DocumentCode :
783315
Title :
All-Fiber Picosecond Laser System at 1.5 \\mu m Based on Amplification in Short and Heavily Doped Phosphate-Glass Fiber
Author :
Polynkin, Pavel ; Polynkin, Alexander ; Panasenko, Dmitriy ; Peyghambarian, N. ; Moloney, Jerome V.
Author_Institution :
Coll. of Opt. Sci., Arizona Univ., Tucson, AZ
Volume :
18
Issue :
21
fYear :
2006
Firstpage :
2194
Lastpage :
2196
Abstract :
Amplification of ultrashort pulses in doped fibers is limited by an onset of nonlinear effects in the fiber. At the 1.5-mum wavelength, single-mode fibers typically have anomalous dispersion. The self-phase modulation combined with dispersion leads to instability of multinanojoule pulses in such fibers. Various techniques developed to amplify pulses beyond the nonlinearity limit typically rely on a delicate balance between dispersive and nonlinear effects in different parts of the laser system. We report a simple all-fiber alternative to these complex techniques that utilizes a rapid amplification of pulses in a short and heavily doped phosphate-glass active fiber. In our preliminary experiments, picosecond pulses at 1.5 mum generated by a passively mode-locked fiber oscillator at a repetition rate of 70 MHz are amplified in a 15-cm-long heavily Er-Yb codoped fiber amplifier to the average output power of 1.425 W. The pulse energy and peak power reach 20.4 nJ and 16.6 kW, respectively, while the pulse distortion is minimal in both temporal and spectral domains. Further power up-scaling is possible by using active phosphate fiber with a large mode area, in the amplifier stage
Keywords :
erbium; glass fibres; laser mode locking; laser modes; laser stability; optical distortion; optical fibre amplifiers; optical fibre dispersion; optical pulse generation; phosphate glasses; self-phase modulation; ytterbium; 1.425 W; 1.5 mum; 15 cm; 16.6 kW; 20.4 nJ; 70 MHz; Er-Yb codoped fiber amplifier; P2O5SiO2:Er,Yb; active phosphate fiber; all-fiber laser system; anomalous dispersion; dispersive effects; doped fibers; fiber amplification; fiber oscillator; multinanojoule pulse instability; nonlinear effects; passive mode-locking; phosphate-glass fiber; picosecond laser system; picosecond pulse generation; power upscaling; pulse distortion; self-phase modulation; single-mode fibers; spectral domain; temporal domain; ultrashort pulse amplification; Dispersion; Fiber lasers; Laser mode locking; Optical pulse generation; Optical pulses; Oscillators; Power amplifiers; Power generation; Pulse amplifiers; Pulse modulation; Fiber lasers; mode-locked lasers; solitons;
fLanguage :
English
Journal_Title :
Photonics Technology Letters, IEEE
Publisher :
ieee
ISSN :
1041-1135
Type :
jour
DOI :
10.1109/LPT.2006.884242
Filename :
1707806
Link To Document :
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