CA2283222C

Photocatalytically-activated self-cleaning article and method of making same

Abstract

A method and article are disclosed herein. The methodcomprises the steps of manufacturing a continuous glassfloat ribbon having a first major surface and an oppositemajor surface defined as a second major surface. The firstmajor surface has tin diffused therein which ischaracteristic of forming a glass float ribbon on a moltentin bath. The next step comprises positioning a chemicalvapour deposition coating apparatus over the surface of saidglass float ribbon at a point in the manufacture of theglass float ribbon where the class float ribbon has atemperature of at least about 400°C. The next stepcomprises directing a metal oxide precursor, namely, thetitanium tetrachloride, titanium tetraisopropoxide ortitanium tetraethoxide in a carrier gas stream through thechemical vapour deposition apparatus over a surface of theglass float ribbon. The next step comprises annealing theglass float ribbon to produce titanium dioxide in thecrystalline phase as a photocatalytically-activated,self-cleaning coating over the glass float ribbon. Thecoating has a photocatalytically-activated self-cleaningreaction rate of least about 2×10 -3 cm-1min-1. The article isa photocatalytically-activated self-cleaning article ofmanufacture. Such. article comprises a substrate having atleast one surface and containing sodium. Such articlecomprises a photocatalytically-activated, self-cleaningcoating deposited over the surface of the substrate bychemical vapour deposition, or magnetron sputtered vacuumdeposition or spray pyrolysis. The coating is at least 100 Angstroms. Such article comprises a sodium ion poisoningprevention layer which is either a sodium ion diffusionbarrier layer disposed between the substrate and thephotocatalytically-activated self-cleaning coating with athickness of at least about 100 .ANG. to inhibit migration ofsodium ions from the substrate to the photocatalytically-activated self-cleaning coating, or a fraction of theoverall thickness of the photocatalytically-activated,self-cleaning coating, where the photocatalytically-activated, self-cleaning coating has a thickness thatexceeds a minimum thickness so that they sodium ions are ableto migrate only through the fraction of the overallthickness of the photocatalytically-activated, self-cleaningcoating during any time period at which the temperature ofthe substrate exceeds a temperature which permits sodium ionmigration, so that the thickness of the photocatalytically-activated, self-cleaning coating apposite from thesubstrate surface is able to maintain photocatalytically-activated self-cleaning coating activity. Thephotocatalytically-activated, self-cleaning coating has aphotocatalytically-activated, self-cleaning reaction rate ofat least about 2×10 -3 cm-1min-1.

CA2283222C, drawing sheet 1
Sheet 1 of 2

Term

Term ended

Expired 12 March 2018, 8.5 years ago.

