High-repetition-rate seeded free-electron laser enhanced by self-modulation
Hanxiang Yang, Jiawei Yan, Haixiao Deng

TL;DR
This paper systematically analyzes and optimizes a self-modulation scheme for seeded free-electron lasers, demonstrating reduced seed laser intensity requirements and enhanced harmonic generation, advancing high-repetition-rate coherent soft x-ray FELs.
Contribution
It introduces a systematic analysis and experimental validation of a self-modulation scheme that lowers seed laser intensity needs and boosts harmonic generation in FELs.
Findings
Lower seed laser intensity needed by three orders of magnitude.
Achieved lasing at the 30th harmonic in a single-stage HGHG.
Confirmed amplification of energy modulation at the 12th harmonic.
Abstract
Recently, the self-modulation scheme of a weakly pre-bunched electron beam has been proposed [Yan et al., Physical Review Letters 126, 084801 (2021)], which is of great promise for high-repetition-rate seeded free-electron lasers (FELs), such as high-gain harmonic generation (HGHG). In this paper, the self-modulation scheme is systematically analyzed and optimized, and further experiments in which the self-modulator is resonant at the second harmonic of the seed laser are conducted. The three-dimensional numerical simulations show that the required seed laser intensity in the self-modulation scheme is around three orders of magnitude lower than that of the standard HGHG through the optimization of the beam size or the peak current. More importantly, by reasonably setting the initial energy modulation and the resonance of the self-modulator, a more prominent bunching factor and lase at…
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Taxonomy
TopicsParticle Accelerators and Free-Electron Lasers · Gyrotron and Vacuum Electronics Research · Photonic and Optical Devices
