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Performance of an elliptical crystal spectrometer for SGⅡX-ray opacity experiments

Performance of an elliptical crystal spectrometer for SGⅡX-ray opacity experiments

作     者:Ruirong Wang Honghai An Zhiyong Xie Wei Wang 

作者机构:Shanghai Institute of Laser Plasma Shanghai 201800 China 

出 版 物:《High Power Laser Science and Engineering》 (高功率激光科学与工程(英文版))

年 卷 期:2018年第6卷第1期

页      面:13-19页

核心收录:

学科分类:07[理学] 0702[理学-物理学] 

基  金:supported by the National Natural Science Foundation of China (Nos. 11575168 and 61475146) the funding through IFSA Collaborative Innovation Center, Shanghai Jiao Tong University, Shanghai 200240, China 

主  题:high energy density physics inertial confinement fusion ultra-intense ultra-short pulse laser interaction with matters 

摘      要:A new crystal spectrometer for application in X-ray opacity experiments is proposed. The conditions necessary to yield broad spectral coverage with a resolution 500, strong rejection of hard X-ray backgrounds and negligible source broadening for extended sources are formulated. In addition, the design, response modeling and reporting of an elliptical crystal spectrometer in conjunction with a linear detector are presented. The measured results demonstrate the performance of the new crystal spectrometer with a broad energy coverage range, high spectral resolution, and high luminosity(good collection efficiency). This spectrometer can be used in combination with point-projection backlighting techniques as utilized in X-ray opacity experiments. Specifically, the X-ray source, transmission and self-emission spectra of the sample can be measured simultaneously in a single shot, which can reduce the experimental uncertainties from shot-to-shot fluctuations. The new crystal spectrometer has been used in the X-ray opacity experiment to precisely measure the aluminum K-absorption edge shift in the energy range around 1.560 keV in strongly compressed matter. It is demonstrated that the spectrometer can be used to realize measurements of new and unpredictable physical interactions of interest, as well as basic and applied high-energy-density science.

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