Claims
- 1. A transparent glass-ceramic containing a predominant crystal phase of forsterite, the glass-ceramic having a composition, in weight percent on an oxide basis, consisting essentially of about:
40-60% SiO2; 10-25% Al2O3; 18-30% MgO; 3-10% Na2O; 0-10% K2O; >5-15% TiO2; and said glass-ceramic has a crystallinity of at least about 30% by weight of forsterite components at a liquidus temperature of about 1525° C. or below.
- 2. The glass-ceramic according to claim 1, wherein Na2O and K2O are both present in about a 1:1 molar ratio.
- 3. The glass-ceramic according to claim 1, wherein said TiO2 content by weight in said composition is greater than about 6%, and less than about 9%.
- 4. The glass-ceramic according to claim 1, wherein said composition further includes, in weight percent on an oxide basis, up to about 1.3% chromium oxide.
- 5. The glass-ceramic according to claim 4, wherein said composition includes, in weight percent on an oxide basis, about 0.05% to about 0.75% chromium oxide.
- 6. The glass-ceramic according to claim 1, wherein said composition further includes, in weight percent on an oxide basis, up to about 20% GeO2.
- 7. The glass-ceramic according to claim 1, wherein said composition includes a transition metal ion selected from the group consisting of Ni2+, V3+, Co2+, Cr4+, Cu2+, Cu1+, Mn2+, Fe2+, and Ti3+.
- 8. The glass-ceramic according to claim 1, wherein said crystallinity is about 35% or more by weight of forsterite components.
- 9. The glass-ceramic according to claim 1, wherein crystals in the crystal phase have a size no larger than about 60 nm.
- 10. The glass-ceramic according to claim 1, wherein crystals in the crystal phase have a size between about 10 nm to about 35 nm.
- 11. A transparent glass-ceramic with a crystallinity of at least about 30% by weight of forsterite components at a liquidus temperature of about 1525° C. or below, having a composition, in weight percent on an oxide basis, consisting essentially of about:
43-55% SiO2; 11-16% Al2O3; 20-26% MgO; 3.5-6.5% Na2O; 3.0-8.0% K2O; 5.5-9.0% TiO2.
- 12. The glass-ceramic according to claim 11, wherein Na2O and K2O are both present in about a 1:1 molar ratio.
- 13. The glass-ceramic according to claim 11, wherein said TiO2 content by weight in said composition is greater than about 6%, and less than about 9%.
- 14. The glass-ceramic according to claim 11, wherein said composition further includes, in weight percent on an oxide basis, up to about 1.3% chromium oxide.
- 15. The glass-ceramic according to claim 14, wherein said composition includes, in weight percent on an oxide basis, about 0.05% to about 0.7% chromium oxide.
- 16. The glass-ceramic according to claim 11, wherein said composition further includes, in weight percent on an oxide basis, up to about 20% GeO2.
- 17. The glass-ceramic according to claim 11, wherein said composition includes a transition metal ion selected from the group consisting of Ni2+, V3+, Co2+, Cu2+, Cu1+, Mn2+, Fe2+and Ti3+.
- 18. The glass-ceramic according to claim 11, wherein said crystallinity is about 35% or more by weight of forsterite components.
- 19. The glass-ceramic according to claim 11, wherein crystals in the crystal phase have a size no larger than about 60 nm.
- 20. The glass-ceramic according to claim 11, wherein crystals in the crystal phase have a size between about 10 nm to about 35 nm.
- 21. A method of dissolving at least 30% by weight of forsterite component in a glass-ceramic, the method comprising:
providing a R2O—MgO—Al2O3—SiO2 glass composition, wherein R is an alkali ion, containing, in weight percent, at least about 3% of Na2O coupled with greater than 5% of TiO2; melting said glass at a temperature between about 1575° C. to about 1650° C.
- 22. The method according to claim 21, wherein said glass has a composition, in weight percent on an oxide basis, consisting essentially of about: 40-60% SiO2; 10-25% Al2O3; 18-30% MgO; 3-10% Na2O; 0-10% K2O; >5-15% TiO2.
