CA2532166C

Supported catalysts having a controlled coordination structure and methods for preparing such catalysts

Abstract

Supported reactive catalysts having a controlled coordination structure and methods for their production are disclosed. The supported catalyst comprises catalyst particles having top or outer layer of atoms in which at least a portion of the atoms exhibit a controlled coordination number of 2. Such catalysts may be manufactured from intermediate precursor compositions that include a control agent in which a preponderance of the molecules are straight-chained rather than branched. The supported catalysts (10) includes a support (12), which initially includes hydroxyl groups on a surface thereof, an anchoring agent (14) chemically bonded to the hydroxyl groups of the support (12) by a condensation reaction and a catalyst particle (6) bonded or attached in some manner (not shown) to the anchoring agent. The supported catalyst of the present invention are useful for the preparation of hydrogen peroxide with high selectivity in addition to other chemical conversion reactions.

CA2532166C, drawing sheet 1
Sheet 1 of 10

Term

Term ended

Expired 17 June 2024, 2.3 years ago.

  1. Priority
  2. Filed
  3. Granted
  4. Expired
  5. Today

97 claims: 96 independent, 1 dependent

  1. 1
    CA 02532166 2011-07-19 69767-31 CLAIMS:1. comprising: A supported reactive catalyst having a controlled coordination structure, a support material;a plurality of reactive catalyst particles disposed on the support material, the reactive catalyst particles comprising a plurality of catalytically reactive atoms including at least one member selected from the group comprising noble metals, base transition metals, rare earth metals, and solid non-metals, the catalytically reactive atoms being arranged so that at least about 50% of a top or outer surface layer of the catalytically reactive atoms have a nearest neighbor coordination number of 2;and an anchoring material comprising at least one type of polymer, oligomer or organic compound that chemically binds at least a portion of the reactive catalyst particles to the support material, wherein the support material and the anchoring material comprise corresponding functional groups that have been reacted together to form a chemical bond between the support material and the anchoring material, at least a portion of the anchoring material being disposed between a bottom layer of the catalytically reactive atoms and the support material, wherein at least about 50% of the anchoring material is straight-chained instead of branched.
  2. 2
    A supported reactive catalyst as defined in claim 1, wherein the support material comprises a plurality of particles selected from the group comprising carbon black, graphite, silica, alumina, zeolites, metal oxides, and polymers.
  3. 3
    A supported reactive catalyst as defined in claim 1, wherein the support material comprises at least one of a polymeric sheet or membrane. CA 02532166 2011-07-19 69767-31
  4. 4
    A supported reactive catalyst as defined in claim 1, wherein the support material is catalytic.
  5. 5
    A supported reactive catalyst as defined in claim 4, wherein the catalytic support material comprises titanium silicate.
  6. 6
    A supported reactive catalyst as defined in claim 1, wherein the chemical bond between the support material and the anchoring material is a condensation reaction product of the corresponding functional groups of the support material and the anchoring material.
  7. 7
    A supported reactive catalyst as defined in claim 6, wherein the condensation reaction product comprises at least one of an ester, ether, or amide.
  8. 8
    A supported reactive catalyst as defined in claim 1, wherein at least about 60% of a top or outer surface layer of the catalytically reactive atoms have a nearest neighbor coordination number of 2.
  9. 9
    A supported reactive catalyst as defined in claim 1, wherein at least about 70% of a top or outer surface layer of the catalytically reactive atoms have a nearest neighbor coordination number of 2.
  10. 10
    A supported reactive catalyst as defined in claim 1, wherein at least about 80% of a top or outer surface layer of the catalytically reactive atoms have a nearest neighbor coordination number of 2.
  11. 11
    A supported reactive catalyst as defined in claim 1, wherein at least about 90% of a top or outer surface layer of the catalytically reactive atoms have a nearest neighbor coordination number of 2.
  12. 12
    A supported reactive catalyst as defined in claim 1, wherein at least about 95% of a top or outer surface layer of the catalytically reactive atoms have a nearest neighbor coordination number of 2. CA 02532166 2011-07-19 69767-31
  13. 13
    A supported reactive catalyst as defined in claim 1, wherein the catalyst particles have a surface diameter of less than about 10 nm.
  14. 14
    A supported reactive catalyst as defined in claim 1, wherein the catalyst particles have a surface diameter of less than about 6 nm.
  15. 15
    A supported reactive catalyst as defined in claim 1, wherein the catalyst particles have a surface diameter of less than about 4 nm.
