Claims
- 1. A process for the catalytic oxidation of formic acid or formaldehyde, the process comprising:
contacting formic acid or formaldehyde with an oxidizing agent in the presence of a catalyst and a supplemental promoter wherein:
the catalyst comprises a noble metal and a carbon support; and the mass ratio of the supplemental promoter to the catalyst is at least about 1:15,000.
- 2. A process as set forth in claim 1 wherein said noble metal catalyst and a supplemental promoter are introduced into a reaction medium in a mass ratio of the supplemental promoter to the catalyst of at least about 1:15,000.
- 3. A process as set forth in claim 2 wherein the mass ratio of the supplemental promoter to the catalyst is at least about 1:5000.
- 4. A process as set forth in claim 2 wherein the mass ratio of the supplemental promoter to the catalyst is at least about 1:2500.
- 5. A process as set forth in claim 2 wherein the mass ratio of the supplemental promoter to the catalyst is at least about 1:1000.
- 6. A process as set forth in claim 1 wherein said reaction medium is contacted with said oxidizing agent in an oxidation reaction zone containing said catalyst, and further containing said supplemental promoter in a mass ratio to said catalyst of at least about 1:15,000.
- 7. A process as set forth in claim 6 wherein said catalyst comprises a particulate catalyst slurried in said reaction medium.
- 8. A process as set forth in claim 6 wherein said reaction zone comprises a fixed or fluid bed comprising said catalyst.
- 9. A process as set forth in claim 6 wherein the mass ratio of the supplemental promoter to the catalyst is at least about 1:5000.
- 10. A process as set forth in claim 6 wherein the mass ratio of the supplemental promoter to the catalyst is at least about 1:2500.
- 11. A process as set forth in claim 6 wherein the mass ratio of the supplemental promoter to the catalyst is at least about 1:1000.
- 12. A process as set forth in claim 1, wherein the supplemental promoter increases the activity of the catalyst for oxidizing formic acid or formaldehyde.
- 13. A process as set forth in claim 12, wherein a mixture comprising formic acid and formaldehyde is contacted with an oxidizing agent in the presence of said catalyst and supplemental promoter, said supplemental promoter being effective to increase the activity of the catalyst for oxidizing both formic acid and formaldehyde.
- 14. A process as set forth in claim 1, wherein the supplemental promoter reduces noble metal leaching from the carbon support.
- 15. A process as set forth in claim 1, wherein the supplemental promoter comprises bismuth, lead, germanium, tellurium, titanium, copper or nickel.
- 16. A process as set forth in claim 15, wherein the supplemental promoter comprises bismuth or tellurium.
- 17. A process as set forth in claim 15, wherein the supplemental promoter comprises bismuth.
- 18. A process as set forth in claim 15, wherein the supplemental promoter comprises tellurium.
- 19. A process as set forth in claim 1, wherein the formic acid or formaldehyde is contacted with an oxidizing agent in the presence of a catalyst and two supplemental promoters.
- 20. A process as set forth in claim 19, wherein the supplemental promoters comprise bismuth, titanium or tellurium.
- 21. A process as set forth in claim 20, wherein the supplemental promoters comprise bismuth and tellurium.
- 22. A process as set forth in claim 1, the process further comprising forming a mixture comprising formic acid or formaldehyde, a catalyst and a first supplemental promoter; and
contacting the mixture with a second supplemental promoter.
- 23. A process as set forth in claim 22, wherein the supplemental promoters comprise bismuth, titanium or tellurium.
- 24. A process as set forth in claim 23, wherein the first supplemental promoter comprises bismuth and the second supplemental promoter comprises tellurium.
- 25. A process as set forth in claim 23, wherein the first supplemental promoter comprises tellurium and the second supplemental promoter comprises bismuth.
- 26. A process as set forth in claim 1, wherein formic acid or formaldehyde is oxidized in the presence of a catalyst and at least two supplemental promoters.
- 27. A process as set forth in claim 26, wherein the supplemental promoters comprise bismuth and tellurium.
- 28. A process as set forth in claim 1 wherein N-(phosphonomethyl)iminodiacetic acid or a salt thereof and formic acid or formaldehyde are contacted with said oxidizing agent in the presence of said catalyst and supplemental promoter.
- 29. A process as set forth in claim 28 comprising contacting N-(phosphonomethyl)iminodiacetic acid or a salt thereof with said oxidizing agent in the presence of said catalyst and said supplemental promoter, thereby producing N-(phosphonomethyl)glycine or a salt thereof and by-product formic acid or formaldehyde, said by-product formic acid or formaldehyde being oxidized by contact with said oxidizing agent in the presence of said catalyst and supplemental promoter.
- 30. A process as set forth in claim 28 wherein oxidation of N-(phosphonomethyl)iminodiacetic acid or salt thereof produces a mixture comprising by-product formaldehyde and formic acid, said supplemental promoter being effective to increase the activity of the catalyst for oxidizing both formic acid and formaldehyde.
- 31. A process as set forth in claim 29, wherein the supplemental promoter increases the selectivity of the catalyst for making N-(phosphonomethyl)glycine or the salt thereof from N-(phosphonomethyl)iminodiacetic acid or the salt thereof.
- 32. A process as set forth in claim 29, wherein said N-(phosphonomethyl)iminodiacetic acid or a salt thereof is contacted with said oxidizing agent in the presence of said catalyst and said supplemental promoter at a temperature of from about 60° to about 150° C., preferably from about 100° to about 130° C., said N-(phosphonomethyl)iminodiacetic acid or a salt thereof having a concentration of about 12 to about 18%.
- 33. A process as set forth in claim 28, wherein the supplemental promoter increases the activity of the catalyst for oxidizing formic acid or formaldehyde.
- 34. A process as set forth in claim 28, wherein the supplemental promoter reduces noble metal leaching from the carbon support.
- 35. A process as set forth in claim 28, wherein the supplemental promoter comprises bismuth, lead, germanium, tellurium, titanium, copper or nickel.
- 36. A process as set forth in claim 28, wherein the supplemental promoter comprises bismuth or tellurium.
- 37. A process as set forth in claim 36, wherein the catalyst further comprises a catalyst-surface promoter in a proportion of at least about 0.05% by weight of the catalyst.
- 38. A process as set forth in claim 37, wherein the catalyst-surface promoter comprises bismuth, tin, cadmium, magnesium, manganese, nickel, aluminum, cobalt, lead, titanium, antimony, selenium, iron, rhenium, zinc, cerium, zirconium, tellurium, or germanium.
- 39. A process as set forth in claim 36, wherein the catalyst further comprises tin in a proportion of at least about 0.05% by weight of the catalyst.
- 40. A process as set forth in claim 36, wherein the catalyst further comprises iron in a proportion of at least about 0.05% by weight of the catalyst.
- 41. A process as set forth in claim 36, wherein the catalyst further comprises two catalyst-surface promoters which are each present in a proportion of at least about 0.05% by weight of the catalyst.
- 42. A process as set forth in claim 41, wherein the two catalyst-surface promoters comprise (a) iron and (b) tellurium.
- 43. A process as set forth in claim 36, wherein the catalyst further comprises (a) tin in a proportion of at least about 0.05% by weight of the catalyst, and (b) iron in a proportion of at least about 0.05% by weight of the catalyst.
- 44. A process as set forth in claim 36, wherein the catalyst further comprises (a) iron and (b) tellurium.
