Claims
- 1. A meltable photosensitive glass having a molecular hydrogen content of ≧1017H2 molecules/cm3.
- 2. A glass as recited in claim 1, wherein the glass is a germanosilicate glass.
- 3. A glass as recited in claim 1 wherein the glass comprises an alkali boro-alumino-silicate glass having a melting temperature ≦1,650° C., said alkali boro-alumino-silicate glass having a batch composition comprising ≦85 mole % SiO2, ≧10 mole % B2O3, ≧2 mole % GeO2, and a combined alkali and alumina content <20 mole % Al2O3+R2O, said glass having a molecular hydrogen loadable level of at least 1018H2 molecules/cm3.
- 4. A glass as recited in claim 3, having a batch composition with >70 mole % SiO2 and ≧25 mole % B2O3.
- 5. A glass as recited in claim 1, wherein the glass is photosensitizable to light having a wavelength of less than 300 nm, and wherein said glass comprises 40-80 mole % SiO2, 2-15 mole % GeO2, 10-36 mole % B2O3, 1-6 mole % Al2O3, and 2-10 mole % R2O wherein R is an alkali.
- 6. A glass as recited in claim 5, wherein said glass comprising 42-73 mole % SiO2, 2-15 mole % GeO2, 20-36 mole % B2O3, 2-6 mole % Al2O3, and 2-8 mole % R2O.
- 7. A glass as recited in claim 5, wherein said glass comprising 42-67 mole % SiO2, 2-15 mole % GeO2, 25-36 mole % B2O3, 2-6 mole % Al2O3, and 2-6 mole % R2O.
- 8. A glass as recited in claim 5, wherein R is at least one alkali chosen from a group consisting of Na, Li, and K.
- 9. A glass as recited in claim 5, having a transition metal contaminant level of ≦1 ppm by weight for transition metal contaminants.
- 10. A glass as recited in claim 5, having a heavy metal contaminant level ≦1 ppm by weight for heavy metal.
- 11. A glass as recited in claim 5, having a Fe content <1 ppm by weight Fe.
- 12. A glass as recited in claim 5, having a Ti content <1 ppm by weight Ti.
- 13. A glass as recited in claim 5, wherein said glass has a alkali/alumina ratio in the range of 1±0.5.
- 14. A glass as recited in claim 5, having a below 300 nm wavelength induced modulated refractive index Δn>10−4.
- 15. A glass as recited in claim 1, wherein said molecular hydrogen content is loaded in said glass and said content is ≧1018H2 molecules/cm3.
- 16. A glass as recited in claim 1, wherein said molecular hydrogen content is loaded in said glass and said content is ≧1019H2 molecules/cm3.
- 17. A glass as recited in claim 1, having a 300 nm absorption less than 20 dB/cm.
- 18. A glass as recited in claim 1, said glass having a modulated refractive index Δn≧2×10−4.
- 19. A glass as recited in claim 1, having a melting temperature ≦1,650° C.
- 20. A glass as recited in claim 1, having a melting temperature ≦1,600° C.
- 21. A glass as recited in claim 1, having a melting temperature ≦1,550° C.
- 22. A glass as recited in claim 1, having a melting temperature ≦1,500° C.
- 23. A glass as recited in claim 1, having a softening temperature <700° C.
- 24. A glass as recited in claim 1, having a below 300 nm wavelength induced modulated refractive index Δn>10−4 when said molecular hydrogen content is >1019H2 molecules/cm3.
- 25. A glass as recited in claim 2, wherein said glass having an increased OH content when loaded with molecular hydrogen and exposed to UV radiation.
- 26. A glass as recited in claim 2, wherein said glass having an OH range of about 100 to 1,000 OH ppm weight.
- 27. A glass as recited in claim 1, wherein said glass comprises approximately 25 weight percent to approximately 45 weight % SiO2, approximately 3 weight percent to approximately 22 weight % GeO2, approximately 7 weight % to approximately 28 weight % B2O3, approximately 6 weight % to approximately 22 weight % Al2O3, approximately 6 weight % to approximately 25 weight % R2O wherein R is an alkali, and approximately 3 weight % to approximately 11 weight % F.
- 28. A glass as recited in claim 27, wherein said glass comprises approximately 30 weight % to approximately 40 weight % SiO2.
- 29. A glass as recited in claim 27 wherein said glass has a GeO2 content of approximately 7 weight % to approximately 17 weight %.
- 30. A glass as recited in claim 27 wherein said glass has a B2O3 content of approximately 10 weight % to approximately 22 weight %.
- 31. A glass as recited in claim 27 wherein said glass has an Al2O3 content of approximately 10 weight % to approximately 19 weight %.