  16. 16
    A supported reactive catalyst as defined in claim 1, wherein at least a portion of the catalytically reactive atoms comprise at least one noble metal selected from the group comprising palladium, platinum, iridium, gold, osmium, ruthenium, rhodium, and rhenium.
  17. 17
    A supported reactive catalyst as defined in claim 1, wherein the catalytically reactive atoms comprise at least one member selected from the group comprising base transition metals, rare earth metals, and solid non-metals.
  18. 18
    A supported reactive catalyst as defined in claim 17, wherein the catalytically reactive atoms comprise at least one base transition metal selected from the group comprising chromium, manganese, iron, cobalt, nickel, copper, zirconium, tin, zinc, tungsten, titanium, molybdenum, and vanadium.
  19. 19
    A supported reactive catalyst as defined in claim 17, wherein at least a portion of the catalytically reactive atoms comprise at least one rare earth metal selected from the group comprising lanthanum and cerium.
  20. 20
    A supported reactive catalyst as defined in claim 1, wherein the catalyst particles further comprise at least one of an alkali metal or alkaline earth metal.
  21. 21
    A supported reactive catalyst as defined in claim 1, wherein the anchoring agent comprises functional groups that include carbon atoms bonded to at least one electron-rich atom that is more electronegative than the carbon atoms and CA 02532166 2011-07-19 ’ 69767-31 that is able to donate one or more electrons so as to form a bond or attraction with at least one of the catalytically reactive atoms.
  22. 22
    A supported reactive catalyst as defined in claim 22, wherein the electron-rich atom comprises at least one of oxygen or nitrogen.
  23. 23
    A supported reactive catalyst as defined in claim 22, wherein the electron-rich atom has a negative charge and at least a portion of the catalytically reactive atoms bonded to the anchoring agent have a positive charge.
  24. 24
    A supported reactive catalyst as defined in claim 1, wherein the reactive catalyst particles comprises a random distribution of at least two different types of reactive catalyst atoms.
  25. 25
    A supported reactive catalyst as defined in claim 1, wherein the anchoring agent is derived from at least one control agent selected from the group comprising polacrylic acid, polyacrylic acid salts, polyvinylbenzoates, polyvinyl sulfate, polyvinyl sulfonates including sulfonated styrene, polybisphenol carbonates, polybenzimidizoles, polypyridine, sulfonated polyethylene terephthalate, polyvinyl alcohol, polyethylene glycol, and polypropylene glycol.
  26. 26
    A method of manufacturing a supported catalyst having a controlled coordination structure, comprising:(a) preparing an intermediate catalyst complex by reacting together: (i) a plurality of catalyst atoms comprising at least one member selected from the group comprising noble metals, rare earth metals, base transition metals, and non-metals;and (ii) a control agent comprising a plurality of complexing molecules selected from the group comprising polymers, oligomers, and organic compounds, wherein at least about 50% of the control agent molecules are straight-chained;CA 02532166 2011-07-19 69767-31 (b) contacting the intermediate catalyst complex with a support material;(c) chemically bonding a portion of the control agent with the support material, wherein the support material and the control agent comprise corresponding functional groups that react together to form a chemical bond between the support material and the control agent;and (d) removing a portion of the control agent to expose a portion of the catalyst atoms, thereby yielding a supported catalyst comprising a plurality of reactive catalyst particles that (i) are chemically anchored to the support material by an anchoring agent comprising a remaining portion of the control agent, wherein at least about 50% of the anchoring agent is straight-chained instead of branched and (ii) in which at least about 50% of the catalyst atoms on an upper surface of the reactive catalyst particles have a nearest neighbor coordination number of 2.
  27. 27
    A method of manufacturing a supported catalyst as defined in claim 26, wherein the catalyst complex is chemically bonded to the support material by a condensation reaction.
  28. 28
    A method of manufacturing a supported catalyst as defined in claim 26, wherein (a) further comprises reacting the catalyst atoms and control agent in a liquid.
  29. 29
    A method of manufacturing a supported catalyst as defined in claim 26, wherein (c) is carried out in a liquid.
  30. 30
    A method of manufacturing a supported catalyst as defined in claim 29, wherein (c) yields an intermediate composition comprising said liquid and said catalyst complex chemically bonded to said support material, the method further comprising removing a substantial portion of said liquid from said intermediate composition.
  31. 31
    A method of manufacturing a supported catalyst as defined in claim 26, wherein (d) comprises reducing the portion of control agent. CA 02532166 2011-07-19 69767-31