- 45. A process as set forth in claim 36, wherein a reaction mixture is formed during the oxidation comprising the catalyst and a reaction product, the process further comprising:
separating catalyst from the reaction mixture to form (a) a catalyst-enriched mixture comprising most of the catalyst present in the reaction mixture, and (b) a catalyst-depleted mixture comprising most of the reaction product in the reaction mixture; and contacting catalyst from the catalyst-enriched mixture with additional N-(phosphonomethyl)iminodiacetic acid or the salt thereof.
- 46. A process as set forth in claim 45, wherein catalyst from the catalyst-enriched mixture is contacted with (a) additional N-(phosphonomethyl)iminodiacetic acid or the salt thereof, and (b) an additional amount of the supplemental promoter.
- 47. A process as set forth in claim 45, wherein catalyst from the catalyst-enriched mixture is mixed with a replenishing amount of supplemental promoter prior to being contacted with additional N-(phosphonomethyl)iminodiacetic acid or the salt thereof.
- 48. A process as set forth in claim 28, wherein the supplemental promoter comprises bismuth.
- 49. A process as set forth in claim 48, wherein bismuth is mixed with the catalyst in a liquid medium, and is introduced into the liquid medium in the form of bismuth oxide, bismuth hydroxide, bismuth chloride, bismuth bromide, bismuth iodide, bismuth telluride, bismuth sulphite, bismuth sulphate, bismuthyl sulfate, bismuthyl nitrite, bismuth nitrate, bismuthyl nitrate, double nitrate of bismuth and magnesium, bismuth phosphite, bismuth phosphate, bismuth pyrophosphate, bismuthyl carbonate, bismuth perchlorate, bismuth antimonate, bismuth arsenate, bismuth selenite, bismuth titanate, bismuth vanadate, bismuth niobate, bismuth tantalate, bismuth chromate, bismuthyl dichromate, bismuthyl chromate, double chromate of bismuthyl and potassium, bismuth molybdate, double molybdate of bismuth and sodium, bismuth tungstate, bismuth permanganate, bismuth zirconate, bismuth acetate, bismuthyl propionate, bismuth benzoate, bismuthyl salicylate, bismuth oxalate, bismuth tartrate, bismuth lactate, bismuth citrate, bismuth gallate, bismuth pyrogallate, bismuth phosphide, bismuth arsenide, sodium bismuthate, bismuth-thiocyanic acid, sodium salt of bismuth-thiocyanic acid, potassium salt bismuth-thiocyanic acid, trimethylbismuthine, triphenylbismuthine, bismuth oxychloride, or bismuth oxyiodide.
- 50. A process as set forth in claim 48, wherein bismuth is mixed with the catalyst in a liquid medium, and is introduced into the liquid medium in the form of Bi2O3.
- 51. A process as set forth in claim 48, wherein bismuth is mixed with the catalyst in a liquid medium, and is introduced into the liquid medium in the form of (BiO)2CO3.
- 52. A process as set forth in claim 48, wherein bismuth is mixed with the catalyst in a liquid medium, and is introduced into the liquid medium in the form of Bi(NO3)3.5H2O.
- 53. A process as set forth in claim 28, wherein the supplemental promoter comprises tellurium.
- 54. A process as set forth in claim 53, wherein tellurium is mixed with the catalyst in a liquid medium, and is introduced into the liquid medium in the form of a tellurium oxide, a tellurium chloride, a tellurium fluoride, a tellurium bromide, a tellurium iodide, a tellurium dioxide or a tellurium nitrate.
- 55. A process as set forth in claim 53, wherein tellurium has a valence state of 2, 3, 4, 5 or 6.
- 56. A process as set forth in claim 53, wherein tellurium has a valence state of 3 or 5.
- 57. A process as set forth in claim 53, wherein tellurium has a valence state of 4.
- 58. A process as set forth in claim 53, wherein tellurium is mixed with the catalyst in a liquid medium, and is introduced into the liquid medium in the form of TeO2.
- 59. A process as set forth in claim 53, wherein tellurium is mixed with the catalyst in a liquid medium, and is introduced into the liquid medium in the form of TeCl4.
- 60. A process as set forth in claim 53, wherein tellurium is mixed with the catalyst in a liquid medium, and is introduced into the liquid medium in the form of Te(OH)6.
- 61. A process as set forth in claim 28, wherein N-(phosphonomethyl)iminodiacetic acid or the salt thereof is oxidized in the presence of a catalyst and at least two supplemental promoters, the mass ratio of each supplemental promoter to the catalyst being at least about 1:15,000.
- 62. A process as set forth in claim 61, wherein the supplemental promoters comprise bismuth, titanium or tellurium.
- 63. A process as set forth in claim 61, wherein the supplemental promoters comprise (a) bismuth and (b) titanium or tellurium.
- 64. A process as set forth in claim 61, wherein the supplemental promoters comprise (a) bismuth and (b) tellurium.
- 65. A process as set forth in claim 61, the process further comprising forming a mixture comprising N-(phosphonomethyl)iminodiacetic acid or the salt thereof, formic acid or formaldehyde, a catalyst and the first supplemental promoter; and
contacting the mixture with the second supplemental promoter after partial conversion of said N-(phosphonomethyl)iminodiacetic acid or the salt thereof to an oxidation product thereof.
- 66. A process as set forth in claim 61, wherein the first supplemental promoter comprises bismuth and the second supplemental promoter comprises tellurium.
- 67. A process as set forth in claim 61, wherein the first supplemental promoter comprises tellurium and the second supplemental promoter comprises bismuth.
- 68. A process as set forth in claim 28, wherein the oxidation is conducted in a medium to which formic acid or formaldehyde is introduced.
- 69. A process as set forth in claim 28, wherein, before the oxidation:
A. the catalyst is identifiable as yielding no greater than about 1.2 mmole of carbon monoxide per gram of catalyst when a dry sample of the catalyst in a helium atmosphere is heated from about 20° to about 900° C. at a rate of about 10° C. per minute, and then at about 900° C. for about 30 minutes; or B. the catalyst comprises a carbon support having a noble metal, carbon, and oxygen at a surface of the carbon support, the ratio of carbon atoms to oxygen atoms at the surface being at least about 20:1, as measured by x-ray photoelectron spectroscopy; or C. the catalyst comprises a carbon support comprising: (i) a noble metal at a surface of the carbon support; and (ii) a surface layer having a thickness of about 50 Å as measured inwardly from the surface and comprising carbon atoms and oxygen atoms, the ratio of carbon atoms to oxygen atoms in the surface layer being at least about 20:1, as measured by x-ray photoelectron spectroscopy; or D. the catalyst is formed by a process comprising depositing a noble metal at a surface of a carbon support, and then heating the surface at a temperature of at least about 400° C.; or E. the catalyst is formed by a process comprising:
depositing a noble metal at a surface of a carbon support, and then exposing the surface to a reducing environment, wherein, before the noble metal deposition, the carbon support has carbon atoms and oxygen atoms at the surface 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; or F. the catalyst comprises a carbon support having:
(i) a noble metal and a catalyst-surface promoter at a surface of the carbon support; and (ii) a surface layer having a thickness of about 50 Å as measured inwardly from the surface and comprising carbon and oxygen, the catalyst being identifiable as having a ratio of carbon atoms to oxygen atoms in the surface layer which is at least about 20:1, 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.
- 70. A process as set forth in claim 69, wherein the supplemental promoter comprises bismuth or tellurium.
- 71. A process as set forth in claim 69, wherein, before the oxidation, the catalyst is identifiable as yielding no greater than about 1.2 mmole of carbon monoxide per gram of catalyst when a dry sample of the catalyst in a helium atmosphere is heated from about 20° to about 900° C. at a rate of about 10° C. per minute, and then at about 900° C. for about 30 minutes.
