Claims
- 1. An optical waveguide comprising multiple isotopes of oxygen in relative proportions sufficiently changed from a naturally occurring proportion of said isotopes such that optical properties of said waveguide are improved, wherein said waveguide includes a light conducting core region and at least 20 mole percent of said oxygen in said core is oxygen-18, and said core region also includes oxygen 17 in an amount which is at least 5 percent of the amount of oxygen 18 in said core.
- 2. The waveguide of claim 1, wherein said waveguide is an optical fiber waveguide.
- 3. The waveguide of claim 2, wherein said oxygen 17 is present in an amount which is at least 10 percent of the amount of oxygen 18 in said core.
- 4. The waveguide of claim 2, wherein said oxygen 17 is present in an amount which is at least 15 percent of the amount of oxygen 18 in said core.
- 5. The optical waveguide of claim 2, wherein the fiber is a Raman gain fiber, and said isotopic proportions are changed to an extent that the Raman spectrum of said fiber is broadened, compared to an identical fiber having no additional oxygen-18 therein, at least about 5 percent with respect to light having a wavelength of between about 900 μm and 1800 μm.
- 6. The optical waveguide fiber of claim 1, wherein said fiber is comprised of layers of glass which alternate between layers having an increased amount of oxygen-18 and layers which do not.
- 7. The optical waveguide of claim 2, wherein said optical fiber further comprises a dopant element.
- 8. The optical waveguide of claim 7, wherein said dopant is one of the group consisting of germanium and phosphorous.
- 9. The optical waveguide of claim 2, wherein at least 50 mole percent of said oxygen in said core is oxygen-18.
- 10. The optical waveguide of claim 3, wherein at least 50 mole percent of said oxygen in said core is oxygen-18.
- 11. A method for making a silica waveguide, comprising the steps of:
fabricating a silica preform by heating a moving stream of vapor mixture including at least one glass forming precursor including silicon and an oxidizing medium including oxygen, wherein the oxidizing medium is selected so that, when the resultant preform is used and drawn to form an optical fiber, the optical fiber includes a light conducting core region and at least 20 mole percent of said oxygen in said core is oxygen-18, and said core region also includes oxygen 17 in a molar amount which is at least 5 percent of the amount of oxygen 18 in said core.
- 12. The method defined in claim 11, wherein only a core region of said preform is fabricated from said isotopically altered oxygen and/or silicon.
- 13. The method defined in claim 11, wherein the oxygen of said oxidizing medium forming said core portion is comprises greater than 50 mole percent oxygen-18.
- 14. The method defined in claim 11, wherein said moving stream of glass-forming precursor and oxidizing medium are introduced into a tube, and said tube is heated to form said preform from a glassy deposit on an inner surface of said tube.
- 15. The method defined in claim 14, wherein said tube is heated with a substantially hydrogen-free heat source.
- 16. The method defined in claim 14, wherein said tube is heated with an isothermal heat source.
- 17. The method defined in claim 16, wherein said heat source is an oxygen plasma heat source.
- 18. The method of claim 11, wherein said method comprises depositing layers of soot or glass onto a substrate, and wherein said deposited layers alternate between regions having an oxygen-18 amount which is greater than 20 mole percent and regions having less than 20 mole percent oxygem-18.
- 19. A method of making a silica waveguide comprising the steps of:
fabricating a silica based soot preform via a chemical vapor deposition process exposing the soot preform to an atmosphere in a chamber, said atmosphere comprising at least 20 percent oxygen-18, for a time and at a temperature which is sufficient to cause oxygen-18 to exchange for at least some of the oxygen-16 present in the silica soot.
- 20. The method of claim 19, wherein said exposing the soot preform step comprises exposing said soot preform to a gas selected from the group consisting of mixture of D218O, H218O, and mixtures thereof.
- 21. The method of claim 19, wherein said exposing the soot preform to oxygen-18 step comprises exposing said soot preform at a temperature greater than about 1000 C.
- 22. The method of claim 19, wherein said exposing step further comprises recovering unused oxygen from the chamber in said exposing step and recycling at least some of the unused oxygen atmosphere to be used in the same or another chamber in which soot is being exposed to oxygen-18 for a time and at a temperature which is sufficient to cause oxygen-18 to exchange for at least some of the oxygen-16 present in the silica soot.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application claims the benefit of priority under 35 U.S.C. §119(e) of U.S. Provisional Application Serial No. 60/341,256 filed on Dec. 20, 2001.
Provisional Applications (1)
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Number |
Date |
Country |
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60341256 |
Dec 2001 |
US |