DOE OSTI · 1762747
Bragg coherent diffraction imaging by simultaneous reconstruction of multiple diffraction peaks
Abstract
Bragg coherent diffractive imaging (BCDI) is a non-invasive microscopy technique that can visualize the morphology and internal lattice deviations of crystals with nanoscale spatial resolution and picometer deformation sensitivity. While BCDI has been successfully applied in various studies of materials, it is less successful for highly-strained crystals. Specifically, it is difficult to correctly reconstruct the electron density of a highly-strained object using conventional phase retrieval algorithms. Although various algorithms have been developed to overcome this challenge, most of them require a priori knowledge that is not always available in practice. Here we report on a new phase retrieval workflow that can invert diffraction patterns from multiple Bragg peaks simultaneously. The new workflow is explored via simulated diffraction from crystals with various strain conditions. Furthermore, reconstructions from the new workflow consistently demonstrate more accurate electron density maps, in comparison with the conventional method. For highly-strained crystals, the new workflow improves the reliability and consistency of BCDI phase retrieval significantly.
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Gao, Yuan, Huang, Xiaojing, Yan, Hanfei, Williams, Garth J.. 2021-01-08. Bragg coherent diffraction imaging by simultaneous reconstruction of multiple diffraction peaks. https://doi.org/10.1103/physrevb.103.014102
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