Claims
- 1. A method of depositing a polymer coating on a substrate surface comprising
providing a fluid that is a dispersion or a solution of said polymer or a precursor of said polymer in a liquid medium, forming a finely divided aerosol of said fluid, applying said aerosol to said substrate surface to coat said surface with said fluid, and substantially simultaneously applying a flame to said fluid so as to remove said liquid medium and to produce said coating.
- 2. The method of claim 1 wherein said polymer is deposited to form a coating of about 50 micron thickness or less.
- 3. The method of claim 1 wherein said polymer is deposited to form a thin film coating that is about 10 microns thick or less.
- 4. The method of claim 1 wherein said flame co-deposits a material along with said fluid.
- 5. The method of claim 4 wherein said co-deposited material comprises an oxide.
- 6. The method of claim 5 wherein said co-deposited material is selected from the group consisting of a metal oxide, a metalloid oxide, a mixed metal/metalloid oxide, and mixtures thereof.
- 7. The method of claim 5 wherein said co-deposited material is clay.
- 8. The method of claim 5 wherein said co-deposited material comprises a metal.
- 9. The method according to claim 1 wherein said deposited polymer is selected from the group consisting of polymethylmethacrylate, polyethylene glycol, polyacrylic acid, polyester, polyamide, polyaniline, polyolefin, and mixtures thereof.
- 10. The method according to claim 1 wherein said deposited polymer comprises polyimide.
- 11. The method according to claim 1 wherein said deposited polymer comprises polyamide/imide.
- 12. The method according to claim 1 wherein said deposited polymer comprises a cross-linking epoxy resin.
- 13. The method according to claim 1 wherein said deposited polymer comprises polysiloxane.
- 14. The method according to claim 1 wherein said deposited polymer comprises polyurethane.
- 15. The method according to claim 1 wherein said deposited polymer comprises a mixture of poly(meth)acrylate and poly(meth)acrylic acid.
- 16. The method according too claim 1 wherein said deposited polymer comprises a mixture of poly(meth)acrylate and polystyrene.
- 17. The method according too claim 1 wherein said deposited polymer comprises a mixture of poly(meth)acrylate and polyimide.
- 18. The method according too claim 1 wherein said deposited polymer comprises a mixture of poly(meth)acrylate and epoxy.
- 19. The method according to claim 1 wherein said deposited polymer comprises a mixture of polyimide and epoxy.
- 20. The method according to claim 1 wherein said flame is produced from a solution that contains finely divided particular material
- 21. The method according to claim 1 wherein said polymer-containing fluid contains finely divided particulate matter.
- 22. The method according to claim 1 further comprising depositing from said flame a layer of inorganic material, either prior to depositing said polymer coating or subsequent to depositing said polymer coating.
- 23. The method according to claim 22 wherein said inorganic material layer is formed of material selected from the group consisting of oxides, metals, and mixtures thereof.
- 24. The method according to claim 22 wherein said fluid is a solution of polyamic acid in a liquid, whereby said coating comprises a material selected from a polyimide, a polyimide/polyamide, or a mixture thereof.
- 25. The method according to claim 24 wherein said thermal energy is supplied from a flame produced by burning a flammable fluid, and said flammable fluid contains a precursor chemical for a catalyst promoting conversion of polyamic acid to polyimide, polyimide/amide or mixtures thereof.
- 26. The method according to claim 25 wherein said catalyst precursor chemical comprises a precursor for platinum.
- 27. The method according to claim 1 wherein said aerosol has a mean droplet size of about 10 microns or smaller.
- 28. The method according to claim 1 wherein said aerosol has a mean droplet size of about 1 micron or smaller.
- 29. The method according to claim 1 wherein the step of providing said thermal energy comprises providing a plurality of flames disposed in surrounding relationship to said aerosol.
- 30. A thin film layer of 5 microns or less thickness comprising a homogeneous mixture of a polymer and an inorganic material selected from, nitrides, carbides, borides, metal oxides, metalloid oxides, mixtures of metal oxides, mixtures of metalloid oxides, and mixtures of metal and metalloid oxides.
