, pyridine, substituted pyridines, bipyridyls, phthalocyanines, imidazole, substituted imadazoles, pyrimidine, substituted pyrimidines, acetonitrile, o-phenylenediamines, bipyridines, salen ligands, p-phenylenediamines, and cyclams.
- 38. A process as set forth in claim 32 wherein the ligands of said co-ordination complex comprise porphyrin or a porphyrin derivative.
- 39. A process as set forth in claim 38 wherein said co-ordination complex comprises iron or cobalt tetraphenylporphyrin.
- 40. A process as set forth in claim 32 wherein said catalyst is prepared by depositing an iron or cobalt co-ordination complex on a particulate carbon support and pyrolyzing said complex on said support.
- 41. A process as set forth in claim 40 wherein said iron or cobalt co-ordination complex is deposited on said carbon support in such proportion as to provide from about 0.1% to about 10% by weight iron or cobalt on said support.
- 42. A process as set forth in claim 31 wherein an iron or cobalt salt comprising a nitrogen containing anion comprises both said source of iron or cobalt and said source of nitrogen.
- 43. A process as set forth in claim 31 wherein the pyrolysis is conducted in a pyrolysis zone comprising a vapor phase source of nitrogen.
- 44. A process as set forth in claim 43 wherein a stream of said vapor phase nitrogen source is passed through the pyrolysis zone.
- 45. A process as set forth in claim 44 wherein the process further comprises:
depositing an iron or cobalt oxide or salt on said carbon support; contacting said iron or cobalt salt or oxide on said carbon support with a reducing gas at a temperature of at least about 500° C; and thereafter contacting said support with said vapor phase nitrogen source in said pyrolysis zone at a temperature of at least 800° C.
- 46. A process as set forth in claim 44 wherein said vapor phase nitrogen source is a compound selected from the group consisting of ammonia, volatile amines, and volatile nitrites.
- 47. A process as set forth in claim 46 wherein said vapor phase nitrogen source is a compound selected from the group consisting of ammonia, ethylenediamine, isopropylamine, dimethylamine, acetonitrile and propionitrile.
- 48. A process as set forth in claim 31 wherein an iron or cobalt salt is pyrolyzed together with a nitrogen-containing composition selected from the group consisting of porphyrins, porphyrin derivatives, polyacrylonitrile, phthalocyanines, pyrrole, substituted pyrroles, polypyrroles, pyridine, substituted pyridines, bipyridyls, phthalocyanines, imidazole, substituted imadazoles, pyrimidine, substituted pyrimidines, acetonitrile, o-phenylenediamines, bipyridines, salen ligands, p-phenylenediamines, and cyclams.
- 49. A process as set forth in claim 31 wherein, prior to the deposition of said noble metal, said modified carbon support is effective for reduction of oxygen as characterized by an increased reduction current relative to an untreated carbon support under reference conditions wherein the catalyst serves as an electrode that is cycled in the range of +0.1 to +0.5 volts vs. an Ag/AgCl electrode in the cyclic voltammetric reduction of oxygen at 70° C. in an electrolytic medium consisting of 0.1M H3PO4.
- 50. A process as set forth in claim 31 wherein the process further comprises heating the surface of the modified carbon support at a temperature of at least about 400° C. after the deposition of the noble metal, wherein before the noble metal deposition, the carbon support has carbon and oxygen at the surface of the carbon support in amounts such that the ratio of carbon atoms to oxygen atoms at the surface is at least about 20:1 as measured by x-ray photoelectron spectroscopy.
- 51. A process as set forth in claim 31 wherein the process further comprises exposing the surface of the modified carbon support to a reducing environment, wherein, before the noble metal deposition, the carbon support has carbon and oxygen at the surface of the carbon support in amounts such that the ratio of carbon atoms to oxygen atoms at the surface is at least about 20:1 as measured by x-ray photoelectron spectroscopy.
