EP0684075A1

Multi-functional material having photo-catalytic function and production method therefor.

Abstract

The multi-functional material according to the present invention is divided into a type in which a photo- catalytic layer having a photo-catalytic function is directly disposed on the surface of a substrate (1) and another in which the photo-catalytic layer (2) is indirectly disposed on the surface of the substrate (1) through a binder layer (6). The mode of binding of photo-catalytic particles constituting the photo-catalytic layer (2) includes binding by surface energy and binding by solid phase sintering. The structure of the photo-catalytic layer (2) includes the structure in which fine particles are packed into gaps between the photo-catalytic particles and another in which they are not. Further, there is a structure in which metals such as Ag and Pt are fixed to the surfaces of the photo-catalytic particles and another in which they are not.

EP0684075A1, drawing sheet 1
Sheet 1 of 77

Term

Term ended

Projected expiry passed 9 December 2014, 11.8 years ago.

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108 claims: 68 independent, 40 dependent

  1. 1
    A multi-functional material with a photocatalytic function, comprising a base and a photocatalytic layer having a photocatalytic function and directly disposed on a surface of said base, said photocatalytic layer including at least a surface layer exposed outwardly, said surface layer being composed of fine photocatalytic particles joined together by a potential energy.
  2. 2
    A multi-functional material with a photocatalytic function, comprising a base and a photocatalytic layer having a photocatalytic function and directly disposed on a surface of said base, said photocatalytic layer including at least a surface layer exposed outwardly, said surface layer being composed of photocatalytic particles joined together by solid-state sintering.
  3. 3
    A multi-functional material with a photocatalytic function, comprising a base and a photocatalytic layer having a photocatalytic function and directly disposed on a surface of said base, said photocatalytic layer including at least a surface layer exposed outwardly, said surface layer being composed of photocatalytic particles with interstices defined therebetween, said interstices being filled with particles which are smaller than said interstices.
  4. 4
    A multi-functional material with a photocatalytic function, comprising a base and a photocatalytic layer having a photocatalytic function and directly disposed on a surface of said base, said photocatalytic layer including at least a surface layer exposed outwardly, said surface layer being composed of photocatalytic particles joined together by a potential energy, with interstices defined between the photocatalytic particles of at least an outermost surface layer, said interstices being filled with particles which are smaller than said interstices.
  5. 5
    A multi-functional material with a photocatalytic function, comprising a base and a photocatalytic layer having a photocatalytic function and directly disposed on a surface of said base, said photocatalytic layer including at least a surface layer exposed outwardly, said surface layer being composed of fine photocatalytic particles joined together by a potential energy, and electron-capturing particles fixed to surfaces of the photocatalytic particles.
  6. 6
    A multi-functional material with a photocatalytic function, comprising a base and a photocatalytic layer having a photocatalytic function and directly disposed on a surface of said base, said photocatalytic layer including at least a surface layer exposed outwardly, said surface layer being composed of photocatalytic particles joined together by solid-state sintering, and electron-capturing particles fixed to surfaces of the photocatalytic particles.
  7. 7
    A multi-functional material with a photocatalytic function, comprising a base and a photocatalytic layer having a photocatalytic function and directly disposed on a surface of said base, said photocatalytic layer including at least a surface layer exposed outwardly, said surface layer being composed of photocatalytic particles with interstices defined therebetween, said interstices being filled with particles which are smaller than said interstices, and electron-capturing particles fixed to surfaces of the photocatalytic particles or surfaces of the particles filled in said interstices.
  8. 8
    A multi-functional material with a photocatalytic function, comprising a base and a photocatalytic layer having a photocatalytic function and directly disposed on a surface of said base, said photocatalytic layer including at least a surface layer exposed outwardly, said surface layer being composed of photocatalytic particles joined together by a potential energy, with interstices defined between the photocatalytic particles of at least an outermost surface layer, said interstices being filled with particles which are smaller than said interstices, and electron-capturing particles fixed to surfaces of the photocatalytic particles or surfaces of the particles filled in said interstices.