- 72. A process as set forth in claim 69, wherein, before the oxidation, the catalyst comprises a carbon support having a noble metal, carbon, and oxygen at a surface of the carbon support, the ratio of carbon atoms to oxygen atoms at the surface being at least about 20:1, as measured by x-ray photoelectron spectroscopy.
- 73. A process as set forth in claim 69, wherein, before the oxidation, the catalyst comprises a carbon support comprising: (i) a noble metal at a surface of the carbon support; and (ii) a surface layer having a thickness of about 50 Å as measured inwardly from the surface and comprising carbon atoms and oxygen atoms, the ratio of carbon atoms to oxygen atoms in the surface layer being at least about 20:1, as measured by x-ray photoelectron spectroscopy.
- 74. A process as set forth in claim 69, wherein, before the oxidation, the catalyst is formed by a process comprising depositing a noble metal at a surface of a carbon support, and then heating the surface at a temperature of at least about 400° C.
- 75. A process as set forth in claim 69, wherein, before the oxidation, the catalyst is formed by a process comprising: depositing a noble metal at a surface of a carbon support, and then exposing the surface to a reducing environment, wherein, before the noble metal deposition, the carbon support has carbon atoms and oxygen atoms at the surface 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.
- 76. A process as set forth in claim 69, wherein, before the oxidation, the catalyst comprises a carbon support having: (i) a noble metal and a catalyst-surface promoter at a surface of the carbon support; and (ii) a surface layer having a thickness of about 50 Å as measured inwardly from the surface and comprising carbon and oxygen, the catalyst being identifiable as having a ratio of carbon atoms to oxygen atoms in the surface layer which is at least about 20:1, 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.
- 77. A process as set forth in claim 28, wherein the catalyst comprises a catalyst that has been used in one or more previous oxidation reactions.
- 78. A process as set forth in claim 28, wherein a mixture comprising formaldehyde and formic acid is contacted with an oxidizing agent in the presence of said catalyst and supplemental promoter, said supplemental promoter being effective to increase the activity of the catalyst for oxidizing both formic acid and formaldehyde.
- 79. A process as set forth in claim 1, wherein said formic acid or formaldehyde is contained in an aqueous waste stream generated in the manufacture of N-(phosphonomethyl)glycine by the oxidation of N-(phosphonomethyl)iminodiacetic acid, said aqueous waste stream being contacted with said oxidizing agent in the presence of said catalyst and said supplemental promoter.
- 80. A process as set forth in claim 79, wherein said oxidation of N-(phosphonomethyl)iminodiacetic acid produces a product mixture comprising an N-(phosphonomethyl)glycine product, water and formic acid or formaldehyde, the process further comprising:
separating the product mixture to form (a) an N-(phosphonomethyl)glycine product and (b) an aqueous waste stream comprising water and formic acid or formaldehyde; and contacting the aqueous waste stream with said oxidizing agent in the presence of said catalyst and said supplemental promoter.
- 81. A process as set forth in claim 80, wherein the product mixture is separated in an evaporator to form (a) an N-phosphonomethyl)glycine product and (b) an overhead vapor stream comprising evaporated water, formic acid or formaldehyde, the process further comprising:
condensing water, formic acid or formaldehyde from said overhead vapor stream to form an aqueous waste stream containing water, formic acid or formaldehyde obtained in the condensate; and contacting the aqueous waste stream with said oxidizing agent in the presence of said catalyst and said supplemental promoter.
- 82. A process as set forth in claim 79, wherein the supplemental promoter increases the activity of the catalyst for oxidizing formic acid or formaldehyde.
- 83. A process as set forth in claim 79, wherein the supplemental promoter reduces noble metal leaching from the carbon support.
- 84. A process as set forth in claim 79, wherein the supplemental promoter comprises bismuth, lead, germanium, tellurium, titanium, copper or nickel.
- 85. A process as set forth in claim 79, wherein the supplemental promoter comprises bismuth or tellurium.
- 86. A process as set forth in claim 79, wherein the supplemental promoter comprises bismuth.
- 87. A process as set forth in claim 86, wherein bismuth is mixed with the catalyst in a liquid medium, and is introduced into the liquid medium in the form of bismuth oxide, bismuth hydroxide, bismuth chloride, bismuth bromide, bismuth iodide, bismuth sulphide, bismuth selenide, bismuth telluride, bismuth sulphite, bismuth sulphate, bismuthyl sulfate, bismuthyl nitrite, bismuth nitrate, bismuthyl nitrate, double nitrate of bismuth and magnesium, bismuth phosphite, bismuth phosphate, bismuth pyrophosphate, bismuthyl carbonate, bismuth perchlorate, bismuth antimonate, bismuth arsenate, bismuth selenite, bismuth titanate, bismuth vanadate, bismuth niobate, bismuth tantalate, bismuth chromate, bismuthyl dichromate, bismuthyl chromate, double chromate of bismuthyl and potassium, bismuth molybdate, double molybdate of bismuth and sodium, bismuth tungstate, bismuth permanganate, bismuth zirconate, bismuth acetate, bismuthyl propionate, bismuth benzoate, bismuthyl salicylate, bismuth oxalate, bismuth tartrate, bismuth lactate, bismuth citrate, bismuth gallate, bismuth pyrogallate, bismuth phosphide, bismuth arsenide, sodium bismuthate, bismuth-thiocyanic acid, sodium salt of bismuth-thiocyanic acid, potassium salt bismuth-thiocyanic acid, trimethylbismuthine, triphenylbismuthine, bismuth oxychloride, or bismuth oxyiodide.
- 88. A process as set forth in claim 86, wherein bismuth is mixed with the catalyst in a liquid medium, and is introduced into the liquid medium in the form of Bi2O3.
- 89. A process as set forth in claim 86, wherein bismuth is mixed with the catalyst in a liquid medium, and is introduced into the liquid medium in the form of (BiO)2CO3.
- 90. A process as set forth in claim 86, wherein bismuth is mixed with the catalyst in a liquid medium, and is introduced into the liquid medium in the form of Bi(NO3)3.5H2O.
- 91. A process as set forth in claim 79, wherein the supplemental promoter comprises tellurium.
- 92. A process as set forth in claim 91, wherein tellurium is mixed with the catalyst in a liquid medium, and is introduced into the liquid medium in the form of a tellurium oxide, tellurium chloride, tellurium fluoride, tellurium bromide, tellurium iodide, tellurium sulfide, tellurium dioxide, tellurium selenide or a tellurium nitrate.
- 93. A process as set forth in claim 92, wherein said tellurium has a valence state of 2, 3, 4, 5 or 6.
- 94. A process as set forth in claim 93, wherein said tellurium has a valence state of 4.
- 95. A process as set forth in claim 92, wherein tellurium is mixed with the catalyst in a liquid medium, and is introduced into the liquid medium in the form of TeO2.
- 96. A process as set forth in claim 92, wherein tellurium is mixed with the catalyst in a liquid medium, and is introduced into the liquid medium in the form of TeCl4.
- 97. A process as set forth in claim 92, wherein tellurium is mixed with the catalyst in a liquid medium, and is introduced into the liquid medium in the form of Te(OH)6.
- 98. A process as set forth in claim 79, wherein formic acid or formaldehyde are oxidized in the presence of a catalyst and at least two supplemental promoters, the mass ratio of each supplemental promoter to the catalyst being at least about 1:15,000.
- 99. A process as set forth in claim 98, wherein said supplemental promoters comprise bismuth, titanium or tellurium.
- 100. A process as set forth in claim 99, wherein the supplemental promoters comprise (a) bismuth, and (b) titanium or tellurium.