- 31. The film of claim 30 having a thickness of 1 micron or less.
- 32. The thin film of claim 30 wherein said polymer and said inorganic material are present at weight ratios ranging from 1:99 to 99:1.
- 33. The thin film of claim 30 wherein said inorganic material is the product of a flame.
- 34. The thin film of claim 30 wherein said inorganic material is a mixed metal oxide.
- 35. The thin film of claim 30 wherein said inorganic material is selected from strontium titanate, barium titanate, and barium strontium titanate.
- 36. The thin film of claim 30 wherein said inorganic material is selected from the group consisting of phosphates, borates and carbonates.
- 37. The thin film of claim 30 wherein said polymer is selected from the group consisting of polyimide, polyamide/imide, polyepoxide, polyamine, polysiloxane, polyacrylate, polyester, polyurethane, and mixtures thereof.
- 38. The thin film of claim 30 wherein said polymer is polyimide or polyamide/imide.
- 39. The thin film of claim 30 wherein said polymer is polysiloxane.
- 40. The thin film of claim 30 wherein said polymer is polyepoxide.
- 41. A multi-layer laminate comprising at least two outer layers of polymeric material between about 10 and about 1000 nanometers thick and at least one inorganic oxide layer between about 10 and about 1000 nanometers thick.
- 42. The multi-layer laminate according to claim 41 wherein said polymeric material comprises polyimide.
- 43. The multi-layer laminate according to claim 41 wherein said polymeric material comprises polyimide/polyamide.
- 44. The multi-layer laminate according to claim 41 wherein said polymeric material comprises epoxy.
- 45. The multi-layer laminate according to claim 41 wherein said polymeric material comprises polyurethane.
- 46. The multi-layer laminate according to claim 41 wherein said polymeric material comprises polyacrylic acid.
- 47. The multi-layer laminate according to claim 41 wherein said polymeric material comprises polysiloxane.
- 48. The multi-layer laminate according to claim 41 wherein said oxide comprises silica.
- 49. The multi-layer laminate according to claim 41 wherein said oxide comprises a metal oxide.
- 50. The multi-layer laminate according to claim 41 wherein said at least one oxide layer is porous.
- 51. The multi-layer laminate according to claim 41 wherein said at least one oxide layer is porous having a porosity of between about 5 and about 60 percent.
- 52. The multi-layer laminate according to claim 41 wherein said at least one oxide layer is dense.
- 53. A method of coating a surface of a substrate with a polysiloxane coating, the method comprising,
a) providing an oligomer solution comprising a polymerize-able polysiloxane oligomer composition dissolved in a carrier solvent, b) providing a precursor fluid comprising an oxidize-able silica precursor dissolved in a carrier liquid, c) producing an aerosol of said oligomer solution and directing said aerosol at a first location on said substrate surface, and d) simultaneously producing an aerosol of said precursor fluid, igniting said precursor solution aerosol to produce a flame, and directing said flame to either said first location on said substrate surface or to a second location on said substrate surface closely adjacent to said first location, e) said aerosol of said oligomer solution in conjunction with said flame functioning to react components of said oligomer solution and said precursor fluid, thereby producing the polysiloxane coating on said substrate surface.
- 54. The method according to claim 53 where at least one of said oligomer solution or said precursor fluid provides a catalyst or a precursor for a catalyst that promotes polymerization of said polysiloxane oligomer composition.
- 55. The coating produced by the method of claim 53.
- 56. The method according to claim 53 wherein said oligomer solution comprises:
i) oligomer of formula: CH2═CH—[—Si(R)2—O—]n—CH═CH2 (I) where the Rs are the same are different and are selected from C1-3alkyl and phenyl, and n=2-10; plus ii) oligomer of formula: Si(R1)3—[S(H)(R)—O—]n—Si(R1)3 (II) where the Rs are the same are different and are selected from C1-3alkyl and phenyl the R1s are the same or different and are selected from C1-3alkyl and phenyl; and n=2-10.