  9. 9
    A multi-functional material with a photocatalytic function, comprising a base and a photocatalytic layer having a photocatalytic function and disposed on a surface of said base through a binder layer interposed therebetween, said photocatalytic layer including a surface layer exposed outwardly and a lower layer embedded in said binder layer, said surface layer being composed of fine photocatalytic particles joined together by a potential energy.
  10. 10
    A multi-functional material with a photocatalytic function, comprising a base and a photocatalytic layer having a photocatalytic function and disposed on a surface of said base through a binder layer interposed therebetween, said photocatalytic layer including a surface layer exposed outwardly and a lower layer embedded in said binder layer, said surface layer being composed of photocatalytic particles joined together by solid-state sintering.
  11. 11
    A multi-functional material with a photocatalytic function, comprising a base and a photocatalytic layer having a photocatalytic function and disposed on a surface of said base through a binder layer interposed therebetween, said photocatalytic layer including a surface layer exposed outwardly and a lower layer embedded in said binder layer, said surface layer being composed of photocatalytic particles with interstices defined therebetween, said interstices being filled with particles which are smaller than said interstices.
  12. 12
    A multi-functional material with a photocatalytic function, comprising a base and a photocatalytic layer having a photocatalytic function and disposed on a surface of said base through a binder layer interposed therebetween, said photocatalytic layer including a surface layer exposed outwardly and a lower layer embedded in said binder layer, said surface layer being composed of photocatalytic particles joined together by a potential energy, with interstices defined between the photocatalytic particles of at least an outermost surface layer, said interstices being filled with particles which are smaller than said interstices.
  13. 13
    A multi-functional material with a photocatalytic function, comprising a base and a photocatalytic layer having a photocatalytic function and disposed on a surface of said base through a binder layer interposed therebetween, said photocatalytic layer including a surface layer exposed outwardly and a lower layer embedded in said binder layer, said surface layer being composed of fine photocatalytic particles joined together by a potential energy, and electron-capturing particles fixed to surfaces of the photocatalytic particles.
  14. 14
    A multi-functional material with a photocatalytic function, comprising a base and a photocatalytic layer having a photocatalytic function and disposed on a surface of said base through a binder layer interposed therebetween, said photocatalytic layer including a surface layer exposed outwardly and a lower layer embedded in said binder layer, said surface layer being composed of photocatalytic particles joined together by solid-state sintering, and electron-capturing particles fixed to surfaces of the photocatalytic particles.
  15. 15
    A multi-functional material with a photocatalytic function, comprising a base and a photocatalytic layer having a photocatalytic function and disposed on a surface of said base through a binder layer interposed therebetween, said photocatalytic layer including a surface layer exposed outwardly and a lower layer embedded in said binder layer, said surface layer being composed of photocatalytic particles with interstices defined therebetween, said interstices being filled with particles which are smaller than said interstices, and electron-capturing particles fixed to surfaces of the photocatalytic particles or surfaces of the particles filled in said interstices.
  16. 16
    A multi-functional material with a photocatalytic function, comprising a base and a photocatalytic layer having a photocatalytic function and disposed on a surface of said base through a binder layer interposed therebetween, said photocatalytic layer including a surface layer exposed outwardly and a lower layer embedded in said binder layer, said surface layer being composed of photocatalytic particles joined together by a potential energy, with interstices defined between the photocatalytic particles of at least an outermost surface layer, said interstices being filled with particles which are smaller than said interstices, and electron-capturing particles fixed to surfaces of the photocatalytic particles or surfaces of the particles filled in said interstices.
  17. 17
    A multi-functional material according to any one of claims 1 through 16, wherein said photocatalytic particles of the photocatalytic layer are crystalline.
  18. 18
    A multi-functional material according to any one of claims 1 through 16, wherein said photocatalytic particles of the photocatalytic layer are made of anatase Ti0 2 .
  19. 19
    A multi-functional material according to any one of claims 1 through 16, wherein said photocatalytic particles of the photocatalytic layer are made of rutile Ti0 2 .
