论文标题

通过双弯曲Achromat压缩机,在MEV超快电子衍射中实现50飞秒的分辨率

Achieving 50 femtosecond resolution in MeV ultrafast electron diffraction with a double bend achromat compressor

论文作者

Qi, Fengfeng, Ma, Zhuoran, Zhao, Lingrong, Cheng, Yun, Jiang, Wenxiang, Lu, Chao, Jiang, Tao, Qian, Dong, Wang, Zhe, Zhang, Wentao, Zhu, Pengfei, Zou, Xiao, Wan, Weishi, Xiang, Dao, Zhang, Jie

论文摘要

我们提出并演示了一种新的方案,以产生超短和超强的MEV电子束。在此方案中,首先在光电模射频射频(RF)枪中产生的电子光束首先在其自身的库仑力下扩展,并在孔纵向相空间中印有正能量。然后将光束通过带正纵向分散的双弯曲的Achromat发送,其中较低的尾部的电子在较短的路径上沿较短的路径,从而赶上了束头,从而导致纵向束压缩。我们表明,通过优化的参数集,可以使从电子源到压缩点的整个光束路径可以相等,以使电子束的飞行时间不受RF振幅波动的影响。使用激光驱动的THZ偏转器,在压缩后20 FC梁的一束长度和到达时间抖动分别为29 fs(FWHM)和22 fs(FWHM)。这样的超短和超高的电子束使我们能够在MEV Ultrafast电子衍射中实现50个率高(FWHM)的分辨率,其中在2.6 Thz处的晶格振荡与bismuth A1G模式相对应,而无需纠正短期的时序抖动和长期正时抖动。此外,由于时间磁通量的改善和增加的电子通量,振荡与声子耦合和衰减相关的弱扩散散射信号也明确解决了。我们预计该技术将对新兴的超耗电基于电子束的设施和应用产生强大的影响。

We propose and demonstrate a novel scheme to produce ultrashort and ultrastable MeV electron beam. In this scheme, the electron beam produced in a photocathode radio-frequency (rf) gun first expands under its own Coulomb force with which a positive energy chirp is imprinted in the beam longitudinal phase space. The beam is then sent through a double bend achromat with positive longitudinal dispersion where electrons at the bunch tail with lower energies follow shorter paths and thus catch up with the bunch head, leading to longitudinal bunch compression. We show that with optimized parameter sets, the whole beam path from the electron source to the compression point can be made isochronous such that the time of flight for the electron beam is immune to the fluctuations of rf amplitude. With a laser-driven THz deflector, the bunch length and arrival time jitter for a 20 fC beam after bunch compression are measured to be about 29 fs (FWHM) and 22 fs (FWHM), respectively. Such an ultrashort and ultrastable electron beam allows us to achieve 50 femtosecond (FWHM) resolution in MeV ultrafast electron diffraction where lattice oscillation at 2.6 THz corresponding to Bismuth A1g mode is clearly observed without correcting both the short-term timing jitter and long-term timing drift. Furthermore, oscillating weak diffuse scattering signal related to phonon coupling and decay is also clearly resolved thanks to the improved temporal resolution and increased electron flux. We expect that this technique will have a strong impact in emerging ultrashort electron beam based facilities and applications.

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