Claims
- 1. A fiber waveguide having a waveguide axis, comprising:
a first portion extending along the waveguide axis; and a second portion different from the first portion extending along the waveguide axis surrounding the first portion; wherein at least one of the first and second portions comprises a chalcogenide glass selected from the group consisting of Selenium chalcogenide glasses and Tellurium chalcogenide glasses
- 2. The fiber waveguide of claim 1, wherein the chalcogenide glass is selected from the group consisting of As—Se, Ge—Se, As—Te, Sb—Se, As—S—Se, S—Se—Te, As—Se—Te, As—S—Te, Ge—S—Te, Ge—Se—Te, Ge—S—Se, As—Ge—Se, As—Ge—Te, As—Se—Pb, As—Se—Tl, As—Te—Tl, As—Se—Ga, and Ge—Sb—Se.
- 3. The fiber waveguide of claim 1, wherein the chalcogenide glass comprises an element selected from the group consisting of boron, aluminum, silicon, phosphorus, sulfur, gallium, arsenic, indium, tin, antimony, thallium, lead, bismuth, cadmium, lanthanum, fluorine, chlorine, bromine, and iodine.
- 4. The fiber waveguide of claim 1, wherein at least one of the first and second portions includes a nonlinear material.
- 5. The fiber waveguide of claim 4, wherein the nonlinear material is an electrooptic material.
- 6. The fiber waveguide of claim 1, wherein the first or second material include one or more rare earth ions.
- 7. The fiber waveguide of claim 6, wherein the rare earth ions include erbium ions.
- 8. The fiber waveguide of claim 1, wherein the first portion is a homogeneous portion.
- 9. The fiber waveguide of claim 1, wherein the first portion is an inhomogeneous portion.
- 10. The fiber waveguide of claim 9, wherein the first portion includes a holey portion having one or more holes extending along the waveguide axis.
- 11. The fiber waveguide of claim 1, wherein the second portion comprises a dielectric material.
- 12. The fiber waveguide of claim 11, wherein the dielectric material is an inorganic material.
- 13. The fiber waveguide of claim 12, wherein the inorganic material is an inorganic glass.
- 14. The fiber waveguide of claim 13, wherein the inorganic glass is a halide glass.
- 15. The fiber waveguide of claim 13, wherein the inorganic glass is an oxide glass.
- 16. The fiber waveguide of claim 15, wherein the oxide glass includes up to 40 mole % of a compound of the form MO, where M is selected from the group consisting of Pb, Ca, Mg, Sr, and Ba.
- 17. The fiber waveguide of claim 15, wherein the oxide glass includes up to 40 mole % of a compound of the form M2O, where M is selected from the group consisting of Li, Na, K, Rb, and Cs.
- 18. The fiber waveguide of claim 15, wherein the oxide glass includes up to 40 mole % of a compound of the form M2O3, where M is selected from the group consisting of Al, B, and Bi.
- 19. The fiber waveguide of claim 15, wherein the oxide glass includes up to 60 mole % of P2O5.
- 20. The fiber waveguide of claim 15, wherein the oxide glass includes up to 40 mole % of SiO2.
- 21. The fiber waveguide of claim 13, wherein the inorganic glass is a mixed oxide-fluoride glass.
- 22. The fiber waveguide of claim 11, wherein the dielectric material is an organic material.
- 23. The fiber waveguide of claim 22, wherein the organic material is a polymer.
- 24. The fiber waveguide of claim 23, wherein the polymer is a polymer selected from the group consisting of carbonate-, sulfone-, etherimid-, acrylate-families, and fluoropolymers.
- 25. The fiber waveguide of claim 1, wherein the second portion is a homogeneous portion.
- 26. The fiber waveguide of claim 1, wherein the second portion is an inhomogeneous portion.
- 27. The fiber waveguide of claim 26, wherein the second portion is a holey portion having one or more holes extending along the waveguide axis.
