Jitter-free 40-fs 375-keV electron pulses directly accelerated by an intense laser beam and their application to direct observation of laser pulse propagation in a vacuum

Abstract We report the generation of ultrashort bright electron pulses directly driven by irradiating a solid target with intense femtosecond laser pulses. The duration of electron pulses after compression by a phase rotator composed of permanent magnets was measured as 89 fs via the ponderomotive s...

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Main Authors: Shunsuke Inoue, Shuji Sakabe, Yoshihide Nakamiya, Masaki Hashida
Format: Article
Language:English
Published: Nature Publishing Group 2020-11-01
Series:Scientific Reports
Online Access:https://doi.org/10.1038/s41598-020-77236-2
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spelling doaj-d025562a958c4f3b83dd2434a50400372020-12-08T13:30:23ZengNature Publishing GroupScientific Reports2045-23222020-11-0110111110.1038/s41598-020-77236-2Jitter-free 40-fs 375-keV electron pulses directly accelerated by an intense laser beam and their application to direct observation of laser pulse propagation in a vacuumShunsuke Inoue0Shuji Sakabe1Yoshihide Nakamiya2Masaki Hashida3Advanced Research Center for Beam Science, Institute for Chemical Research, Kyoto UniversityAdvanced Research Center for Beam Science, Institute for Chemical Research, Kyoto UniversityAdvanced Research Center for Beam Science, Institute for Chemical Research, Kyoto UniversityAdvanced Research Center for Beam Science, Institute for Chemical Research, Kyoto UniversityAbstract We report the generation of ultrashort bright electron pulses directly driven by irradiating a solid target with intense femtosecond laser pulses. The duration of electron pulses after compression by a phase rotator composed of permanent magnets was measured as 89 fs via the ponderomotive scattering of electron and laser pulses, which were almost at the compression limit due to the dispersion of the electron optics. The electron pulse compression system consisting of permanent magnets enabled extremely high timing stability between the laser pulse and electron pulse. The long-term RMS arrival time drift was below 14 fs in 4 h, which was limited by the resolution of the current setup. Because there was no time-varying field to generate jitter, the timing jitter was essentially reduced to zero. To demonstrate the capability of the ultrafast electron pulses, we used them to directly visualize laser pulse propagation in a vacuum and perform 2D mapping of the electric fields generated by low-density plasma in real time.https://doi.org/10.1038/s41598-020-77236-2
collection DOAJ
language English
format Article
sources DOAJ
author Shunsuke Inoue
Shuji Sakabe
Yoshihide Nakamiya
Masaki Hashida
spellingShingle Shunsuke Inoue
Shuji Sakabe
Yoshihide Nakamiya
Masaki Hashida
Jitter-free 40-fs 375-keV electron pulses directly accelerated by an intense laser beam and their application to direct observation of laser pulse propagation in a vacuum
Scientific Reports
author_facet Shunsuke Inoue
Shuji Sakabe
Yoshihide Nakamiya
Masaki Hashida
author_sort Shunsuke Inoue
title Jitter-free 40-fs 375-keV electron pulses directly accelerated by an intense laser beam and their application to direct observation of laser pulse propagation in a vacuum
title_short Jitter-free 40-fs 375-keV electron pulses directly accelerated by an intense laser beam and their application to direct observation of laser pulse propagation in a vacuum
title_full Jitter-free 40-fs 375-keV electron pulses directly accelerated by an intense laser beam and their application to direct observation of laser pulse propagation in a vacuum
title_fullStr Jitter-free 40-fs 375-keV electron pulses directly accelerated by an intense laser beam and their application to direct observation of laser pulse propagation in a vacuum
title_full_unstemmed Jitter-free 40-fs 375-keV electron pulses directly accelerated by an intense laser beam and their application to direct observation of laser pulse propagation in a vacuum
title_sort jitter-free 40-fs 375-kev electron pulses directly accelerated by an intense laser beam and their application to direct observation of laser pulse propagation in a vacuum
publisher Nature Publishing Group
series Scientific Reports
issn 2045-2322
publishDate 2020-11-01
description Abstract We report the generation of ultrashort bright electron pulses directly driven by irradiating a solid target with intense femtosecond laser pulses. The duration of electron pulses after compression by a phase rotator composed of permanent magnets was measured as 89 fs via the ponderomotive scattering of electron and laser pulses, which were almost at the compression limit due to the dispersion of the electron optics. The electron pulse compression system consisting of permanent magnets enabled extremely high timing stability between the laser pulse and electron pulse. The long-term RMS arrival time drift was below 14 fs in 4 h, which was limited by the resolution of the current setup. Because there was no time-varying field to generate jitter, the timing jitter was essentially reduced to zero. To demonstrate the capability of the ultrafast electron pulses, we used them to directly visualize laser pulse propagation in a vacuum and perform 2D mapping of the electric fields generated by low-density plasma in real time.
url https://doi.org/10.1038/s41598-020-77236-2
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