Claims
- 1. An optical fiber amplifier, comprising:
A micro fiber of length L less than 20 cm coupled between lengths of single-mode fiber to receive and amplify an optical signal, said micro fiber having a core and an inner cladding of similar multi-component glass compositions with said core being co-doped with 0.5-5 wt. % erbium and 5-30 wt. % ytterbium; and A multi-mode pump laser that emits pump radiation that is coupled into the micro fiber's inner cladding and is partially absorbed by the doped core causing stimulated emission and amplification of the optical signal.
- 2. The optical fiber amplifier of claim 1, wherein the multi-component glass comprises a glass network former from 30 to 80 weight percent, a glass network modifier MO from 2 to 40 weight percent, and a glass network intermediator XO from 2 to 30 weight percent, wherein MO is selected from alkaline earth oxides and transition metal oxides consisting of BaO, BeO, MgO, SrO, CaO, ZnO, PbO and mixtures thereof, and XO is selected from PbO, ZnO, WO3, Al2O3, B2O3, Y2O3, La2O3, and mixtures thereof.
- 3. The optical fiber amplifier of claim 2, wherein the glass network former is selected from one of phosphorus oxide P2O5, germanium oxide GeO2 or telluride oxide TeO2.
- 4. The optical fiber amplifier of claim 2, wherein the multi-component glass comprises glass network modifier MO from 5 to 40 weight percent, and a glass network intermediator XO from 5 to 30 weight percent.
- 5. The optical fiber amplifier of claim 1, wherein the total doping concentration of erbium and ytterbium exceeds 10 wt. %.
- 6. The optical fiber amplifier of claim 1, wherein the micro fiber core is doped with 2 to 5 wt. % erbium and 12 to 30 wt. % ytterbium.
- 7. The optical fiber amplifier of claim 6, wherein the total doping concentration of erbium and ytterbium exceeds 15 wt. %.
- 8. The optical fiber amplifier of claim 2, wherein the glass composition has a temperature coefficient of refractive index (dn/dT) from about −2.0×10−6 to 2.0×10−6 K−1.
- 9. The optical fiber amplifier of claim 8, wherein the glass composition further comprising up to 5 percent by weight of an additional network modifier R2O selected from the alkali metal oxide group consisting of Li2O, K2O, Na2O, Rb2O, and mixtures thereof.
- 10. The optical fiber amplifier of claim 8, wherein the multi-component glass is an alkali-free glass substantially free of an additional network modifier R2O selected from the alkali metal oxide group consisting of Li2O, K2O, Na2O, Rb2O, and mixtures thereof.
- 11. The optical fiber amplifier of claims 9 or 10, wherein the multi-component glass further comprises a mixture of network modifiers MO such that said temperature coefficient of refractive index is between −2.0×10−6 to 2.0×10−6 K−1.
- 12. The optical fiber amplifier of claim 11, wherein the mixture of network modifiers MO includes a mixture of up to 25.5 wt. % BaO and/or ZnO.
- 13. The optical fiber amplifier of claim 1, wherein said micro fiber has a circularly symmetric core and inner cladding.
- 14. The optical fiber amplifier of claim 1, wherein the micro fiber length L is 2-10 cm.
- 15. The optical fiber amplifier of claim 1, wherein the absorption efficiency of pump radiation into the core exceeds 10%.
- 16. The optical fiber amplifier of claim 1, wherein the multi-mode pump power coupled into the micro fiber is less than 1 W, said micro fiber providing at least 1 dB/cm of gain for the optical signal over a wavelength range of 1530 nm to 1565 nm.
- 17. The optical fiber amplifier of claim 1, wherein the micro fiber formed of said multi-component glass exhibits a propagation loss greater than 0.005 dB/cm.
- 18. The optical fiber amplifier of claim 1, wherein said fiber core has an absorption coefficient a greater than 5 cm−1 at a peak wavelength such that αL>20.
- 19. The optical fiber amplifier of claim 18, wherein the multi-mode pump radiation consists of lower and higher order modes that are coupled into the inner cladding and propagate axially down the fiber, said high concentration of ytterbium, hence said high absorption coefficient causing said lower order modes that substantially overlap said core to be rapidly absorbed and invert the dopants in a first portion of the micro fiber, said rapid absorption of said lower order modes perturbing said higher order modes so that they are mode coupled into and partially absorbed by the core thereby inverting the dopants in the remaining length of the micro fiber.
