Nova Patents
EP2188408A2

Catalyst production process

Abstract

This record has no abstract on file.

Term

Projected expiry 12 August 2028.

  1. Priority and filed
  2. Published
  3. Today
  4. Projected expiry

36 claims: 3 independent, 33 dependent

  1. 1
    Claims of equivalent WO 2009026035 A2 We Claim:1. A process comprising depositing fme-nanoscale gold onto a nanoparticulate support medium by physical vapor deposition in an oxidizing atmosphere.
  2. 2
    The process of Claim 1 , wherein said depositing is carried out by a technique selected from sputter deposition, evaporation, cathodic arc deposition, and combinations thereof.
  3. 3
    The process of Claim 1, wherein said oxidizing atmosphere comprises at least one oxygen-containing gas.
  4. 4
    The process of Claim 3, wherein said oxygen-containing gas is selected from oxygen, water, hydrogen peroxide, ozone, and combinations thereof.
  5. 5
    The process of Claim 3, wherein said oxygen-containing gas is present in an amount from 0.05 percent to 60 percent by weight, based upon the total weight of all gases in said oxidizing atmosphere.
  6. 6
    The process of Claim 1, wherein said fme-nanoscale gold comprises gold bodies having all dimensions less than or equal to 4 nanometers in size.
  7. 7
    The process of Claim 1, wherein said fme-nanoscale gold is deposited onto said nanoparticulate support medium under conditions such that the resulting catalyst system comprises 0.005 to 10 weight percent gold, based upon the total weight of said fme-nanoscale gold and said nanoparticulate support medium.
  8. 8
    The process of Claim 7, wherein said catalyst system comprises 0.005 to 5 weight percent gold, based upon the total weight of said fϊne-nanoscale gold and said nanoparticulate support medium.
  9. 9
    The process of Claim 1 , wherein said nanoparticulate support medium comprises nanoparticles having at least two dimensions less than or equal to 30 nanometers in size.
  10. 10
    The process of Claim 1 , wherein said nanoparticulate support medium further comprises nanoparticles having an average diameter greater than 50 nanometers and less than 100 nanometers.
  11. 11
    The process of Claim 1 , wherein said nanoparticulate support medium comprises agglomerates of nanoparticles.
  12. 12
    The process of Claim 11, wherein said agglomerates have all dimensions in the range of 0.1 micrometer to 15 micrometers in average size.
  13. 13
    The process of Claim 1 , wherein said nanoparticulate support medium has a porosity greater than 0.4.
  14. 14
    The process of Claim 1 , wherein said nanoparticulate support medium is nanoporous.
  15. 15
    The process of Claim 1 , wherein said nanoparticulate support medium has a total nanoporous capacity for pores in the size range of 1 nanometer to 10 nanometers that is greater than 20 percent of its total volume of pores in the size range of 1 nanometer to 100 nanometers.
  16. 16
    The process of Claim 1 , wherein said nanoparticulate support medium comprises support material having a form selected from powders, particles, pellets, granules, extrudates, fibers, shells, honeycombs, plates, scrims, fabrics, paper, and combinations thereof.
  17. 17
    The process of Claim 16, wherein said form of said support material is selected from powders, particles, and combinations thereof.
  18. 18
    The process of Claim 1 , wherein said nanoparticulate support medium comprises a material selected from carbonaceous materials, silicaceous materials, metal oxides, and combinations thereof.
  19. 19
    The process of Claim 1 , wherein said nanoparticulate support medium is a composite support medium comprising particles of guest material borne on particles of host material that are larger in average diameter than said particles of guest material.
  20. 20
    The process of Claim 19, wherein said particles of guest material have an average diameter of 1 nanometer to 30 nanometers, and said particles of host material have an average diameter of 3 micrometers to 5000 micrometers.
  21. 21
    The process of Claim 19, wherein said particles of guest material are porous.
  22. 22
    The process of Claim 19, wherein said guest material comprises a metal oxide, and said host material comprises carbonaceous material, metal oxide, or a combination thereof.
  23. 23
    The process of Claim 22, wherein said guest material comprises an oxide comprising titanium, cerium, or a combination thereof;and said host material comprises carbonaceous material.
  24. 24
    The process of Claim 1, wherein said process further comprises applying an activating agent to said nanoparticulate support medium.
  25. 25
    The process of Claim 1, wherein said process further comprises heat treating said nanoparticulate support medium.
  26. 26
    The process of Claim 1 , wherein said nanoparticulate support medium is mixed and comminuted during at least a portion of said deposition.
  27. 27
    The process of Claim 1, wherein said process further comprises providing at least one metal in addition to said fme-nanoscale gold on said nanoparticulate support medium.
  28. 28
    A process comprising depositing fme-nanoscale gold onto a nanoparticulate support medium selected from nanoparticulate metal oxide, composite support media comprising nanoparticulate metal oxide guest material and activated carbon host material, and combinations thereof;wherein said depositing is carried out by sputter deposition in an oxidizing atmosphere comprising at least one oxygen-containing gas selected from oxygen, water, hydrogen peroxide, ozone, and combinations thereof.
  29. 29
    The process of Claim 28, wherein said metal oxide is selected from oxides of titanium and combinations thereof.
  30. 30
    The process of Claim 28, wherein said oxygen-containing gas is selected from oxygen, water, and combinations thereof.
  31. 31
    The process of Claim 30, wherein said oxygen-containing gas is oxygen.
  32. 32
    A catalyst system comprising fme-nanoscale gold on nanoparticulate titania, said fme-nanoscale gold being present in an amount that is greater than 1 weight percent, based upon the total weight of said fϊne-nanoscale gold and said nanoparticulate titania, and said fme-nanoscale gold on nanoparticulate titania exhibiting a color that is described by a set of CIE color coordinates L*, a*, and b*, wherein said L* color coordinate is greater than 64, said a* color coordinate is less than zero, and said b* color coordinate is less than zero, as determined by total reflectance measurements using a d/8° geometry.
  33. 33
    A respiratory protection article comprising the catalyst system of Claim 32.
  34. 34
    A catalysis process comprising (a) providing a catalyst system produced by the process of Claim 1 ;and (b) using said catalyst system to oxidize a material contacting said catalyst system.
  35. 35
    A catalysis process comprising (a) providing a catalyst system produced by the process of Claim 28;and (b) using said catalyst system to oxidize a material contacting said catalyst system.
  36. 36
    A catalysis process comprising (a) providing the catalyst system of Claim 32;and (b) using said catalyst system to oxidize a material contacting said catalyst system.
Independent claims36