- 101. A process as set forth in claim 99, wherein the supplemental promoters comprise (a) bismuth and (b) tellurium.
- 102. A process as set forth in claim 98, the process further comprising:
forming a mixture comprising formic acid or formaldehyde, a catalyst and a first supplemental promoter; and contacting the mixture with a second supplemental promoter.
- 103. A process as set forth in claim 102, wherein the first supplemental promoter comprises bismuth and the second supplemental promoter comprises tellurium.
- 104. A process as set forth in claim 102, wherein the first supplemental promoter is tellurium and the second supplemental promoter is bismuth.
- 105. A process as set forth in claim 79, wherein
the catalyst comprises a catalyst that has been used in one or more previous oxidation reactions.
- 106. A process as set forth in claim 79, wherein a mixture comprising formaldehyde and formic acid is contacted with an oxidizing agent in the presence of said catalyst and supplemental promoter, said supplemental promoter being effective to increase the activity of the catalyst for oxidizing both formic acid and formaldehyde.
- 107. A process for making N-(phosphonomethyl)glycine or a salt thereof, the process comprising oxidizing N-(phosphonomethyl)iminodiacetic acid or a salt thereof in the presence of a catalyst and a supplemental promoter, wherein:
the catalyst comprises a noble metal and a carbon support; and the mass ratio of the supplemental promoter to the catalyst is at least about 1:15,000.
- 108. A process as set forth in claim 107, wherein the supplemental promoter increases the selectivity of the catalyst for making N-(phosphonomethyl)glycine or the salt thereof from N-(phosphonomethyl)iminodiacetic acid or the salt thereof.
- 109. A process as set forth in claim 107, wherein the supplemental promoter reduces noble metal leaching from the carbon support.
- 110. A process as set forth in claim 107, wherein the supplemental promoter increases the activity of the catalyst for oxidizing N-(phosphonomethyl)iminodiacetic acid or the salt thereof.
- 111. A process as set forth in claim 107, wherein said N-(phosphonomethyl)iminodiacetic acid or a salt thereof is oxidized at a temperature of from about 60° to about 150° C., preferably from about 100° to about 130° C.;
said N-(phosphonomethyl)iminodiacetic acid or a salt thereof having a concentration of about 12 to about 18%.
- 112. A process as set forth in claim 107, wherein the supplemental promoter comprises bismuth, lead, germanium, tellurium, titanium, copper or nickel.
- 113. A process as set forth in claim 112, wherein the supplemental promoter comprises bismuth or tellurium.
- 114. A process as set forth in claim 113, wherein the supplemental promoter comprises bismuth.
- 115. A process as set forth in claim 113, wherein the supplemental promoter comprises tellurium.
- 116. A process as set forth in claim 112, wherein the N-(phosphonomethyl)iminodiacetic acid or the salt thereof is oxidized in the presence of a catalyst and two supplemental promoters.
- 117. A process as set forth in claim 116, wherein the supplemental promoters comprise bismuth, titanium or tellurium.
- 118. A process as set forth in claim 117, wherein the supplemental promoters comprise bismuth and tellurium.
- 119. A process as set forth in claim 116, the process further comprising forming a mixture comprising N-(phosphonomethyl)iminodiacetic acid or a salt thereof, a catalyst and a first supplemental promoter; and
contacting the mixture with a second supplemental promoter after partial conversion of the N-(phosphonomethyl)iminodiacetic acid or a salt thereof to an oxidation product thereof.
- 120. A process as set forth in claim 119, wherein the supplemental promoters comprise bismuth, titanium or tellurium.
- 121. A process as set forth in claim 120, wherein the first supplemental promoter comprises bismuth and the second supplemental promoter comprises tellurium.
- 122. A process for the preparation of N-(phosphonomethyl)glycine or a salt thereof, the process comprising:
oxidizing N-(phosphonomethyl)iminodiacetic acid in an aqueous reaction medium in the presence of an oxidation catalyst comprising a noble metal on a carbon support, thereby producing an aqueous reaction mixture comprising N-(phosphonomethyl)glycine, formic acid or formaldehyde; separating oxidation catalyst from said reaction mixture to produce a filtrate comprising N-(phosphonomethyl)glycine, formic acid or formaldehyde; evaporating water, formic acid or formaldehyde from said filtrate to produce an overhead vapor stream; condensing water, formic acid or formaldehyde from said overhead vapor stream and forming an aqueous treatment mixture containing water, formic acid or formaldehyde obtained in the condensate; contacting said aqueous treatment mixture with an oxidizing agent in the presence of a noble metal catalyst on a carbon support and a promoter comprising a metal effective to promote oxidation of formic acid or formaldehyde, thereby oxidizing formic acid or formaldehyde contained in said treatment mixture; and recycling treated condensate incorporating it into an aqueous medium for N-(phosphonomethyl)iminodiacetic acid in the further oxidation thereof to glyphosate.
- 123. A process as set forth in claim 122 wherein a supplemental promoter is present in the aqueous reaction medium in which N-(phosphonomethyl)iminodiacetic acid or a salt therof is oxidized to N-(phosphonomethyl)glycine or a salt thereof.
- 124. A process as set forth in claim 123 wherein said supplemental promoter comprises bismuth or tellurium.
- 125. A process as set forth in claim 122 wherein the oxidation of formic acid or formaldehyde contained in said condensate is conducted in the presence of a supplemental promoter.
- 126. A process as set forth in claim 125 wherein said supplemental promoter comprises bismuth or tellurium.
- 127. A process for making N-(phosphonomethyl)glycine, a salt of N-(phosphonomethyl)glycine, or an ester of N-(phosphonomethyl)glycine, the process comprising oxidizing N-(phosphonomethyl)iminodiacetic acid, a salt of N-(phosphonomethyl)iminodiacetic acid, or an ester of N-(phosphonomethyl)iminodiacetic acid in the presence of an oxidation catalyst and a supplemental promoter, wherein, before the oxidation, the oxidation catalyst:
A. comprises a carbon support having a noble metal at a surface of the carbon support; and is identifiable as yielding no greater than about 1.2 mmole of carbon monoxide per gram of catalyst when a dry sample of the catalyst in a helium atmosphere is heated from about 20° to about 900° C. at a rate of about 10° C. per minute, and then at about 900° C. for about 30 minutes; or B. comprises a carbon support having a noble metal, carbon, and oxygen at a surface of the carbon support, the ratio of carbon atoms to oxygen atoms at the surface being at least about 20:1, as measured by x-ray photoelectron spectroscopy; or C. comprises a carbon support comprising: (i) a noble metal at a surface of the carbon support; and (ii) a surface layer having a thickness of about 50 Å as measured inwardly from the surface and comprising carbon and oxygen, the ratio of carbon atoms to oxygen atoms in the surface layer being at least about 20:1, as measured by x-ray photoelectron spectroscopy; or D. is formed by a process comprising depositing a noble metal at a surface of a carbon support, and then heating the surface at a temperature of at least about 400° C.; or E. is formed by a process comprising: depositing a noble metal at a surface of a carbon support, and then exposing the surface to a reducing environment, wherein, before the noble metal deposition, the carbon support has carbon atoms and oxygen atoms at the surface 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; or F. comprises a carbon support having a noble metal, a promoter, carbon, and oxygen at a surface of the carbon support; or G. comprises a carbon support having: (i) a noble metal and a promoter at a surface of the carbon support; and (ii) a surface layer having a thickness of about 50 Å as measured inwardly from the surface and comprising carbon and oxygen, the catalyst being identifiable as having a ratio of carbon atoms to oxygen atoms in the surface layer which is at least about 20:1, 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.
