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通过控制流体动力学不稳定性产生高度稳定的电子束。

Generation of highly stable electron beam via the control of hydrodynamic instability.

作者信息

Gu Yan-Jun, Jin Zhan, Lei Zhen-Zhe, Sato Shingo, Huang Kai, Nakanii Nobuhiko, Daito Izuru, Kando Masaki, Hosokai Tomonao

机构信息

SANKEN (Institute of Scientific and Industrial Research), Osaka University, 8-1 Mihogaoka, Ibaraki, Osaka, 567-0047, Japan.

RIKEN SPring-8 Center, 1-1-1 Kouto, Sayo, Hyogo, 679-5148, Japan.

出版信息

Sci Rep. 2024 Dec 28;14(1):31162. doi: 10.1038/s41598-024-82304-y.

Abstract

By employing the stabilizer in the supersonic gas nozzle to produce the plasma density profile with a sharp downramp, we have experimentally demonstrated highly stable electron beam acceleration based on the shock injection mechanism in laser wakefield acceleration with the use of a compact Ti:sapphire laser. A quasi-monoenergetic electron beam with a peak energy of 315 MeV ± 12.5 MeV per shot is generated. The electron pointing fluctuations are less than 1 mrad, which is a significant improvement over previous results. This is due to the precise control of the target density distribution and the relative distance between the shock and the laser focal position. The Particle-in-cell simulations demonstrate the sensitivity of electron acceleration to the target profile, while the computational fluid dynamics prove the stabilizer's effect on gas formation. Further developments of this scheme have the potential to deliver a high repetition rate gas target. The corresponding reproducibility of the accelerated electron beam paves the way for the realisation of compact laser plasma accelerators and the potential application of free electron lasers.

摘要

通过在超声速气体喷嘴中使用稳定剂来产生具有急剧下降斜坡的等离子体密度分布,我们利用紧凑型钛宝石激光器,基于激光尾场加速中的激波注入机制,通过实验证明了高度稳定的电子束加速。每次脉冲产生了峰值能量为315 MeV±12.5 MeV的准单能电子束。电子指向波动小于1毫弧度,这比以前的结果有了显著改进。这是由于对靶密度分布以及激波与激光焦点位置之间相对距离的精确控制。粒子模拟证明了电子加速对靶分布的敏感性,而计算流体动力学证明了稳定剂对气体形成的作用。该方案的进一步发展有可能实现高重复率气体靶。加速电子束相应的可重复性为紧凑型激光等离子体加速器的实现以及自由电子激光器的潜在应用铺平了道路。

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