Claims
- 1. A system for laser light delivery from an organic fiber laser, comprising:
a) a multi-layered vertical cavity film structure, wherein the multi-layered vertical cavity film structure is excited by an energy source; and b) an optical fiber integrated with the multi-layered vertical cavity film structure, such that the multi-layered vertical cavity film structure is deposited on the optical fiber; and wherein the delivery of laser light occurs at an end of the optical fiber as emitted laser light.
- 2. The system for laser light delivery claimed in claim 1, wherein the energy source is a source of photons.
- 3. The system for laser light delivery claimed in claim 2, wherein the source of photons is an incoherent source of photons.
- 4. The system for laser light delivery claimed in claim 3, wherein the incoherent source of photons is a light emitting diode.
- 5. The system for laser light delivery claimed in claim 2, wherein the source of photons is a coherent source of photons.
- 6. The system for laser light delivery claimed in claim 5, wherein the coherent source of photons is a laser.
- 7. The system for laser light delivery claimed in claim 1, wherein the energy source is an electrical source.
- 8. The system for laser light delivery claimed in claim 1, wherein the energy source is a current source.
- 9. The system for laser light delivery claimed in claim 2, wherein the multi-layered vertical cavity film structure includes:
a) a top mirror assembly for receiving and transmitting light from the source of photons and being reflective to the emitted laser light over a predetermined range of wavelengths; b) an organic active region for receiving transmitted light from the source of photons and transmitted through the top mirror assembly and emits laser light; and c) a bottom mirror assembly for reflecting transmitted light from the source of photons and emitted laser light from the organic active region back into the organic active region, wherein a combination of the top and the bottom mirror assemblies and the organic active region launches the emitted laser light into the integrated optical fiber.
- 10. The system for laser light delivery claimed in claim 1 includes a plurality of multi-layered vertical cavity film structures arranged in an array and deposited on the optical fiber.
- 11. The system for laser light delivery claimed in claim 9, wherein the multi-layered vertical cavity film structure is tunable.
- 12. The system for laser light delivery claimed in claim 11, wherein the multi-layered vertical cavity film structure is tunable by the group consisting of: micro-electromechanical means with a controller, index controlled layered means with a controller, and a tapered organic active region.
- 13. The system for laser light delivery claimed in claim 7, wherein the multi-layered vertical cavity film structure includes:
a) a top mirror assembly reflective to the emitted laser light over a predetermined range of wavelengths; b) an organic active region producing the emitted laser light by means of electrical injection; and c) a bottom mirror assembly for reflecting emitted laser light from the organic active region back into the organic active region, wherein a combination of the top and the bottom mirror assemblies and the organic active region launches the emitted laser light into the integrated optical fiber.
- 14. The system claimed in claim 13, wherein the top and/or the bottom mirror assemblies includes a metal film.
- 15. The system claimed in claim 13, wherein the top and/or the bottom mirror assemblies includes a dielectric stack.
- 16. The system for laser light delivery claimed in claim 13 includes a plurality of multi-layered vertical cavity film structures arranged in an array and deposited on the optical fiber.
- 17. The system for laser light delivery claimed in claim 13, wherein the multi-layered vertical cavity film structure is tunable.
- 18. The system for laser light delivery claimed in claim 17, wherein the multi-layered vertical cavity film structure is tunable by the group consisting of: a micro-electromechanical means and an index controlled layered means such that the group is controlled by a controller.
- 19. A polarized laser light delivery system from an organic fiber laser, comprising:
a) a polarizing multi-layered vertical cavity film structure, wherein the multi-layered vertical cavity film structure is excited by an energy source and produces polarized laser light; and b) a polarization preserving optical fiber integrated with the polarizing multi-layered vertical cavity film structure, such that the polarizing multi-layered vertical cavity film structure is deposited on the polarization preserving optical fiber; and wherein delivery of laser light occurs at an end of the polarization preserving optical fiber as polarized emitted laser light.
- 20. The system claimed in claim 19, wherein the polarization preserving optical fiber is selected from the group of birefringent fibers consisting of elliptical core optical fibers, D-shaped elliptical core optical fibers, elliptical stressed cladding optical fibers, rectangular stressed cladding optical fibers, stressed bow tie optical fibers, and stressed circular optical fibers.
- 21. The system claimed in claim 19, wherein the energy source is an electrical energy source.
- 22. The system claimed in claim 19, wherein the energy source is an optical energy source.
- 23. The system claimed in claim 1, wherein the optical fiber is selected from the group consisting of: glass, plastic, sapphire, polymers, polyimides, acrylates, methacrylates, and polycarbonate.
- 24. The system claimed in claim 1, wherein the optical fiber includes a photonic bandgap structure.
- 25. The system claimed in claim 19, wherein the polarization preserving optical fiber is selected from the group consisting of: glass, plastic, sapphire, polymers, polyimides, acrylates, methacrylates and polycarbonate.
- 26. The system claimed in claim 19, wherein the polarization preserving optical fiber includes a photonic bandgap structure.
