Claims
- 1. A photochromic article comprising, in combination:
(a) an organic polymeric substrate, (b) a photochromic organic polymeric coating appended to at least one surface of said polymeric substrate, said polymeric coating comprising a photochromic amount of at least one organic photochromic material, and (c) radiation-cured, acrylate-based film coherently appended to said photochromic polymeric coating, said radiation-cured, acrylate-based film being:
(1) resistant to removal by aqueous inorganic caustic, (2) compatible with abrasion resistant organo silane-containing coating, and (3) more scratch resistant than said photochromic polymeric coating.
- 2. The photochromic article of claim 1 wherein the polymeric substrate is selected from thermoset and thermoplastic materials having a refractive index of from 1.48 to 1.74.
- 3. The photochromic article of claim 2 wherein the polymeric substrate is a substrate selected from thermoset substrates prepared from polymerizable compositions comprising allyl diglycol carbonate monomer(s), substrates prepared from thermoplastic polycarbonates, substrates prepared from polyurea urethanes and substrates prepared from compositions comprising the reaction product of polyfunctional isocyanate(s) and polythiol or polyepisulfide monomer(s).
- 4. The photochromic article of claim 3 wherein the allyl diglycol carbonate is diethylene glycol bis(allyl carbonate).
- 5. The photochromic article of claim 1 wherein the photochromic organic polymeric coating is selected from photochromic polyurethane-based coatings, photochromic poly(meth)acrylic-based coatings, and photochromic epoxy resin-based coatings.
- 6. The photochromic article of claim 1 wherein the photochromic material is selected from photochromic spirooxazines, benzopyrans, naphthopyrans, fulgides, metal dithizonates and mixtures of such photochromic materials.
- 7. The photochromic article of claim 6 wherein the photochromic naphthopyran is selected from naphtho[1,2-b]pyrans, naphtho[2,1-b]pyrans, spiro-9-fluoreno[1,2-b]pyrans, phenanthropyrans, quinopyrans and indeno-fused naphthopyrans, and the spirooxazine is selected from naphthoxazines and spiro (indoline)pyridobenzoxazines.
- 8. The photochromic article of claim 1 wherein the photochromic material of the photochromic coating comprises (a) at least one photochromic organic material having a visible lambda max of from 400 to less than 550 nanometers, and (b) at least one photochromic organic material having a visible lambda max of from 550 to 700 nanometers.
- 9. The photochromic article of claim 1 wherein the active photochromic material in the photochromic coating is present in an amount of from 0.5 to 40 weight percent.
- 10. The photochromic article of claim 1 wherein the photochromic coating has a thickness of from 5 to 200 microns.
- 11. The photochromic article of claim 1 wherein the photochromic coating has a thickness of from 10 to 50 microns.
- 12. The photochromic article of claim 1 wherein the photochromic coating is softer than the acrylate-based film.
- 13. The photochromic article of claim 1 wherein a primer coating is interposed between the organic polymeric substrate and the photochromic organic polymeric coating.
- 14. The photochromic article of claim 1 wherein the radiation-cured acrylate-based film is prepared from a composition comprising a mixture of from 10 to 85 weight percent of cationic initiated epoxy monomer(s) and 90 to 15 weight percent of free-radical initiated acrylate monomer(s).
- 15. The photochromic article of claim 1 wherein the radiation-cured acrylate-based film has a thickness of from 2 to 20 microns.
- 16. The photochromic article of claim 1 wherein the acrylate-based film comprises more than one acrylate-based resin layer.
- 17. The photochromic article of claim 1 further comprising an abrasion-resistant coating affixed to the surface of the acrylate-based film.
- 18. The photochromic article of claim 17 wherein the abrasion-resistant coating is an organo silane-based coating.
- 19. The photochromic article of claim 17 further comprising an antireflective coating affixed to the surface of the abrasion-resistant film.
- 20. The photochromic article of claim 1 wherein the average haze gain of the radiation-cured acrylate-based film is less than 20, as measured by the steel wool scratch test.
