Claims
- 1. An optical waveguide comprising a first polymer layer having at least one optical element formed therein for operating on light in a predetermined manner, said first polymer layer having at least two sides and a second polymer layer having at least two sides wherein one of said at least two sides of said first polymer layer is disposed adjacent to one of said at least two sides of said second polymer layer, said first polymer layer having a first index of refraction, said second polymer layer having a second index of refraction, said first index of refraction being higher than said second index of refraction, wherein light projected into said first polymer layer in a direction substantially parallel to said first and second sides of said first polymer layer will be guided through said first polymer layer by internal reflection.
- 2. An optical waveguide according to claim 1 wherein said at least one optical element creates a local modification in the refractive index of said first polymer layer, said local modification of the refractive index of said first polymer layer causing light impinging on said at least one optical element to be operated on in the predetermined manner by said at least one optical element.
- 3. An optical waveguide according to claim 2 wherein said at least one optical element is a prism.
- 4. An optical waveguide according to claim 3 wherein said at least one optical element is a reflector.
- 5. An optical waveguide according to claim 2 wherein said at least one optical element is a converging lens.
- 6. An optical waveguide according to claim 2 wherein said at least one optical element is a diverging lens.
- 7. An optical waveguide according to claim 1 having at least two optical elements which cooperate as an optical system to operate on light projected thereon.
- 8. An optical waveguide according to claim 1 wherein there are a plurality of optical elements formed in said first polymer layer and wherein said plurality of optical elements cooperate as a spectroscope to spatially separate light projected thereon according to frequency.
- 9. An optical waveguide according to claim 1, wherein said first polymer layer has a plurality of optical waveguide channels and a plurality of optical elements formed therein to form an optical system.
- 10. An optical waveguide according to claim 1 wherein said first polymer layer has at least one optical waveguide channel formed therein wherein light projected into said at least one optical waveguide channel is restricted by said optical waveguide channel such that the light projected into said optical waveguide channel propagates in phase coherence.
- 11. An optical waveguide according to claim 10 wherein said first polymer layer has a plurality of optical waveguide channels and a plurality of optical elements formed therein wherein said plurality of optical waveguide channels and optical elements cooperate to form an optical demultiplexer.
- 12. An optical waveguide according to claim 10 wherein said first polymer layer has a plurality of optical waveguide channels formed therein and wherein said optical waveguide channels comprise an optical splitter.
- 13. An optical waveguide according to claim 10 wherein said first polymer layer has a plurality of optical waveguide channels formed therein and wherein said optical waveguide channels comprise an optical combiner.
- 14. An optical waveguide according to claim 1 wherein said optical waveguide is an embossment generated from a master.
- 15. An optical waveguide according to claim 4 wherein said reflector is a multi-layer dielectric mirror.
- 16. An optical waveguide according to claim 5 wherein said converging lens is a gradient refractive index lens.
- 17. An optical waveguide according to claim 6 wherein said diverging lens is a gradient refractive index lens.
- 18. An optical waveguide according to claim 1 wherein a third polymer layer is placed in contact with one of said at least two sides of said first polymer layer not in contact with said one of said at least two sides of said second polymer layer, said third polymer layer having an index of refraction lower than said first index of refraction.
- 19. A method for creating an optical waveguide, said method comprising the steps of:
creating a waveguide master having the geometrical form of at least one optical element formed therein; generating an embossed optical waveguide from said master, said embossed optical waveguide being a negative of said master, said embossed optical waveguide having at least one optical element formed therein which corresponds to and is a negative of the geometrical form of said at least one optical element formed in said master, said embossed optical waveguide comprised of a polymer material, said polymer material having a first index of refraction, wherein said at least one optical element is formed in said polymer material, wherein said at least one optical element formed in said polymer material creates a local modification of the refractive index of said polymer material, wherein said local modification of the refractive index of said polymer material causes light impinging on said at least one optical element formed in said polymer material to be operated on in a predetermined manner by said at least one optical element formed in said polymer material.
- 20. A method for creating an optical waveguide according to claim 19, further including the step of:
bonding a substrate to said polymer material, said substrate having known optical and mechanical characteristics, such that when light projected into said embossed optical waveguide impinges on said substrate it is reflected such that it continues to propagate in said embossed optical waveguide.
- 21. A method for creating an optical waveguide according to claim 19 wherein said step of creating said master comprises the step of exposing a layer of liquid photopolymer to curing radiation through a mask, wherein the mask controls the exposure of said liquid photopolymer such that certain parts of said liquid photopolymer become cured and certain parts of said liquid photopolymer remain uncured, wherein the uncured parts are subsequently removed to thereby form said at least one optical element in said master.
- 22. A method for creating an optical waveguide according to claim 21 wherein said step of creating said master further comprises the step of reactively ion etching certain parts of said cured photopolymer to form additional optical elements therein.
- 23. A method for creating an optical waveguide according to claim 21 wherein said step of creating said master further comprises the step of ion beam milling certain parts of said cured photopolymer to form additional optical elements therein.
- 24. A method for creating an optical waveguide according to claim 19 wherein said master is comprised of metal.
- 25. A method for creating an optical waveguide according to claim 21 wherein after the uncurled parts of said liquid photopolymer have been removed said master is electroplated with metal to create a metal master.
- 26. A method for creating an optical waveguide according to claim 19 wherein said embossed optical waveguide is generated by placing a layer of liquid photopolymer in contact with said master, exposing said liquid photopolymer to curing radiation which cures the liquid photopolymer, and separating said cured photopolymer from said master, said cured photopolymer corresponding to said polymer material.
- 27. A method for creating an optical waveguide according to claim 26 wherein prior to exposing said layer of liquid photopolymer to curing radiation, said substrate is placed in contact with said layer of liquid photopolymer such that during exposure of said liquid photopolymer to the curing radiation, said substrate bonds to the cured layer of photopolymer.
- 28. A method for creating an optical waveguide according to claim 19 wherein said step of creating said master comprises the step of exposing a polymeric resist to a pattern of exposing radiation, wherein the pattern of exposure of said resist alters its solubility in a developing solution, wherein a pattern of resist is subsequently removed by development to thereby form said at least one optical element in said master.
- 29. A method for creating an optical waveguide according to claim 28 wherein said step of creating said master further comprises the step of reactively ion etching certain parts of said photoresist to form additional optical elements therein.
- 30. A method for creating an optical waveguide according to claim 28 wherein said step of creating said master further comprises the step of ion beam milling certain parts of said photoresist to form additional optical elements therein.
- 31. A method for creating an optical waveguide according to claim 28 wherein after the pattern of photoresist has been developed said master is electroplated with metal to create a metal master.
RELATED APPLICATION
[0001] This application claims priority from and the benefit of U.S. Provisional Patent Application Serial No. 60/381,325 filed May 17, 2002.
Provisional Applications (1)
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Number |
Date |
Country |
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60381325 |
May 2002 |
US |