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

53 claims: 28 independent, 25 dependent

  1. 1
    CA 02283222 2004-03-04 -48CLAIMS:1. A method comprising the steps of : manufacturing a continuous glass float ribbon having a first major surface and an opposite major surface defined as a second major surface, said first major surface having tin diffused therein which is characteristic of forming a glass float ribbon on a molten tin bath;positioning a chemical vapour deposition coating apparatus over the surface of said glass float ribbon at a point in the manufacture of said glass float ribbon where said glass float ribbon has a temperature of at least about 400 °C . ;directing a metal oxide precursor which is selected from the group consisting of titanium tetrachloride, titanium tetraisopropoxide and titanium tetraethoxide in a carrier gas stream through said chemical vapour deposition apparatus over a surface of said glass float ribbon;and annealing said glass float ribbon to produce titanium dioxide in said crystalline phase as a photocatalyticallyactivated, self-cleaning coating over said glass float ribbon ;whereby said coating has a photocatalytically-activated, self-cleaning reaction rate of least about 2x10” crrf'mirh 1 .
  2. 10
    13. In the method of any one of claims 9 to 12, the improvement further comprising:depositing said sodium ion diffusion barrier layer over a surface of said glass float ribbon as;silicon oxide, and providing the thickness of said barrier layer to be at least 500 A.
  3. 11
    14. A method comprising the steps of:providing a glass article having at least one surface by means of a float manufacturing process;depositing a photocatalytically-activated, self-cleaning coating over a surface of said glass article by a process which is selected from the group consisting of chemical vapour deposition and spray pyrolysis during said float glass manufacturing process so that said coating has CA 02283222 2004-03-04 -52titanium dioxide in the crystalline phase and has a thickness in the range of at least 200 A and less than 1 micron, the temperature of said glass float ribbon during deposition of said coating being at least about 400°C;whereby said coating has a photocatalytically-activated sel f - cleaning reaction rate of at least about 2x10' crimin'
  4. 12
    15. A method comprising the steps of:providing an article of manufacture having at least one surface ;depositing a sodium ion diffusion barrier layer by a process which is selected from the group consisting of chemical vapour deposition, magnetron sputtered vacuum deposition (MSVD', and spray pyrolysis having a thickness of 0 at least 100 A over said surface;and depositing a photocatalytically-activated, self - cleaning coating by a process which is selected from the group consisting of chemical vapour deposition, MSVD, and spray pyrolysi£3 over said sodium ion diffusion barrier layer, the temperature of said glass float ribbon during deposition of said coating being at least about 400 3 C;whereupon said sodium ion diffusion barrier layer inhibits migration of sodium ions from the surface of said article to said photocatalytically-activated, self-cleaning coating ;whereby said coating has a photocatalytically-actdated self-cleaning reaction rate of at least about 2x10“' cm miiv
  5. 16
    20. The method of any one of claims 15 to 19, which comprises selecting said photocatalytically-activated, self-cleaning coating to have a photocatalytic reaction rate of at least about 2xlCh' cnf'mib' .
  6. 18
    22. Method of any one of claims 15 to 21, which comprises selecting said article to be from the group consisting of glass sheet, continuous glass float ribbon, plastic substrate, metal substrate and an enameled substrate.
  7. 19
    23. Method of any one of claims 15 to 22, which comprises selecting said chemical vapour deposition process to have a minimum temperature of the article to provide sufficient decomposition of the titanium precursor of about 400°C.
  8. 20
    24. Method of any one of claims 15 to 22, which comprises effecting spray pyrolysis by providing metal-containing precursors that are selected from the group consisting of relatively water-insoluble organometallic reactants and metal acetylacetonate compounds, which are jet milled or wet ground to a particle size of less than about 10 microns and are suspended in an aqueous medium by the use of a chemical wetting agent, and selected a minimum temperature of the article to provide sufficient decomposition of said precursor to be about 400 °C.
  9. 21
    25. Method of any one of claims 15 to 22, which comprises effecting MSVD by heating said article to a temperature in the range of about 400°C. to about 600°C. so that the MSVD sputtered coating on said substrate crystallizes during deposition from a target of metal sputtered in an argon/oxygen atmosphere having about 5 to 50% oxygen, at a pressure of about 5 to 10 millitorr to sputter deposit a coating of desired thickness on said article. CA 02283222 2004-03-04 -5526. Method of any one of claims 15 to 25, which comprisses selectincj said photocatalytically-activated sel f - cleaning coating to have a minimum thickness of about 250 A to permit a sufficient portion of said coating to remain free of sodium ion poisoning and to retain its activity.
