24 October 2019 Hundred-watts-level monolithic narrow linewidth linearly-polarized fiber laser at 1018 nm
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Abstract

We theoretically and experimentally demonstrated an all-fiber, hundred-watts-level, linearly-polarized, narrow spectral linewidth laser amplifier at a central wavelength of 1018 nm based on master oscillator-power amplifier configuration, which is composed of a laser oscillator and one stage of the fiber amplifier. The laser system can generate 104-W output power with 3- and 20-dB spectral linewidth of ∼0.073 and ∼0.25  nm, respectively, and a higher polarization extinction ratio of ∼17.89  dB at 1018.3 nm was obtained. Theoretical analysis based on the rate equations was used to optimize the parameters of 1018-nm ytterbium-doped fiber laser system for the maximum suppression of amplified spontaneous emission (ASE). The ASE was well depressed based on the optimization for the parameters of the laser system including the seed power, seed spectrum, gain fiber length in the amplifier, etc. And   ∼  27-dB signal-to-noise ratio was achieved at the maximum output power. The slope efficiency for the amplifier stage can reach 79%, and near-diffraction-limited beam quality (Mx21.617 and My21.635) was obtained.

© 2019 Society of Photo-Optical Instrumentation Engineers (SPIE) 0091-3286/2019/$28.00 © 2019 SPIE
Zhaoxin Xie, Qiang Fang, Yang Xu, Xuelong Cui, Quan Sheng, Wei Shi, and Jianquan Yao "Hundred-watts-level monolithic narrow linewidth linearly-polarized fiber laser at 1018 nm," Optical Engineering 58(10), 106106 (24 October 2019). https://doi.org/10.1117/1.OE.58.10.106106
Received: 2 July 2019; Accepted: 7 October 2019; Published: 24 October 2019
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Cited by 5 scholarly publications.
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KEYWORDS
Fiber lasers

Fiber amplifiers

Laser systems engineering

Optical amplifiers

Signal to noise ratio

Fiber Bragg gratings

Oscillators

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