CA2018237C

Radiation curable acryloxyfunctional silicone coating composition

Abstract

The present invention relates to a silicone coatingcomposition which, when cured on a solid substrateeither by ultraviolet or electron beam radiation,provides a transparent abrasion resistant coating firmlyadhered thereon. The silicone coating is prepared byreacting in a polar solvent solution at least onemultifunctional acrylate monomer with an amino-organofunctional silane to form a Michael adduct andoptionally adding an acid to the reaction mixture, andthereafter adding colloidal silica.

CA2018237C, drawing sheet 1
Sheet 1 of 9

Term

Term ended

Expired 5 June 2010, 16.3 years ago.

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

4 claims: 4 independent, 0 dependent

  1. 1
    THE EMBODIMENTS OF THE INVENTION IN WHICH AN EXCLUSIVE PROPERTY OR PRIVILEGE IS CLAIMED ARE DEFINED AS FOLLOWS:1. A composition for forming an abrasionresistant coating material formulated by the steps comprising : reacting the following components in a solution of a polar solvent;at least one multifunctional acrylate monomer;an amino-organofunctional silane of the formula;XaSi{Q(NHQ')bNZH}^ wherein X is selected from alkoxy groups having 1 to 6 carbon atoms;Q and Q1 are the same or different divalent hydrocarbon groups ;Z is hydrogen or a monovalent hydrocarbon group;a is an integer from 1 to 3;and b is an integer from 0 to 6;for a time and at a temperature sufficient to form a Michael adduct therefrom;adding an acid to the above-resulting solution;and thereafter adding colloidal silica to the above-resulting solution. 2. The composition of claim 1 wherein said acid comprises up to about ten percent by weight of acrylic acid. 3. The composition of claim 1,wherein said steps further comprise vacuum stripping said polar solvent after the addition of said colloidal silica. 4. The composition of claim 1 wherein said polar solvent comprises isopropyl alcohol. 5. The composition of claim 1 wherein said multifunctional acrylate monomer is a mixture of hexanedioldiacrylate and trimethylpropanetriacrylate. 6. The composition of claim 1 wherein said 5 colloidal silica is in an aqueous dispersion. 7. The composition of claim 6 wherein said steps furthei? comprise vacuum stripping said polar solvent and water from said composition after the addition of colloidal silica. 10 8. The composition of claim 1 wherein the colloidal silica does not exceed 60% by weight of the sum of the weights of the multifunctional acrylic monomer, amino-organofunctional silane and colloidal silica . 15 9. The composition of claim 1 wherein said steps further comprise adding a leveling agent. 10. The composition of claim 9 which contains up to about ten percent by weight of a leveling agent. 11. The composition of claim 9 wherein the 20 leveling agent is a silicone glycol surfactant. 12. The composition of claim 1 wherein said steps further comprise adding one or more UV absorbers. 13. The composition of claim 12 which contains 25 up to 20% UV absorbers. 14. The composition of claim 12 wherein said UV absorbers are selected from the group consisting of bis(1,2,2,6,6-pentamethyl-4-piperidinyl)(3,5-bis(1,1c dimethylethyl 1-41 hydroxyphenyl) methyl)butylpropanedioate, 2-ethylhexyl-2-cyano-3, 3'-diphenylacrylate, 2-hydroxyl-4-n-octoxybenzophenone, 2-(21-hydroxy-5 1-methylphenyl)benzotriazole and poly(oxy-1,2-ethanediyl), alpha-(3-(3-(2Hbenzotriazol-2-yl)-5-(1,1-dimethylethyl)-4hydroxylphenyl)-1-oxopropyl)-omega-hydroxy and combinations thereof. 15. The composition of claim 12 where the UV absorber is poly(oxy-1,2-ethanediyl), alpha-(3-(3-(2Hbenzotriazol-2-yl)-5-(1,1-dimethylethyl)-4-hydroxylphenyl-1-oxopropyl) -omega-hydroxy. 16. The composition of claim 1 wherein said steps further comprise adding one or more photoinitiators . 17. The composition of claim 16 wherein said photoinitiator is 2,2-dimethoxy-2-phenyl-acetophenone. 18. A composition in accordance with claim 16 wherein the photoinitiator is 2-hydroxy-2-methyl-lpheny1-propan-1-one . 