- 21. A photochromic article comprising, in combination:
(a) an organic polymeric substrate selected from thermoset substrates prepared from polymerizable compositions comprising allyl diglycol carbonate monomer(s), substrates prepared from thermoplastic polycarbonates, substrates prepared from polyurea urethanes and substrates prepared from compositions comprising the reaction product of polyfunctional isocyanate(s) and polythiols or polyepisulfide monomer(s), said substrate having a refractive index of from 1.48 to 1.74, (b) a photochromic organic polymeric coating appended to at least one surface of said polymeric substrate, said polymeric coating comprising a photochromic amount of at least one organic photochromic material selected from spirooxazines, benzopyrans, naphthopyrans, fulgides, metal dithizonates and mixtures of such photochromic materials, said photochromic polymeric coating having a thickness of from 5 to 200 microns, and (c) radiation-cured, acrylate-based film coherently appended to said photochromic polymeric coating, said radiation-cured, acrylate-based film having a thickness of from 2 to 20 microns, and being:
(1) resistant to removal by aqueous inorganic caustic, (2) compatible with abrasion resistant organo silane-containing coating, and (3) harder than the photochromic polymeric coating.
- 22. The photochromic article of claim 21 wherein the photochromic coating is selected from photochromic polyurethane-based coatings, photochromic poly(meth)acrylic-based coatings, and photochromic epoxy resin-based coatings, and has a thickness of from 10 to 50 microns.
- 23. The photochromic article of claim 22 wherein the average haze gain of the radiation-cured acrylate-based film is less than 20, as measured by the steel wool scratch test.
- 24. The photochromic article of claim 23 further comprising an abrasion-resistant coating affixed to the surface of the acrylate-based film.
- 25. The photochromic article of claim 24 wherein the abrasion-resistant coating is an organo silane-based coating.
- 26. The photochromic article of claim 25 further comprising an antireflective coating affixed to the surface of the abrasion-resistant film.
- 27. A photochromic article comprising, in combination:
(a) a transparent organic polymeric substrate having a refractive index of from 1.48 to 1.74, said substrate being selected from thermoset and thermoplastic substrates, (b) a transparent photochromic organic polymeric coating appended to at least one surface of said polymeric substrate, said photochromic polymeric coating comprising a photochromic amount of at least one organic photochromic material, and (c) transparent radiation-cured, acrylate-based film comprising at least one acrylate-based resin layer cohesively appended to said photochromic polymeric coating, said radiation-cured acrylate-based film being:
(1) resistant to removal by aqueous solutions of alkali metal hydroxide, (2) compatible with abrasion-resistant organo silane-containing coating, and (3) more scratch resistant than said photochromic polymeric coatings.
- 28. The photochromic article of claim 27 wherein the polymeric substrate is a substrate selected from thermoset substrates prepared from polymerizable compositions comprising allyl diglycol carbonate monomer(s), substrates prepared from thermoplastic polycarbonates, substrates prepared from polyurea urethanes, and substrates prepared from compositions comprising the reaction product of polyfunctional isocyanate(s) and polythiols or polyepisulfide monomer(s); and the photochromic organic polymeric coating is selected from photochromic polyurethane-based coatings, photochromic poly(meth)acrylic-based coatings, and photochromic epoxy resin-based coatings.
- 29. The photochromic article of claim 27 wherein the photochromic polymeric coating has a thickness of from 10 to 100 microns.
- 30. The photochromic article of claim 27 wherein the organic photochromic material is selected from photochromic spirooxazines, naphthopyrans, fulgides and mixtures of such photochromic materials.
- 31. The photochromic article of claim 27 wherein the active organic photochromic material in the photochromic coating is present in amounts of from 1 to 30 weight percent.
- 32. The photochromic article of claim 27 wherein the radiation-cured acrylate-based film has a thickness of from 2 to 15 microns.
- 33. The photochromic article of claim 27 wherein the radiation-cured acrylate-based film is prepared from a composition comprising a mixture of from 30 to 70 weight percent cationic initiated epoxy monomer(s) and from 70 to 30 weight percent free radical initiated acrylate monomer(s).
- 34. The photochromic article of claim 27 wherein the radiation-cured acrylate-based film is prepared from a polymerizable composition comprising from 10 to 85 weight percent of monofunctional acrylates and from 3 to 60 weight percent difunctional acrylates.