  20. 20
    A multi-functional material according to any one of claims 1 through 16, wherein said surface layer of the photocatalytic layer has a porosity of less than 20 %.
  21. 22
    A multi-functional material according to any one of claims 1 through 16, wherein said surface layer of the photocatalytic layer has a porosity of 10 % or more and less than 40 %.
  22. 23
    A multi-functional material according to any one of claims 1 through 16, wherein the particles of said photocatalytic layer have a diameter of less than 0.1 /1.m.
  23. 24
    A multi-functional material according to any one of claims 1 through 16, wherein the particles of said photocatalytic layer have a diameter of 0.1 µm or more, said photocatalytic layer have a thickness of 0.5 µm or more, with necks formed between the particles of said photocatalytic layer.
  24. 26
    A multi-functional material according to any one of claims 9 through 16, wherein said binder layer on the surface of said base is amorphous, further comprising an intermediate layer interposed between said binder layer and said photocatalytic layer and having continuously varying components of said binder layer and said photocatalytic layer.
  25. 28
    A multi-functional material according to any one of claims 9 through 16, wherein said base is made of a material having a low melting point, said binder layer on the surface of said base being made of a material having a melting point higher than the melting point of said base.
  26. 34
    A multi-functional material according to any one of claims 1 through 8, wherein said base comprises a sheet of glaze, inorganic glass, thermoplastic resin, or thermoplastic material of solder or the like.
  27. 35
    A multi-functional material according to any one of claims 9 through 16, wherein said binder layer is made of glaze, inorganic glass, thermoplastic resin, or thermoplastic material of solder or the like.
  28. 44
    A multi-functional material according to any one of claims 37 through 39, wherein said particles filled in the interstices defined between said photocatalytic particles have a photocatalytic activity.
  29. 50
    A multi-functional material according to any one of claims 46 through 49, wherein a material fixed to said thin rutile Ti0 2 film comprises at least one of Cu and Cu 2 0, said material being fixed to said thin rutile Ti0 2 film in an amount per unit area which is of 0.12 u.g/cm 2 or greater and 1.2 u.g/cm 2 or smaller.
  30. 51
    A multi-functional material according to any one of claims 46 through 49, wherein a material fixed to said thin rutile Ti0 2 film comprises at least one of Cu and Cu 2 0, said material being fixed to said thin rutile Ti0 2 film in an amount per unit area which is of 0.7 u.g/cm 2 or greater.
  31. 52
    A multi-functional material according to any one of claims 46 through 49, wherein a material fixed to said thin rutile Ti0 2 film comprises Ag, said Ag being fixed to said thin rutile Ti0 2 film in an amount per unit area which is of 0.05 u.g/cm 2 or greater and 1 u.g/cm 2 or smaller.
  32. 53
    A multi-functional material according to any one of claims 1 through 52, wherein said multi-functional material comprises a tile or a stone-like material for use as a stepstone around an artificial fall or a fountain equipped with a water circulation system.
  33. 54
    A method of manufacturing a multi-functional material with a photocatalytic function, comprising the steps of forming a photocatalytic layer on a surface of a base, thereafter coating a metal alkoxide or an organic metal salt on a surface of said photocatalytic layer, and then drying and heating the coated metal alkoxide or organic metal salt to fill interstices defined between photocatalytic particles with particles which are smaller than said interstices.
  34. 55
    A method of manufacturing a multi-functional material with a photocatalytic function, comprising the steps of forming a photocatalytic layer on a surface of a base, thereafter coating a metal alkoxide or an organic metal salt on a surface of said photocatalytic layer, then drying and heating the coated metal alkoxide or organic metal salt to fill interstices defined between photocatalytic particles with particles which are smaller than said interstices, thereafter coating an aqueous solution of metal ions of at least one of Cu, Ag, Zn, Fe, Co, Ni, Pd, Cu 2 0, and Pt, and photoreducing the coated solution to separate out and fix metal particles.
