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Finite-element simulation for X-ray volume diffractive optics based on the wave optical theory

We developed a novel numerical simulation method for volume diffractive optics based on the Takagi–Taupin (TT) dynamical theory of diffraction. A general integral system of equations with a powerful and convenient distortion function was developed for finite-element analysis (FEA). The proposed fram...

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Published in:Optics express 2020-11, Vol.28 (23), p.34973-34993
Main Authors: Wang, Yuhang, Hu, Lingfei, Zhang, Bingbing, Zhou, Liang, Tao, Ye, Li, Ming, Jia, Quanjie
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Language:English
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cited_by cdi_FETCH-LOGICAL-c297t-60861646b706bcd33c2e8cf16995ccfb28e4c027cfa00897c8abf2a2923a097a3
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container_end_page 34993
container_issue 23
container_start_page 34973
container_title Optics express
container_volume 28
creator Wang, Yuhang
Hu, Lingfei
Zhang, Bingbing
Zhou, Liang
Tao, Ye
Li, Ming
Jia, Quanjie
description We developed a novel numerical simulation method for volume diffractive optics based on the Takagi–Taupin (TT) dynamical theory of diffraction. A general integral system of equations with a powerful and convenient distortion function was developed for finite-element analysis (FEA). The proposed framework is promising with regard to flexibility, robustness, and stability and has potential for solving dynamical X-ray diffraction problems related to diffractive optical elements of arbitrary shape and deformation. This FEA method was used for evaluating laterally graded multilayer (LGML) mirrors, and a general coordinate system was introduced to make the geometric optimization simple and effective. Moreover, the easily implemented boundary conditions inherent in FEA, combined with the analysis of the energy resolution derived from the TT theory, can make the simulation of volume diffractive optics, including LGML mirrors, more accurate. Thus, a comprehensive and highly efficient computation of LGML mirror diffraction problems was performed. The evaluation of the effects of the figure errors can provide practical guidance for the fabrication of X-ray optical elements.
doi_str_mv 10.1364/OE.409961
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title Finite-element simulation for X-ray volume diffractive optics based on the wave optical theory
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