CA2374322A1

Fiber glass carrier having increased surface area and photo-active matrices formed therefrom

Abstract

A fiber glass carrier having a high surface area is disclosed for use as a carrier for photo-active materials, such as photocatalyst materials and photovoltaic materials. The fiber glass carrier can be formed by conventional fiber glass processing techniques, such as air-laid mat processes and wet-laid mat processes, and then further treated to provide increased surface area for .beta. the deposition of the photo-active material thereon. Treatments to increase the surface area of the fiber glass carrier include etching with acid solution and coating of the fibers with a high surface area silica. Additionally, methods of distributing the photo-active material in carrier during the formation of the carrier are disclosed.

CA2374322A1, drawing sheet 1
Sheet 1 of 6

Term

Term ended

Projected expiry passed 14 June 2020, 6.3 years ago.

  1. Priority
  2. Filed
  3. Published
  4. Projected expiry
  5. Today

40 claims: 5 independent, 35 dependent

  1. 1
    CA 02374322 2001-12-12 WO 00/76660 PCT/USOO/16342 - 41 WE CLAIM:1. A fiber glass carrier comprising a plurality of glass fibers wherein at least a portion of the plurality of glass fibers have a surface 5 area of at least about 10 square meters per gram as measured by BET surface area analysis using nitrogen.
  2. 14
    A non-woven fiber glass carrier comprising a plurality of glass fibers at least a portion of the plurality of glass fibers having a high surface area silica material positioned thereon. CA 02374322 2001-12-12 WO 00/76660 PCT/USOO/16342 -4315. The non-woven fiber glass carrier according to claim 14, wherein at least one of the at least a portion of the plurality of glass fibers has a surface area of at least about 10 square meters per gram as measured by BET surface analysis using nitrogen.
  3. 18
    19. A method of forming a high surface area fiber glass carrier, the method comprising the steps of:20 A. forming a fiber glass carrier comprising a plurality of glass fibers, and B. modifying at least a portion of the plurality of glass fibers such that the at least a portion of the plurality of glass fibers has a surface area that is at least about 10 square meters per gram as 25 measured by BET surface analysis using nitrogen.
  4. 19
    20. The method according to claim 19, wherein the modifying step includes applying a high surface area silica material to the at least a portion of the plurality of glass fibers. CA 02374322 2001-12-12 00/76660 PCT/US00/16342 -4421. The method according to claim 19, wherein the modifying step includes etching the at least a portion of the plurality of glass fibers.
  5. 21
    23. The method according to claim 21, wherein the surface area is at least about 100 square meters per gram as measured by BET surface analysis using nitrogen.
  6. 25
    27. A method of forming a high surface area fiber glass carrier, the method comprising the steps of:A. forming a non-woven, fiber glass carrier;and B. applying a high surface area silica material to at least a portion of a surface of the non-woven, fiber glass carrier. CA 02374322 2001-12-12 WO 00/76660 PCT/US00/16342 - 45
  7. 28
    30. The method according to claim 28, wherein the photo-active material is a photovoltaic material.
  8. 29
    31. A method of forming a photocatalytic matrix, the method 15 comprising the steps of:A. forming an aqueous dispersion comprising a plurality of chopped glass fibers and a foaming agent;B. agitating the dispersion to form a foamed slurry;C. casting the foamed slurry to form a sheet;20 D. removing at least a portion of the foam from the sheet;E. at least partially drying the sheet to form a fiber glass carrier;and F. incorporating a photocatalyst material into the fiber 25 glass carrier to form a photocatalytic matrix.
  9. 31
    33. The method according to claim 31, wherein the incorporating step includes adding the photocatalyst material to the aqueous dispersion.
  10. 36
    38. The method according to claim 36, wherein modifying includes applying a high surface area silica material to the at least a portion of the plurality of chopped glass fibers.
  11. 37
    39. A method of forming a photocatalytic matrix, the method comprising the steps of:CA 02374322 2001-12-12 WO 00/76660 PCT/USOO/16342 - 47 A. forming an aqueous dispersion comprising a plurality of chopped glass fibers and a high surface area silica material;B. casting the dispersion to form a sheet;C. at least partially drying the sheet to form a fiber glass 5 carrier;and D. incorporating a photocatalyst material into the fiber glass carrier to form a photocatalytic matrix.
  12. 39
    41. The method according to claim 39, wherein the incorporating step includes coating at least a portion of the high surface area silica 15 material with the photocatalyst material prior to casting.