Claims
- 1. An optically active glass-ceramic article comprising:
- an elongated central member, having a first and a second end, consisting of, a transparent glass-ceramic essentially free from ZnO and ZnF.sub.2 exhibiting high optical clarity and containing essentially only one crystal phase consisting essentially, expressed in terms of cation percent, of
- ______________________________________SiO.sub.2 20-35 PbF.sub.2 19-23AlO.sub.1.5 10-20 YF.sub.3 3-7CdF.sub.2 19-34______________________________________
- and Pr.sup.+3 at a concentration in the range of about 50 to 650 PPMW;
- and, a transparent glass covering the surface of said elongated central member, but leaving exposed said first and second ends, consisting essentially, expressed in terms of weight percent on the oxide basis, of
- ______________________________________SiO.sub.2 23-30 B.sub.2 O.sub.2 1-10 Al.sub.2 O.sub.3 0-3PbO 49-60 Li.sub.2 O 0-1 Na.sub.2 O 0-2.K.sub.2 O 5-11 BaO 0-8______________________________________
- 2. The optically active glass-ceramic article according to claim 1 wherein the concentration of Pr.sup.+3 is in the range of about 20014 550 ppmw.
- 3. An optically active glass-ceramic article according to claim I also containing in said central member up to 17 cation percent total of at least one component selected from the group consisting of 0-7% BO.sub.1.5, 0-12% GeO.sub.2, 0-7% PO.sub.2.5, 0-3% TiO.sub.2, 0-2% Nb.sub.2 O.sub.5, 0-7% GaF.sub.3, 0-7% HfF.sub.4, 0-7% InF.sub.3, 0-5% LuF.sub.3,, 0-1 LaF.sub.3, 0-3% CdCl.sub.2, and 0-5% CdS.
- 4. An optically active glass-ceramic article according to claim 3 wherein said optically active glass-ceramic article is an optical waveguide fiber amplifier.
- 5. An optically active glass-ceramic article according to claim 3 wherein said optically active glass-ceramic article is a laser.
- 6. An optically active glass-ceramic article comprising:
- an elongated central member, having a first and a second end, consisting of a transparent glass-ceramic exhibiting high optical clarity and containing essentially only one crystal phase consisting essentially, expressed in terms of cation percent, of
- ______________________________________SiO.sub.2 20-35 PbF.sub.2 15-25AlO.sub.1.5 10-20 YF.sub.3 3-7CdF.sub.2 21-31 ZnF.sub.2 3-7______________________________________
- and Pr.sup.+3 at a concentration in the range of about 50 to 650 ppmw;
- and, a transparent glass covering the surface of said elongated central member, but leaving exposed said first and second ends, consisting essentially, expressed in terms of weight percent on the oxide basis, of
- ______________________________________SiO.sub.2 23-30 B.sub.2 O.sub.3 1-10 Al.sub.2 O.sub.3 0-3PbO 49-60 Li.sub.2 O 0-1 Na.sub.2 O 0-2K.sub.2 O 5-11 BaO 0-8.______________________________________
- 7. The optically active glass-ceramic article according to claim 6 wherein the concentration of Pr.sup.3+ is in the range of about 200-550 ppmw.
- 8. An optically active glass-ceramic article according to claim 6 also containing in said central member up to 17 cation percent total of at least one component selected from the group consisting of 0-7% BO.sub.1.5, 0-12% GeO.sub.2, 0-7% PO.sub.2.5, 0-3% TiO.sub.2, 0-2 Nb.sub.2 O.sub.5, 0-7% GaF.sub.3, 0-7% HfF.sub.4, 0-7% InF.sub.3, 0-5% LuF.sub.3, 0-1 LaF.sub.3, 0-3% CdCl.sub.2, and 0-5% CdS.
- 9. An optically active glass-ceramic article according to claim 6 wherein said optically active glass-ceramic article is an optical waveguide fiber amplifier.
- 10. An optically active glass-ceramic article according to claim 6 wherein said optically active glass-ceramic article is a laser.