- 32. A glass as recited in claim 27 wherein said glass has an R2O content of approximately 10 weight % to approximately 20 weight %.
- 33. A glass as recited in claim 27 wherein said glass has a F content of approximately 5 weight % to approximately 11 weight %.
- 34. A glass as recited in claim 27, wherein said glass has an alkali/alumina ratio in the range of approximately 0.5 to approximately 1.5.
- 35. A glass as recited in claim 1 having a fluorine content of ≦10 wt %.
- 36. A glass as recited in claim 1 having a fluorine content of ≦6 wt %.
- 37. A meltable photosensitive germanosilicate glass material having a hydrogen content less than approximately 1017H2 molecules/cm3.
- 38. A glass as recited in claim 37, wherein the glass comprises an alkali boro-alumino-silicate glass having a melting temperature ≦1,650° C., said alkali boro-alumino-silicate glass having a batch composition comprising ≦85 mole % SiO2, ≧10 mole % B2O3, ≧2 mole % GeO2, and a combined alkali and alumina content <20 mole % Al2O3+R2O.
- 39. A glass as recited in claim 38, having a batch composition with ≦70 mole % SiO2 and ≧25 mole % B2O3.
- 40. A glass as recited in claim 37, wherein the glass is photosensitizable to light having a wavelength of less than 300 nm, and wherein said glass comprises approximately 40 mole % to approximately 80 mole % SiO2, approximately 2 mole % to approximately 15 mole % GeO2, approximately 10 mole % to approximately 36 mole % B2O3, approximately 1 mole % to approximately 6 mole % Al2O3, and approximately 2 mole % to approximately 10 mole % R2O wherein R is an alkali.
- 41. A glass as recited in claim 40, wherein said glass comprises approximately 42 mole % to approximately 73 mole % SiO2, approximately 2 mole % to approximately 15 mole % GeO2, approximately 20 mole % to approximately 36 mole % B2O3, approximately 2 mole % to approximately 6 mole % Al2O3, and approximately 2 mole % to approximately 8 mole % R2O.
- 42. A glass as recited in claim 40, wherein said glass comprises approximately 42 mole % to approximately 67 mole % SiO2, approximately 2 mole % to approximately 15 mole % GeO2, approximately 25 mole % to approximately 36 mole % B2O3, approximately 2 mole % to approximately 6 mole % Al2O3, and approximately 2 mole % to approximately 6 mole % R2O.
- 43. A glass as recited in claim 40, wherein R is at least one alkali chosen from a group consisting essentially of Na, Li, and K.
- 44. A glass as recited in claim 40, wherein said glass has an alkali/alumina ratio in the range of approximately 0.5 to approximately 1.5.
- 45. A glass as recited in claim 40, having a below 300 nm wavelength induced modulated refractive index Δn>10−4.
- 46. A glass as recited in claim 37 wherein the glass has a hydrogen content of less than approximately 1014 hydrogen molecules/Cm3.
- 47. A glass as recited in claim 37, having a 300 nm absorption less than 20 dB/cm.
- 48. A glass as recited in claim 37, said glass having a modulated refractive index Δn≧2×10−4.
- 49. A glass as recited in claim 37, having a melting temperature ≦1,650° C.
- 50. A glass as recited in claim 37, having a melting temperature ≦1,600° C.
- 51. A glass as recited in claim 37, having a melting temperature ≦1,550° C.
- 52. A glass as recited in claim 37, having a melting temperature ≦1,500° C.
- 53. A glass as recited in claim 37, having a softening temperature <700° C.
- 54. A glass as recited in claim 37, wherein said glass comprises approximately 25 weight % to approximately 45 weight % SiO2, approximately 3 weight % to approximately 22 weight % GeO2, approximately 7 weight % to approximately 28 weight % B2O3, approximately 6 weight % to approximately 22 weight % Al2O3, approximately 6 weight % to approximately 25 weight % R2O wherein R is an alkali, and approximately 3 weight % to approximately 11 weight % F.
- 55. A glass as recited in claim 54, wherein said glass comprises approximately 30 weight % to approximately 40 weight % SiO2.
- 56. A glass as recited in claim 54 wherein said glass has a GeO2 content of approximately 7 weight % to approximately 17 weight %.
- 57. A glass as recited in claim 54 wherein said glass has a B2O3 content of approximately 10 weight % to approximately 22 weight %.
- 58. A glass as recited in claim 54 wherein said glass has an Al2O3 content of approximately 10 weight % to approximately 19 weight %.
- 59. A glass as recited in claim 54 wherein said glass has an R2O content of approximately 10 weight % to approximately 20 weight %.
- 60. A glass as recited in claim 54 wherein said glass has a F content of approximately 5 weight % to approximately 11 weight %.
