Claims
- 1. An optical fiber comprising a flame retardant UV light-curable tight-buffer coating, wherein said tight-buffer coating is substantially halogen-free, and has a limiting oxygen index of at least 20%.
- 2. The optical fiber of claim 1, wherein said tight-buffer coating is optically transparent and has a durable tensile strength.
- 3. The optical fiber of claim 2, wherein said tight-buffer coating has an optical transparency of at least 75% at a wavelength of 400-800 μm.
- 4. The optical fiber of claim 2, wherein said tight-buffer coating has an optical transparency of at least 80% at a wavelength of 400-800 μm.
- 5. The optical fiber of claim 2, wherein said tight-buffer coating has an optical transparency of at least 85% at a wavelength of 400-800 μm.
- 6. The optical fiber of claim 1, wherein said tight-buffer coating is optically transparent and has a limiting oxygen index of at least 21%.
- 7. The optical fiber of claim 1, wherein said tight-buffer coating comprises flame-retardant material selected from the group consisting of alkyl phosphate esters, aryl phosphate esters, alkylaryl phosphate esters, alkylated polyaryl phosphate esters, alkylphosphonate esters, aryl phosphonate esters, alkylaryl phosphonate esters, alkylated polyaryl phosphonate esters.
- 8. The optical fiber of claim 1, wherein said tight-buffer coating is optically transparent and has a limiting oxygen index of at least 22%.
- 9. The optical fiber of claim 1, wherein said tight-buffer coating comprises a flame-retardant material selected from the group consisting of flame-retardant plasticizer, flame retardant acrylate oligomer, cyclic diphosphonate ester and mixtures thereof.
- 10. The optical fiber of claim 8, wherein said flame-retardant plasticizer is polyaryl phosphate ester.
- 11. The optical fiber of claim 9, wherein said polyaryl phosphate ester is triaryl phosphate ester.
- 12. The optical fiber of claim 9, wherein said polyaryl phosphate ester is alkylated triphenyl phosphate ester.
- 13. The optical fiber of claim 9, wherein said polyaryl phosphate ester is isopropylated triphenyl phosphate ester.
- 14. The optical fiber of claim 9, wherein said flame-retardant acrylate oligomer is pentafunctional melamine acrylate.
- 15. The optical fiber of claim 8, wherein said flame-retardant is cyclic diphosphonate ester.
- 16. A radiation-curable optical fiber tight-buffer coating composition, comprising, in the uncured state, at least one monomer or oligomer having a radiation-curable functional group and a halogen-free flame-retardant material, wherein said coating, when cured, is optically transparent, has a limiting oxygen index of at least 20%, and has a durable tensile strength.
- 17. The tight-buffer coating composition of claim 16, wherein said flame-retardant material is selected from the group consisting of alkyl phosphate esters, aryl phosphate esters, alkylaryl phosphate esters, alkylated polyaryl phosphate esters, alkylphosphonate esters, aryl phosphonate esters, alkylaryl phosphonate esters, alkylated polyaryl phosphonate esters.
- 18. The tight-buffer coating composition of claim 16, wherein said flame-retardant material is selected from the group consisting of flame-retardant plasticizer, flame-retardant acrylate oligomer, cyclic diphosphonate ester and mixtures thereof.
- 19. The tight-buffer coating composition of claim 18, wherein said flame-retardant plasticizer is polyaryl phosphate ester.
- 20. The tight-buffer coating composition of claim 19, wherein said polyaryl phosphate ester is triaryl phosphate ester.
- 21. The tight-buffer coating composition of claim 19, wherein said polyaryl phosphate ester is alkylated triphenyl phosphate ester.
- 22. The tight-buffer coating composition of claim 19, wherein said polyaryl phosphate ester is isopropylated triphenyl phosphate ester.
- 23. The tight-buffer coating composition of claim 18, wherein said flame-retardant acrylate oligomer is pentafunctional melamine acrylate.
- 24. The tight-buffer coating composition of claim 18, wherein said flame-retardant is a cyclic diphosphonate ester.
- 25. The tight-buffer coating composition of claim 16, wherein said composition, when cured, has an optical transparency of at least 75% at a wavelength of 400-800 nm.
- 26. The tight-buffer coating composition of claim 16, wherein said composition, when cured, has an optical transparency of at least 80% at a wavelength of 400-800 nm.
- 27. The tight-buffer coating composition of claim 16, wherein said composition, when cured, has an optical transparency of at least 85% at a wavelength of 400-800 nm.
- 28. The tight-buffer coating composition of claim 16, wherein said composition, when cured, has a limiting oxygen index of at least 21%.
- 29. The tight-buffer coating composition of claim 16, wherein said composition, when cured, has a limiting oxygen index of at least 22%.
- 30. The tight-buffer coating composition of claim 16, wherein said flame-retardant is present in an amount of from about 20% to about 40% by weight of the composition.
- 31. A radiation-curable optical fiber tight-buffer coating composition, comprising, in the uncured state, at least one monomer or oligomer having a radiation-curable functional group and a flame-retardant material selected from the group consisting of alkyl phosphate esters, aryl phosphate esters, alkylaryl phosphate esters, alkylated polyaryl phosphate esters, alkylphosphonate esters, aryl phosphonate esters, alkylaryl phosphonate esters, alkylated polyaryl phosphonate esters, pentafunctional melamine acrylate, cyclic diphosphonate ester and mixtures thereof, said coating, when cured, having a limiting oxygen of at least 20%.