- 35. The photochromic article of claim 34 wherein the polymerizable composition further comprises from 5 to 30 weight percent trifunctional acrylates.
- 36. The photochromic article of claim 34 wherein the polymerizable composition further comprises from 3 to 15 weight percent of functional acrylates selected from the group consisting of tetraacrylates, pentaacrylates and mixtures of tetraacrylates and pentaacrylates.
- 37. The photochromic article of claim 35 wherein the polymerizable composition further comprises from 3 to 15 weight percent of functional acrylates selected from the group consisting of tetraacrylates, pentaacrylates and mixtures of tetraacrylates and pentaacrylates.
- 38. The photochromic article of claim 27 further comprising an abrasion-resistant coating affixed to the surface of the acrylate-based film.
- 39. The photochromic article of claim 38 wherein the abrasion-resistant coating is an organo silane-based coating
- 40. The photochromic article of claim 38 further comprising an antireflective coating affixed to the surface of the abrasion-resistant coating.
- 41. A photochromic article comprising, in combination:
(a) a transparent organic polymeric substrate having a refractive index of from 1.48 to 1.74, said substrate being selected from polymerizable compositions comprising allyl diglycol carbonate monomer(s), substrates prepared from thermoplastic polycarbonates, substrates prepared from polyurea urethanes, and substrates prepared from compositions comprising the reaction product of polyfunctional isocyanate(s) and polythiols or polyepisulfide monomer(s); substrates, (b) a transparent photochromic organic polymeric coating appended to at least one surface of said polymeric substrate, wherein said photochromic polymeric coating has a thickness of from 5 to 200 microns, is selected from photochromic polyurethane-based coatings, photochromic poly(meth)acrylic-based coatings and photochromic epoxy resin-based coatings, and comprises a photochromic amount of at least one organic photochromic material selected from photochromic spirooxazines, naphthopyrans, fulgides and mixtures of such photochromic materials, and (c) transparent radiation-cured, acrylate-based film comprising at least one acrylate-based resin layer cohesively appended to said photochromic polymeric coating, said radiation-cured acrylate-based film being:
(1) resistant to removal by aqueous solutions of alkali metal hydroxide, (2) compatible with abrasion-resistant organo silane-containing coating, and (3) more scratch resistant than said photochromic polymeric coating.
- 42. The photochromic article of claim 41 wherein the radiation-cured acrylate-based film has a thickness of from 2 to 15 microns.
- 43. The photochromic article of claim 42 wherein the average haze gain radiation-cured acrylate-based film is less than 20, as measured by the steel wool scratch test.
- 44. The photochromic article of claim 42 further comprising an abrasion-resistant coating affixed to the surface of the acrylate-based film.
- 45. The photochromic article of claim 44 wherein the abrasion-resistant coating comprises an organo silane-based coating.
- 46. The photochromic article of claim 44 further comprising an antireflective coating affixed to the surface of the abrasion-resistant film.
- 47. The photochromic article of claim 42 wherein the acrylate-based film is prepared from a composition comprising from 30 to 70 weight percent of cationic initiated epoxy monomer(s) and from 70 to 30 weight percent of free-radical initiated acrylate monomer(s).
- 48. The photochromic article of claim 42 wherein the radiation-cured acrylate-based film is prepared from a polymerizable composition comprising from 10 to 85 weight percent of monofunctional acrylates and from 3 to 60 weight percent of difunctional acrylates.
- 49. The photochromic article of claim 48 wherein the polymerizable composition further comprises from 5 to 30 weight percent trifunctional acrylates.
- 50. The photochromic article of claim 49 wherein the polymerizable composition further comprises from 3 to 15 weight percent of functional acrylates selected from the group consisting of tetraacrylates, pentaacrylates and mixtures of tetraacrylates and pentaacrylates.
- 51. The photochromic article of claim 47 wherein the average haze gain of the acrylate-based film is less than 20, as measured by the steel wool scratch test.
- 52. The photochromic article of claim 47 further comprising an organo silane-based abrasion-resistant coating affixed to the acrylate-based film.