- 27. A system for laser light delivery from an organic microcavity laser array, comprising:
a) a multi-layered vertical cavity film structure, wherein the multi-layered vertical cavity film structure is excited by an energy source; and b) a monolithic integrator having an integrator bar and in combination with the multi-layered vertical cavity film structure, such that the multi-layered vertical cavity film structure is deposited on the integrator bar; and wherein laser light delivery occurs at an end of the integrator bar as homogenized light.
- 28. The system claimed in claim 27, wherein the multi-layered vertical cavity film structure is deposited on the integrator bar by electron beam deposition and/or thermal evaporation.
- 29. The system for laser light delivery claimed in claim 27, wherein the energy source is a source of photons.
- 30. The system for laser light delivery claimed in claim 29, wherein the source of photons is an incoherent source of photons.
- 31. The system for laser light delivery claimed in claim 30, wherein the incoherent source of photons is a light emitting diode.
- 32. The system for laser light delivery claimed in claim 29, wherein the source of photons is a coherent source of photons.
- 33. The system for laser light delivery claimed in claim 32, wherein the coherent source of photons is a laser.
- 34. The system for laser light delivery claimed in claim 27, wherein the energy source is an electrical source.
- 35. The system for laser light delivery claimed in claim 27, wherein the energy source is a current source.
- 36. The system for laser light delivery claimed in claim 29, wherein the multi-layered vertical cavity film structure includes:
a) a top mirror assembly for receiving and transmitting light from the source of photons and being reflective to emitted laser light over a predetermined range of wavelengths; b) an organic active region for receiving transmitted light from the source of photons and transmitted through the top mirror assembly and emits laser light; and c) a bottom mirror assembly for reflecting transmitted light from the source of photons and emitted laser light from the organic active region back into the organic active region, wherein a combination of the top and the bottom mirror assemblies and the organic active region launches the emitted laser light into the integrator bar.
- 37. The system for laser light delivery claimed in claim 27 includes a plurality of multi-layered vertical cavity film structures arranged in an array and deposited on the integrator bar.
- 38. The system for laser light delivery claimed in claim 36, wherein the multi-layered vertical cavity film structure is tunable.
- 39. The system for laser light delivery claimed in claim 38, wherein the multi-layered vertical cavity film structure is tunable by the group consisting of: micro-electromechanical means with a controller, index controlled layered means with a controller, and a tapered organic active region.
- 40. The system for laser light delivery claimed in claim 34, wherein the multi-layered vertical cavity film structure includes:
a) a top mirror assembly reflective to emitted laser light over a predetermined range of wavelengths; b) an organic active region producing the emitted laser light by means of electrical injection; and c) a bottom mirror assembly for reflecting emitted laser light from the organic active region back into the organic active region, wherein a combination of the top and the bottom mirror assemblies and the organic active region launches the emitted laser light into the integrator bar.
- 41. The system claimed in claim 40, wherein the top and/or the bottom mirror assemblies includes a metal film.
- 42. The system claimed in claim 40, wherein the top and/or the bottom mirror assemblies includes a dielectric stack.
- 43. The system for laser light delivery claimed in claim 40 includes a plurality of multi-layered vertical cavity film structures arranged in an array and deposited on the integrator bar.
- 44. The system for laser light delivery claimed in claim 40, wherein the multi-layered vertical cavity film structure is tunable.
- 45. The system for laser light delivery claimed in claim 44, wherein the multi-layered vertical cavity film structure is tunable by the group consisting of: a photorefractive means, a thermal sensitive means, and an index controlled layered means such that the group is controlled by a controller.
- 46. The system claimed in claim 27, wherein the integrator bar is selected from the group consisting of: glass, plastic, sapphire, and polymethylmethacralate (PMMA).
- 47. A method of producing laser light, comprising the steps of:
a) providing an optical fiber; b) forming a multi-layered vertical cavity film structure on an end of the optical fiber, and; c) exciting the multi-layered vertical cavity film structure with an energy source to produce laser light in the optical fiber.
- 48. The method claimed in claim 47, wherein the energy source is a source of photons.
- 49. The method claimed in claim 48, wherein the source of photons is an incoherent source of photons.
- 50. The method claimed in claim 49, wherein the incoherent source of photons is a light emitting diode.
- 51. The method claimed in claim 48, wherein the source of photons is a coherent source of photons.
- 52. The method claimed in claim 51, wherein the coherent source of photons is a laser.
- 53. The method claimed in claim 47, wherein the energy source is an electrical source.
- 54. The method claimed in claim 47, wherein the energy source is a current source.
- 55. The method claimed in claim 48, wherein the multi-layered vertical cavity film structure includes:
a) a top mirror assembly for receiving and transmitting light from the source of photons and being reflective to emitted laser light over a predetermined range of wavelengths; b) an organic active region for receiving transmitted light from the source of photons and transmitted through the top mirror assembly and emits laser light; and c) a bottom mirror assembly for reflecting transmitted light from the source of photons and emitted laser light from the organic active region back into the organic active region, wherein a combination of the top and the bottom mirror assemblies and the organic active region launches the emitted laser light into the optical fiber.
