Claims
- 1. A fiber-optic polarizer comprising:
at least one optical fiber embedded in a substrate, the fiber and its core being transversely bifurcated by a narrow trench into a first fiber portion having a first fiber core and a second fiber portion having a second fiber core, and a thin polarizing material positioned in the narrow trench, wherein a light spot size emission from the first fiber core is encompassed by the polarizing material, and a light spot size emerging from the polarizing material is substantially incident upon the second fiber core, wherein the first and second fiber cores each have a diameter that is substantially constant and the polarizing material is not of a laminated structure.
- 2. The fiber-optic polarizer according to claim 1, wherein the fiber and its core is bifurcated at an angle in the range of 0 to 10 degrees relative to the perpendicular of the fiber.
- 3. The fiber-optic polarizer according to claim 1, wherein the fiber and its core is bifurcated at an angle in the range of 3 to 9 degrees relative to the perpendicular of the fiber.
- 4. The fiber-optic polarizer according to claim 1, wherein said diameter of the first and second fiber cores do not have a tapered section, and does not vary more than 15%.
- 5. The fiber optic polarizer according to claim 1, wherein the fiber is a single mode fiber.
- 6. The fiber-optic polarizer according to claim 1, wherein the narrow trench has a width of less than or equal to 60 μm.
- 7. The fiber-optic polarizer according to claim 1, wherein the narrow trench has a width of 20-50 μm.
- 8. The fiber-optic polarizer according to claim 1, wherein the return loss is measured to be 38 dB or greater.
- 9. The fiber-optical polarizer according to claim 1, wherein the polarizer has a contrast ratio greater than 30 dB.
- 10. The fiber-optic polarizer according to claim 1, wherein the polarizing material has a thickness of approximately 10-50 μm.
- 11. The fiber-optic polarizer according to claim 1, wherein the polarizing material is a glass exhibiting dichroic ratios up to 40 and containing silver halide particles aligned along a common axis, the glass is characterized as being either phase separable or photochromic.
- 12. The fiber-optic polarizer according to claim 12, wherein the polarizing material is a photochromic glass having a composition, in weight percent on an oxide basis, consisting essentially of: 5-25% Al2O3, 14-23% B2O3, 20-65% SiO2, 0-25% P2O5, 0-2.5% Li2O, 0-9% Na2O, 0-17% K2O, 0-6% Cs2O, 8-20% Li2O+Na2O+K2O+Cs2O, 0.004-0.02% CuO, 0.15-0.3% Ag, 0.1-0.25% Cl, and 0.1-0.2% Br, the molar ratio of alkali metal oxide:B2O3 ranges between about 0.55-0.085, where the composition is essentially free from divalent metal oxides other than CuO, and the weight ratio of Ag:(Cl+Br) ranges from about 0.65-0.95.
- 13. The fiber-optic polarizer according to claim 12, wherein the polarizing material is a photochromic glass having a composition, in weight percent on an oxide basis, consisting essentially of: 4-26% Al2O3, 4-26% B2O3, 40-76% SiO2, and at least one alkali metal oxide selected from the group of 2-8% Li2O, 4-15% Na2O, 6-20% K2O, 8-25% Rb2O, and 10-30% Cs2O; at least one halogen in a minimum effective proportion of 0.2% Cl, 0.1% Br, and 0.08% I, and a minimum of silver in a proportion of 0.2%, where the effective halogen is Cl, 0.05% where the effective halogen is Br; but the glass contains at least 0.08% I, the sum of the base glass components, halogen, and silver constitute at least 85% by weight of the composition.
- 14. The fiber-optic polarizer according to claim 12, wherein the polarizing material is a phase separable glass having a base composition, in weight percent, consisting essentially of: 1-15% Al2O3, 20-35% B2O3, 5-12% alkali metal oxide, and the remainder SiO2, with the proviso that where Al2O3 is present in amounts greater than about 5%, at least 1% of a phase separating agent will be included in the composition.
- 15. The fiber-optic polarizer according to claim 1, wherein the polarizing material is a polarizing glass having a thickness of 10-50 μm and containing elongated metallic particles throughout said thickness, said polarizing glass being characterized in that said glass exhibits a contrast ratio greater than 25 dB at a wavelength greater than 650 nm.
- 16. The fiber-optic polarizer according to claim 15, wherein said elongated metallic particles have a long axis, characterized in that said elongated metallic particles preferentially absorb the polarizing component of light that is parallel to said long axis to permit high transmittance of light which vibrates perpendicular to said long axis.