- 53. The photochromic article of claim 52 further comprising an antireflective coating affixed to the surface of the abrasion-resistant coating.
- 54. A photochromic article comprising, in combination:
(a) a transparent polymeric substrate selected from thermoset substrate prepared from polymerizable compositions comprising allyl diglycol carbonate monomer(s), thermoplastic polycarbonate substrates, polyurea urethane substrates and substrates prepared from compositions comprising the reaction product of polyfunctional isocyanate(s) and polythiol(s) or polyepisulfide monomer(s), said substrate having a refractive index of between 1.48 and 1.74, (b) a transparent photochromic organic polymeric coating selected from photochromic polyurethane-based coatings, photochromic poly(meth)acrylic-based coatings, and photochromic epoxy resin-based coatings, said polymeric photochromic coating comprising a photochromic amount of at least one organic photochromic material, and (c) transparent, radiation-cured, acrylate-based film coherently appended to said photochromic coating, said radiation-cured, acrylate-based film being:
(1) resistant to removal by dilute aqueous solutions of alkali metal hydroxide, (2) compatible with abrasion-resistant coating comprising at least one organo-silane, and (3) more scratch resistant than said photochromic polymeric coating.
- 55. The photochromic article of claim 54 wherein the thermoset polymer is a polymer prepared from a polymerizable composition comprising allyl diglycol carbonate monomer, said polymer having a refractive index of from 1.50 to 1.67.
- 56. The photochromic article of claim 54 wherein the photochromic polymeric coating has a thickness of from 10 to 100 microns and the acrylate-based film has a thickness of from 2 to 15 microns.
- 57. The photochromic article of claim 56 wherein the photochromic material of the photochromic organic polymeric coating is selected from spirooxazines, naphthopyrans, fulgides and mixtures of such photochromic materials.
- 58. The photochromic article of claim 57 wherein the photochromic material in the photochromic organic polymeric coating is present in amounts of from 1 to 30 weight percent.
- 59. The photochromic article of claim 56 wherein the acrylate-based film is prepared from a composition comprising from 10 to 85 weight percent of cationic initiated epoxy monomer(s) and from 90 to 15 weight percent of free-radical initiated acrylate monomer(s).
- 60. The photochromic article of claim 59 further comprising an abrasion-resistant coating affixed to the surface of the acrylate-based film.
- 61. The photochromic article of claim 60 further comprising an antireflective coating affixed to said abrasion-resistant coating.
- 62. The photochromic article of claim 61 wherein the abrasion-resistant coating is an organo silane-based abrasion-resistant coating.
- 63. A photochromic optical article comprising, in combination:
(a) a transparent organic polymeric substrate selected from thermoset substrates prepared from a composition comprising allyl diglycol carbonate monomer(s), thermoplastic polycarbonate substrates, polyurea urethane substrates, and substrates prepared from a material comprising the reaction product of polyfunctional isocyanate(s) and polythiol(s) or polyepisulfide monomer(s), (b) an optically clear photochromic organic polymeric coating selected from poly(meth)acrylic-based coatings, epoxy resin-based coatings, and polyurethane-based coatings appended to at least one surface of the said polymeric substrate, the photochromic coating comprising a photochromic amount of at least one organic photochromic material, and (c) optically clear, radiation-cured acrylate-based film cohesively appended to said photochromic polymeric coating, the acrylate-based film being:.
(1) resistant to removal by dilute aqueous alkali metal hydroxide solution, (2) compatible with organo silane-containing abrasion-resistant coating, and (3) more scratch resistant than said photochromic polymeric coating.
- 64. The photochromic article of claim 63 wherein the polymeric substrate has a refractive index of from 1.48 to 1.74, the photochromic coating has a thickness of from 10 to 50 microns, and the radiation-cured acrylate-based film has a thickness of from 2 to 15 microns.
- 65. The photochromic article of claim 64 wherein the photochromic material of the photochromic coating comprise (a) at least one photochromic organic material having a visible lambda max of from 400 to 525 nanometers, and (b) at least one photochromic organic material having a visible lambda max of from 525 to 700 nanometers.