- 128. A process as set forth in claim 127, wherein the supplemental promoter comprises bismuth, lead, germanium, tellurium, titanium, copper or nickel.
- 129. A process as set forth in claim 128, wherein the supplemental promoter comprises bismuth.
- 130. A process as set forth in claim 128, wherein the supplemental promoter comprises tellurium.
- 131. A process as set forth in claim 127, wherein the N-(phosphonomethyl)iminodiacetic acid or the salt thereof is oxidized in the presence of a catalyst and two supplemental promoters.
- 132. A process as set forth in claim 131, wherein the supplemental promoters comprise bismuth and tellurium.
- 133. A process as set forth in claim 127, the process further comprising forming a mixture comprising N-(phosphonomethyl)iminodiacetic acid or a salt thereof, a catalyst and a first supplemental promoter; and
contacting the mixture with a second supplemental promoter after partial conversion of the N-(phosphonomethyl)iminodiacetic acid or a salt thereof to an oxidation product thereof.
- 134. A process as set forth in claim 133, wherein the first supplemental promoter comprises bismuth and the second supplemental promoter comprises tellurium.
- 135. A process for the catalytic oxidation of formic acid or formaldehyde, the process comprising:
contacting formic acid or formaldehyde with an oxidizing agent, a catalyst and a supplemental promoter, wherein:
said catalyst comprises a noble metal and a carbon support, said noble metal catalyst and supplemental promoter being introduced into a reaction medium in a mass ratio of the supplemental promoter to the catalyst of at least about 1:15,000; and said formic acid or formaldehyde is oxidized in said reaction medium.
- 136. A process as set forth in claim 135 further comprising:
separating said catalyst from the reaction mixture obtained in the reaction; and recycling separated catalyst for introduction into a reaction medium for further oxidation of formaldehyde or formic acid therein.
- 137. A process as set forth in claim 136 wherein said catalyst is introduced into an aqueous reaction medium and separated from the resulting reaction mixture in each of a series of successive batch oxidation reaction cycles, catalyst being separated from each successive batch reaction mixture and recycled for introduction into an aqueous reaction medium for another batch oxidation reaction cycle.
- 138. A process as set forth in claim 137 wherein said supplemental promoter is introduced into the reaction medium for the first of said series of batch reaction cycles.
- 139. A process as set forth in claim 138 wherein substantially the sole source of said supplemental promoter introduced into the reaction medium for any of the successive batch reaction cycles of said series is catalyst recycled from an earlier batch reaction mixture of said series.
- 140. A process as set forth in claim 139 wherein recycled catalyst and a further amount of supplemental promoter are introduced into the first of a further series of batch reaction cycles for oxidation of formaldehyde or formic acid in an aqueous reaction medium.
- 141. A process as set forth in claim 136 wherein formaldehyde or formic acid is oxidized in a continuous reaction zone to which an aqueous reaction medium is continuously or intermittently supplied and an aqueous reaction mixture is continuously or intermittently withdrawn, said supplemental promoter being continuously or intermittently introduced into said reaction zone.
- 142. A process as set forth in claim 141 wherein said catalyst is separated from said reaction mixture and recycled to said reaction zone for catalysis of the further oxidation of formaldehyde or formic acid in said reaction zone.
- 143. A process as set forth in claim 142 wherein said supplemental promoter is introduced into said reaction zone in a discrete amount at the start of a reaction run and not further introduced into said reaction zone until the start of a second reaction run, a reaction run consisting of the period of oxidation of formaldehyde or formic acid from the time of any discrete addition of supplemental promoter to said reaction zone until the time of the next succeeding discrete addition of supplemental promoter to said reaction zone.
- 144. A process for the catalytic oxidation of formic acid or formaldehyde, the process comprising:
contacting formic acid or formaldehyde with an oxidizing agent in a reaction zone comprising a liquid reaction medium, a catalyst and a supplemental promoter wherein:
the catalyst comprises a noble metal and a carbon support; and the mass ratio of the supplemental promoter to the catalyst in said reaction zone is at least about 1:200,000.
- 145. A process as set forth in claim 144 wherein supplemental promoter is deposited on said catalyst, the ratio of the mass of supplemental promoter deposited on said catalyst to the mass of the catalyst in said reaction zone being at least about 1:200,000.
- 146. A process for the catalytic oxidation of formic acid or formaldehyde, the process comprising:
contacting formic acid or formaldehyde with an oxidizing agent in a reaction zone comprising a liquid reaction medium, a catalyst and a supplemental promoter wherein:
the catalyst comprises a noble metal and a carbon support; and the mass ratio of the supplemental promoter to the noble metal component of said catalyst in said reaction zone is at least about 1:40,000.
- 147. A process as set forth in claim 146 wherein supplemental promoter is deposited on said catalyst, the mass ratio of the supplemental promoter deposited on said catalyst to the noble metal component of said catalyst in said reaction zone being at least about 1:40,000.
- 148. A process as set forth in claim 146 wherein the mass ratio of the supplemental promoter to the noble metal component of said catalyst in said reaction zone is at least about 1:10,000
- 149. A process for the catalytic oxidation of formic acid or formaldehyde, the process comprising:
contacting formic acid or formaldehyde with an oxidizing agent in the presence of a supplemental promoter and a catalyst comprising a noble metal and a carbon support, wherein:
said noble metal catalyst and supplemental promoter are introduced into a reaction medium in a mass ratio of the supplemental promoter to the noble metal component of at least about 1:3,000; and said formic acid or formaldehyde is oxidized in said reaction medium.
- 150. A process as set forth in claim 149 wherein the ratio of said supplemental promoter to the noble metal component of said catalyst is at least about 1:750.
- 151. A process for oxidizing a substrate using a catalyst comprising a carbon support and noble metal, the process comprising contacting the substrate with oxygen in the presence of the catalyst and a supplemental promoter, wherein:
the mass ratio of the supplemental promoter to the catalyst is at least about 1:15,000; and before the oxidation of the substrate, the catalyst:
A. comprises a carbon support having a noble metal at a surface of the carbon support; and is identifiable as yielding no greater than about 1.2 mmole of carbon monoxide per gram of catalyst when a dry sample of the catalyst in a helium atmosphere is heated from about 20° to about 900° C. at a rate of about 10° C. per minute, and then at about 900° C. for about 30 minutes; or B. comprises a carbon support having a noble metal and a catalyst-surface promoter at a surface of the carbon support; and is identifiable as yielding no greater than about 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 20° to about 900° C. at a rate of about 10° C. per minute, and then at about 900° C. for about 30 minutes; or C. comprises a carbon support having a noble metal, carbon, and oxygen at a surface of the carbon support, the ratio of carbon atoms to oxygen atoms at the surface being at least about 20:1, as measured by x-ray photoelectron spectroscopy; or D. comprises a carbon support having a noble metal, a catalyst-surface promoter, carbon, and oxygen at a surface of the carbon support; and is identifiable as having a ratio of carbon atoms to oxygen atoms at the surface which is at least about 20:1, 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; or E. comprises a carbon support having (i) a noble metal at a surface of the carbon support; and (ii) a surface layer having a thickness of about 50 Å as measured inwardly from the surface and comprising oxygen and carbon, the ratio of carbon atoms to oxygen atoms in the surface layer being at least about 20:1, as measured by x-ray photoelectron spectroscopy; or F. comprises a carbon support having: (a) a noble metal and a catalyst-surface promoter at a surface of the carbon support; and (b) a surface layer having a thickness of about 50 Å as measured inwardly from the surface and comprising carbon and oxygen; and is identifiable as having a ratio of carbon atoms to oxygen atoms in the surface layer of at least about 20:1, 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; G. is formed by a process comprising depositing a noble metal at a surface of a carbon support, and then heating the surface at a temperature of at least about 400° C., wherein, before the noble metal deposition, the ratio of carbon atoms to oxygen atoms at the surface of the carbon support is at least about 20:1, as measured by x-ray photoelectron spectroscopy; or H. is formed by a process comprising depositing a noble metal at a surface of a carbon support, and then exposing the surface to a reducing environment, wherein, before the noble metal deposition, the carbon support has carbon atoms and oxygen atoms 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; or I. is formed by a process comprising depositing a noble metal at a surface of a carbon support, and then heating the surface at a temperature greater than about 500° C.
