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由拍瓦级激光与物质相互作用加速的粒子沉积所产生的强准静电场。

Generation of intense quasi-electrostatic fields due to deposition of particles accelerated by petawatt-range laser-matter interactions.

作者信息

Consoli F, De Angelis R, Robinson T S, Giltrap S, Hicks G S, Ditter E J, Ettlinger O C, Najmudin Z, Notley M, Smith R A

机构信息

ENEA - C.R. Frascati, Fusion and Nuclear Safety Department, Via E. Fermi 45, 00044, Frascati, Italy.

The Blackett Laboratory, Imperial College London, Prince Consort Road, London, SW7 2AZ, United Kingdom.

出版信息

Sci Rep. 2019 Jun 12;9(1):8551. doi: 10.1038/s41598-019-44937-2.

Abstract

We demonstrate here for the first time that charge emitted by laser-target interactions at petawatt peak-powers can be efficiently deposited on a capacitor-collector structure far away from the target and lead to the rapid (tens of nanoseconds) generation of large quasi-static electric fields over wide (tens-of-centimeters scale-length) regions, with intensities much higher than common ElectroMagnetic Pulses (EMPs) generated by the same experiment in the same position. A good agreement was obtained between measurements from a classical field-probe and calculations based on particle-flux measurements from a Thomson spectrometer. Proof-of-principle particle-in-cell simulations reproduced the measurements of field evolution in time, giving a useful insight into the charging process, generation and distribution of fields. The understanding of this charging phenomenon and of the related intense fields, which can reach the MV/m order and in specific configurations might also exceed it, is very important for present and future facilities studying laser-plasma-acceleration and inertial-confinement-fusion, but also for application to the conditioning of accelerated charged-particles, the generation of intense electric and magnetic fields and many other multidisciplinary high-power laser-driven processes.

摘要

我们首次在此证明,在拍瓦峰值功率下激光与靶相互作用所发射的电荷能够有效地沉积在远离靶的电容器收集器结构上,并导致在宽(数十厘米尺度长度)区域内快速(数十纳秒)产生大的准静态电场,其强度远高于同一实验在同一位置产生的普通电磁脉冲(EMP)。经典场探针的测量结果与基于汤姆逊光谱仪粒子通量测量的计算结果之间取得了良好的一致性。原理验证的粒子模拟再现了场随时间的演化测量结果,为充电过程、场的产生和分布提供了有用的见解。对这种充电现象以及相关强场的理解非常重要,这些强场可以达到兆伏/米量级,在特定配置下甚至可能超过该量级,这对于当前和未来研究激光等离子体加速和惯性约束聚变的设施很重要,而且对于应用于加速带电粒子的调节、强电场和磁场的产生以及许多其他多学科高功率激光驱动过程也很重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5cc1/6561980/0678a7607747/41598_2019_44937_Fig1_HTML.jpg

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