Claims
- 1. A pair of optical lenses comprising:
a first biconvex optical lens having two equivalent aspheric optical surfaces; a second biconvex optical lens having two equivalent aspheric optical surfaces positioned spaced apart from the first biconvex optical lens, wherein the first optical lens is adapted to shape the light emitted from a source optical fiber into one of a converging, diverging, and collimated beam and the second optical lens is adapted to focus the beam into a receiving optical fiber such that the light emitted from the source optical fiber is coupled into the receiving optical fiber.
- 2. The pair of optical lenses of claim 1, portions of the first and second optical lenses defining an optical axis, wherein the first optical lens is adapted to shape the light emitted from a source optical fiber positioned on the optical axis into one of a converging, diverging, and collimated beam and the second optical lens is adapted to focus the beam into a receiving optical fiber positioned on the optical axis.
- 3. The pair of optical lenses of claim 1, portions of the first and second optical lenses defining an optical axis, wherein the first optical lens is adapted to shape the light emitted from a source optical fiber positioned off the optical axis into one of a converging, diverging, and collimated beam and the second optical lens is adapted to focus the beam into a receiving optical fiber positioned off the optical axis.
- 4. The pair of optical lenses of claim 1, wherein the aspheric optical surfaces of the first and second optical lenses are conic.
- 5. The pair of optical lenses of claim 4, wherein the conic constant ranges from −0.50 to −0.36.
- 6. The pair of optical lenses of claim 1, wherein the maximum departure of the aspheric surfaces of the first and second optical lenses from the vertex sphere ranges from 0.0005 to 0.0040 mm at a diameter of 0.972 mm.
- 7. The pair of optical lenses of claim 1, wherein the optical surfaces of the first and second optical lenses are coated with a single layer MgF2 anti-reflection coating.
- 8. The pair of optical lenses of claim 1, wherein the optical surfaces of the first and second optical lenses are coated with a multi-layer, dichroic anti-reflection coating.
- 9. The pair of optical lenses of claim 1, wherein the optical surfaces of the first and second optical lenses are ground and polished.
- 10. The pair of optical lenses of claim 1, wherein the optical surfaces of the first and second optical lenses are molded.
- 11 The pair of optical lenses of claim 1, wherein the optical lens material of the first and second optical lenses is glass.
- 12. The pair of optical lenses of claim 11, wherein the first and second optical lenses have an index of refraction of from 1.50 to 1.90.
- 13. The pair of optical lenses of claim 1, wherein the optical lens material of the first and second optical lenses is plastic.
- 14. The first and second optical lenses of claim 13, wherein the first and second optical lenses have an index of refraction of from 1.40 to 1.60.
- 15. The first and second optical lenses of claim 1, wherein the first and second optical lenses have an effective focal length of from 1.50 to 10.00 mm.
- 16. An optical lens comprising:
a biconvex optical lens having two equivalent aspheric optical surfaces, a portion of the optical lens defining an optical axis, wherein the optical lens is adapted to shape the light emitted from a source optical fiber located off the optical axis of the lens into one of a converging, diverging, and collimated beam and subsequently focus a reflected beam back through the optical lens into a receiving fiber located off the optical axis of the optical lens such that the light emitted from the source optical fiber is coupled into the receiving optical fiber.
- 17. The optical lens of claim 16, wherein the aspheric optical surfaces are conic.
- 18. The optical lens of claim 18, wherein the conic constant ranges from −0.50 to −0.36.
- 19. The optical lens of claim 16, wherein the aspheric optical surfaces have a maximum departure from the vertex sphere of from 0.0005 to 0.0040 mm at a diameter of 0.972 mm.
- 20. The optical lens of claim 16, wherein the aspheric optical surfaces are coated with a single layer MgF2 anti-reflection coating.
- 21. The optical lens of claim 16, wherein the aspheric optical surfaces are coated with a multi-layer, dichroic anti-reflection coating.
- 22. The optical lens of claim 16, wherein the aspheric optical surfaces are ground and polished.
- 23. The optical lens of claim 16, wherein the aspheric optical surfaces are molded.
- 24. The optical lens of claim 16, wherein the biconvex optical lens is made from a glass material.
- 25. The optical lens of claim 24, wherein the biconvex optical lens has an index of refraction of from 1.50 to 1.90.
- 26. The optical lens of claim 16, wherein the biconvex optical lens is made from a plastic material.
- 27. The optical lens of claim 26, wherein the biconvex optical lens has an index of refraction of from 1.40 to 1.60.
- 28. The optical lens of claim 16, wherein the biconvex optical lens has an effective focal length of from 1.50 to 10.00 mm.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] Reference is made to commonly assigned co-pending application Serial No. ______ (Docket # 84939) filed ______ entitled SYMMETRIC, BI-ASPHERIC LENS FOR USE IN OPTICAL FIBER COLLIMATOR ASSEMBLIES in the name of Ludington et al.