- 66. The photochromic article of claim 65 wherein the photochromic organic materials are selected from photochromic spirooxazines, naphthopyrans, fulgides and mixtures of such photochromic materials.
- 67. The photochromic article of claim 64 wherein the acrylate-based film is prepared from a polymerizable composition comprising from 10 to 85 weight percent of cationic initiated epoxy monomer(s) and 90 to 15 weight percent of free-radical initiated acrylate monomer(s).
- 68. The photochromic article of claim 63, wherein the article is an ophthalmic article.
- 69. The photochromic article of claim 68 wherein the ophthalmic article is a lens.
- 70. The photochromic article of claim 63 further comprising an organo silane-containing abrasion resistant coating affixed to the acrylate-based film.
- 71. The photochromic article of claim 70 further comprising an antireflective coating affixed to the organo silane-containing abrasion resistant coating.
- 72. A photochromic ophthalmic article comprising, in combination:
(a) a transparent polymeric substrate selected from thermoset substrates prepared from polymerizable compositions comprising polyol(altyl carbonate) monomer(s), substrates comprising thermoplastic polycarbonates, substrates comprising polyurea urethanes, and substrates prepared from the reaction product of polyflinctional isocyanate(s) and polythiols(s) or polyepisulfide monomers, said polymeric substrate having a refractive index of from 1.48 to 1.74, (b) an optically clear photochromic organic polymeric coating selected from polyurethane-based coatings, epoxy resin-based coatings, and poly(meth)acrylic-based coatings appended to at least one surface of said substrate, said photochromic polymeric coating containing a photochromic amount of at least one organic photochromic material, and (c) optically clear radiation-cured acrylate-based film coherently appended to said photochromic polymeric coating, said acrylate-based film being:
(1) resistant to removal by dilute aqueous solutions of inorganic caustic selected from sodium hydroxide and potassium hydroxide, (2) compatible with organo silane-containing abrasion-resistant coating, and (3) more scratch resistant than said photochromic polymeric coating.
- 73. The photochromic article of claim 72 wherein the ophthalmic article is a lens.
- 74. The photochromic article of claim 72 wherein the photochromic material is selected from spirooxazines, naphthopyrans, fulgides and mixtures of such photochromic materials.
- 75. The photochromic article of claim 74 wherein the thickness of the photochromic coating is from 10 to 100 microns, and the thickness of the acrylate-based film is from 2 to 15 microns.
- 76. The photochromic article of claim 75 wherein the average haze gain of the acrylate-based film is less than 20, as measured by the steel wool scratch test.
- 77. The photochromic article of claim 76 wherein the acrylate-based film comprises at least one layer prepared from a radiation-curable composition comprising from 10 to 85 weight percent of cationic initiated epoxy monomer(s) and from 90 to 15 weight percent of free-radical initiated acrylate monomer(s).
- 78. The photochromic article of claim 76 wherein the radiation-cured acrylate-based film is prepared from a polymerizable composition comprising from 0 to 75 weight percent of monofunctional acrylates and from 3 to 60 weight percent of difunctional acrylates.
- 79. The photochromic article of claim 78 wherein the polymerizable composition further comprises from 5 to 30 weight percent of trifunctional acrylates.
- 80. The photochromic article of claim 78 wherein the polymerizable composition further comprises from 3 to 15 weight percent of functional acrylates selected from the group consisting of tetraacrylates, pentaacrylates and mixtures of tetraacrylates and pentaacrylates.
- 81. The photochromic article of claim 79 wherein the polymerizable composition further comprises from 3 to 15 weight percent of functional acrylates selected from the group consisting of tetraacrylates, pentaacrylates and mixtures of tetraacrylates and pentaacrylates.
- 82. The photochromic article of claim 76 further comprising an organo silane-containing abrasion-resistant coating affixed to the surface of the acrylate film.
- 83. The photochromic article of claim 82 wherein the abrasion-resistant coating has a thickness of from 0.5 to 10 microns.
- 84. The photochromic article of claim 82 further comprising at least one antireflective coating appended to the abrasion-resistant coating.
