Inoue Shunsuke, Sakabe Shuji, Nakamiya Yoshihide, Hashida Masaki
Advanced Research Center for Beam Science, Institute for Chemical Research, Kyoto University, Gokasho, Uji, Kyoto, 611-0011, Japan.
Department of Physics, Graduate School of Science, Kyoto University, KitashirakawaKyoto, Sakyo, 606-8502, Japan.
Sci Rep. 2020 Nov 23;10(1):20387. doi: 10.1038/s41598-020-77236-2.
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.
我们报告了通过用强飞秒激光脉冲照射固体靶直接产生超短明亮电子脉冲的情况。通过由永久磁铁组成的相位旋转器压缩后,电子脉冲的持续时间通过电子与激光脉冲的有质动力散射测量为89飞秒,由于电子光学系统的色散,其几乎处于压缩极限。由永久磁铁组成的电子脉冲压缩系统实现了激光脉冲和电子脉冲之间极高的定时稳定性。在4小时内,长期均方根到达时间漂移低于14飞秒,这受当前装置分辨率的限制。由于没有时变场来产生抖动,定时抖动基本降至零。为了展示超快电子脉冲的能力,我们用它们直接可视化激光脉冲在真空中的传播,并实时对低密度等离子体产生的电场进行二维映射。