- 17. The fiber-optic polarizer according to claim 15, wherein the polarizing material containing metallic silver particles.
- 18. The fiber-optic polarizer according to claim 1, wherein the polarizing material is a polarizing glass which is essentially free of metal halide particles, and said polarizing glass is made according to a method comprising the steps of: (a) providing a polarizing glass comprising a first polarizing layer and a non-polarizing region, wherein said polarizing layer contains elongated metal particles and said non-polarizing region contains metal halide particles; (b) bonding said first polarizing layer of said polarizing glass to a substrate; (c) removing said non-polarizing region to expose said first polarizing layer; and, (d) separating said first polarizing layer from said substrate to form an ultra-thin polarizing glass.
- 19. A fiber-optic polarizer according to claim 1, wherein the polarizing material is of a monolithic body.
- 20. A fiber-optic polarizer according to claim 1, wherein the fibers do not require specialized treatment to expand their respective core diameters.
- 21. A method for making a fiber-optic polarizer comprising:
providing a substrate, coupling an optical fiber to the substrate, making a narrow trench across the fiber and its core at an angle, thereby bifurcating the fiber into a first fiber end having a first fiber core and a second fiber end having a second fiber core, inserting and securing a thin polarizing material of a non-laminated structure into the narrow trench, such that a light spot size emitted from the first fiber core is completely encompassed by the polarizing material, and the light spot size emerging from the polarizing material is substantially collected within the mode field diameter of the second fiber core.
- 22. The method according to claim 21, wherein the polarizing material is secured by a refractive index matching optical adhesive.
- 23. The method according to claim 21, wherein the fiber and its core is bifurcated at an angle in the range of 0 to 10 degrees relative to the perpendicular of the fiber.
- 24. The method according to claim 21, wherein the fiber and its core is bifurcated at an angle in the range of 3 to 9 degrees relative to the perpendicular of the fiber.
- 25. The method according to claim 21, wherein the narrow trench has a width of less than or equal to 60 μm.
- 26. The method according to claim 21, wherein the narrow trench has a width of 20-50 μm
- 27. The method according to claim 21, wherein the return loss is measured to be 38 dB or greater.
- 28. The method according to claim 21, wherein the polarizer has a contrast ratio greater than 30 dB.
- 29. The method according to claim 28, wherein the polarizer had a contrast ratio of 40 dB.
- 30. The method according to claim 21, wherein the polarizing material has a thickness of approximately 20-40 μm.
- 31. The method according to claim 21, wherein the polarizing material is a glass exhibiting dichroic ratios up to 40 and containing silver halide particles aligned along a common axis, the glass is characterized as being either phase separable or photochromic.
- 32. The method according to claim 31, wherein the polarizing material is a photochromic glass having a composition, in weight percent on an oxide basis, consisting essentially of: 5-25% Al2O3, 14-23% B2O3, 20-65% SiO2, 0-25% P2O5, 0-2.5% Li2O, 0-9% Na2O, 0-17% K2O, 0-6% Cs2O, 8-20% Li2O+Na2O+K2O+Cs2O, 0.004-0.02% CuO, 0.15-0.3% Ag, 0.1-0.25% Cl, and 0.1-0.2% Br, the molar ratio of alkali metal oxide:B2O3 ranges between about 0.55-0.085, where the composition is essentially free from divalent metal oxides other than CuO, and the weight ratio of Ag:(Cl+Br) ranges from about 0.65-0.95.
- 33. The method according to claim 31, wherein the polarizing material is a photochromic glass having a composition, in weight percent on an oxide basis, consisting essentially of: 4-26% Al2O3, 4-26% B2O3, 40-76% SiO2, and at least one alkali metal oxide selected from the group of 2-8% Li2O, 4-15% Na2O, 6-20% K2O, 8-25% Rb2O, and 10-30% Cs2O; at least one halogen in a minimum effective proportion of 0.2% Cl, 0.1% Br, and 0.08% I, and a minimum of silver in a proportion of 0.2%, where the effective halogen is Cl, 0.05% where the effective halogen is Br; but the glass contains at least 0.08% I, the sum of the base glass components, halogen, and silver constitute at least 85% by weight of the composition.
- 34. The method according to claim 31, wherein the polarizing material is a phase separable glass having a base composition, in weight percent, consisting essentially of: 1-15% Al2O3, 20-35% B2O3, 5-12% alkali metal oxide, and the remainder SiO2, with the proviso that where Al2O3 is present in amounts greater than about 5%, at least 1% of a phase separating agent will be included in the composition.