  35. 56
    A method of manufacturing a multi-functional material with a photocatalytic function, comprising the steps of forming a photocatalytic layer of photocatalytic particles on a thermoplastic base, thereafter softening said thermoplastic base to embed a portion of a lower layer of the photocatalytic layer in the thermoplastic base, and then solidifying said thermoplastic base.
  36. 57
    A method of manufacturing a multi-functional material with a photocatalytic function, having photocatalytic particles with interstices defined therebetween and filled with particles which are smaller in diameter than the interstices, said photocatalytic particles being joined together, said method comprising the steps of coating a mixture of photocatalytic particles and the smaller particles in the form of a sol, a precursor, or a suspension on a thermoplastic base thereby to form a photocatalytic layer, thereafter softening said thermoplastic base to embed a portion of a lower layer of the photocatalytic layer in the thermoplastic base, and then solidifying said thermoplastic base.
  37. 58
    A method of manufacturing a multi-functional material with a photocatalytic function, having photocatalytic particles with interstices defined therebetween and filled with metal particles which are smaller in diameter than the interstices, said photocatalytic particles being joined together, said method comprising the steps of forming a photocatalytic layer of photocatalytic particles on a thermoplastic base, thereafter softening said thermoplastic base to embed a portion of a lower layer of the photocatalytic layer in the thermoplastic base, then solidifying said thermoplastic base, coating a solution of the smaller metal particles on the photocatalytic layer, and heating the coated solution to fix the smaller metal particles to said photocatalytic particles.
  38. 59
    A method of manufacturing a multi-functional material with a photocatalytic function, having photocatalytic particles with interstices defined therebetween and filled with metal particles which are smaller in diameter than the interstices, said photocatalytic particles being joined together, said method comprising the steps of forming a photocatalytic layer of photocatalytic particles on a thermoplastic base, thereafter softening said thermoplastic base to embed a portion of a lower layer of the photocatalytic layer in the thermoplastic base, then solidifying said thermoplastic base, coating a solution of ions of the smaller metal particles on the photocatalytic layer, and thereafter irradiating the coated solution with ultraviolet rays to reduce and fix metal ions to said photocatalytic particles.
  39. 60
    A method of manufacturing a multi-functional material with a photocatalytic function, having photocatalytic particles with interstices defined therebetween and filled with metal particles which are smaller in diameter than the interstices, said photocatalytic particles being joined together, said method comprising the steps of forming a photocatalytic layer of photocatalytic particles on a thermoplastic base, coating a solution of ions of the smaller metal particles on the photocatalytic layer, thereafter irradiating the coated solution with ultraviolet rays to reduce and fix metal ions to said photocatalytic particles, softening said thermoplastic base to embed a portion of a lower layer of the photocatalytic layer in the thermoplastic base, and then solidifying said thermoplastic base.
  40. 65
    A method according to any one of claims 56 through 64, wherein the temperature of the thermoplastic base is 20 ° C or higher and less than 80 ° C when a sol, a precursor, or a suspension of photocatalytic particles is coated on the thermoplastic base by spray coating to form the photocatalytic layer on the thermoplastic base.
  41. 66
    A method according to any one of claims 56 through 65, further comprising the step of, before the photocatalytic particles are coated on the thermoplastic base, dispersing a sol or a precursor of photocatalytic particles in a solution with a dispersant composed of only a component which is vaporized at a temperature lower than a heat-treatment temperature at which said thermoplastic base is softened.
  42. 67
    A method according to any one of claims 56 through 65, further comprising the steps of preparing a sol of titanium oxide to form the photocatalytic particles according to a hydrothermal process or a sulfuric acid process, fixing fine metal particles to surfaces of particles of the sol of titanium oxide, and thereafter adding a dispersant or a surface-treating agent such as a surface-active agent to the sol of titanium oxide.
  43. 68
    A method of manufacturing a multi-functional material with a photocatalytic function, comprising the steps of forming a binder layer of thermoplastic material on a surface of a base, then forming a photocatalytic layer of photocatalytic particles on said binder, thereafter softening said binder layer to embed a portion of a lower layer of the photocatalytic layer in the binder layer, and solidifying said binder layer.