- 11. A method of making an optically active glass-ceramic article comprising the steps:
- forming an elongated glass body, having a first and a second end, a center member consisting of a transparent glass essentially free from ZnO and ZnF.sub.2 consisting essentially, expressed in terms of cation percent, of
- ______________________________________SiO.sub.2 20-35 PbF.sub.2 19-23AlO.sub.1.5 10-20 YF.sub.3 3-7CdF.sub.2 19-34______________________________________
- and Pr.sup.+3 at a concentration in the range of about 50 to 650 ppmw;
- and, a transparent glass covering the surface of said elongated central member, but leaving exposed said first and second ends, consisting essentially, expressed in terms of weight percent on the oxide basis, of
- ______________________________________SiO.sub.2 23-30 B.sub.2 O.sub.3 1-10 Al.sub.2 O.sub.3 0-3PbO 49-60 Li.sub.2 O 0-1 Na.sub.2 O 0-2K.sub.2 O 5-11 BaO 0-8; and,______________________________________
- heating said elongated glass body at a pre-selected temperature for a preselected time, to transform said center glass member into a transparent glass-ceramic exhibiting high optical clarity and containing essentially only one crystal phase.
- 12. The optically active glass-ceramic article according to claim 11 wherein the concentration of Pr.sup.+3 is in the range of about 200-550 ppmw.
- 13. The method according to claim 11 wherein said central member also contains up to 17 cation percent total of at least one component selected from the group consisting of 0-7% BO.sub.1.5, 0-12% GeO.sub.2, 0-7% PO.sub.2.5, 0-3% TiO.sub.2, 0-7% GaF.sub.3, 0-2% Nb.sub.2 O.sub.5, 0-7% HfF.sub.4, 0-7% InF.sub.3, 0-5% LuF.sub.3,, 0-1% LaF.sub.3, 0-3% CdCl.sub.2, 0-5% CdS.
- 14. The method according to claim 11 wherein said forming step is carried out using a double crucible technique wherein the said center member glass and said transparent glass covering said center member are each heated to a temperature in the range of about 800.degree.1300.degree. C. during forming and the formed glass is quenched to a temperature below the peak crystallization temperature in a time of less than 1 minute.
- 15. The method according to claim 11 wherein said forming step is carried out using an extrusion technique at a temperature in the range of 10.degree. to 30.degree. C. below the peak crystallization temperature to provide a viscosity for extrusion which is less than about 10.sup.9.5.degree. poises.
- 16. The method according to claim 11 wherein said heating step is carried out using a pre-selected temperature near the peak crystallization temperature of said central member glass and the pre-selected time is in the range of about 1/2-24 hours.
- 17. A method of making an optically active glass-ceramic article comprising the steps:
- forming an elongated glass body, having a first and a second end, a center member consisting of a transparent glass consisting essentially, expressed in terms of cation percent, of
- ______________________________________SiO.sub.2 20-35 PbF.sub.2 15-25AlO.sub.1.5 10-20 YF.sub.3 3-7CdF.sub.2 21-31 ZnF.sub.2 3-7______________________________________
- and Pr.sup.+3 at a concentration in the range of about 50 to 650 ppmw;
- and, a transparent glass covering the surface of said elongated central member, but leaving exposed said first and second ends, consisting essentially, expressed in terms of weight percent on the oxide basis, of
- ______________________________________SiO.sub.2 23-30 B.sub.2 O.sub.3 1-10 Al.sub.2 O.sub.3 0-3PbO 49-60 Li.sub.2 O 0-1 Na.sub.2 O 0-2K.sub.2 O 5-11 BaO 0-8; and,______________________________________
- heating said elongated glass body at a pre-selected temperature for a preselected time, to transform said center glass member into a transparent glass-ceramic exhibiting high optical clarity and containing essentially only one crystal phase.
- 18. The optically active glass-ceramic article according to claim 17 wherein the concentration of Pr.sup.+3 is in the range of about 200-550 ppmw.
FIELD OF THE INVENTION
This is a continuation-in-part of application Ser. No. 08/344,978, filed Nov. 25, 1994 and now U.S. Pat. No. 5,483,628.
The field of the invention is the production of transparent glass-ceramic articles. More specifically, the field of the invention is the production of fluoride-containing, transparent glass-ceramic articles exhibiting properties rendering them suitable for use in fabricating amplifier and laser fibers.
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Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
344978 |
Nov 1994 |
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