  32. 32
    A method of manufacturing a supported catalyst as defined in claim 26, wherein (d) comprises hydrogenating the portion of the control agent.
  33. 33
    A method of manufacturing a supported catalyst as defined in claim 26, wherein (d) comprises oxidizing the portion of the control agent.
  34. 34
    A method of manufacturing a supported catalyst as defined in claim 26, further comprising heat treating the supported catalyst obtained in (d) at a temperature in a range of about 50°C to about 300°C for at least about 30 minutes.
  35. 35
    A method of manufacturing a supported catalyst as defined in claim 34, wherein said heat treating is carried out in an inert atomosphere.
  36. 36
    A method of manufacturing a supported catalyst as defined in claim 34, wherein said heat treating is carried out at a temperature in a range of about 100°C to about 250°C for at least about 30 minutes.
  37. 37
    A method of manufacturing a supported catalyst as defined in claim 34, wherein said heat treating is carried out at a temperature in a range of about 125°C to about 200°C for at least about 30 minutes.
  38. 38
    A method of manufacturing a supported catalyst as defined in claim 26, wherein the reactive catalyst particles comprise a random distribution of at least two different types of reactive catalyst atoms.
  39. 39
    A method of manufacturing a supported catalyst as defined in claim 26, wherein the catalyst atoms comprise at least one member selected from the group comprising rare earth metals, base transition metals, and non-metals.
  40. 41
    A method as defined in claim 40, wherein the one or more reactants comprise hydrogen and oxygen. CA 02532166 2011-07-19 69767-31
  41. 42
    A method as defined in claim 41, wherein the one or more reaction products comprise hydrogen peroxide.
  42. 43
    A method as defined in claim 42, wherein the one or more reactants further comprise at least one type of organic compound and wherein the one or more reaction products comprise at least one type of oxidized organic compound.
  43. 44
    A method as defined in claim 43, wherein the hydrogen peroxide is an intermediate reaction product that reacts with the at least one type of organic compound to yield the at least one type of oxidized organic compound.
  44. 45
    A method as defined in claim 40, wherein the one or more reactants comprise oxygen and at least type of organic compound and wherein the one or more reaction products comprise at least one oxidized organic compound.
  45. 46
    A method as defined in claim 40, wherein the one or more reactants comprise hydrogen and at least one type of organic compound.
  46. 47
    A method as defined in claim 46, wherein the one or more reaction products comprise at least one type of hydrogenated organic compound.
  47. 48
    A method as defined in claim 46, wherein the method involves at least one of hydrotreating or hydrocracking.
  48. 49
    A method as defined in claim 40, wherein the one or more reactants comprise at least one type of organic compound.
  49. 50
    A method as defined in claim 49, wherein the one or more reaction products comprise at least one dehydrogenated organic compound and liberated hydrogen.
  50. 51
    A method as defined in claim 49, wherein the one or more reaction products comprise at least one reformed organic compound and liberated hydrogen. CA 02532166 2011-07-19 69767-31
  51. 52
    A method as defined in claim 40, further comprising dispersing the supported catalyst within a solvent.
  52. 53
    A method as defined in claim 52, wherein the solvent comprises at least one liquid having a Solvent Solubility Parameter having a value in a range from about 0.14 x 10' 4 to about 5 x 10’ 4
  53. 54
    A method as defined in claim 52, wherein the solvent comprises at least one liquid having a Solvent Solubility Parameter having a value in a range from about 0.2 x 1CT 4 to about 4 x 10' 4 .
  54. 55
    A method as defined in claim 52, wherein the solvent comprises at least one member selected from the group comprising oxygen containing organic compounds, alcohols, ethanol, methanol, n-propanol, isopropanol, ketones, aldehydes, furans, tetrahydrofuran, ethers, esters, nitrogen-containing organic compounds, nitriles, acetonitrile, amines, 1-propylamine, amides, dimethylformamide, phosphorus-containing organic compounds, and phosphine oxides.
  55. 56
    A method as defined in claim 52, wherein the solvent comprises water.
  56. 57
    A method as defined in claim 52, wherein the solvent comprises at least one member selected from the group comprising liquid hydrocarbons, aliphatic hydrocarbons, and aromatic hydrocarbons.
  57. 58