- 52. A process for the oxidation of an organic substrate, the process comprising contacting said substrate with an oxidizing agent in the presence of a oxidation catalyst, said oxidation catalyst comprising a noble metal deposited over a modified carbon support, said modified carbon support having a transition metal and nitrogen thereon and said transition metal being selected from the group consisting of iron and cobalt.
- 53. A process as set forth in claim 52, wherein said modified carbon support comprises a carbon support having a transition metal and nitrogen bound thereto, said transition metal being selected from the group consisting of iron and cobalt.
- 54. A process as set forth in claim 53 wherein said oxidation catalyst comprises a transition metal/nitrogen composition bonded to said carbon support.
- 55. A process as set forth in claim 54 wherein the noble metal is selected from the group consisting of platinum, palladium, rhodium, iridium, osmium, ruthenium and mixtures thereof.
- 56. A process as set forth in claim 54 wherein the noble metal is platinum.
- 57. A process as set forth in claim 54 wherein the concentration of the noble metal deposited at the surface of the modified carbon support is from about 2.5 to about 10% by weight of said catalyst.
- 58. A process as set forth in claim 54 wherein said transition metal/nitrogen composition comprises an iron or cobalt nitride.
- 59. A process as set forth in claim 54 wherein said transition metal/nitrogen composition comprises an active phase for the catalysis of a redox reaction.
- 60. A process as set forth in claim 59 wherein said active phase is effective for catalyzing the reduction of molecular oxygen.
- 61. A process as set forth in claim 54 wherein said oxidation catalyst comprises a particulate carbon support.
- 62. A process as set forth in claim 61 wherein the transition metal/nitrogen composition comprises an iron or cobalt nitride and said iron or cobalt nitride comprises at least about 0.2% by weight of said catalyst.
- 63. A process as set forth in claim 62 wherein said iron or cobalt nitride comprises from about 0.4% to about 6% by weight of said catalyst.
- 64. A process as set forth in claim 61 wherein said catalyst comprises said transition metal/nitrogen composition in such proportion that the Fe, Co or the sum of (Fe+Co) of said transition metal/nitrogen composition constitutes at least about 0.1% by weight of said catalyst, and the nitrogen of said transition metal/nitrogen composition constitutes at least about 0.1% by weight of said catalyst.
- 65. A process as set forth in claim 64 wherein said catalyst comprises said transition metal/nitrogen composition in such proportion that the Fe, Co or the sum of (Fe+Co) of said transition metal/nitrogen composition constitutes from about 0.1% to about 10% by weight of said catalyst, and the nitrogen of said transition metal/nitrogen composition constitutes from about 0.01% to about 10% by weight of said catalyst.
- 66. A process as set forth in claim 65 wherein said catalyst comprises said transition metal/nitrogen composition in such proportion that the Fe, Co or the sum of (Fe+Co) of said transition metal/nitrogen composition constitutes from about 0.25% to about 7% by weight of said catalyst, and the nitrogen of said transition metal/nitrogen composition constitutes from about 0.1% to about 7% by weight of said catalyst.
- 67. A process as set forth in claim 66 wherein said catalyst comprises said transition metal/nitrogen composition in such proportion that the Fe, Co or the sum of (Fe+Co) of said transition metal/nitrogen composition constitutes from about 0.5% to about 5% by weight of said catalyst, and the nitrogen of said transition metal/nitrogen composition constitutes from about 1% to about 5% by weight of said catalyst.
- 68. A process as set forth in claim 66 wherein said catalyst comprises said transition metal/nitrogen composition in such proportion that the Fe, Co or the sum of (Fe+Co) of said transition metal/nitrogen composition constitutes from about 0.2% to about 3% by weight of said catalyst, and the nitrogen of said transition metal/nitrogen composition constitutes from about 0.2% to about 3% by weight of said catalyst.
- 69. A process as set forth in claim 64 wherein said transition metal/nitrogen composition is substantially evenly distributed throughout the carbon particle.
