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在高能强激光实验中,利用先进的飞行时间金刚石探测器方案获取高能离子的精确能谱。

Accurate spectra for high energy ions by advanced time-of-flight diamond-detector schemes in experiments with high energy and intensity lasers.

作者信息

Salvadori Martina, Consoli F, Verona C, Cipriani M, Anania M P, Andreoli P L, Antici P, Bisesto F, Costa G, Cristofari G, De Angelis R, Di Giorgio G, Ferrario M, Galletti M, Giulietti D, Migliorati M, Pompili R, Zigler A

机构信息

Università d Roma La Sapienza, Piazzale Aldo Moro 5, Rome, Italy.

INRS-EMT, Varennes, Québec, Canada.

出版信息

Sci Rep. 2021 Feb 4;11(1):3071. doi: 10.1038/s41598-021-82655-w.

Abstract

Time-Of-Flight (TOF) methods are very effective to detect particles accelerated in laser-plasma interactions, but they show significant limitations when used in experiments with high energy and intensity lasers, where both high-energy ions and remarkable levels of ElectroMagnetic Pulses (EMPs) in the radiofrequency-microwave range are generated. Here we describe a novel advanced diagnostic method for the characterization of protons accelerated by intense matter interactions with high-energy and high-intensity ultra-short laser pulses up to the femtosecond and even future attosecond range. The method employs a stacked diamond detector structure and the TOF technique, featuring high sensitivity, high resolution, high radiation hardness and high signal-to-noise ratio in environments heavily affected by remarkable EMP fields. A detailed study on the use, the optimization and the properties of a single module of the stack is here described for an experiment where a fast diamond detector is employed in an highly EMP-polluted environment. Accurate calibrated spectra of accelerated protons are presented from an experiment with the femtosecond Flame laser (beyond 100 TW power and ~ 10 W/cm intensity) interacting with thin foil targets. The results can be readily applied to the case of complex stack configurations and to more general experimental conditions.

摘要

飞行时间(TOF)方法在检测激光等离子体相互作用中加速的粒子方面非常有效,但在高能和高强度激光实验中使用时存在显著局限性,在这类实验中会产生高能离子以及射频 - 微波范围内显著水平的电磁脉冲(EMP)。在此,我们描述一种新颖的先进诊断方法,用于表征由强物质与高达飞秒甚至未来阿秒范围的高能、高强度超短激光脉冲相互作用加速产生的质子。该方法采用堆叠金刚石探测器结构和TOF技术,在受到显著EMP场严重影响的环境中具有高灵敏度、高分辨率、高辐射硬度和高信噪比的特点。本文针对在高度EMP污染环境中使用快速金刚石探测器的实验,详细描述了堆叠中单个模块的使用、优化及其特性。通过飞秒级火焰激光器(功率超过100太瓦且强度约为10太瓦/平方厘米)与薄箔靶相互作用的实验,给出了加速质子的精确校准光谱。这些结果可轻松应用于复杂堆叠配置的情况以及更一般的实验条件。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4101/7862373/44d31679acc4/41598_2021_82655_Fig1_HTML.jpg

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