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具有大视场和高分辨率的多通道类沃尔特X射线成像仪多层涂层的设计与模拟

Design and simulation of multilayer coatings for a multi-channel Wolter-like x-ray imager with large field of view and high resolution.

作者信息

Ravinet N, Meltchakov E, Lejars A, Troussel Ph, Do A, Kozioziemski B, Delmotte F

机构信息

Université Paris-Saclay, Institut d'Optique Graduate School, CNRS, Laboratoire Charles Fabry, 91127 Palaiseau, France.

CEA, Centre DAM Ile-de-France, F-91197 Arpajon, France.

出版信息

Rev Sci Instrum. 2023 Oct 1;94(10). doi: 10.1063/5.0165414.

DOI:10.1063/5.0165414
PMID:37787629
Abstract

X-ray diagnostics are key instruments for understanding the physics behind inertial confinement fusion experiments. We report on the multilayer design optimization for the Toroidal X-ray Imager (TXI), a hard x-rays microscope instrument designed by Commissariat à l'énergie atomique (CEA) and Laboratoire Charles Fabry (LCF) to be installed on the National Ignition Facility. TXI includes six channels designed for three different energy bands centered on 8.7, 13, and 17.5 keV. Each channel is made up of two toroidal mirrors arranged in a Wolter-like configuration. The required field of view is 800 × 400 µm2, and the resolution should be better than 5 µm. In addition, we seek to estimate the spatial distribution of the temperature, which requires no spectral overlap of the different energy bands and a good spectral homogeneity of the image produced. The development of the multilayer coatings was performed in a two-step method. First, the coatings were optimized to obtain proper energy bands. Then, an x-ray tracing code was used to calculate the integrated optical response of each channel and adjust the response of the mirror to fulfill the requirements. To fulfill all the specifications, we propose an original design using a combination of two aperiodic coatings, one with a narrow bandwidth and the other one with a larger bandwidth.

摘要

X射线诊断是理解惯性约束聚变实验背后物理原理的关键手段。我们报告了用于环形X射线成像仪(TXI)的多层设计优化,TXI是一种硬X射线显微镜仪器,由法国原子能委员会(CEA)和查尔斯·法布里实验室(LCF)设计,将安装在国家点火装置上。TXI包括六个通道,设计用于以8.7、13和17.5 keV为中心的三个不同能带。每个通道由两个以类似沃尔特结构排列的环形镜组成。所需视场为800×400 µm2,分辨率应优于5 µm。此外,我们试图估计温度的空间分布,这要求不同能带之间不存在光谱重叠,并且所产生图像具有良好的光谱均匀性。多层涂层的研制采用两步法。首先,对涂层进行优化以获得合适的能带。然后,使用X射线追踪代码计算每个通道的积分光学响应,并调整镜子的响应以满足要求。为了满足所有规格,我们提出了一种原始设计,使用两种非周期性涂层的组合,一种具有窄带宽,另一种具有较宽带宽。

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