- 85. A photochromic ophthalmic article comprising, in combination:
(a) a transparent polymeric substrate comprising a thermoset substrate prepared from a polymerizable composition comprising diethylene glycol bis(allyl carbonate) monomer(s), the substrate having a refractive index of from 1.50 to 1.67, (b) an optically clear photochromic organic polymeric coating selected from polyurethane-based coatings, epoxy resin-resin-based coatings, and poly(meth)acrylic-based coatings appended to at least one surface of said substrate, said photochromic polymeric coating having a thickness of from 10 to 100 microns, and containing a photochromic amount of at least one organic photochromic material, and (c) optically clear, radiation-cured, acrylate-based film cohesively appended to said photochromic coating, said radiation-cured acrylate-based film having a thickness of from 2 to 20 microns and being:
(1) resistant to removal by dilute aqueous solutions of alkali metal hydroxide, (2) compatible with organo silane-containing abrasion-resistant coating, and (3) more scratch resistant than said photochromic polymeric coating.
- 86. The photochromic ophthalmic article of claim 85 wherein a primer coating is interposed between the substrate and the photochromic coating, and the radiation-cured acrylate-based film is prepared from a polymerizable composition comprising from 10 to 85 weight percent of cationic initiated epoxy monomer(s) and from 90 to 15 weight percent of free-radical initiated acrylate monomer(s).
- 87. The photochromic ophthalmic article of claim 86 wherein the acrylate-based film has a haze gain of less than 8, as measured by the steel wool scratch test.
- 88. The photochromic ophthalmic article of claim 86 wherein the thickness of the acrylic-based film is reduced by less than 0.5 microns after two exposures to 12.5 weight percent aqueous potassium hydroxide at 60° C., each exposure being for four minutes.
- 89. The photochromic ophthalmic article of claim 86 further comprising an organo silane-containing abrasion-resistant coating affixed to the acrylate-based film.
- 90. The photochromic ophthalmic article of claim 89 wherein the photochromic coating is softer than the acrylate-based film, and the acrylate-based film is softer than the abrasion-resistant coating.
- 91. The photochromic ophthalmic article of claim 89 further comprising an antireflective coating appended to the abrasion-resistant coating.
- 92. The photochromic ophthalmic article of claim 85 wherein the article is a lens.
- 93. The photochromic ophthalmic article of claim 85 wherein the photochromic coating contains at least one organic photochromic material having a visible lambda max of from 400 to less than 550 nanometers, and (2) at least one organic photochromic material having a visible lambda max of from 550 to 700 nanometers
- 94. The photochromic ophthalmic article of claim 93 wherein the organic photochromic material is selected from the group consisting of spirooxazines, naphthopyrans, fulgides and mixtures of such photochromic materials.
- 95. The photochromic ophthalmic article of claim 86 wherein the acrylate-based film is prepared from a composition comprising from 30 to 70 weight percent of cationic initiated epoxy monomer(s) and from 70 to 30 weight percent of free-radical initiated acrylate monomer(s).
- 96. The photochromic ophthalmic article of claim 86 wherein the acrylate-based film is prepared from a composition comprising from 35 to 50 weight percent of cationic initiated epoxy monomer(s) and from 65 to 50 weight percent of free-radical initiated acrylate monomer(s).
- 97. A photochromic ophthalmic article comprising, in combination:
(a) a transparent polymeric substrate comprising a thermoplastic polycarbonate substrate, (b) an optically clear photochromic organic polymeric coating selected from polyurethane-based coatings, epoxy resin-resin-based coatings, and poly(meth)acrylic-based coatings appended to at least one surface of said substrate, said photochromic polymeric coating having a thickness of from 10 to 100 microns, and containing a photochromic amount of at least one organic photochromic material, and (c) optically clear, radiation-cured, acrylate-based film cohesively appended to said photochromic coating, said radiation-cured acrylate-based film having a thickness of from 2 to 20 microns and being:
(1) resistant to removal by dilute aqueous solutions of alkali metal hydroxide, (2) compatible with organo silane-containing abrasion-resistant coating, and (3) more scratch resistant than said photochromic polymeric coating.
