High Repetition Rate Gigawatt Peak Power Fiber Laser Systems: Challenges, Design, and Experiment
Волоконные лазерные системы с гигаваттной пиковой мощностью и высокой частотой повторения: проблемы, проектирование и эксперимент
2009-01-01
SCID: 54.1/m594wx8j
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Yb-fiber CPA systemchirped-pulse amplificationhigh-peak-power fiber lasersphotonic crystal fibersself-phase modulation
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Abstract (AI)
We review the main challenges and give design guidelines for high-peak-power high-average-power fiber-based chirped-pulse amplification (CPA) systems. It is clearly pointed out that the lowest order fiber nonlinearity (NL), namely the self-phase modulation, limits the scalability of high-energy ultrashort pulse fiber amplifiers. Therefore, a distinguished difference arises between the consequences of accumulated nonlinear phase originating from the pulse envelope and initial weak modulations, resulting in a strong recommendation to operate an amplification system as linearly as possible in order to generate high-contrast pulses. Low-NL rare-earth-doped fibers, such as the recently available designs of photonic crystal fibers, are the key element for successful peak power scaling in fiber laser systems. In this paper, we present a detailed analysis and optimization of the extraction characteristics in connection with the accumulated nonlinear phase in such extreme fiber dimensions. Consequently, millijoule pulse energy femtosecond pulses at repetition rates in the 100 kHz range have already been demonstrated experimentally in a Yb-fiber-based CPA system that has even further scaling potential.
Key Findings
1
A Yb-fiber chirped-pulse amplification system experimentally demonstrated millijoule femtosecond pulses at repetition rates near 100 kHz, with further scaling potential.
2
Accumulated nonlinear phase affects pulse-envelope evolution and weak initial modulations differently, making near-linear amplification essential for generating high-contrast pulses.
3
Low-nonlinearity rare-earth-doped fibers, particularly emerging photonic crystal fiber designs, are identified as critical for scaling fiber-laser peak power.
4
Self-phase modulation is identified as the fundamental fiber nonlinearity limiting the scalability of high-energy ultrashort-pulse fiber amplifiers.
5
The paper analyzes and optimizes energy extraction in extreme fiber dimensions while accounting for accumulated nonlinear phase.
Research Object
High-repetition-rate, high-peak-power fiber-based chirped-pulse amplification laser systems using low-nonlinearity rare-earth-doped photonic crystal fibers
Research Subject
The scalability of pulse energy and peak power, including extraction characteristics and accumulated nonlinear phase effects, in ultrashort-pulse fiber CPA systems
Publication Details
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2009-01-01
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