Title :
Distributed Scheme Versus MOFPA Array on the Power Scaling of a Monolithic Fiber Laser
Author :
Ilchi-Ghazaani, Maryam ; Parvin, Parviz
Author_Institution :
Dept. of Phys., Amirkabir Univ. of Technol., Tehran, Iran
Abstract :
A couple of amplifying arrays for the power scaling of the fiber lasers under diverse pumping modes are studied. The multifiber series distributed side-pumping arrangement and the cascade amplifier chains in the form of the end-pumped master oscillator fiber power amplifier (MOFPA) scheme are investigated accordingly. Those are numerically modeled based on the propagation rate equations associated with stimulated Brillouin scattering (SBS) as well as the consideration of coupling and splicing losses for large mode area fibers. The continuous wave double-clad Yb:silica fiber laser amplifier is analyzed in various amplifying stages for several cavity lengths at forward pumping regime. Despite the distributed mode exhibits a desirable beam quality, however, it suffers a low SBS threshold. On the other hand, high output power is achieved in the MOFPA configuration far from the onset of SBS.
Keywords :
laser arrays; laser beams; laser cavity resonators; optical fibre amplifiers; optical fibre losses; optical pumping; stimulated Brillouin scattering; ytterbium; MOFPA array; SiO2:Yb; amplifying arrays; beam quality; cascade amplifier chains; cavity lengths; continuous wave double-clad Yb:silica fiber laser amplifier; coupling losses; diverse pumping modes; end-pumped master oscillator fiber power amplifier; forward pumping regime; large mode area fibers; monolithic fiber laser; multifiber series distributed side-pumping arrangement; power scaling; propagation rate equations; splicing losses; stimulated Brillouin scattering; Fiber lasers; Laser excitation; Laser modes; Optical fiber amplifiers; Power lasers; Pump lasers; Scattering; Distributed array; fiber laser ?? amplifier; master oscillator fiber power amplifier; numerical analysis with considering SBS; side- and end-pumping;
Journal_Title :
Quantum Electronics, IEEE Journal of
DOI :
10.1109/JQE.2014.2334232