19. A composition in accordance with claim 1 wherein said multifunctional acrylate monomer is a mixture of hexanedioldiacrylate and bisphenol A dimethacrylate . 20. A composition in accordance with claim 1 wherein said amino-organofunctional silane is 3-aminopropyltrimethoxy silane. 21. A composition in accordance with claim 1 wherein said amino-organofunctional silane is 3-amino2018237 propyltriethoxy silane. 22. A composition in accordance with claim 1 wherein said amino-organofunctional silane is anilinopropyltrimethoxy silane. 23. A composition in accordance with claim 1 wherein the molar ratio of said multifunctional acrylate monomer to said amino-organofunctional silane is at least 1:1. 24. A composition in accordance with claim 1 wherein said colloidal silica is an acidic aqueous dispersion. 25. A composition in accordance with claim 1 wherein said colloidal silica is dispersed in a solution of 2-propanol and water. 26. A composition in accordance with claim 1 wherein said colloidal silica is dispersed in propoxyethanol. 27. A composition in accordance with claim 1 wherein said acid is acetic acid. 28. A method of coating a surface on a substrate with an abrasion-resistant coating comprising the steps of: (1) formulating a coating composition by reacting the following components in a solution of a polar solvent: at least one multifunctional acrylic monomer;and an amino-organofunctional silane of the formula XaSi{Q(NHQ' JhNZH}^ wherein X is selected from alkoxy groups having 1 to 6 carbon atoms;Q and Q1 are the same or different divalent hydrocarbon groups ;Z is hydrogen or a monovalent hydrocarbon group;a is an integer from 1 to 3;and b is an integer from 0 to 6;for a time and at a temperature sufficient to form a Michael adduct therefrom;
  2. 2
    (2) adding an acid to the above-resulting solution;and
  3. 3
    (3) adding colloidal silica to the aboveresulting solution;
  4. 4
    (4) applying the resulting coating composition to the surface of said substrate; and (5) curing the coating composition with radiation. 29. The method of claim 28 further comprising the steps of:adding one or more photoinitiators to the coating composition prior to the curing step;and carrying out the curing step by exposing the coating composition to ultraviolet radiation. 30. The method of claim 28 wherein said curing step is carried out by subjecting the coating composition to electron beam radiation. 31. The method of claim 28 further comprising the step of vacuum stripping the polar solvent from said resulting composition before applying the same to the surface of said substrate. 32. An article of manufacture comprising: (A) a substrate defining at least one surface;(b) said at least one surface being coated with an abrasion-resistant coating formulated by: solution (1) reacting the following components in a of a polar solvent: at least one multifunctional acrylate monomer;an amino-organofunctional silane of the formula XaSi{Q(NHQ' )bNZH}4_a wherein : X is selected from alkoxy groups having 1 to 6 carbon atoms;Q and Q1 are the same or different divalent hydrocarbon groups ;Z is hydrogen or a monovalent hydrocarbon group;a is an integer from 1 to 3;and b is an integer from 0 to 6;for a time and at a temperature sufficient to form a Michael adduct therefrom;(2) adding an acid to the above-resulting solution;and thereafter (3) adding colloidal silica to the aboveresulting solution;and (C) said abrasion-resistant coating being radiation-cured upon said at least one surface. 33. The article of claim 32 wherein said substrate is transparent. 34. The article of claim 32 wherein said substrate is an acrylic polymer. 35. The article of claim 32 wherein said substrate is a polyester. 36. The article of claim 35 wherein said polyester substrate is selected from the group consisting of: poly(ethylene terephthalate);poly(butylene terephthalate);poly(diethylene glycol Γ 20 1 8 2 37 bis allyl) carbonate;and poly(diphenylolpropane) carbonate . 37. The article of claim 32 wherein said substrate is a polycarbonate.