- 57. The method according to claim 56 wherein the weight ratio of oligomer (I) to oligomer (II) is between about 25:1 and about 1:1.
- 58. The method according to claim 56 wherein the weight ratio of oligomer (I) to oligomer (II) is between about 15:1 and about 5:1.
- 59. The method according to claim 56 wherein said oligomer solution contains between about 200 and about 500 ppm, based on total weight of oligomer (I) and oligomer (II), an allyltrialkylsilane of formula:
- 60. The method according to claim 53 wherein said substrate is glass.
- 61. The method according to claim 53 wherein said substrate is paper.
- 62. The method according to claim 53 wherein said substrate is metal.
- 63. The method according to claim 62 wherein a seed layer of platinum is deposited on said metal substrate prior to deposition of said polysiloxane layer.
- 64. The method according to claim 54 wherein said catalyst comprises platinum or a platinum-containing compound.
- 65. The method according to claim 54 wherein said catalyst comprises tin oxide.
- 66. The method according to claim 54 wherein said catalyst comprises zinc oxide.
- 67. The method according to claim 54 wherein said catalyst comprises ceria.
- 68. The method according to claim 54 wherein said catalyst comprises titania.
- 69. Apparatus for depositing material on a substrate comprising
a source of a liquid fluid comprising at least one substance, means for atomizing said liquid fluid and directing said atomized fluid at a first location on said substrate to deposit said fluid thereon, means for providing a flame that produces heated gases directed at either said first location on said substrate or a second location closely adjacent said first location, whereby said heated gases have a physical and/or chemical effect on said deposited fluid.
- 70. The apparatus according to claim 69 wherein said energy source comprises a plurality of flames disposed in surrounding relationship to said aerosol.
- 71. The apparatus according to claim 69 wherein said means for atomizing said liquid fluid and directing said atomized fluid is a first distance from said substrate and said plurality of flames is a second distance from said substrate, said first distance being one of greater than, less than or equal to, said second distance.
- 72. The apparatus according to claim 69 wherein said means for at g said liquid fluid and directing said atomized fluid has a first axis and said plurality of flames each have a flame axis and said first axis and said second axis form an angle therebetween, said angle being between 0 and 90 degrees.
- 73. A method of applying a film of polymer 10 microns or less to a substrate, the substrate comprising suspending particulates of said polymer of mean particle size 1 micron or less in a carrier liquid to a concentration of 10 wt % or less based on weight of the carrier liquid, atomizing said suspension and directing the atomized suspension at the substrate to deposit the suspension on the substrate, and simultaneously applying heat to said deposited suspension sufficient to vaporize carrier liquid and fuse said particles into a thin film that adheres to the substrate.
- 74. The method of claim 73 wherein said particulates are of mean particle size of 0.5 micron or less.
- 75. The method of claim 73 wherein the concentration of polymer in suspension is 1 wt % or less based on the weight of liquid.
- 76. The method of claim 73 wherein the source of said heat is a flame.
- 77. The method of claim 73 wherein the source of said flame and wherein said flame contains or produces material that co-deposits with said polymer.
- 78. The method of claim 73 wherein the polymer is polytetrafluoroethylene.
- 79. The method of claim 73 wherein the polymer is a liquid crystalline polymer
- 80. A method of preparing a dielectric layer comprising depositing a thin film metal oxide and/or metalloid oxide on a substrate and subsequently depositing a thin polymer layer on said thin film metal oxide and/or metalloid oxide layer, whereby said polymer layer fills any defect in said thin film metal
Government Interests
[0001] Portions of the subject matter of this application were developed under National Institute of Standards and Technology contract no. ATP 70NANB8H4071. The U.S. Government has rights in this invention pursuant thereto.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/US01/20757 |
6/27/2001 |
WO |
|