- 61. A glass as recited in claim 54, wherein said glass has an alkali/alumina ratio in the range of approximately 0.5 to approximately 1.5.
- 62. A method of making a refractive index pattern, the method comprising:
providing a photosensitive glass having a 300 nm absorption less than 20 dB/cm; providing a below 300 nm radiation source and producing below 300 nm radiation; forming a pattern with said below 300 nm radiation; exposing said photosensitive bulk glass to said pattern to form a modulated refractive index pattern in said bulk glass.
- 63. A method as recited in claim 62, wherein providing a photosensitive bulk glass includes providing an alkali boro-alumino-silicate glass.
- 64. A method as recited in claim 62, wherein providing a photosensitive bulk glass includes providing a germanosilicate glass.
- 65. A method as recited in claim 62, wherein providing a photosensitive bulk glass includes providing a glass body having a homogeneous composition.
- 66. A method as recited in claim 62, wherein providing a photosensitive glass includes providing a non-sintered glass.
- 67. A method as recited in claim 62, wherein providing a photosensitive glass includes providing a melted glass.
- 68. A method as recited in claim 62, wherein providing a photosensitive glass includes providing an alkali boro-alumino-silicate glass batch, melting said glass batch to form an alkali boro-alumino-silicate glass melt.
- 69. A method as recited in claim 62, wherein providing a photosensitive glass includes providing a molecular hydrogen loaded bulk glass.
- 70. A method as recited in claim 62, wherein providing a photosensitive glass includes providing a melted glass and providing at least 1018H2 molecules/cm3 into the glass.
- 71. A method as recited in claim 62, wherein exposing to form a pattern in the glass includes a Δn≧10−4.
- 72. A method of making a molecular hydrogen loadable photosensitive glass optical device preform, the method comprising:
providing a germania silica glass having a transition metal contamination level≦1 ppm by weight for transition metals and a heavy metal contamination level≦1 ppm by weight for heavy metals; melting said silica glass batch to form a homogeneous glass melt; cooling said glass melt into UV transmitting bulk glass having a 300 nm absorption less than 20 dB/cm; forming said bulk glass into an optical device preform.
- 73. A method as recited in claim 72, further including providing a molecular hydrogen content to a level of at least 1017H2 molecules/cm3 in said glass.
- 74. A method as recited in claim 72, wherein melting includes melting at a temperature ≦1,650° C.
- 75. A method as recited in claim 72, wherein providing a silica glass batch includes providing an alkali boro-alumino-silicate glass batch.
- 76. A method as recited in claim 72, wherein providing a silica glass batch includes providing a germanosilicate glass batch.
- 77. A method as recited in claim 72, including pouring said glass melt.
- 78. A method as recited in claim 72, including delivering said glass melt through an orifice.
- 79. A method as recited in claim 72, wherein forming into an optical device preform includes forming a preform with a small dimension >5 μm.
- 80. A photosensitive glass optical refractive index pattern preform for use with UV light in the formation of refractive index patterns, said preform comprised of an alkali boro-aluminio-silicate glass with a 300 nm absorption less than 20 dB/cm, said refractive index pattern preform having a UV wavelength inducable modulated refractive index Δn>10−5 with a molecular hydrogen level of at least 1018H2 molecules/cm3.
- 81. A refractive index pattern preform as recited in claim 80, having a UV wavelength inducable modulated refractive index Δn>10−4 with a molecular hydrogen level of at least 1019H2 molecules/cm3.
- 82. A refractive index pattern preform as recited in claim 80, wherein said alkali boro-alumino-silicate glass is a melted glass.
CROSS-REFERENCE TO RELATED PATENT APPLICATIONS
[0001] The present application is a continuation-in-part of U.S. patent application Ser. No. 10/099,088, filed Mar. 15, 2002, to Borrelli et al., and entitled “UV Photosensitive Melted Glasses,” which is a continuation-in-part of U.S. patent application Ser. No. 09/874,342, filed Jun. 5, 2001, to Borrelli, et al, and entitled “UV Photosensitive Melted Germano-Silicate Glasses,” which claims the priority of U.S. Provisional Patent Application Serial No. 60/221,811, filed Jul. 31, 2000. The inventions described in these applications are assigned to the assignee of the present invention, and the disclosure of these applications are incorporated by references herein and for all purposes.
Provisional Applications (1)
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Number |
Date |
Country |
|
60221811 |
Jul 2000 |
US |
Continuation in Parts (2)
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Number |
Date |
Country |
Parent |
10099088 |
Mar 2002 |
US |
Child |
10186123 |
Jun 2002 |
US |
Parent |
09874342 |
Jun 2001 |
US |
Child |
10099088 |
Mar 2002 |
US |