Title :
Scaling Fiber Lasers to Large Mode Area: An Investigation of Passive Mode-Locking Using a Multi-Mode Fiber
Author :
Ding, Edwin ; Lefrancois, Simon ; Kutz, Jose Nathan ; Wise, Frank W.
Author_Institution :
Dept. of Appl. Math., Univ. of Washington, Seattle, WA, USA
fDate :
5/1/2011 12:00:00 AM
Abstract :
The mode-locking of dissipative soliton fiber lasers using large mode area fiber supporting multiple transverse modes is studied experimentally and theoretically. The averaged mode-locking dynamics in a multi-mode fiber are studied using a distributed model. The co-propagation of multiple transverse modes is governed by a system of coupled Ginzburg-Landau equations. Simulations show that stable and robust mode-locked pulses can be produced. However, the mode-locking can be destabilized by excessive higher-order mode content. Experiments using large core step-index fiber, photonic crystal fiber, and chirally-coupled core fiber show that mode-locking can be significantly disturbed in the presence of higher-order modes, resulting in lower maximum single-pulse energies. In practice, spatial mode content must be carefully controlled to achieve full pulse energy scaling. This paper demonstrates that mode-locking performance is very sensitive to the presence of multiple waveguide modes when compared to systems such as amplifiers and continuous-wave lasers.
Keywords :
Ginzburg-Landau theory; fibre lasers; holey fibres; laser mode locking; light propagation; optical solitons; photonic crystals; waveguide lasers; chirally-coupled core fiber; coupled Ginzburg-Landau equations; dissipative soliton fiber laser scaling; distributed model; higher-order mode; large core step-index fiber; large mode area fiber; multimode fiber; multiple transverse modes; multiple waveguide modes; passive mode-locking; photonic crystal fiber; pulse energy scaling; spatial mode content; Cavity resonators; Couplings; Equations; Laser mode locking; Laser theory; Mathematical model; Ring lasers; Large mode area fibers; mode-locked lasers; multi-mode fibers; solitons;
Journal_Title :
Quantum Electronics, IEEE Journal of
DOI :
10.1109/JQE.2011.2107730