- 98. The photochromic ophthalmic article of claim 97 wherein the radiation-cured acrylate-based film is prepared from a polymerizable composition comprising from 10 to 85 weight percent of cationic initiated epoxy monomer(s) and from 90 to 15 weight percent of free-radical initiated acrylate monomer(s).
- 99. The photochromic ophthalmic article of claim 97 wherein the thickness of the acrylic-based film is reduced by less than 0.5 microns after two exposures to 12.5 weight percent aqueous potassium hydroxide at 60° C., each exposure being for four minutes.
- 100. The photochromic ophthalmic article of claim 98 further comprising an organo silane-containing abrasion-resistant coating affixed to the acrylate-based film.
- 101. The photochromic ophthalmic article of claim 100 wherein the photochromic coating is softer than the acrylate-based film, and the acrylate-based film is softer than the abrasion-resistant coating.
- 102. The photochromic ophthalmic article of claim 100 further comprising an antireflective coating appended to the abrasion-resistant coating.
- 103. A photochromic ophthalmic article comprising, in combination:,
(a) a transparent polymeric polyurea urethane substrate, (b) an optically clear photochromic organic polymeric coating selected from polyurethane-based coatings, epoxy resin-resin-based coatings, and poly(meth)acrylic-based coatings appended to at least one surface of said substrate, said photochromic polymeric coating having a thickness of from 10 to 100 microns, and containing a photochromic amount of at least one organic photochromic material, and (c) optically clear, radiation-cured, acrylate-based film cohesively appended to said photochromic coating, said radiation-cured acrylate-based film having a thickness of from 2 to 20 microns and being:
(1) resistant to removal by dilute aqueous solutions of alkali metal hydroxide, (2) compatible with organo silane-containing abrasion-resistant coating, and (3) more scratch resistant than said photochromic polymeric coating.
- 104. The photochromic ophthalmic article of claim 103 wherein the radiation-cured acrylate-based film is prepared from a polymerizable composition comprising from 10 to 85 weight percent of cationic initiated epoxy monomer(s) and from 90 to 15 weight percent of free-radical initiated acrylate monomer(s).
- 105. The photochromic ophthalmic article of claim 103 wherein the thickness of the acrylic-based film is reduced by less than 0.5 microns after two exposures to 12.5 weight percent aqueous potassium hydroxide at 60° C., each exposure being for four minutes.
- 106. The photochromic ophthalmic article of claim 104 further comprising an organo silane-containing abrasion-resistant coating affixed to the acrylate-based film.
- 107. The photochromic ophthalmic article of claim 106 wherein the photochromic coating is softer than the acrylate-based film, and the acrylate-based film is softer than the abrasion-resistant coating.
- 108. The photochromic ophthalmic article of claim 106 further comprising an antireflective coating appended to the abrasion-resistant coating.
- 109. A photochromic article comprising, in combination:
(a) a transparent polymeric substrate comprising a thermoplastic polycarbonate substrate, (b) a transparent photochromic organic polymeric coating appended to at least one surface of said substrate, said photochromic polymeric coating having a thickness of from 5 to 200 microns, and containing a photochromic amount of at least one organic photochromic material, and (c) a transparent radiation-cured, acrylate-based film cohesively appended to said photochromic coating, said radiation-cured acrylate-based film being:
(1) resistant to removal by aqueous solutions of alkali metal hydroxide, (2) compatible with organo silane-containing abrasion-resistant coating, and (3) more scratch resistant than said photochromic polymeric coating.
- 110. The photochromic article of claim 109 wherein the thermoplastic polycarbonate substrate has an abrasion-resistant coating appended to at least one surface of the substrate.
- 111. The photochromic article of claim 110 wherein the abrasion-resistant coating is an organo silane based coating.
- 112. The photochromic article of claim 110 wherein the photochromic coating is selected from polyurethane-based coatings, epoxy resin-resin-based coatings, and poly(meth)acrylic-based coatings appended to at least one abrasion-resistant coated surface of said substrate, said photochromic polymeric coating having a thickness of from 10 to 100 microns.
- 113. The photochromic article of claim 112 wherein the organic photochromic material is selected from the group consisting of photochromic spirooxazines, benzopyrans, naphthopyrans, fulgides, metal dithizonates and mixtures of such photochromic materials, and such organic photochromic material is present in the photochromic polymeric coating in amounts of from 1 to 30 weight percent.