  10. 22
    27. In a method for forming a glass float ribbon wherein the method comprises the steps of melting glass batch materials in a furnace to provide molten glass, delivering said molten glass onto a bath of molten tin, pulling said molten glass across said bath of molten tin whereupon said glass is sized and controllably-cooled to form a dimensionally-stable glass float ribbon, removing said glass float ribbon from said bath of molten tin, moving said glass float ribbon by a conveying roller through a lehr to anneal said glass float ribbon, and moving said glass float ribbon to a cuttincj station on conveying rollers where said glass float ribbon is cut into glass sheets, the improvement comprising:depositing, as said glass float ribbon is formed, a photocatalytically-activated, self-cleaning coating over said glass float ribbon which has a major surface and an opposing other major surface, wherein said major surface which contacted said bath of molten tin has tin diffused therein, so that the deposition is on said major surface having said diffused tin, which forms a sodium ion barrier layer for the photocatalytically-activated, self-cleaning coating, the temperature of said glass float ribbon during deposition of said coating being at least about 400 c C;whereby said coating has a photocatalytically-activated self-cleaning reaction rate of at least about 2x10' cummin
  11. 23
    28. A method comprising the steps of:manufacturing a continuous glass float ribbon having a first major surface and an opposite major surface defined as a second major surface, said first major surface having tin diffused therein which is characteristic of forming said glass float ribbon on a molten tin bath;CA 02283222 2004-03-04 -56positioning a chemical vapour deposition coating apparatus over a surface of said glass float ribbon at a point in the manufacture of said glass float ribbon where said glass float ribbon has a temperature of at least about 400 °C . ;directing a metal oxide precursor which is selected from the group consisting of titanium tetrachloride, titanium tetraisopropoxide and titanium tetraethoxide in a carrier gas stream through said chemical vapour deposition apparatus over a surface of said glass float ribbon;and annealing said glass float ribbon to produce titanium dioxide in the crystalline phase as a photocatalyticallyactivatable self-cleaning coating over the glass float ribbon;whereby said coating has a photocatalytically-activated, self-cleaning reaction rate of least about 2x10' cnrmib' .
  12. 24
    29. A method comprising the steps of:manufacturing a continuous glass float ribbon having a first major surface and an opposite major surface defined as a second major surface, said first major surface having tin diffused therein which is characteristic of forming said glass float ribbon on a molten tin bath;depositing a photocatalytically-activatable, selfcleaning coating over at least one of said major surfaces by positioning a spray pyrolysis coating apparatus over a surface of said glass float ribbon at a point in the manufacture of said glass float ribbon where said glass;float ribbon has a temperature of at least about 400°C.;directing an aqueous suspension of titanyl acetylacetonate and a wetting agent in an aqueous medium, wherein the concentration of said titanyl acetylacetonate is in the range from about 5 to about 40 weight percent of the aqueous suspension, through said spray pyrolysis coating apparatus over a surface of the float ribbon;and annealing said glass float ribbon in air to produce· titanium dioxide in the crystalline phase as a CA 02283222 2004-03-04 -57photocatalytically-activatable self-cleaning coating over said glass float ribbon;whereby said coating has a photocatalytically-activated self-cleaning reaction rate of at least about 2x10 cm min~
  13. 25
    30. A method comprising the steps of:providing a glass article having at least one surface which is produced by a float manufacturing process;depositing a photocatalytically-activatable, selfcleaning coating over a surface of said glass article by a process which is selected from the group consisting of chemical vapour deposition and spray pyrolysis during the glass manufacturing process so that said coating has titanium dioxide in the crystalline phase and has a o thickness in the range of at least 200 A and less than 1 micron ;whereby said coating has a photocatalytically-activated, sel f - cleaning reaction rate of at least about 2x10“’ ont min'·
  14. 26
    31. A method comprising the steps of:providing an article of manufacture having at least, one surface at a temperature of at least 400°C;depositing a sodium ion diffusion barrier layer by a process which is selected from the group consisting of chemical vapour deposition, magnetron sputtered vacuum deposition (MSVD), and spray pyrolysis having a thickness of at least 100 A over said surface;and depositing a photocatalytically-activatable, selfcleaning coating by a process which is selected from the group consisting of chemical vapour deposition, MSVD, and spray pyrolysis over said sodium ion diffusion barrier layer ;whereupon said sodium ion diffusion barrier layer inhibits migration of sodium ions from the surface of said article to said photocatalytically-activatable, selfcleaning coating;CA 02283222 2004-03-04 -58whereby said coating has a photocatalytically-actii^ated self-cleaning reaction rate of at least about 2x10” cm’' mm