- 32. The tight-buffer coating composition of claim 31, wherein said flame-retardant material is isopropylated triphenyl phosphate ester.
- 33. The tight-buffer coating composition of claim 31, wherein said flame-retardant is pentafunctional melamine acrylate.
- 34. A method for making a flame-retardant optical fiber comprising upjacketing an optical fiber with a tight-buffer coating composition, wherein said tight-buffer coating composition, when cured, is optically transparent, is halogen-free has a limiting oxygen index of at least 20%, and has a durable tensile strength.
- 35. An optical fiber comprising a flame-retardant UV light-curable primary coating, wherein said primary coating is substantially halogen-free, and has a limiting oxygen index of at least 20%.
- 36. A radiation-curable optical fiber primary coating composition, comprising, in the uncured state, at least one monomer or oligomer having a radiation-curable functional group and a halogen-free flame-retardant material, wherein said coating, when cured, is optically transparent, has a limiting oxygen index of at least 20%, and has a durable tensile strength.
- 37. The primary coating composition of claim 36, wherein said flame-retardant material is selected from the group consisting of alkyl phosphate esters, aryl phosphate esters, alkylaryl phosphate esters, alkylated polyaryl phosphate esters, alkylphosphonate esters, aryl phosphonate esters, alkylaryl phosphonate esters, alkylated polyaryl phosphonate esters.
- 38. An optical fiber comprising a flame-retardant UV light-curable secondary coating, wherein said secondary coating is substantially halogen-free, and has a limiting oxygen index of at least 20%.
- 39. A radiation-curable optical fiber secondary coating composition, comprising, in the uncured state, at least one monomer or oligomer having a radiation-curable functional group and a halogen-free flame-retardant material, wherein said coating, when cured, is optically transparent, has a limiting oxygen index of at least 20%, and has a durable tensile strength.
- 40. The secondary coating composition of claim 39, wherein said flame-retardant material is selected from the group consisting of alkyl phosphate esters, aryl phosphate esters, alkylaryl phosphate esters, alkylated polyaryl phosphate esters, alkylphosphonate esters, aryl phosphonate esters, alkylaryl phosphate esters, alkylated polyaryl phosphonate esters.
- 41. A radiation-curable optical fiber ink base coating composition, comprising, in the uncured state, at least one monomer or oligomer having a radiation-curable functional group and a halogen-free flame-retardant material, wherein said coating, when cured, is optically transparent, has a limiting oxygen index of at least 20%, and has a durable tensile strength.
- 42. The ink base coating composition of claim 41, wherein said flame-retardant material is selected from the group consisting of alkyl phosphate esters, aryl phosphate esters, alkylaryl phosphate esters, alkylated polyaryl phosphate esters, alkylphosphonate esters, aryl phosphonate esters, alkylaryl phosphonate esters, alkylated polyaryl phosphonate esters.
- 43. An optical fiber comprising a flame-retardant UV light-curable ink base coating, wherein said ink base coating is substantially halogen-free, and has a limiting oxygen index of at least 20%.
- 44. A radiation-curable optical fiber matrix coating composition, comprising, in the uncured state, at least one monomer or oligomer having a radiation-curable functional group and a halogen-free flame-retardant material, wherein said coating, when cured, is optically transparent, has a limiting oxygen index of at least 20%, and has a durable tensile strength.
- 45. The matrix coating composition of claim 44, wherein said flame-retardant material is selected from the group consisting of alkyl phosphate esters, aryl phosphate esters, alkylaryl phosphate esters, alkylated polyaryl phosphate esters, alkylphosphonate esters, aryl phosphonate esters, alkylaryl phosphate esters, alkylated polyaryl phosphonate esters.
- 46. An optical fiber comprising a flame-retardant UV light-curable matrix coating, wherein said matrix coating is substantially halogen-free, and has a limiting oxygen index of at least 20%.
- 47. A radiation-curable optical fiber single coating composition, comprising, in the uncured state, at least one monomer or oligomer having a radiation-curable functional group and a halogen-free flame-retardant material, wherein said coating, when cured, is optically transparent, has a limiting oxygen index of at least 20%, and has a durable tensile strength.
- 48. The single coating composition of claim 47, wherein said flame-retardant material is selected from the group consisting of alkyl phosphate esters, aryl phosphate esters, alkylaryl phosphate esters, alkylated polyaryl phosphate esters, alkylphosphonate esters, aryl phosphonate esters, alkylaryl phosphonate esters, alkylated polyaryl phosphonate esters.
- 49. An optical fiber comprising a flame-retardant UV light-curable single coating, wherein said single coating is substantially halogen-free, and has a limiting oxygen index of at least 20%.
- 50. An optical fiber comprising a flame-retardant UV light-curable tight-buffer coating, wherein said tight-buffer coating is halogen-free and has a limiting oxygen index of at least 20%.
- 51. The optical fiber of claim 50, wherein said tight-buffer coating comprises flame-retardant material selected from the group consisting of alkyl phosphate esters, aryl phosphate esters, alkylaryl phosphate esters, alkylated polyaryl phosphate esters, alkylphosphonate esters, aryl phosphonate esters, alkylaryl phosphonate esters, alkylated polyaryl phosphonate esters.
CROSS-REFERENCE TO RELATED PATENT APPLICATIONS
[0001] This patent application claims the benefit of U.S. Provisional Patent Application No. 60/337,656, filed Nov. 8, 2001, U.S. Provisional Patent Application No. 60/394,406, filed Jul. 8, 2002.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60337656 |
Nov 2001 |
US |
|
60394406 |
Jul 2002 |
US |