Title :
High-Power
-Doped Phosphate Fiber Amplifier
Author :
Lee, Yin-wen ; Digonnet, Michel J F ; Sinha, Supriyo ; Urbanek, Karel E. ; Byer, Robert L. ; Jiang, Shibin
Author_Institution :
Edward L. Ginzton Lab., Stanford Univ., Stanford, CA
Abstract :
We report on the development of novel high-power light sources utilizing a Yb3+-doped phosphate fiber as the gain element. This host presents several key benefits over silica, particularly much higher Yb2 O3 concentrations (up to 26 wt%), a 50% weaker stimulated Brillouin scattering (SBS) gain cross section, and the absence of observable photodarkening even at high population inversion. These properties result in a greatly increased SBS threshold compared to silica fibers, and therefore, potentially much higher output powers out of either a multimode large mode area or a single-mode fiber, which means in the latter case a higher beam quality. To quantify these predictions, we show through numerical simulations that double-clad phosphate fibers should produce as much as ~ 700 W of single-frequency output power in a step index, single-mode core. As a step in this direction, we report a short phosphate fiber amplifier doped with 12 wt% Yb2 O3 that emits 16 W of single-frequency single-mode output. We also describe a single-mode phosphate fiber laser with a maximum output power of 57 W. The laser slope efficiency is currently limited by the fairly high fiber loss ( ~ 3 dB/m). Measurements indicate that 77% of this loss originates from impurity absorption, and the rest from scattering.
Keywords :
aluminium compounds; barium compounds; lanthanum compounds; laser modes; light sources; optical fibre amplifiers; optical fibre cladding; optical fibre losses; phosphorus compounds; stimulated Brillouin scattering; ytterbium compounds; zinc compounds; P2O5-Al2O3-BaO-ZnO-La2O3-Yb2O3; double-clad phosphate fibers; fiber loss; high-power light sources; high-power ytterbium-doped phosphate fiber amplifier; laser slope efficiency; power 16 W; power 57 W; single-frequency output power; single-mode core; single-mode phosphate fiber laser; stimulated Brillouin scattering gain cross section; Brillouin scattering; Doped fiber amplifiers; Fiber lasers; Light sources; Numerical simulation; Photochromism; Power amplifiers; Power generation; Power lasers; Silicon compounds; Fiber lasers and amplifiers; phosphate fiber; ytterbium;
Journal_Title :
Selected Topics in Quantum Electronics, IEEE Journal of
DOI :
10.1109/JSTQE.2008.2010263