- 152. A process as set forth in claim 151, wherein the catalyst comprises a carbon support having a specific surface area of from about 10 to about 3000 m2/g, as measured by the Brunauer-Emmett-Teller method.
- 153. A process as set forth in claim 151, wherein the catalyst comprises a non-graphitic carbon support.
- 154. A process as set forth in claim 151 wherein the supplemental promoter comprises bismuth, titanium or tellurium.
- 155. A process as set forth in claim 151, wherein the supplemental promoter comprises bismuth.
- 156. A process as set forth in claim 151, wherein the supplemental promoter comprises tellurium.
- 157. A process as set forth in claim 151 wherein the supplemental promoter comprises a combination of bismuth and tellurium.
- 158. A process as set forth in claim 151, wherein the supplemental promoter reduces noble metal leaching from the carbon support.
- 159. A process as set forth in claim 151, wherein said substrate is contacted and reacted with said oxidizing agent in a substrate reaction medium containing said catalyst and said supplemental promoter, the catalyst present in said substrate reaction medium comprising catalyst previously used to catalyze the oxidation of a substrate in another reaction.
- 160. A process as set forth in claim 151, wherein said substrate is contacted with said oxidizing agent in a substrate reaction medium in the presence of said catalyst, said supplemental promoter being introduced into said reaction medium after partial conversion of said substrate to an oxidation product thereof.
- 161. A process as set forth in claim 151, wherein, before the oxidation of the substrate, the catalyst:
comprises a carbon support having a noble metal at a surface of the carbon support; and is identifiable as yielding no greater than about 1.2 mmole of carbon monoxide per gram of catalyst when a dry sample of the catalyst in a helium atmosphere is heated from about 20° to about 900° C. at a rate of about 10° C. per minute, and then at about 900° C. for about 30 minutes.
- 162. A process as set forth in claim 151, wherein, before the oxidation of the substrate, the catalyst:
comprises a carbon support having a noble metal and a catalyst-surface promoter at a surface of the carbon support; and is identifiable as yielding no greater than about 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 20° to about 900° C. at a rate of about 10° C. per minute, and then at about 900° C. for about 30 minutes.
- 163. A process as set forth in claim 151, wherein, before the oxidation of the substrate, the catalyst:
comprises a carbon support having a noble metal, carbon, and oxygen at a surface of the carbon support, the ratio of carbon atoms to oxygen atoms at the surface being at least about 20:1, as measured by x-ray photoelectron spectroscopy.
- 164. A process as set forth in claim 151, wherein, before the oxidation of the substrate, the catalyst:
comprises a carbon support having a noble metal, a catalyst-surface promoter, carbon, and oxygen at a surface of the carbon support; and is identifiable as having a ratio of carbon atoms to oxygen atoms at the surface which is at least about 20:1, 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.
- 165. A process as set forth in claim 151, wherein, before the oxidation of the substrate, the catalyst:
comprises a carbon support having (i) a noble metal at a surface of the carbon support; and (ii) a surface layer having a thickness of about 50 Å as measured inwardly from the surface and comprising oxygen and carbon, the ratio of carbon atoms to oxygen atoms in the surface layer being at least about 20:1, as measured by x-ray photoelectron spectroscopy.
- 166. A process as set forth in claim 151, wherein, before the oxidation of the substrate, the catalyst:
comprises a carbon support having: (a) a noble metal and a catalyst-surface promoter at a surface of the carbon support; and (b) a surface layer having a thickness of about 50 Å as measured inwardly from the surface and comprising carbon and oxygen; and is identifiable as having a ratio of carbon atoms to oxygen atoms in the surface layer of at least about 20:1, 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.
- 167. A process as set forth in claim 151, wherein the catalyst is formed by a process comprising depositing a noble metal at a surface of a carbon support, and then heating the surface at a temperature of at least about 400° C., wherein, before the noble metal deposition, the ratio of carbon atoms to oxygen atoms at the surface of the carbon support is at least about 20:1, as measured by x-ray photoelectron spectroscopy.
- 168. A process as set forth in claim 151, wherein the catalyst is formed by a process comprising depositing a noble metal at a surface of a carbon support, and then exposing the surface to a reducing environment, wherein, before the noble metal deposition, the carbon support has carbon atoms and oxygen atoms 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.
- 169. A process as set forth in claim 151, wherein the catalyst is formed by a process comprising depositing a noble metal at a surface of a carbon support, and then heating the surface at a temperature greater than about 500° C.
- 170. A process for making an oxidation catalyst system, the process comprising mixing a noble-metal-containing catalyst with a supplemental promoter in the presence of formic acid or formaldehyde, wherein
the noble-metal-containing catalyst comprises a noble metal and a carbon support; and the mass ratio of the supplemental promoter to the noble-metal-containing catalyst is at least about 1:15,000.
- 171. A process as set forth in claim 170, wherein the supplemental promoter increases the activity of the catalyst for oxidizing formic acid or formaldehyde.
- 172. A process as set forth in claim 170, wherein the noble-metal-containing catalyst comprises a catalyst that has been used in one or more previous oxidation reactions.
- 173. A process as set forth in claim 170, wherein said noble-metal-containing catalyst and supplemental promoter are mixed in the presence of N-(phosphonomethyl) iminodiacetic acid or a salt thereof and formic acid or formaldehyde.
- 174. A process as set forth in claim 173 comprising contacting N-(phosphonomethyl)iminodiacetic acid or a salt thereof with an oxidizing agent in the presence of said catalyst and said supplemental promoter, thereby producing N-(phosphonmethyl)glycine or a salt thereof and by-product formic acid or formaldehyde, said by-product formic acid or formaldehyde being oxidized by contact with said oxidizing agent in the presence of said catalyst and supplemental promoter.
- 175. A process as set forth in claim 173 wherein oxidation of N-(phosphonoemethyl)iminodiacetic acid or salt thereof produces a mixture comprising by-product formaldehyde and formic acid, said supplemental promoter being effective to increase the activity of the catalyst for oxidizing both formic acid and formaldehyde.
- 176. A process as set forth in claim 173, wherein the supplemental promoter increases the selectivity of the noble-metal-containing catalyst for making N-(phosphonomethyl)glycine or the salt thereof from N-(phosphonomethyl)iminodiacetic acid or the salt thereof.
- 177. A process as set forth in claim 173, wherein the supplemental promoter comprises bismuth, lead, germanium, tellurium, titanium, copper or nickel.
- 178. A process as set forth in claim 177, wherein the supplemental promoter comprises bismuth or tellurium.
- 179. A process as set forth in claim 177, wherein the supplemental promoter comprises bismuth.
- 180. A process as set forth in claim 177, wherein the supplemental promoter comprises tellurium.
- 181. A process as set forth in claim 178, wherein the noble-metal-containing catalyst further comprises iron or tin in a proportion of at least about 0.05% by weight of the noble-metal-containing catalyst.