  15. 27
    32 . In a method for forming a glass float ribbon wherez.n the method comprises the steps of melting glass batch materials in a furnace to provide molten glass, delivering said molten glass onto a bath of molten tin, pulling said molten glass across said bath of molten tin, whereupon said glass is sized and controllably-cooled to form a dimensionally-stable glass float ribbon, removing said glass float ribbon from said bath of molten tin, moving said glass float ribbon by a conveying roller through a lehr to anneal said glass float ribbon and moving said glass float ribbon to a cutting station on conveying rollers where said glass float ribbon is out into glass sheets, the improvement comprising:depositing, by a process which is selected from the group consisting of spray pyrolysis and chemical vapour deposition, a crystalline phase of a photocatalyticallyactivatable, self-cleaning coating over a surface of said glass float ribbon as said glass float ribbon is formed, the temperature of said glass float ribbon during deposition of said coating being at least about 400 c C;whereby said coating has a photocatalytically-acti\ r ated self-cleaning reaction rate of at least about 2x10' cnfmib'.
  16. 28
    33. In a method for forming a glass float ribbon wherein the method comprises the steps of melting glass batch materials in a furnace to provide molten glass, delivering said molten glass onto a bath of molten tin, pulling said molten glass across said bath of molten tin, whereupon said glass is sized and controllably-cooled to form a dimensionally-stable glass float ribbon, removing said glass float ribbon from said bath of molten tin, moving said glass float ribbon by a conveying roller through a lehr to anneal said glass float ribbon and moving said glass float ribbon to a cutting station on conveying rollers where said glass float ribbon is cut into glass sheets, the improvement comprising:CA 02283222 2004-03-04 -59depositing, as said glass float ribbon is formed, a photocatalytically-activatable, self cleaning coating over said glass float ribbon which has a major surface and an opposing other major surface, wherein said major surface which contacted said tin bath has tin diffused therein, so that the depositing is on the major surface having the diffused tin which forms a sodium ion barrier layer for the photocatalytically-activatable, self cleaning coating, the temperature of said glass float ribbon during deposition of said coating being at least about 400°C;whereby said coating has a photocatalytically-activated self-cleaning reaction rate of at least about 2x10' cm'min
  17. 29
    34. A method for forming a glass float ribbon wherein the method comprises the steps of melting glass batch materials in a furnace to provide molten glass, delivering said molten glass onto a bath of molten tin, pulling said molten glass across said bath of molten tin, whereupon said glass is; sized and controllably-cooled to form a dimensionally-stable glass float ribbon, removing said glass float ribbon from said bath of molten tin, moving said glass float ribbon by a conveying roller through a lehr to anneal said glass float ribbon, moving said glass float ribbon to a cutting station on conveying rollers where said glass float ribbon is cut into glass sheets, the improvement comprising:depositing, by deposition which is selected from the group consisting of spray pyrolysis and chemical vapour deposition, a photocatalytically-activated, self-cleaning coating over a surface of said glass float ribbon at a point in the manufacture of said glass float ribbon where said glass float ribbon has a temperature of at least about 400°C, said coating having a photocatalytically-activated, self-cleaning reaction rate of at least about 2x10’ cmmin
  18. 30
    35. A photocatalytically-activated, self - cleaning article of manufacture comprising:CA 02283222 2004-03-04 -60a) a substrate having at least one surface and containing sodium;b) a photocatalytically-activated, self-cleaning coating deposited over the surface of said substrate by a process which is selected from the group consisting of chemical vapour deposition, magnetron sputtered vacuum deposition and spray pyrolysis, said coating being at least 200 Angstroms;and c) a sodium ion poisoning prevention layer which is selected from the group consisting of i) a sodium ion diffusion barrier layer disposed between said substrate and said photocatalytically-activated self-cleaning coating with a thickness of at least about o 100 A to inhibit migration of sodium ions from said substrate to said photocatalytically-activated self-cleaning coating, and ii) a fraction of the overall thickness of said photocatalytically-activated self-cleaning coating, where said photocatalytically-activated, self-cleaning coating has a thickness that exceeds a minimum thickness so that the sodium ions are able to migrate only through the fraction of the overall thickness of the photocatalytically-activated self-cleaning coating during any time period at which the temperature of substrate exceeds a temperature which permits sodium ion migration, so that the thickness of the photocatalytically-activated self-cleaning coating opposite from the substrate surface is able to maintain photocatalytically-activated self-cleaning coating activity;wherein said photocatalytically-activated, self-cleaning coating has a photocatalytically-activated, self-cleaning reaction rate of at least about 2x10' cnf'mib' .