- 23. The method according to claim 21, further comprising achieving at least 30% by weight of forsterite component in said glass-ceramic at a liquidus temperature of about 1525° C. or below.
- 24. The method according to claim 22, wherein Na2O and K2O are both present in about a 1:1 molar ratio.
- 25. The method according to claim 22, wherein said TiO2 content by weight in said composition is greater than about 6%, and less than about 9%.
- 26. The method according to claim 22, wherein said composition further includes, in weight percent on an oxide basis, up to about 1.3% chromium oxide.
- 27. The method according to claim 26, wherein said composition includes, in weight percent on an oxide basis, about 0.05% to about 0.7% chromium oxide.
- 28. The method according to claim 22, wherein said composition further includes, in weight percent on an oxide basis, up to about 20% GeO2.
- 29. The method according to claim 22, wherein said composition includes a transition metal ion selected from the group consisting of Ni2+, V3+, Co2+, Cr4+, Cu2+, Cu1+, Mn2+, Fe2+, and Ti3+.
- 30. The method according to claim 22, wherein said crystallinity is about 35% or more by weight of forsterite components.
- 31. The method according to claim 22, wherein crystals in the crystal phase have a size no larger than about 60 nm.
- 32. The method according to claim 22, wherein crystals in the crystal phase have a size between about 10 nm to about 35 nm.
- 33. An optical element selected from the group consisting of an optical fiber, a gain-medium, a laser, and an amplifier, said element comprising: a transparent glass-ceramic containing a crystallinity of at least about 30% by weight of forsterite component at a liquidus temperature of about ≦1525° C.±5° C. or below, the glass-ceramic having a composition,. in weight percent on an oxide basis, consisting essentially of about: 40-60% SiO2; 10-25% Al2O3; 18-30% MgO; 3-10% Na2O; 0-10% K2O; and >5-15% TiO2.
- 34. The optical element according to claim 33, wherein Na2O and K2O are both present in about a 1:1 molar ratio.
- 35. The optical element according to claim 33, wherein said TiO2 content by weight in said composition is greater than about 6%, and less than about 9%.
- 36. The optical element according to claim 33, wherein said composition further includes, in weight percent on an oxide basis, up to about 1.3% chromium oxide.
- 37. The optical element according to claim 36, wherein said composition includes, in weight percent on an oxide basis, about 0.05% to about 0.7% chromium oxide.
- 38. The optical element according to claim 33, wherein said composition further includes, in weight percent on an oxide basis, up to about 20% GeO2.
- 39. The optical element according to claim 33, wherein said composition includes a transition metal ion selected from the group consisting of Ni2+, V3+, Co2+, Cr4+, Cu2+, Cu1+, Mn2+, Fe2+, and Ti3+.
- 40. The optical element according to claim 33, wherein said crystallinity is about 35% or more by weight of forsterite components.
- 41. The optical element according to claim 33, wherein crystals in the crystal phase have a size no larger than about 50 mn.
- 42. The optical element according to claim 33, wherein crystals in the crystal phase have a size between about 10 nm to about 35 nm.
RELATED APPLICATIONS
[0001] U.S. patent application Ser. No. 09/686,418, entitled TRANSPARENT FORSTERITE GLASS-CERAMICS, filed on Oct. 11, 2000, in the name of George H. Beall, claiming priority to U.S. Provisional Application No. 60/174,012 filed on Oct. 18, 1999.
[0002] U.S. patent application Ser. No. 09/686,564, entitled TRANSITION-METAL GLASS-CERAMIC GAIN MEDIA, filed on Oct. 11, 2000, in the name of George H. Beall, Nicholas F. Borrelli, Eric J. Mozdy, and Linda R. Pinckney, claiming priority to U.S. Provisional Application No. 60/160,053 filed on Oct. 18, 1999.
Divisions (1)
|
Number |
Date |
Country |
Parent |
09929549 |
Aug 2001 |
US |
Child |
10674855 |
Sep 2003 |
US |