- 20. An optical fiber amplifier, comprising
A micro fiber of length L<20 cm coupled between lengths of single-mode fiber to receive and amplify an optical signal, said micro fiber having a core and an inner cladding of similar multi-component glass compositions with said core being co-doped with erbium and ytterbium to have an absorption coefficient of greater than 5 cm−1 at a peak wavelength such that αL>20; and A multi-mode pump laser that emits pump radiation consisting of lower and higher order modes that are coupled into the inner cladding, said lower order modes that substantially overlap said core being rapidly absorbed to invert the dopants in a first portion of the micro fiber, said rapid absorption of said lower order modes perturbing said higher order modes so that they are mode coupled into and partially absorbed by the core thereby inverting the dopants in the remaining length of the micro fiber causing stimulated emission and amplification of the optical signal.
- 21. The optical fiber amplifier of claim 20, wherein core is co-doped with 0.5-5 wt. % erbium and 5-30 wt. % ytterbium.
- 22. The optical fiber amplifier of claim 21, wherein the multi-component glass comprises a glass network former from 30 to 80 weight percent, a glass network modifier MO from 2 to 40 weight percent, and a glass network intermediator XO from 2 to 30 weight percent, wherein the network former is selected from one of phosphorus oxide P2O5, germanium oxide GeO2 or telluride oxide TeO2, MO is selected from alkaline earth oxides and transition metal oxides consisting of BaO, BeO, MgO, SrO, CaO, ZnO, PbO and mixtures thereof, and XO is selected from PbO, ZnO, WO3, Al2O3, B2O3, Y2O3, La2O3, and mixtures thereof.
- 23. The optical fiber amplifier of claim 22, wherein the glass composition has a temperature coefficient of refractive index (dn/dT) from −2.0×10−6 to 2.0×10−6 K−1.
- 24. The optical fiber amplifier of claim 23, wherein the glass composition further comprising up to 5 percent by weight of an additional network modifier R2O selected from the alkali metal oxide group consisting of Li2O, K2O, Na2O, Rb2O, and mixtures thereof.
- 25. The optical fiber amplifier of claim 23, wherein the multi-component glass is an alkali-free glass substantially free of an additional network modifier R2O selected from the alkali metal oxide group consisting of Li2O, K2O, Na2O, Rb2O, and mixtures thereof.
- 26. The optical fiber amplifier of claims 24 or 25, wherein the multi-component glass further comprises a mixture of network modifiers MO such that said temperature coefficient of refractive index is between −2.0×10−6 to 2.0×10−6 K−1.
- 27. The optical fiber amplifier of claim 26, wherein the mixture of network modifiers MO includes a mixture of up to 25.5 wt. % BaO and/or ZnO.
- 28. A method of modeling the gain performance an Er:Yb optical fiber amplifier, comprising the steps of:
Initializing a transverse distribution of the pump power Pp(z=0) and a signal power Ps(z=0); p1 Numerically solving a set of modified rate equations to provide values of the erbium and ytterbium local populations Ni at z=0; From the local populations, computing an absorption coefficient α[Ni(Pp,Ps)] for the pump and a local signal gain g[Ni(Pp,Ps)]; From the absorption coefficient α[Ni(Pp,Ps)], computing by Beam Propagation Method (BPM) the transverse distribution of the pump power Pp(z=Δz) where Δz is an infinitesimal distance; Numerically integrating the propagation single-mode equation with local signal gain g[Ni(Pp,Ps)] to providing the signal power Ps(z=Δz); and Incrementing Δz and, using Pp(z=Δz) and Ps(z=Δz), repeating the steps until the desired fiber length is reached.
- 29. The method of claim 28, wherein the set of modified rate equations includes parameters KC, KD, C33 and C14.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims benefit of priority under 35 U.S.C. 120 to U.S. applications Ser. No. 09/589,764 entitled “Erbium and Ytterbium Co-Doped Phosphate Glass Optical Fiber Amplifiers Using Short Active Fiber Length” filed on Jun. 9, 2000 and PCT/US01/14849 entitled “Rare-Earth Doped Multi-Component Glass Optical Fiber Amplifiers Using Short Active Fiber Length” filed Jun. 11, 2001, the entire contents of which are incorporated by reference.