- 70. A process as set forth in claim 64 wherein said transition metal/nitrogen composition comprises an iron or cobalt nitride.
- 71. A process as set forth in claim 70 wherein said transition metal/nitrogen composition comprises ε-Fe3N.
- 72. A process as set forth in claim 71 wherein said transition metal/nitrogen composition further comprises an iron source selected from the group consisting of iron oxides, iron carbides, and metallic iron.
- 73. A process as set forth in claim 61 wherein said transition metal/nitrogen composition comprises an iron nitride and superparamagnetic iron.
- 74. A process as set forth in claim 73 wherein said transition metal/nitrogen composition as determined from Mössbauer spectra comprises from about 30% to about 70% by weight ξ-Fe3N and from about 5% to about 20% by weight superparamagnetic iron.
- 75. A process as set forth in claim 74 wherein said transition metal/nitrogen composition as determined from Mössbauer spectra further comprises an additional iron species selected from iron (III) oxide particles, α-iron, isolated iron atoms and mixtures thereof.
- 76. A process as set forth in claim 75 wherein said transition metal/nitrogen composition as determined from Mössbauer spectra further comprises from about 20% to about 30% by weight iron (III) oxide particles, from about 15% to about 25% by weight α-iron, and from about 10% to about 20% by weight isolated iron atoms.
- 77. A process as set forth in claim 61 wherein the atomic ratio of transition metal to nitrogen in said transition metal/nitrogen composition is from about 1:4 to about 3:1.
- 78. A process as set forth in claim 52 wherein said substrate comprises a tertiary amine which is oxidized to a secondary amine.
- 79. A process as set forth in claim 78 wherein said substrate corresponds to a compound of Formula I having the structure:
- 80. A process as set forth in claim 79 wherein R1 comprises R5OC(O)CH2—, R11 is hydrogen, and R5 is selected from hydrogen and an agronomically acceptable cation.
- 81. A process as set forth in claim 80 wherein R2 is selected from the group consisting of R5OC(O)CH2—, acyl, hydrocarbyl and substituted hydrocarbyl.
- 82. A process as set forth in claim 78 wherein said substrate comprises N-(phosphonomethyl)iminodiacetic acid or a salt thereof.
- 83. A process as set forth in claim 78 wherein said catalyst functions to catalyze both the oxidation of said tertiary amine substrate and the further oxidation of formaldehyde and formic acid produced as by-products of the oxidation of said tertiary amine substrate.
- 84. A process for the oxidation of an organic substrate, the process comprising contacting said substrate with an oxidizing agent in the presence of a catalyst, said catalyst comprising a modified carbon support having a transition metal/nitrogen composition thereon, said transition metal being selected from the group consisting of iron and cobalt, said catalyst comprising said transition metal/nitrogen composition in such proportion that the Fe, Co or the sum of (Fe+Co) of said transition metal/nitrogen composition constitutes at least about 0.1% by weight of said catalyst, and the nitrogen of said transition metal/nitrogen composition constitutes at least about 0.1% by weight of said catalyst.
- 85. A process as set forth in claim 84 wherein said catalyst comprises the transition metal/nitrogen composition bonded to the modified carbon support.
- 86. A process as set forth in claim 85 wherein said transition metal/nitrogen composition comprises an active phase for the catalysis of a redox reaction.
- 87. A process as set forth in claim 86 wherein said active phase is effective for catalyzing the reduction of molecular oxygen.
- 88. A process as set forth in claim 85 wherein said transition metal/nitrogen composition comprises an iron or cobalt nitride.
- 89. A process as set forth in claim 85 wherein said oxidation catalyst comprises a particulate carbon support.
- 90. A process as set forth in claim 89 wherein the transition metal/nitrogen composition comprises an iron or cobalt nitride and said iron or cobalt nitride comprises at least about 0.2% by weight of said catalyst.
