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激光驱动的低能电子束用于单次超快探测中尺度材料和暖稠密物质。

Laser-driven low energy electron beams for single-shot ultra-fast probing of meso-scale materials and warm dense matter.

机构信息

Helmholtz-Zentrum Dresden-Rossendorf, Bautzner Landstraße 400, 01328, Dresden, Germany.

Technische Universität Dresden, 01062, Dresden, Germany.

出版信息

Sci Rep. 2023 Mar 14;13(1):4252. doi: 10.1038/s41598-023-30995-0.

Abstract

Laser wakefield acceleration has proven to be an excellent source of electrons and X-rays suitable for ultra-fast probing of matter. These novel beams have demonstrated unprecedented spatial and temporal resolution allowing for new discoveries in material science and plasma physics. In particular, the study of dynamic processes such as non-thermal melt and lattice changes on femtosecond time-scales have paved a way to completely new scientific horizons. Here, we demonstrate the first single-shot electron radiography measurement using an femtosecond electron source based on the downramp-density gradient laser-wakefield-acceleration with the use of a compact Ti:sapphire laser. A quasi-monoenergetic electron beam with mean energy of 1.9 ± 0.4 MeV and charge 77 ± 47 pC per shot was generated by the laser incident onto a gas target and collimated using a two ring-magnet beam path. High quality electron radiography of solid objects with spatial resolution better than 150 [Formula: see text]m was demonstrated. Further developments of this scheme have the potential to obtain single-shot ultrafast electron diffraction from dynamic lattices. This scheme poses a great promise for smaller scale university laboratories and facilities for efficient single-shot probing of warm dense matter, medical imaging and the study of dynamic processes in matter with broad application to inertial confinement fusion and meso-scale materials (mg g/cm[Formula: see text]).

摘要

激光尾波场加速已被证明是一种极好的电子和 X 射线源,适用于对物质进行超快探测。这些新型光束具有前所未有的空间和时间分辨率,为材料科学和等离子体物理学的新发现铺平了道路。特别是,对飞秒时间尺度上的非热熔融和晶格变化等动态过程的研究,开辟了全新的科学视野。在这里,我们展示了首次使用基于下斜坡密度梯度激光尾波场加速的飞秒电子源进行的单次电子射线照相测量,该源使用紧凑型钛宝石激光器。通过将激光入射到气体靶上,并使用两个环形磁铁束路径进行准单能电子束的准直,产生了平均能量为 1.9 ± 0.4 MeV 的单能电子束,每个脉冲的电荷量为 77 ± 47 pC。我们成功地对固体物体进行了高质量的电子射线照相,空间分辨率优于 150 [Formula: see text]m。该方案的进一步发展有可能从动态晶格中获得单次超快电子衍射。该方案有望为规模较小的大学实验室和设施提供高效的单次探测能力,适用于探测温密集物质、医学成像以及物质动态过程的研究,在惯性约束聚变和中尺度材料(mg g/cm[Formula: see text])等领域有广泛的应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2fba/10015074/1d5beb9805c7/41598_2023_30995_Fig1_HTML.jpg

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