- 182. A process as set forth in claim 178, wherein the noble-metal-containing catalyst further comprises iron and tellurium.
- 183. A process as set forth in claim 170, wherein said formic acid or formaldehyde is contained in an aqueous waste stream generated in the manufacture of N-(phosphonomethyl)glycine by the oxidation of N-(phosphonomethyl)iminodiacetic acid, said aqueous waste stream being contacted with said oxidizing agent in the presence of said catalyst and said supplemental promoter.
- 184. A process as set forth in claim 183, wherein said oxidation of N-(phosphonomethyl)iminodiacetic acid produces a product mixture comprising an N-(phosphonomethyl)glycine product, water and formic acid or formaldehyde, the process further comprising:
separating the product mixture to form (a) an N-(phosphonomethyl)glycine product and (b) an aqueous waste stream comprising water and formic acid or formaldehyde; and contacting the aqueous waste stream with said oxidizing agent in the presence of said catalyst and said supplemental promoter.
- 185. A process as set forth in claim 184, wherein the product mixture is separated in an evaporator to form (a) an N-phosphonomethyl)glycine product and (b) an overhead vapor stream comprising evaporated water, formic acid or formaldehyde, the process further comprising:
condensing water, formic acid or formaldehyde from said overhead vapor stream to form an aqueous waste stream containing water, formic acid or formaldehyde obtained in the condensate; and contacting the aqueous waste stream with said oxidizing agent in the presence of said catalyst and said supplemental promoter.
- 186. A process as set forth in claim 183, wherein the supplemental promoter comprises bismuth lead, germanium, tellurium, titanium, copper or nickel.
- 187. A process as set forth in claim 186, wherein the supplemental promoter comprises bismuth or tellurium.
- 188. A process as set forth in claim 186, wherein the supplemental promoter comprises bismuth.
- 189. A process as set forth in claim 186, wherein the supplemental promoter comprises tellurium.
- 190. A process for making an oxidation catalyst system comprising a catalyst comprising a carbon support having carbon atoms and oxygen atoms at a surface thereof, the process comprising:
depositing a noble metal at the surface of the carbon support to form a noble-metal-containing catalyst; removing oxygen-containing functional groups from the surface of the noble-metal-containing catalyst to form a noble-metal-containing catalyst comprising a deoxygenated surface, the removal of oxygen-containing functional groups comprising:
(i) heating the surface of the noble-metal-containing catalyst at a temperature of greater than about 500° C.; or (ii) heating the surface of the noble-metal-containing catalyst at a temperature of at least about 400° C., wherein, before the noble metal deposition, the ratio of carbon atoms to oxygen atoms at the surface of the carbon support is at least about 20:1, as measured by x-ray photoelectron spectroscopy; or (iii) exposing the surface of the noble-metal-containing catalyst to a reducing environment, wherein, before the noble metal deposition, the ratio of carbon atoms to oxygen atoms at the surface of the carbon support is at least about 20:1, as measured by x-ray photoelectron spectroscopy; or (iv) exposing the surface of the noble-metal-containing catalyst to a reducing environment so that the ratio of carbon atoms to oxygen atoms at the deoxygenated surface of the noble-metal-containing catalyst comprising the deoxygenated surface is at least about 30:1, as measured by x-ray photoelectron spectroscopy; or (v) exposing the surface of the noble-metal-containing catalyst to a reducing environment so that no greater than about 1.2 mmole of carbon monoxide per gram of the noble-metal-containing catalyst comprising the deoxygenated surface desorb from the deoxygenated surface when a dry sample of the noble-metal-containing catalyst comprising the deoxygenated surface is heated in a helium atmosphere from about 20° to about 900° C. at a rate of about 10° C. per minute, and then at about 900° C. for about 30 minutes; and mixing a supplemental promoter with the noble-metal-containing catalyst after deoxygenation of the surface of the noble-metal-containing catalyst, wherein the mass ratio of the supplemental promoter to the noble-metal-containing catalyst is at least about 1:15,000.
- 191. A process as set forth in claim 190, wherein the supplemental promoter comprises bismuth, lead, germanium, tellurium, titanium, copper or nickel.
- 192. A process as set forth in claim 190, wherein the supplemental promoter comprises bismuth or tellurium.
- 193. A process as set forth in claim 190, wherein the supplemental promoter comprises bismuth.
- 194. A process as set forth in claim 190, wherein the supplemental promoter comprises tellurium.
- 195. A process as set forth in claim 192, wherein the noble-metal-containing catalyst is used to oxidize formic acid or formaldehyde (a) after deoxygenation of the surface of the noble-metal-containing catalyst, and (b) before being mixed with the supplemental promoter; further oxidation of formic acid or formaldehyde being effected in the presence of said catalyst and supplemental promoter.
- 196. A process as set forth in claim 195, wherein the noble-metal-containing catalyst is used to oxidize a mixture comprising formic acid and formaldehyde, said supplemental promoter being effective to increase the activity of the catalyst for oxidizing both formic acid and formaldehyde.
- 197. A process as set forth in claim 190, wherein the removal of oxygen-containing functional groups comprises heating the surface of the noble-metal-containing catalyst at a temperature of greater than about 500° C.
- 198. A process as set forth in claim 190, wherein the removal of oxygen-containing functional groups comprises heating the surface of the noble-metal-containing catalyst at a temperature of at least about 400° C., wherein, before the noble metal deposition, the ratio of carbon atoms to oxygen atoms at the surface of the carbon support is at least about 20:1, as measured by x-ray photoelectron spectroscopy.
- 199. A process as set forth in claim 190, wherein the removal of oxygen-containing functional groups comprises exposing the surface of the noble-metal-containing catalyst to a reducing environment, wherein, before the noble metal deposition, the ratio of carbon atoms to oxygen atoms at the surface of the carbon support is at least about 20:1, as measured by x-ray photoelectron spectroscopy.
- 200. A process as set forth in claim 190, wherein the removal of oxygen-containing functional groups comprises exposing the surface of the noble-metal-containing catalyst to a reducing environment so that the ratio of carbon atoms to oxygen atoms at the deoxygenated surface of the noble-metal-containing catalyst comprising the deoxygenated surface is at least about 30:1, as measured by x-ray photoelectron spectroscopy.
- 201. A process as set forth in claim 190, wherein the removal of oxygen-containing functional groups comprises exposing the surface of the noble-metal-containing catalyst to a reducing environment so that no greater than about 1.2 mmole of carbon monoxide per gram of the noble-metal-containing catalyst comprising the deoxygenated surface desorb from the deoxygenated surface when a dry sample of the noble-metal-containing catalyst comprising the deoxygenated surface is heated in a helium atmosphere from about 20° to about 900° C. at a rate of about 10° C. per minute, and then at about 900° C. for about 30 minutes.
- 202. An oxidation catalyst system prepared by a process comprising mixing a noble-metal-containing catalyst, a supplemental promoter, and formic acid or formaldehyde, wherein
the noble-metal-containing catalyst comprises a noble metal and a carbon support; and the mass ratio of the supplemental promoter to the noble-metal-containing catalyst is at least about 1:15,000.
- 203. The oxidation catalyst system of claim 169, wherein the supplemental promoter increases the activity of the catalyst for oxidizing formic acid or formaldehyde.
- 204. The oxidation catalyst system of claim 202, wherein the noble-metal-containing catalyst comprises a catalyst that has been used in one or more previous oxidation reactions.