- 91. A process as set forth in claim 90 wherein said iron or cobalt nitride comprises from about 0.4% to about 6% by weight of said catalyst.
- 92. A process as set forth in claim 89 wherein said catalyst comprises said transition metal/nitrogen composition in such proportion that the Fe, Co or the sum of (Fe+Co) of said transition metal/nitrogen composition 5 constitutes at least 0.1% by weight of said catalyst, and the nitrogen of said transition metal/nitrogen composition constitutes at least 0.1% by weight of said catalyst.
- 93. A process as set forth in claim 92 wherein said catalyst comprises said transition metal/nitrogen composition in such proportion that the Fe, Co or the sum of (Fe+Co) of said transition metal/nitrogen composition constitutes from about 0.1% to about 10% by weight of said catalyst, and the nitrogen of said transition metal/nitrogen composition constitutes from about 0.01% to about 10% by weight of said catalyst.
- 94. A process as set forth in claim 93 wherein said catalyst comprises said transition metal/nitrogen composition in such proportion that the Fe, Co or the sum of (Fe+Co) of said transition metal/nitrogen composition constitutes from about 0.25% to about 7% by weight of said catalyst, and the nitrogen of said transition metal/nitrogen composition constitutes from about 0.1% to about 7% by weight of said catalyst.
- 95. A process as set forth in claim 94 wherein said catalyst comprises said transition metal/nitrogen composition in such proportion that the Fe, Co or the sum of (Fe+Co) of said transition metal/nitrogen composition constitutes from about 0.5% to about 5% by weight of said catalyst, and the nitrogen of said transition metal/nitrogen composition constitutes from about 1% to about 5% by weight of said catalyst.
- 96. A process as set forth in claim 94 wherein said catalyst comprises said transition metal/nitrogen composition in such proportion that the Fe, Co or the sum of (Fe+Co) of said transition metal/nitrogen composition constitutes from about 0.2% to about 3% by weight of said catalyst, and the nitrogen of said transition metal/nitrogen composition constitutes from about 0.2% to about 3% by weight of said catalyst.
- 97. A process as set forth in claim 92 wherein said transition metal/nitrogen composition is substantially evenly distributed throughout the carbon particle.
- 98. A process as set forth in claim 92 wherein said transition metal/nitrogen composition comprises an iron or cobalt nitride.
- 99. A process as set forth in claim 98 wherein said transition metal/nitrogen composition comprises ε-Fe3N.
- 100. A process as set forth in claim 99 wherein said transition metal/nitrogen composition further comprises an iron source selected from the group consisting of iron oxides, iron carbides, and metallic iron.
- 101. A process as set forth in claim 89 wherein said transition metal/nitrogen composition comprises an iron nitride and superparamagnetic iron.
- 102. A process as set forth in claim 101 wherein said transition metal/nitrogen composition as determined from Mössbauer spectra comprises from about 30% to about 70% by weight ξ-Fe3N and from about 5% to about 20% by weight superparamagnetic iron.
- 103. A process as set forth in claim 102 wherein said transition metal/nitrogen composition as determined from Mössbauer spectra further comprises an additional iron species selected from iron (III) oxide particles, α-iron, isolated iron atoms and mixtures thereof.
- 104. A process as set forth in claim 103 wherein said transition metal/nitrogen composition as determined from Mössbauer spectra further comprises from about 20% to about 30% by weight iron (III) oxide particles, from about 15% to about 25% by weight α-iron, and from about 10% to about 20% by weight isolated iron atoms.
- 105. A process as set forth in claim 89 wherein the atomic ratio of transition metal to nitrogen in said transition metal/nitrogen composition is from about 1:4 to about 3:1.
- 106. A process as set forth in claim 85 wherein said substrate comprises a tertiary amine which is oxidized to a secondary amine.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional Application Serial No. 60/356,916, filed Feb. 14, 2002, the entire text of which is hereby incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60356916 |
Feb 2002 |
US |