    An intermediate precursor composition for use in manufacturing a supported catalyst having a controlled coordination structure, comprising:a plurality of catalyst atoms comprising at least one member selected from the group comprising noble metals, rare earth metals, base transition metals, and non-metals;and CA 02532166 2011-07-19 69767-31 a control agent comprising a plurality of complexing molecules selected from the group comprising polymers, oligomers, and organic compounds, each control agent molecule having a plurality of functional groups disposed along a backbone for complexing the reactive catalyst atoms to the control agent molecules, at least about 50% of the complexing molecules being straight-chained molecules that include at least four functional groups per molecule, and at least a portion of the complexing molecules forming a catalyst complex between the catalyst atoms and the complexing molecules, the catalyst complex forming a supported reactive catalyst comprising a support and a plurality of reactive catalyst particles formed from the catalyst complex when dispersed on a support in such a way that a preponderance of catalyst atoms on an upper surface of reactive catalyst particles of the supported reactive catalyst formed from the catalyst complex will have a nearest neighbor coordination number of 2.
  58. 59
    An intermediate precursor composition as defined in claim 58, wherein at least a portion of the catalyst atoms comprise at least one noble metal selected from the group comprising palladium, platinum, iridium, gold, osmium, ruthenium, rhodium, and rhenium.
  59. 60
    An intermediate precursor composition as defined in claim 58, wherein at least a portion of the catalyst atoms comprise at least one member selected from the group comprising base transition metals, rare earth metals, and non-metals.
  60. 61
    An intermediate precursor composition as defined in claim 60, wherein the catalyst atoms comprise at least one base transition metal comprises selected from the group comprising chromium, manganese, iron, cobalt, nickel, copper, zirconium, tin, zinc, tungsten, titanium, molybdenum, and vanadium.
  61. 62
    An intermediate precursor composition as defined in claim 60, wherein least a portion of the catalyst atoms comprise at least one rare earth metal selected from the group comprising lanthanum and cerium. CA 02532166 2011-07-19 69767-31
  62. 63
    An intermediate precursor composition as defined in claim 58, further comprising at least one of an alkali metal or alkaline earth metal.
  63. 64
    An intermediate precursor composition as defined in claim 58, wherein at least a portion of the functional groups comprise a carbon atom bonded to at least one electron-rich atom that is more electronegative than the carbon atom and that is able to donate one or more electrons so as to form a bond or attraction with at least one of the catalyst atoms.
  64. 65
    An intermediate precursor composition as defined in claim 64, wherein the electron-rich atom comprises at least one of oxygen or nitrogen.
  65. 66
    An intermediate precursor composition as defined in claim 64, wherein the electron-rich atom has a negative charge and the catalyst atoms have a positive charge.
  66. 67
    An intermediate precursor composition as defined in claim 58, wherein at least about 60% of the complexing molecules are straight-chained.
  67. 68
    An intermediate precursor composition as defined in claim 58, wherein at least about 75% of the complexing molecules are straight-chained.
  68. 69
    An intermediate precursor composition as defined in claim 58, wherein at least about 90% of the complexing molecules are straight-chained.
  69. 70
    An intermediate precursor composition as defined in claim 58, wherein at least about 95% of the complexing molecules are straight-chained.
  70. 71
    An intermediate precursor composition as defined in claim 58, wherein about 100% of the complexing molecules are straight-chained.
  71. 72
    An intermediate precursor composition as defined in claim 58, further comprising a solvent or carrier into which the catalyst complex and any remaining catalyst atoms and control agent are mixed. CA 02532166 2011-07-19 69767-31
  72. 73
    An intermediate precursor composition as defined in claim 72, wherein the solvent or carrier comprises water.
  73. 74
    An intermediate precursor composition as defined in claim 72, wherein the solvent or carrier comprises at least one aqueous acid.
  74. 75
    An intermediate precursor composition as defined in claim 72, wherein the solvent or carrier comprises at least one organic solvent.
  75. 76
    An intermediate precursor composition as defined in claim 72, further comprising at least one support material.
  76. 77
    An intermediate precursor composition as defined in claim 76, wherein the catalyst complex is impregnated within the support material.
  77. 78
    An intermediate precursor composition as defined in claim 76, wherein the catalyst complex is chemically bonded to the support material.
  78. 79
    An intermediate precursor composition as defined in claim 58, further comprising at least one support material to which the catalyst complex is chemically bonded.
  79. 80
    An intermediate precursor composition as defined in claim 58, wherein the control agent has a number average molecular weight in a range of about 300 to about 15,000 Daltons.
  80. 81
    An intermediate precursor composition as defined in claim 58, wherein the control agent has a number average molecular weight in a range of about 600 to about 6,000 Daltons.