- 35. The method according to claim 21, wherein the polarizing material is a polarizing glass having a thickness of 10-50 μm and containing elongated metallic silver particles throughout said thickness, said polarizing glass being characterized in that said glass exhibits an extinction ratio greater than 25 dB at a wavelength greater than 650 nm.
- 36. The method according to claim 35, wherein said elongated metallic silver particles have a long axis, characterized in that said elongated metallic silver particles preferentially absorb the polarizing component of light that is parallel to said long axis to permit high transmittance of light which vibrates perpendicular to said long axis.
- 37. The method according to claim 21, wherein the polarizing material is a polarizing glass which is essentially free of metal halide particles.
- 38. The method according to claim 21, wherein the fibers do not require specialized treatment to expand their respective core diameters.
- 39. A fiber-optic polarizer comprising: at least one optical single mode fiber embedded in a substrate, the fiber and its core being transversely bifurcated by a narrow trench into a first fiber portion having a first fiber core and a second fiber portion having a second fiber core, and a thin polarizing material positioned in the narrow trench, wherein a light spot size emission from the first fiber core is completely encompassed by the polarizing material, and a light spot size emerging from the polarizing material is substantially incident upon the second fiber core, wherein the first and second fiber cores each have a diameter that is substantially equivalent, does not have a tapered section, and does not vary more than 15%, and the polarizing material is not of a laminated structure, the fiber and its core is bifurcated at an angle in the range of 0 to 10 degrees relative to the perpendicular of the fiber, the narrow trench has a width of less than or equal to 50 μm, the return loss is measured to be 38 dB or greater, the polarizer has an contrast ratio greater than 30 dB, the polarizing material is a monolithic polarizing glass having a thickness of 10-50 μm and containing elongated metallic silver particles throughout said thickness, the polarizing glass being characterized in that the glass exhibits an extinction ratio greater than 25 dB in a wavelength greater than 650 nm, the elongated metallic silver particles have a long axis, characterized in that said elongated metallic silver particles preferentially absorb the polarizing component of light that is parallel to the long axis to permit high transmittance of light which vibrates perpendicular to the long axis, the polarizing glass is a wafer with a thickness of 10-50 μm.
- 40. A method for making a fiber-optic polarizer comprising: providing a substrate, coupling an optical single mode fiber to the substrate, making a narrow trench across the fiber at an angle, thereby bifurcating the fiber and its core into a first fiber end having a first fiber core and a second fiber end having a second fiber core, inserting and securing a thin polarizing material of a monolithic, non-laminated structure into the narrow trench, such that a light spot size emitted from the first fiber core is completely encompassed by the polarizing material, and the light spot size emerging from the polarizing material is substantially equal to the mode field diameter of the second fiber core, wherein the polarizing material is secured by a refractive index matching optical adhesive, the fiber and its core is bifurcated at an angle in the range of 0 to 10 degrees relative to the perpendicular of the fiber, the narrow trench has a width of less than or equal to 50 μm, the return loss is measured to be 38 dB or greater, the polarizer has a contrast ratio greater than 30 dB, wherein the polarizing material is a polarizing glass having a thickness of approximately 10-50 μm and containing elongated metallic silver particles throughout said thickness, the polarizing glass being characterized in that the glass exhibits a contrast ratio greater than 25 dB in a wavelength greater than 650 nm, the elongated metallic silver particles have a long axis, characterized in that the elongated metallic silver particles preferentially absorb the polarizing component of light that is parallel to the long axis to permit high transmittance of light which vibrates perpendicular to the long axis, the polarizing material is a polarizing glass which is essentially free of metal halide particles, the polarizing material is a polarizing glass which is essentially free of metal halide particles, and the polarizing glass is made according to a method comprising the steps of: (a) providing a polarizing glass comprising a first polarizing layer and a non-polarizing region, wherein the polarizing layer contains elongated metal particles and the non-polarizing region contains metal halide particles; (b) bonding the first polarizing layer of the polarizing glass to a substrate; (c) removing the non-polarizing region to expose said first polarizing layer; and, (d) separating the first polarizing layer from the substrate to form an ultra-thin polarizing glass, the fibers do not require specialized treatment to expand their respective core diameters.
CLAIM OF PRIORITY
[0001] This Application claims priority to a Provisional Application No. 60/176,797, entitled FIBEROPTIC POLARIZER, filed on Jan. 18, 2000 in the U.S. Patent and Trademark Office.
Provisional Applications (1)
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Number |
Date |
Country |
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60176797 |
Jan 2000 |
US |