- 28. The fiber waveguide of claim 1, wherein the first portion is a core having a refractive index n1 and the second portion has a refractive index n2<n1.
- 29. The fiber waveguide of claim 1, wherein the fiber waveguide is a photonic crystal fiber.
- 30. The fiber waveguide of claim 29, wherein the photonic crystal fiber is a Bragg fiber.
- 31. The fiber waveguide of claim 1, wherein the first portion has a refractive index n1, the second portion has a refractive index n2, and |n1−n2|≧0.3.
- 32. The fiber waveguide of claim 1, wherein the first portion has a refractive index n1, the second portion has a refractive index n2, and in, |n1−n2|≧0.
- 33. A fiber waveguide having a waveguide axis, comprising:
a core extending along the waveguide axis; and a confinement region surrounding the core about the waveguide axis and comprising a chalcogenide glass, the confinement region further comprising a photonic crystal structure having a photonic band gap, wherein during operation the confinement region guides EM radiation in at least a first range of frequencies to propagate along the waveguide axis.
- 34. The fiber waveguide of claim 33, wherein the confinement region includes a first portion having a refractive index n1 and a second portion having a refractive index n2, and |n1−n2|≧0.
- 35. The fiber waveguide of claim 34, wherein n1−n2|≧0.
- 36. The fiber waveguide of claim 33, wherein the core is a hollow core.
- 37. The fiber waveguide of claim 33, wherein the core includes a dielectric material.
- 38. The fiber waveguide of claim 33, wherein the core includes a nonlinear material.
- 39. The fiber waveguide of claim 33, wherein the core includes a rare earth ion.
- 40. The fiber waveguide of claim, 33, wherein the confinement region comprises a plurality of layers.
- 41. The fiber waveguide of claim 40, wherein alternating layers include the chalcogenide glass.
- 42. The fiber waveguide of claim 40, wherein a subset of the plurality of layers are devoid of the chalcogenide glass.
- 43. The fiber waveguide of claim 40, wherein the subset of layers are alternating layers.
- 44. The fiber waveguide of claim 33, wherein the chalcogenide glass includes Selenium.
- 45. The fiber waveguide of claim 33, wherein the chalcogenide glass includes Tellurium.
- 46. The fiber waveguide of claim 33, wherein the chalcogenide glass comprises an element selected from the group consisting of boron, aluminum, silicon, phosphorus, sulfur, gallium, arsenic, indium, tin, antimony, thallium, lead, bismuth, cadmium, lanthanum, fluorine, chlorine, bromine, and iodine.
- 47. A method for making an fiber waveguide, comprising:
Providing a fiber preform comprising a first portion and a second portion surrounding the first portion, wherein the first portion comprises a chalcogenide glass; Heating the fiber preform such that the first and second portions have a viscosity between 103 Poise and 106 Poise; and Drawing the heated fiber preform to make the fiber waveguide.
- 48. The method of claim 47, wherein the viscosity of the heated first and second portions is less than 105 Poise.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority to the following: U.S. Provisional Patent Application Serial No. 60/283,459, entitled “DIELECTRIC MATERIALS FOR MANUFACTURING OMNI-DIRECTIONAL WAVEGUIDE,” to Emilia Anderson et al., filed Apr. 12, 2001; U.S. Provisional Patent Application Serial No. 60/304,229, entitled “HIGH Q-CAVITIES IN OMNIGUIDE AND BRAGG FIBERS,” to Marin Soljacic et al., filed Jul. 10, 2001; and, U.S. Provisional Patent Application Serial No. 60/291,106, entitled “AXIALLY MODULATED PHOTONIC BANDGAP FIBERS, METAL-COATED FIBERS, AND METHODS OF THEIR FABRICATION,” to Marin Soljacic et al., filed May 15, 2001; The contents of all the above are incorporated herein by reference.
Provisional Applications (3)
|
Number |
Date |
Country |
|
60283459 |
Apr 2001 |
US |
|
60304229 |
Jul 2001 |
US |
|
60291106 |
May 2001 |
US |