  44. 69
    A method of manufacturing a multi-functional material with a photocatalytic function, comprising the steps of forming a photocatalytic layer of photocatalytic particles on a sheet-like binder layer of thermoplastic material, placing or applying said sheet-like binder layer to a surface of a base, thereafter softening said binder layer to embed a portion of a lower layer of the photocatalytic layer in the binder layer, and solidifying said binder layer.
  45. 70
    A method of manufacturing a multi-functional material with a photocatalytic function, comprising the steps of forming a binder layer on a surface of a base, forming a photocatalytic layer on said binder such that a portion of a lower layer of the photocatalytic layer is embedded in the binder, thereafter irradiating the photocatalytic layer with light containing light having a wavelength of 390 nm or shorter and an intensity of 1.7 mW/cm 2 or more to preferentially decompose and vaporize a surface-treating agent attached to a surface of the photocatalytic layer for thereby exposing photocatalytic particles to ambient air.
  46. 73
    A method of manufacturing a multi-functional material with a photocatalytic function, comprising the steps of forming a layer composed primarily of photocatalytic particles and a thermosetting resin on a surface of a base, and thereafter irradiating said layer with light containing light having a wavelength of 390 nm or shorter and an intensity of 1.7 mW/cm 2 or more to preferentially decompose and vaporize the thermosetting resin on the photocatalytic particles for thereby exposing the photocatalytic particles to ambient air.
  47. 74
    A method of manufacturing a multi-functional material with a photocatalytic function, comprising the steps of forming a layer composed primarily of photocatalytic particles and a thermosetting resin on a surface of a base through a thermosetting resin layer or a photosetting resin interposed therebetween, and thereafter irradiating said layer with light containing light having a wavelength of 390 nm or shorter and an intensity of 1.7 mW/cm 2 or more to preferentially decompose and vaporize the thermosetting resin on the photocatalytic particles for thereby exposing the photocatalytic particles to ambient air.
  48. 76
    A claim according to any one of claims 70 through 74, wherein interstices are defined in a surface of the multi-functional material, said interstices are filled with particles smaller than the interstices.
  49. 77
    A method of manufacturing a multi-functional material with a photocatalytic function, having photocatalytic particles joined together with interstices being defined therebetween, the interstices filled with particles smaller in diameter than the interstices, said method comprising the steps of forming a binder layer on a surface of a base, then coating a mixture of photocatalytic particles and the smaller particles in the form of a sol, a precursor, or a suspension on said binder layer thereby to form a photocatalytic layer, thereafter softening said binder layer to embed a portion of a lower layer of the photocatalytic layer in the binder layer, and then solidifying said binder layer.
  50. 78
    A method of manufacturing a multi-functional material with a photocatalytic function, having photocatalytic particles joined together with interstices being defined therebetween, the interstices filled with particles smaller in diameter than the interstices, said method comprising the steps of coating a mixture of photocatalytic particles and the smaller particles in the form of a sol, a precursor, or a suspension on a sheet-like binder layer of thermoplastic material thereby to form a photocatalytic layer, placing or applying said sheet-like binder layer with the photocatalytic layer formed thereon to a surface of a base, thereafter softening said binder layer to embed a portion of a lower layer of the photocatalytic layer in the binder layer, and solidifying said binder layer.
  51. 79
    A method of manufacturing a multi-functional material with a photocatalytic function, having photocatalytic particles joined together with interstices being defined therebetween, the interstices filled with particles smaller in diameter than the interstices, said method comprising the steps of forming a binder layer on a base, then forming a photocatalytic layer of photocatalytic particles on said binder layer, thereafter softening said binder layer to embed a portion of a lower layer of the photocatalytic layer in the binder layer, then solidifying said binder layer, coating a solution of the smaller particles on the photocatalytic layer, and heating the coated solution to fix the smaller particles to said photocatalytic particles.