  19. 36
    41. The photocatalytically-activated self-cleaning article of any one of claims 35 to 40, wherein said photocatalytic reaction rate is determined as the rate of removal of a stearic acid test film in the range of 100 to 200 Angstrom thick which has been deposited over said photocatalyticallyactivated, self-cleaning coating, wherein said photocatalytic reaction rate is quantitatively determined as the slope of a curve which is formed by a plotting of a plurality of Fourier Transform Infrared Spectrophotometer measurements of the integrated intensity of carbon-hydrogen stretching vibrational absorption bands of the stearic acid test film versus an accumulated time of exposure of said photocatalytically-activated self-cleaning coating to CA 02283222 2004-03-04 -62ultraviolet radiation of a frequency within the range of about 300 to 400 nanometers provided by an ultraviolet radiation source which is positioned over said photocatalytically-activated self-cleaning coating and having an intensity of about 20 watts per square meter as measured at the surface of the photocatalytically-actii r ated self-cleaning coating.
  20. 38
    43. The photocatalytically-activated self-cleaning article of any one of claims 35 to 42, wherein said photocatalytically-activated self-cleaning coating is deposited directly over said substrate.
  21. 39
    44. The photocatalytically-activated self-cleaning article of any one of claims 35 to 42, further comprising at least one layer which is interposed between said photocatalytically-activated, self-cleaning coating and said substrate .
  22. 40
    45. The photocatalytically-activated, self-cleaning art.icle of any one of claims 35 to 44, wherein said photocatalytically-activated self-cleaning coating, comprises one layer of a multilayer stack of coatings which is deposited over said substrate, and wherein said photocatalytically-activated, self-cleaning coating is the uppermost layer of said multilayer stack.
  23. 41
    46. The photocatalytically-activated, sel f - cleaning art.icle of any one of claims 35 to 44, wherein said photocatalytically-activated, self-cleaning coating comprises one layer of a multilayer stack of coatings which is deposited over said substrate, wherein said CA 02283222 2004-03-04 -63photocatalytically-activated, self-cleaning coating is a layer other than the uppermost layer of said multilayer stack .
  24. 42
    47. The photocatalytically-activated self-cleaning article of any one of claims 35 to 46, wherein said sodium ion diffusion barrier layer is deposited over said substrate by a process which is selected from the group consisting of chemical vapour deposition, magnetron sputtered vacuum deposition and spray pyrolysis.
  25. 45
    50. The photocatalytically-activated, self-cleaning art.icle of any one of claims 35 to 49, wherein said sodium ion diffusion barrier layer is selected from the group consisting of a crystalline metal oxide, an amorphous metal oxide and mixtures thereof. CA 02283222 2004-03-04 -6451. The photocatalytically-activated, self-cleaning article of claim 50, wherein said sodium ion diffusion barrier layer is selected from the group consisting of tin oxides, silicon oxides, titanium oxides, zirconium oxides, fluorine-doped tin oxides, aluminum oxides, magnesium oxides, zinc oxides, cobalt oxides, chromium oxides, magnesium oxides, iron oxides and mixtures thereof .
  26. 48
    54. The photocatalytically-activated, self-cleaning article of any one of claims 35 to 53, wherein said substrate is selected from the group consisting of glass, plastic, metal, enamel and mixtures thereof.
  27. 49
    55. The photocatalytically-activated, self-cleaning article of any one of claims 35 to 53, wherein said substrate is a glass substrate having a first major surface and an opposite major surface defined as a second major surface, said first major surface having a thin layer of a tin oxide diffused therein which is characteristic of forming a glass ribbon over a molten tin bath, at least one of said major surfaces having said photocatalytically-activated, self-cleaning metal oxide coating deposited thereon.
  28. 50
    56. The photocatalytically-activated self-cleaning article of any one of claims 35 to 55, wherein said photocatalytically-activated, self-cleaning coating further comprises a metal oxide which is selected from the group consisting of titanium oxides, iron oxides, silver oxides, copper oxides, tungsten oxides, aluminum oxides, silicon CA 02283222 2004-03-04 -65oxides, zinc stannates, molybdenum oxides, zinc oxides, strontium titanate and mixtures thereof.
  29. 53
    59. The photocatalytically-activated self-cleaning article of any one of claims 35 to 53 or 55 to 58, wherein sait substrate is selected from the group consisting of a glass sheet and a continuous float glass ribbon.
Independent claims29