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Optical beat notes assisted attosecond soft X-ray pulse generation in high-gain free electron lasers

Published online by Cambridge University Press:  17 February 2023

Zhen Wang
Affiliation:
Shanghai Advanced Research Institute, Chinese Academy of Sciences, Shanghai, China
Chao Feng*
Affiliation:
Shanghai Advanced Research Institute, Chinese Academy of Sciences, Shanghai, China
*
Correspondence to: Chao Feng, Shanghai Advanced Research Institute, Chinese Academy of Sciences, Shanghai 201800, China. Email: fengc@sari.ac.cn

Abstract

Attosecond soft X-ray pulses are of great importance for the study of ultrafast electronic phenomena. In this paper, a feasible method is proposed to generate isolated fully coherent attosecond soft X-ray free electron laser via optical frequency beating. Two optical lasers with the opposite frequency chirps are used to induce a gradient frequency energy modulation, which helps to generate a gradually varied spacing electron pulse train. Subsequently, the undulator sections with electron beam delay lines are used to amplify the target ultra-short radiation. Numerical start-to-end simulations have been performed and the results demonstrate that an isolated soft X-ray pulse with the peak power of 330 GW and pulse duration of 620 as can be achieved by the proposed technique.

Information

Type
Research Article
Creative Commons
Creative Common License - CCCreative Common License - BY
This is an Open Access article, distributed under the terms of the Creative Commons Attribution licence (http://creativecommons.org/licenses/by/4.0), which permits unrestricted re-use, distribution and reproduction, provided the original article is properly cited.
Copyright
© The Author(s), 2023. Published by Cambridge University Press in association with Chinese Laser Press
Figure 0

Figure 1 Longitudinal phase space of the electron beam with normal laser modulation (left), frequency beating with the unchirped laser (middle) and with the chirped laser (right).

Figure 1

Figure 2 Schematic layout of the proposed scheme.

Figure 2

Figure 3 Longitudinal phase space of the electron beam at the end of the linac (left) and at the exit of the ESASE section (right). The bunch head is to the right.

Figure 3

Figure 4 Electron beam energy modulation from the longitudinal space charge field from the 39 m undulator.

Figure 4

Figure 5 The output radiation evolution and the spectrum along the undulator line at the end of the first, fourth and ninth undulator segments.

Figure 5

Figure 6 FEL gain curves for the proposed scheme and the normal SASE.