Claims
- 1. A multi-lens apparatus for altering the mode field of an optical signal, the apparatus comprising:
an optical fiber having a core region defining an optical axis; at least one GRIN-fiber lens positioned in relation to one end of the optical fiber; and a biconic lens positioned in relation to an end of the GRIN-fiber lens remote from the fiber, wherein the biconic lens includes an external surface defined by two different curves disposed substantially orthogonal to one another, a major curve C1 and a minor curve C2, with C1 and C2 intersecting at or near the optical axis.
- 2. The multi-lens apparatus of claim 1 wherein both of the curves C1 and C2 each define a sphere.
- 3. The multi-lens apparatus of claim 1 wherein both of the curves C1 and C2 each define an asphere.
- 4. The multi-lens apparatus of claim 1 wherein one of the curves C1 or C2 defines an asphere while the other of the curves C1 or C2 defines a sphere.
- 5. The multi-lens apparatus of claim 1 wherein the GRIN-fiber lens is affixed to the optical fiber.
- 6. The multi-lens apparatus of claim 1 wherein the biconic lens is formed directly on the end of the GRIN-fiber lens.
- 7. The multi-lens apparatus of claim 1 further comprising one or more spacer rods, each having a radially constant index of refraction, positioned between the optical fiber and the GRIN-fiber lens or the GRIN-fiber lens and the biconic lens.
- 8. The multi-lens apparatus of claim 2 wherein the at least one GRIN-fiber lens comprises a plurality of GRIN-fiber lenses.
- 9. The multi-lens apparatus of claim 7 wherein the GRIN-fiber lens is affixed to the one or more spacer rods.
- 10. The multi-lens apparatus of claim 7 wherein the biconic lens is formed directly on the end of the spacer rod remote from the GRIN-fiber lens.
- 11. The multi-lens apparatus of claim 1 further comprising a non-circular spacer rod positioned between the GRIN-fiber lens and the biconic lens.
- 12 The multi-lens apparatus of claim 11 wherein the non-circular spacer rod is a rectangular rod and wherein the biconic lens is formed directly on the end of the rectangular rod remote from the GRIN-fiber lens.
- 13. The multi-lens apparatus of claim 1 wherein one or more of the optical fiber and the GRIN-fiber lens comprises a geometric shape other than cylindrical.
- 14. The multi-lens apparatus of claim 13 wherein the geometric shape comprises a rectangle.
- 15. The multi-lens apparatus of claim 13 wherein the geometric shape comprises a square.
- 16. The multi-lens apparatus of claim 13 wherein the geometric shape comprises an ellipsoid.
- 17. The multi-lens apparatus of claim 1 wherein each of the optical fiber and the GRIN-fiber lens define an outside diameter and wherein the outside diameters differ in size from one another.
- 18. The multi-lens apparatus of claim 1 wherein each of the optical fiber and the GRIN-fiber lens define an outside diameter and wherein the outside diameters are equal in size to one another.
- 19. The multi-lens apparatus of claim 1 further comprising a first spacer rod positioned between the optical fiber and the GRIN-fiber lens, and a second spacer rod positioned between the GRIN-fiber lens and the biconic lens.
- 20. The multi-lens apparatus of claim 19 wherein the spacer rod comprises a waveguide having a radially constant index of refraction.
- 21. The multi-lens apparatus of claim 20 wherein each of the optical fiber, the spacer rod and the GRIN-fiber lens define an outside diameter and wherein the outside diameter of at least one of the optical fiber, the spacer rod and the GRIN-fiber lens differs in size from the other outside diameters.
- 22. The multi-lens apparatus of claim 20 wherein each of the optical fiber, the spacer rod and the GRIN-fiber lens define an outside diameter and wherein the outside diameter of each of the optical fiber, the spacer rod and the GRIN-fiber lens differs in size from the other outside diameters.
- 23. The multi-lens apparatus of claim 20 wherein each of the optical fiber, the spacer rod and the GRIN-fiber lens define an outside diameter and wherein the outside diameters are equal in size.
- 24. The multi-lens apparatus of claim 19 wherein one or more of the optical fiber, the spacer rod and the GRIN-fiber lens comprises a geometric shape other than circular.
- 25. The multi-lens apparatus of claim 24 wherein the geometric shape comprises a rectangle.
- 26. The multi-lens apparatus of claim 24 wherein the geometric shape comprises a square.
- 27. The multi-lens apparatus of claim 24 wherein the geometric shape comprises an ellipsoid.
- 28. The multi-lens apparatus of claim 1 wherein the biconic lens is formed by laser micro-machining.
- 29. The multi-lens apparatus of claim 1 wherein the GRIN-fiber lens comprises a tapered GRIN-fiber lens.
- 30. The multi-lens apparatus of claim 7 wherein the one or more spacer rods comprises a tapered spacer rod.
- 31. The multi-lens apparatus of claim 1 wherein the biconic lens is shaped to change the size of a mode field passing therethrough without substantially altering the shape of the mode field.
- 32. A system comprising:
an optical component; a substrate configured to support the optical component; and the multi-lens apparatus of claim 1 positioned on the substrate and in relation to the optical component to change the mode field of an optical signal passed between the multi-lens apparatus and the optical component.
