arXiv · 1703.04100
Dynamical effects in Bragg coherent x-ray diffraction imaging on finite crystals
Abstract
We present simulations of Bragg Coherent X-ray Diffractive Imaging (CXDI) data from finite crystals in the frame of the dynamical theory of x-ray diffraction. The developed approach is based on numerical solution of modified Takagi-Taupin equations and can be applied for modeling of a broad range of x-ray diffraction experiments with finite three-dimensional crystals of arbitrary shape also in the presence of strain. We performed simulations for nanocrystals of a cubic and hemispherical shape of different sizes and provided a detailed analysis of artifacts in the Bragg CXDI reconstructions introduced by the dynamical diffraction. A convenient way to treat effects of refraction and absorption supported by analytical derivations is described. Our results elucidate limitations for the kinematical approach in the Bragg CXDI and suggest a natural criterion to distinguish between kinematical and dynamical cases in coherent x-ray diffraction on a finite crystal.
Explore related subjects
Keep this discovery
A. G. Shabalin, O. M. Yefanov, V. L. Nosik, V. A. Bushuev, I. A. Vartanyants. 2017-03-12. Dynamical effects in Bragg coherent x-ray diffraction imaging on finite crystals. https://doi.org/10.1103/physrevb.96.064111
Cite the original work for its findings. Save a collection to share your selection of sources.