  52. 80
    A method of manufacturing a multi-functional material with a photocatalytic function, having photocatalytic particles joined together with interstices being defined therebetween, the interstices filled with particles smaller in diameter than the interstices, said method comprising the steps of forming a photocatalytic layer of photocatalytic particles on a sheet-like binder layer of thermoplastic material, placing or applying said sheet-like binder layer with the photocatalytic layer formed thereon to a surface of a base, thereafter softening said binder layer to embed a portion of a lower layer of the photocatalytic layer in the binder layer, solidifying said binder layer, coating a solution of the smaller particles on the photocatalytic layer, and heating the coated solution to fix the smaller particles to said photocatalytic particles.
  53. 81
    A method of manufacturing a multi-functional material with a photocatalytic function, having photocatalytic particles joined together with interstices being defined therebetween, the interstices filled with metal particles smaller in diameter than the interstices, said method comprising the steps of forming a binder layer on a surface of a base, then forming a photocatalytic layer of photocatalytic particles on said binder layer, thereafter softening said binder layer to embed a portion of a lower layer of the photocatalytic layer in the binder layer, then solidifying said binder layer, coating a solution of ions of the smaller particles on the photocatalytic layer, and thereafter irradiating the coated solution with ultraviolet rays to reduce and fix metal ions to said photocatalytic particles.
  54. 82
    A method of manufacturing a multi-functional material with a photocatalytic function, having photocatalytic particles joined together with interstices being defined therebetween, the interstices filled with metal particles smaller in diameter than the interstices, said method comprising the steps of forming a photocatalytic layer of photocatalytic particles on a sheet-like binder layer of thermoplastic material, placing or applying said sheet-like binder layer with the photocatalytic layer formed thereon to a surface of a base, thereafter softening said binder layer to embed a portion of a lower layer of the photocatalytic layer in the binder layer, solidifying said binder layer, coating a solution of ions of the smaller metal particles on the photocatalytic layer, and thereafter irradiating the coated solution with ultraviolet rays to reduce and fix metal ions to said photocatalytic particles.
  55. 83
    A method of manufacturing a multi-functional material with a photocatalytic function, having photocatalytic particles joined together with interstices being defined therebetween, the interstices filled with metal particles smaller in diameter than the interstices, said method comprising the steps of forming a binder layer on a surface of a base, then forming a photocatalytic layer of photocatalytic particles on said binder layer, coating a solution of ions of the smaller particles on the photocatalytic layer, thereafter irradiating the coated solution with ultraviolet rays to reduce and fix metal ions to said photocatalytic particles, softening said binder layer to embed a portion of a lower layer of the photocatalytic layer in the binder layer, and then solidifying said binder layer.
  56. 84
    A method of manufacturing a multi-functional material with a photocatalytic function, having photocatalytic particles joined together with interstices being defined therebetween, the interstices filled with metal particles smaller in diameter than the interstices, said method comprising the steps of forming a photocatalytic layer of photocatalytic particles on a sheet-like binder layer of thermoplastic material, coating a solution of ions of the smaller metal particles on the photocatalytic layer, thereafter irradiating the coated solution with ultraviolet rays to reduce and fix metal ions to said photocatalytic particles, placing or applying said sheet-like binder layer with the photocatalytic layer formed thereon to a surface of a base, thereafter softening said binder layer to embed a portion of a lower layer of the photocatalytic layer in the binder layer, and then solidifying said binder layer.
  57. 86
    A method according to any one of claims 77 through 85, further comprising the steps of bringing, into contact with the photocatalytic layer, a solution containing a salt for forming an insoluble, colorless or white salt with metal ions of the particles filled in the interstices between the photocatalytic particles, and thereafter irradiating the solution with light containing ultraviolet rays.
  58. 87
    A method according to any one of claims 68 through 85, wherein said photocatalytic particles are made of Ti0 2 , and the binder layer is softened at a heat-treatment temperature of 800 °C or higher and 1000 ° C or lower.