- 56. The method claimed in claim 47 includes a plurality of multi-layered vertical cavity film structures arranged in an array and deposited on the optical fiber.
- 57. The method claimed in claim 55, wherein the multi-layered vertical cavity film structure is tunable.
- 58. The method claimed in claim 57, wherein the multi-layered vertical cavity film structure is tunable by the group consisting of: micro-electromechanical means with a controller, index controlled layered means with a controller, and a tapered organic active region.
- 59. A method of providing polarized laser light from an organic fiber laser, comprising:
a) providing a polarizing multi-layered vertical cavity film structure; b) exciting the multi-layered vertical cavity film structure with an energy source and producing polarized laser light; and c) depositing the polarizing multi-layered vertical cavity film structure upon a polarization preserving optical fiber; and wherein emitted polarized laser light occurs at an end of the polarization preserving optical fiber.
- 60. The method claimed in claim 59, wherein the polarization preserving optical fiber is selected from the group of birefringent fibers consisting of elliptical core optical fibers, D-shaped elliptical core optical fibers, elliptical stressed cladding optical fibers, rectangular stressed cladding optical fibers, stressed bow tie optical fibers, and stressed circular optical fibers.
- 61. The method claimed in claim 59, wherein the energy source is an electrical energy source.
- 62. The method claimed in claim 59, wherein the energy source is an optical energy source.
- 63. The method claimed in claim 47, wherein the optical fiber is selected from the group consisting of: glass, plastic, sapphire, polymers, polyimides, acrylates, methacrylates, and polycarbonate.
- 64. The method claimed in claim 47, wherein the optical fiber includes a photonic bandgap structure.
- 65. The method claimed in claim 59, wherein the polarization preserving optical fiber is selected from the group consisting of: glass, plastic, sapphire, polymers, polyimides, acrylates, methacrylates and polycarbonate.
- 66. The method claimed in claim 59, wherein the polarization preserving optical fiber includes a photonic bandgap structure.
- 67. The method claimed in claim 53, wherein the multi-layered vertical cavity film structure includes:
a) a top mirror assembly reflective to the emitted laser light over a predetermined range of wavelengths; b) an organic active region producing the emitted laser light by means of electrical injection; and c) a bottom mirror assembly for reflecting emitted laser light from the organic active region back into the organic active region, wherein a combination of the top and the bottom mirror assemblies and the organic active region launches the emitted laser light into the integrated optical fiber.
- 68. The method claimed in claim 59, wherein the top and/or bottom mirror assemblies includes a metal film.
- 69. The method claimed in claim 59, wherein the top and/or bottom mirror assemblies includes a dielectric stack.
- 70. The method claimed in claim 59 includes a plurality of multi-layered vertical cavity film structures arranged in an array and deposited on the optical fiber.
- 71. The method claimed in claim 59, wherein the multi-layered vertical cavity film structure is tunable.
- 72. The method claimed in claim 71, wherein the multi-layered vertical cavity film structure is tunable by the group consisting of: a micro-electromechanical means and an index controlled layered means such that the group is controlled by a controller.
- 73. A method for delivering laser light from a microcavity laser array, comprising the steps of:
a) providing a multi-layered vertical cavity film structure; b) exciting the multi-layered vertical cavity film structure with an energy source; c) combining the multi-layered vertical cavity film structure with a monolithic integrator having an integrator bar; and d) depositing the multi-layered vertical cavity film structure on the integrator bar, enabling the laser light to occur at an end of the integrator bar as homogenized light.
- 74. The method claimed in claim 73, wherein the step of depositing the multi-layered vertical cavity film structure on the integrator bar is accomplished by electron beam deposition and/or thermal evaporation.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is related to commonly assigned U.S. patent application Ser. No. 09/832,759 filed Apr. 11, 2001 titled “Incoherent Light-Emitting Device Apparatus for Driving Vertical Laser Cavity” by Keith B. Kahen et al.; U.S. patent application Ser. No. (D-85280) filed ______, by Brian E. Kruschwitz et al., titled “Electronic Imaging System Using Organic Laser Array Illuminating An area Light Valve;” commonly assigned U.S. patent application Ser. No. 10/066,936 filed Feb. 04, 2002 titled “Organic Vertical Cavity Lasing Devices Containing Periodic Gain Regions” by Keith B. Kahen et al.; commonly assigned U.S. patent application Ser. No. 10/066,829 filed Feb. 4, 2002 titled “Organic Vertical Cavity Phase-Locked Laser Array Device” by Keith B. Kahen; and commonly assigned U.S. patent application Ser. No. 10/272,605, filed Oct. 16, 2002, titled “Tunable Organic VCSEL System” by John P. Spoonhower et al., the disclosures of which are incorporated herein by reference.