High-power attosecond X-ray free-electron lasers: physics and design strategy

Fuente: arXiv
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Main Authors: Xu, Chenzhi, Yan, Jiawei, Chen, Ye, Decking, Winfried, Guetg, Marc, Long, Tianyun, Yan, Bingyang, Deng, Haixiao
Format: Preprint
Published: 2026
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_version_ 1866918459913273344
author Xu, Chenzhi
Yan, Jiawei
Chen, Ye
Decking, Winfried
Guetg, Marc
Long, Tianyun
Yan, Bingyang
Deng, Haixiao
author_facet Xu, Chenzhi
Yan, Jiawei
Chen, Ye
Decking, Winfried
Guetg, Marc
Long, Tianyun
Yan, Bingyang
Deng, Haixiao
contents Attosecond pulses from X-ray free-electron laser (XFEL) have opened new opportunities for probing ultrafast electronic dynamics on the Angstrom--attosecond spatiotemporal scale. Most attosecond XFEL concepts rely on generating an ultrashort high-current spike through either external laser modulation or accelerator-based beam manipulation. Despite their different implementations, these approaches share the same essential physics, namely that the XFEL amplification is confined to a short effective lasing window within the electron beam. However, existing studies are often scheme-specific and do not yet provide a unified quantitative picture of how fundamental electron-beam properties constrain high-power attosecond performance. In this work, we investigate the general physics and scheme-independent requirements for generating high-power attosecond X-ray pulses from a short current spike. From the perspective of post-saturation superradiant evolution, we show that the effective lasing length of the electron beam governs both the attainable peak power and the pulse duration. We further examine the distinct roles of slice energy spread, slice emittance, energy chirp, undulator tapering, and transverse beam tilt. Our results reveal the trade-off between peak power, pulse shortening, and single-spike probability, and provide facility-independent guidelines for optimizing electron-beam phase-space manipulation toward terawatt-class attosecond XFEL operation.
format Preprint
id arxiv_https___arxiv_org_abs_2604_18447
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle High-power attosecond X-ray free-electron lasers: physics and design strategy
Xu, Chenzhi
Yan, Jiawei
Chen, Ye
Decking, Winfried
Guetg, Marc
Long, Tianyun
Yan, Bingyang
Deng, Haixiao
Accelerator Physics
Attosecond pulses from X-ray free-electron laser (XFEL) have opened new opportunities for probing ultrafast electronic dynamics on the Angstrom--attosecond spatiotemporal scale. Most attosecond XFEL concepts rely on generating an ultrashort high-current spike through either external laser modulation or accelerator-based beam manipulation. Despite their different implementations, these approaches share the same essential physics, namely that the XFEL amplification is confined to a short effective lasing window within the electron beam. However, existing studies are often scheme-specific and do not yet provide a unified quantitative picture of how fundamental electron-beam properties constrain high-power attosecond performance. In this work, we investigate the general physics and scheme-independent requirements for generating high-power attosecond X-ray pulses from a short current spike. From the perspective of post-saturation superradiant evolution, we show that the effective lasing length of the electron beam governs both the attainable peak power and the pulse duration. We further examine the distinct roles of slice energy spread, slice emittance, energy chirp, undulator tapering, and transverse beam tilt. Our results reveal the trade-off between peak power, pulse shortening, and single-spike probability, and provide facility-independent guidelines for optimizing electron-beam phase-space manipulation toward terawatt-class attosecond XFEL operation.
title High-power attosecond X-ray free-electron lasers: physics and design strategy
topic Accelerator Physics
url https://arxiv.org/abs/2604.18447