- 114. The photochromic article of claim 113 wherein the photochromic naphthopyran is selected from naphtho[1,2-b]pyrans, naphtho[2,1-b]pyrans spiro-9-fluoreno[1,2-b]pyrans, phenanthropyrans, quinopyrans and indeno-fused naphthopyrans, and the spirooxazine is selected from naphthoxazines and spiro (indoline)pyridobenzoxazines.
- 115. The photochromic article of claim 112 wherein the acrylate-based film has a thickness of from 2 to 20 microns.
- 116. The photochromic article of claim 115 wherein the acrylate-based film comprises at least one layer prepared from a radiation-curable composition comprising from 10 to 85 weight percent of cationic initiated epoxy monomer(s) and from 90 to 15 weight percent of free-radical initiated acrylate monomer(s).
- 117. The photochromic article of claim 115 wherein the radiation-cured acrylate-based film is prepared from a polymerizable composition comprising from 0 to 75 weight percent of monofunctional acrylates and from 3 to 60 weight percent of difunctional acrylates.
- 118. The photochromic article of claim 117 wherein the polymerizable composition further comprises from 5 to 30 weight percent of trifunctional acrylates.
- 119. The photochromic article of claim 117 wherein the polymerizable composition further comprises from 3 to 15 weight percent of functional acrylates selected from the group consisting of tetraacrylates, pentaacrylates and mixtures of tetraacrylates and pentaacrylates.
- 120. The photochromic article of claim 118 wherein the polymerizable composition further comprises from 3 to 15 weight percent of functional acrylates selected from the group consisting of tetraacrylates, pentaacrylates and mixtures of tetraacrylates and pentaacrylates.
- 121. The photochromic article of claim 115 wherein the photochromic article is an ophthalmic article, the thermoplastic polycarbonate substrate has a refractive index of from 1.50 to 1.67, and the photochromic polymeric coating and the acrylate-based film are optically clear.
- 122. The photochromic article of claim 121 wherein the photochromic ophthalmic article is a lens.
- 123. The photochromic article of claim 121 wherein the average haze gain of the radiation-cured acrylate-based film is less than 20, as measured by the steel wool scratch test, and the photochromic coating is softer than the acrylate-based film.
- 124. The photochromic article of claim 121 further comprising an abrasion-resistant coating appended to the acrylate-based film.
- 125. The photochromic article of claim 124 wherein the abrasion-resistant coating is an organo silane based coating.
- 126. The photochromic coating of claim 124 wherein the abrasion-resistant coating has a thickness of from 0.5 to 10 microns.
- 127. The photochromic article of claim 124 further comprising at least one antireflective coating appended to the abrasion-resistant coating.
- 128. A photochromic article comprising, in combination:
(a) a transparent polymeric substrate selected from thermoset substrate prepared from polymerizable compositions comprising allyl diglycol carbonate monomer(s), thermoplastic polycarbonate substrates, polyurea urethane substrates and substrates prepared from compositions comprising the reaction product of polyfunctional isocyanate(s) and polythiol(s) or polyepisulfide monomer(s), said substrate having a refractive index of between 1.48 and 1.74, (b) a transparent photochromic organic polymeric coating selected from photochromic polyurethane-based coatings, photochromic poly(meth)acrylic-based coatings, and photochromic epoxy resin-based coatings, said polymeric photochromic coating comprising a photochromic amount of at least one organic photochromic material, and (c) transparent, radiation-cured, acrylate-based film coherently appended to said photochromic coating, said radiation-cured, acrylate-based film being:
(1) resistant to removal by dilute aqueous solutions of alkali metal hydroxide, (2) compatible with abrasion-resistant coating comprising at least one organo-silane, and (3) having a Bayer Haze Gain Ratio of greater than 0.6.
Parent Case Info
[0001] This application claims priority to provisional application Serial No. 60/344,167, filed Dec. 27, 2001.
Provisional Applications (1)
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Number |
Date |
Country |
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60344167 |
Dec 2001 |
US |