Claims
- 1. A linearly polarized fiber amplifier (LPFA), comprising:
a length of fiber optic that includes a core, a cladding surrounding said core, and a rare-earth dopant, wherein said fiber optic comprises a first V-number for a first linear polarization state and a second V-number for a second linear polarization state that is substantially orthogonal to said first linear polarization state, wherein when optically pumped, said fiber optic exhibits preferential gain for said first linear polarization state rather than for said second linear polarization state.
- 2. The LPFA of claim 1, wherein said core comprises said rare-earth dopant.
- 3. The LPFA of claim 1, wherein said first V-number is not equal to said second V-number due to birefringence.
- 4. The LPFA of claim 1, wherein the spatial overlap of said first polarization state with said rare-earth dopant is greater than the corresponding spatial overlap of said second polarization state.
- 5. The LPFA of claim 1, wherein said fiber optic comprises a greater index of refraction difference between said core and said cladding for said first polarization state than for said second polarization state.
- 6. The LPFA of claim 1, wherein said first V-number is chosen to be in the range where Fcore is a strong function of V.
- 7. The LPFA of claim 1, further comprising means for optically pumping said rare-earth dopant.
- 8. The LPFA of claim 7, wherein said means for optically pumping said rare-earth dopant comprises a diode laser.
- 9. The LPFA of claim 1, wherein said core comprises a first birefringence and said cladding comprises a second birefringence, wherein said first birefringence is greater than said second birefringence,
- 10. The LPFA of claim 1, wherein said fiber optic has a higher NA for said first polarization than for said second polarization.
- 11. The LPFA of claim 1, wherein the difference in index of refraction between said core and said cladding for said first polarization state is larger than the difference in index of refraction between said core and said cladding for said second linear polarization state.
- 12. The LPFA of claim 1, wherein said fiber optic is selected from the group consisting of a step-index fiber optic, a graded-index fiber optic, and a W-type fiber optic.
- 13. The LPFA of claim 1, wherein said fiber optic comprises a plurality of polarizing mechanisms.
- 14. The LPFA of claim 1, wherein said LPFA is characterized by a polarization extinction ratio (PER), wherein said PER is maximized by maximizing the birefringence of said LPFA.
- 15. The LPFA of claim 1, wherein the numerical aperture and core size of said LPFA are selected to optimize fiber characteristics.
- 16. The LPFA of claim 1, wherein said rare-earth dopant is selected from the group consisting of Yb3+, Er3+, Nd3+, Pr3+, Tm3+ and Ho3+ and combinations thereof.
- 17. The LPFA of claim 1, wherein said rare-earth-dopant comprises a distribution that is selected to enhance its preferential overlap with the mode-field distribution of said first linear polarization state.
- 18. The LPFA of claim 1, wherein said fiber optic comprises a refractive index distribution, wherein said refractive index distribution is designed to enhance a preferential overlap of the mode-field distribution of said first linear polarization state with said rare earth dopant.
- 19. The LPFA of claim 1, wherein said fiber optic comprises a cladding configuration selected from the group consisting of a single-cladding configuration and a double-cladding configuration.
- 20. The LPFA of claim 1, wherein said fiber optic is selected from the group consisting of a single-mode fiber and a multimode fiber.
- 21. The LPFA of claim 1, wherein said core comprises silica.
- 22. The LPFA of claim 1, wherein said core comprises glass.
- 23. A fiber optic, comprising:
a core; a cladding surrounding said core; and a rare-earth dopant, wherein said fiber optic comprises a numerical aperture (NA), a core size, and a birefringence such that two substantially orthogonal polarization states propagating within said core have substantially different V-numbers and hence substantially different degrees of overlap with said rare-earth dopant.
- 24. The fiber optic of claim 23, wherein said fiber optic exhibits significantly higher gain for a first linear polarization state than for a second linear polarization state when said fiber optic is optically pumped, thereby causing linear polarization operation.
- 25. The fiber optic of claim 23, further comprising means for optically pumping said fiber optic.
- 26. The fiber optic of claim 23, further comprising a diode laser operatively located with respect to said fiber optic to optically pump said rare-earth dopant.
- 27. A method for producing linearly polarized light, comprising:
providing a length of fiber optic that includes a core, a cladding surrounding said core, and a rare-earth dopant, wherein said fiber optic comprises a first V-number for a first linear polarization state and a second V-number for a second linear polarization state that is substantially orthogonal to said first linear polarization state; and optically pumping said rare earth dopant, wherein said fiber optic exhibits preferential gain for said first linear polarization state rather than for said second linear polarization state.
- 28. The method of claim 27, wherein said core comprises said rare-earth dopant.
- 29. The method of claim 27, wherein the step of providing a length of fiber optic includes choosing said first V-number to be in the range where Fcore is a strong function of V.
- 30. The method of claim 27, wherein the step of optically pumping said rare-earth dopant is carried out with a diode laser.
- 31. The method of claim 27, wherein the said core comprises a first birefringence and said cladding comprises a second birefringence, wherein said first birefringence is greater than said second birefringence.
- 32. The method of claim 27, wherein said fiber optic has a higher NA for said first polarization than for said second polarization.
- 33. The method of claim 27, wherein the difference in index of refraction between said core and said cladding for said first polarization state is larger than the difference in index of refraction between said core and said cladding for said second linear polarization state
- 34. The method of claim 27, wherein said fiber optic is characterized by a polarization extinction ratio (PER), the method further comprising maximizing said PER by maximizing the birefringence of said fiber optic.
- 35. The method of claim 27, further comprising selecting the numerical aperture and core size of said fiber optic to optimize fiber characteristics.
- 36. The method of claim 27, further comprising selecting the fiber NA and core size to minimize nonlinear processes in said fiber optic.
- 37. The method of claim 27, further comprising selecting the fiber NA and core size to maximize nonlinear processes in said fiber optic.
- 38. The method of claim 27, wherein said rare-earth dopant is selected from the group consisting of Yb3+, Er3+, Nd3+, Pr3+, Tm3+ and Ho3+.
- 39. The method of claim 27, wherein the step of providing a length of fiber optic includes providing a rare-earth-dopant distribution in said fiber optic, wherein said rare-earth dopant distribution is selected to enhance its preferential overlap with the mode-field distribution of said first linear polarization state.
- 40. The method of claim 27, wherein the step of providing a length of fiber optic includes designing said fiber optic to have a refractive index distribution that enhances a preferential overlap of the mode-field distribution of said first linear polarization state with said rare earth dopant.
Government Interests
[0001] The United States Government has rights in this invention pursuant to Contract No. DE-AC04-94AL85000 between the United States Department of Energy and Sandia Corporation for the operation of Sandia National Laboratories.