- 33. A method of manufacturing a multi-lens apparatus for altering the mode field of an optical signal, the method comprising the steps of:
positioning one end of a GRIN-fiber lens in relation to one end of an optical fiber having a core region defining an optical axis; and disposing a biconic lens in relation to an end of the GRIN-fiber lens remote from the optical fiber, wherein the biconic lens includes an external surface defined by two different curves disposed substantially orthogonal to one another, a major curve C1 and a minor curve C2, and wherein C1 and C2 intersect at or near the optical axis.
- 34. The method of claim 33 wherein the positioning step comprises the steps of splicing the one end of the GRIN-fiber lens to the one end of the optical fiber and cleaving the GRIN-fiber lens to the desired length, and wherein the disposing step comprises the step of forming the biconic lens on the cleaved end of the GRIN-fiber lens.
- 35. The method of claim 34 wherein the forming step comprises the steps of grinding and polishing the cleaved end of the GRIN-fiber lens.
- 36. The method of claim 34 wherein the forming step comprises the steps of grinding, polishing and heating the cleaved end of the GRIN-fiber lens.
- 37. The method of claim 33 wherein the positioning step comprises the steps of splicing the one end of the GRIN-fiber lens to the one end of the optical fiber and cleaving the GRIN-fiber lens to the desired length, and wherein the disposing step comprises the steps of affixing one end of a spacer rod to the cleaved end of the GRIN-fiber lens and shaping the other end of the spacer rod to form the biconic lens.
- 38. The method of claim 37 wherein the shaping step comprises the steps of grinding and polishing.
- 39. The method of claim 37 wherein the shaping step comprises the steps of grinding, polishing, and heating.
- 40. The method of claim 33 wherein the positioning step comprises the steps of splicing the one end of-the GRIN-fiber lens to the one end of the optical fiber, and cleaving the GRIN-fiber lens to the desired length, and wherein the disposing step comprises the steps of affixing one end of a rectangular rod to the cleaved end of the GRIN-fiber lens and shaping the other end of the rectangular rod to form the biconic lens thereon.
- 41. The method of claim 40 wherein the shaping step comprises the steps of grinding and polishing.
- 42. The method of claim 40 wherein the shaping step comprises the steps of grinding, polishing, and heating.
- 43. The method of claim 40 wherein the shaping step comprises the step of reflowing the other end of the rectangular rod to the desired shape via heating.
- 44. The method of claim 33 wherein the positioning step comprises the step of positioning a spacer rod between the optical fiber and the GRIN-fiber lens.
- 45. The method of claim 33 wherein said positioning step comprises the steps of positioning a first spacer rod between the optical fiber and the GRIN-fiber lens and positioning a second spacer rod between the GRIN-fiber lens and the biconic lens.
- 46. The method of claim 45 wherein the disposing step comprises the step of forming the biconic lens on an end of the second spacer rod remote from the GRIN-fiber lens.
- 47. The method of claim 33 wherein the disposting step comprises the step of laser micro-machining the end of the GRIN-fiber lens remote from the optical fiber.
- 48. The method of claim 33 further comprising the step of tapering the GRIN-fiber lens.
- 49. An optical assembly comprising:
an optical component; a substrate configured to support the component; and a multi-lens apparatus positioned on the substrate and in relation to the optical component to change the mode field of an optical signal passed between the multi-lens apparatus and the optical component, wherein the multi-lens apparatus includes an optical fiber having a core region defining an optical axis, a GRIN-fiber lens positioned in relation to one end of the optical fiber, and a biconic lens formed in relation to an end of the GRIN-fiber lens remote from the fiber, wherein the biconic lens includes an external surface defined by two different curves disposed substantially orthogonal to one another, a major curve C1 and a minor curve C2, with C1 and C2 intersecting at or near the optical axis.
- 50. The optical assembly of claim 49 wherein the optical component is a laser diode and wherein the substrate is a silicon optical bench.
- 51. The optical assembly of claim 49 wherein the outside diameter of the optical fiber and the outside diameter of the GRIN-fiber lens are substantially equal.
- 52. The optical assembly of claim 49 wherein the outside diameter of the optical fiber is less than the outside diameter of the GRIN-fiber lens.
- 53. The optical assembly of claim 49 wherein the outside diameter of the optical fiber is greater than the outside diameter of the GRIN-fiber lens.
- 54. The optical assembly of claim 49 wherein the multi-lens apparatus further includes one or more spacer rods each having a radially constant index of refraction, and wherein the one or more spacer rods are positioned between one or more of the optical fiber and the GRIN-fiber lens and the GRIN-fiber lens and the biconic lens.
- 55. The optical assembly of claim 49 wherein one or more of the optical fiber and the GRIN-fiber lens comprises a geometric shape other than cylindrical.
- 56. The optical assembly of claim 54 wherein one or more of the optical fiber, the GRIN-fiber lens and the one or more spacer rods comprises a geometric shape other than cylindrical.
- 57. The optical assembly of claim 54 wherein one or more of the optical fiber, the GRIN-fiber lens and the one or more spacer rods include an alignment feature.
- 58. The optical assembly of claim 54 wherein the multi-lens apparatus is tapered.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional Application Serial No. 60/361,787, filed Mar. 4, 2002, and entitled, “Beam Altering Fiber Lens Device and Method of Manufacture,” which is hereby incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60361787 |
Mar 2002 |
US |