- 205. The oxidation catalyst system of claim 202, wherein the noble-metal-containing catalyst and supplemental promoter are mixed with N-(phosphonomethyl)iminodiacetic acid or a salt thereof and formic acid or formaldehyde.
- 206. The oxidation catalyst system of claim 205, wherein contacting the N-(phosphonomethyl)iminodiacetic acid or a salt thereof with an oxidizing agent in the presence of said catalyst and said supplemental promoter produces a product comprising N-(phosphonomethyl)glycine or a salt thereof and by-product formic acid or formaldehyde, said by-product formic acid or formaldehyde being oxidized by contact with said oxidizing agent in the presence of said catalyst and supplemental promoter.
- 207. The oxidation catalyst system of claim 205, wherein oxidizing said N-(phosphonomethyl)iminodiacetic acid or salt thereof produces a mixture comprising by-product formaldehyde and formic acid, said supplemental promoter being effective to increase the activity of the catalyst for oxidizing both formic acid and formaldehyde.
- 208. The oxidation catalyst system of claim 205, wherein the supplemental promoter increases the selectivity of the noble-metal-containing catalyst for making N-(phosphonomethyl)glycine or the salt thereof from N-(phosphonomethyl)iminodiacetic acid or the salt thereof.
- 209. The oxidation catalyst system of claim 202, wherein the supplemental promoter comprises bismuth, lead, germanium, tellurium, titanium, copper or nickel.
- 210. The oxidation catalyst system of claim 202, wherein the supplemental promoter comprises bismuth or tellurium.
- 211. The oxidation catalyst system of claim 202, wherein the supplemental promoter comprises bismuth.
- 212. The oxidation catalyst system of claim 202, wherein the supplemental promoter comprises tellurium.
- 213. The oxidation catalyst system of claim 210, wherein the noble-metal-containing catalyst further comprises iron or tin in a proportion of at least about 0.05% by weight of the noble-metal-containing catalyst.
- 214. The oxidation catalyst system of claim 210, wherein the noble-metal-containing catalyst further comprises iron and tellurium.
- 215. The oxidation catalyst system of claim 202, wherein said formic acid or formaldehyde is contained in an aqueous waste stream generated in the manufacture of N-(phosphonomethyl)glycine by the oxidation of N-(phosphonomethyl)iminodiacetic acid, said aqueous waste stream being contacted with said oxidizing agent in the presence of said catalyst and said supplemental promoter.
- 216. The oxidation catalyst system of claim 215, wherein said oxidation of N-(phosphonomethyl)iminodiacetic acid produces a product mixture comprising an N-(phosphonomethyl)glycine product, water and formic acid or formaldehyde, the process further comprising:
separating the product mixture to form (a) an N-(phosphonomethyl)glycine product and (b) an aqueous waste stream comprising water and formic acid or formaldehyde; and contacting the aqueous waste stream with said oxidizing agent in the presence of said catalyst and said supplemental promoter.
- 217. The oxidation catalyst system of claim 216, wherein the product mixture is separated in an evaporator to form (a) an N-phosphonomethyl)glycine product and (b) an overhead vapor stream comprising evaporated water, formic acid or formaldehyde, the process further comprising:
condensing water, formic acid or formaldehyde from said overhead vapor stream to form an aqueous waste stream containing water, formic acid or formaldehyde obtained in the condensate; and contacting the aqueous waste stream with said oxidizing agent in the presence of said catalyst and said supplemental promoter.
- 218. The oxidation catalyst system of claim 215, wherein the supplemental promoter comprises bismuth lead, germanium, tellurium, titanium, copper or nickel.
- 219. The oxidation catalyst system of claim 215, wherein the supplemental promoter comprises bismuth or tellurium.
- 220. The oxidation catalyst system of claim 215, wherein the supplemental promoter comprises bismuth.
- 221. The oxidation catalyst system of claim 215, wherein the supplemental promoter comprises tellurium.
- 222. An oxidation catalyst system prepared by a process comprising:
depositing a noble metal onto a surface of a carbon support to form a noble-metal-containing catalyst; and removing oxygen-containing functional groups from the surface of the noble-metal-containing catalyst to form a noble-metal-containing catalyst comprising a deoxygenated surface, the removal of the oxygen-containing functional groups comprising:
(i) heating the surface of the noble-metal-containing catalyst at a temperature of greater than about 500° C.; or (ii) heating the surface of the noble-metal-containing catalyst at a temperature of at least about 400° C., wherein, before the noble metal deposition, the carbon support has carbon atoms and oxygen atoms at the surface 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; or (iii) exposing the surface of the noble-metal-containing catalyst to a reducing environment, wherein, before the noble metal deposition, the carbon support has carbon atoms and oxygen atoms at the surface 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; or (iv) exposing the surface of the noble-metal-containing catalyst to a reducing environment so that the ratio of carbon atoms to oxygen atoms at the deoxygenated surface of the noble-metal-containing catalyst comprising the deoxygenated surface is at least about 30:1, as measured by x-ray photoelectron spectroscopy; or (v) exposing the surface of the noble-metal-containing catalyst to a reducing environment so that no greater than about 1.2 mmole of carbon monoxide per gram of the noble-metal-containing catalyst comprising the deoxygenated surface desorb from the deoxygenated surface when a dry sample of the noble-metal-containing catalyst comprising the deoxygenated surface is heated in a helium atmosphere from about 20° to about 900° C. at a rate of about 10° C. per minute, and then at about 900° C. for about 30 minutes; and mixing a supplemental promoter and the noble-metal-containing catalyst after deoxygenation of the surface of the noble-metal-containing catalyst, wherein the mass ratio of the supplemental promoter to the noble-metal-containing catalyst is at least about 1:15,000.
- 223. The oxidation catalyst system of claim 222, wherein the supplemental promoter comprises bismuth or tellurium.
- 224. The oxidation catalyst system of claim 223, wherein the supplemental promoter comprises bismuth.
- 225. The oxidation catalyst system of claim 223, wherein the supplemental promoter comprises tellurium.
- 226. The oxidation catalyst system of claim 223, wherein the noble-metal-containing catalyst further comprises iron or tin in a proportion of at least about 0.05% by weight of the deoxygenated, noble-metal-containing catalyst.
- 227. The oxidation catalyst system of claim 223, wherein the noble-metal-containing catalyst further comprises iron and tellurium.
- 228. The oxidation catalyst system of claim 222, wherein the noble-metal-containing catalyst is used to oxidize a substrate (a) after deoxygenation of the surface of the noble-metal-containing catalyst, and (b) before being mixed with the supplemental promoter; further oxidation of said substrate being effected in the presence of said catalyst and supplemental promoter.
- 229. A promoted catalyst system comprising a noble metal on carbon catalyst having a supplemental promoter deposited on the surface thereof, said catalyst system being prepared by a process comprising:
preparing a catalyst precursor by depositing said noble metal on a carbon support; reducing said catalyst precursor to produce said noble metal on carbon catalyst; and depositing said supplemental promoter on said catalyst.
- 230. A catalyst system as set forth in claim 229 further comprising a surface promoter on the surface of the catalyst.
- 231. A catalyst system as set forth in claim 230 wherein said noble metal comprises platinum, said surface promoter comprises iron, and said supplemental promoter comprises bismuth.
- 232. A catalyst system as set forth in claim 231 wherein said surface promoter further comprises tellurium.
- 233. A promoted catalyst system comprising a noble metal on carbon catalyst having a supplemental promoter desorbably deposited on the surface thereof.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority from U.S. provisional patent application Ser. No. 60/171,313 filed Dec. 21, 1999, which is hereby incorporated by reference in its entirety.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60171313 |
Dec 1999 |
US |