  59. 89
    A method according to any one of claims 68 through 88, wherein said binder layer has a softening temperature lower than a softening temperature of said base, and is heated at an atmospheric temperature which is higher than the softening temperature of said binder layer by more than 20 ° C and less than 320 ° C and lower than the softening temperature of said base.
  60. 90
    A method according to any one of claims 68 through 89, further comprising the step of, before the photocatalytic particles are coated on the binder layer, dispersing a sol, a precursor, or a suspension of photocatalytic particles in a solution with a dispersant composed of only a component which is vaporized at a temperature lower than a heat-treatment temperature at which said binder layer is softened.
  61. 91
    A method according to any one of claims 68 through 90, wherein said photocatalytic particles and said binder layer have respective specific gravities 6t, 6b which satisfy the relationship:0 ≦ δt - 6b 3.0.
  62. 92
    A method of manufacturing a multi-functional material with a photocatalytic function, comprising the steps of forming a binder layer on a surface of a base, then forming a photocatalytic layer having a surface layer exposed from said binder layer and a lower layer embedded in said binder layer, thereafter coating a metal alkoxide or an organic metal salt on a surface of said photocatalytic layer, and then drying and heating the coated metal alkoxide or organic metal salt to fill interstices defined between photocatalytic particles with particles smaller than the interstices.
  63. 93
    A method of manufacturing a multi-functional material with a photocatalytic function, comprising the steps of forming a binder layer on a surface of a base, then forming a photocatalytic layer having a surface layer exposed from said binder layer and a lower layer embedded in said binder layer, thereafter coating a metal alkoxide or an organic metal salt on a surface of said photocatalytic layer, then drying and heating the coated metal alkoxide or organic metal salt to fill interstices defined between photocatalytic particles with particles smaller than the interstices, thereafter coating an aqueous solution of metal ions of at least one of Ni, Pd, and Pt, and photoreducing the coated solution to separate out and fix metal particles.
  64. 97
    A method of manufacturing a multi-functional material with a photocatalytic function, comprising the steps of mixing a sol of titanium oxide and a sol of a substance having a vapor pressure higher than the vapor pressure of titanium oxide, coating the mixture on a base, and thereafter sintering the coated base at a temperature equal to or lower than a temperature at which a phase transition of the titanium oxide to a rutile structure occurs.
  65. 98
    A method of manufacturing a multi-functional material with a photocatalytic function, comprising the steps of fixing particles having a photocatalytic activity and colored fine metal particles to a surface of a substrate, and reacting said colored fine metal particles with a solution or a gas to produce a colorless or white salt on at least surfaces of the colored fine metal particles.
  66. 102
    A method of manufacturing a multi-functional material with a photocatalytic function, comprising the steps of forming a thin rutile Ti0 2 film on a surface of a base, coating an aqueous solution of a metal salt of at least one of Ni, Pd, and Pt or an ethanol solution of a metal salt on said thin rutile Ti0 2 film, thereafter irradiating the coated solution with light containing ultraviolet rays to reduce metal ions to fix a metal to said thin rutile Ti0 2 film.
  67. 107
    A method of manufacturing a multi-functional material with a photocatalytic function, comprising the steps of forming a thin rutile Ti0 2 film on a surface of a base, coating an aqueous solution of a Cu salt on said thin rutile Ti0 2 film, thereafter irradiating the coated solution with light containing ultraviolet rays to reduce Cu ions for thereby fixing Cu to the thin rutile Ti0 2 film in an amount ranging from 1.2 u.g/cm 2 to 10 µg/cm 2 .
  68. 108
    A method of manufacturing a multi-functional material with a photocatalytic function, comprising the steps of forming a thin rutile Ti0 2 film on a surface of a base, coating an aqueous solution of an Ag salt on said thin rutile Ti0 2 film, thereafter irradiating the coated solution with light containing ultraviolet rays to reduce Ag ions for thereby fixing Ag to the thin rutile Ti0 2 film in an amount ranging from 0.1 µg/cm 2 to 1 u.g/ cm 2 .
Independent claims68