  81. 82
    An intermediate precursor composition as defined in claim 58, wherein a substantial portion of the control agent includes from about 4 to about 200 functional groups per complexing molecule. CA 02532166 2011-07-19 69767-31
  82. 83
    An intermediate precursor composition as defined in claim 58, wherein a substantial portion of the control agent includes from about 8 to about 80 functional groups per complexing molecule.
  83. 84
    An intermediate precursor composition as defined in claim 58, wherein a substantial portion of the control agent includes from about 10 to about 20 functional groups per complexing molecule.
  84. 85
    An intermediate precursor composition as defined in claim 58, wherein the intermediate precursor composition includes a molar ratio of control agent functional groups to catalyst atoms in a range of about 0.5:1 to about 40:1.
  85. 86
    An intermediate precursor composition as defined in claim 58, wherein the intermediate precursor composition includes a molar ratio of control agent functional groups to catalyst atoms in a range of about 1:1 to about 35:1.
  86. 87
    An intermediate precursor composition as defined in claim 58, wherein the intermediate precursor composition includes a molar ratio of control agent functional groups to catalyst atoms in a range of about 3:1 to about 30:1.
  87. 88
    An intermediate precursor composition as defined in claim 58, wherein the control agent comprises at least one of polacrylic acid or a polyacrylic acid salt.
  88. 89
    An intermediate precursor composition as defined in claim 58, wherein the control agent comprises at least one member selected from the group comprising polyvinylbenzoates, polyvinyl sulfate, polyvinyl sulfonates including sulfonated styrene, polybisphenol carbonates, polybenzimidizoles, polypyridine, sulfonated polyethylene terephthalate, polyvinyl alcohol, polyethylene glycol, and polypropylene glycol.
  89. 90
    An intermediate precursor composition as defined in claim 58, wherein the catalyst complex comprises a random distribution of at least two different types of catalyst atoms. CA 02532166 2011-07-19 69767-31
  90. 91
    A method of preparing an intermediate precursor composition for use in manufacturing a supported catalyst having a controlled coordination structure, the method comprising:providing a plurality of catalyst atoms comprising at least member selected from the group comprising noble metals, rare earth metals, transition metals, and non-metals;providing a control agent comprising a plurality of complexing molecules selected from the group comprising polymers, oligomers, and organic compounds, each complexing molecule having a plurality of functional groups disposed along a backbone for complexing the reactive catalyst atoms to the complexing molecules, wherein at least about 50% of the complexing molecules are straight-chained molecules that include at least four of the functional groups per molecule;mixing together the catalyst atoms and control agent in a liquid to form a mixture;and reacting at least a portion of the catalyst atoms with at least a portion of the control agent to yield a catalyst complex that forms a supported reactive catalyst comprising a support and a plurality of reactive catalyst particles formed from the catalyst complex when dispersed on a support in such a way that a preponderance of catalyst atoms on an upper surface of reactive catalyst particles of the supported reactive catalyst formed from the catalyst complex will have a nearest neighbor coordination number of 2.
  91. 92
    A method of preparing an intermediate precursor composition as defined in claim 91, further comprising contacting the catalyst complex with a support.
  92. 93
    A method of preparing an intermediate precursor composition as defined in claim 92, wherein the catalyst complex is impregnated within the support. CA 02532166 2011-07-19 69767-31
  93. 94
    A method of preparing an intermediate precursor composition as defined in claim 92, further comprising reacting the catalyst complex with the support so that a portion of the control agent chemically bonds the catalyst complex to the support. 5
  94. 95
    A method of preparing an intermediate precursor composition as defined in claim 94, wherein the portion of the control agent that bonds the catalyst complex to the support does so by means of a condensation reaction.
  95. 96
    A method of preparing an intermediate precursor composition as defined in claim 92, further comprising removing the liquid so as to yield a supported 10 catalyst precursor composition comprising the catalyst complex bonded to the support.
  96. 97
    A method of preparing an intermediate precursor composition as defined in claim 91, wherein the catalyst complex includes a random distribution of at least two different types of catalyst atoms. 15 98. A method of preparing an intermediate precursor composition as defined in claim 91, wherein the catalyst atoms comprise at least member selected from the group comprising rare earth metals, base transition metals, and non-metals.
Independent claims96