Department of Energy Conversion and Storage, Technical University of Denmark, Frederiksborgvej 399, Roskilde 4000, Denmark.
Department of Physics, Technical University of Denmark, Fysikvej 311, Kgs Lyngby 2800, Denmark.
J Synchrotron Radiat. 2020 Jan 1;27(Pt 1):134-145. doi: 10.1107/S1600577519014425.
Coherent diffractive imaging (CDI) experiments are adequately simulated assuming the thin sample approximation and using a Fresnel or Fraunhofer wavefront propagator to obtain the diffraction pattern. Although this method is used in wave-based or hybrid X-ray simulators, here the applicability and effectiveness of an alternative approach that is based solely on ray tracing of Huygens wavelets are investigated. It is shown that diffraction fringes of a grating-like source are accurately predicted and that diffraction patterns of a ptychography dataset from an experiment with realistic parameters can be sampled well enough to be retrieved by a standard phase-retrieval algorithm. Potentials and limits of this approach are highlighted. It is suggested that it could be applied to study imperfect or non-standard CDI configurations lacking a satisfactory theoretical formulation. The considerable computational effort required by this method is justified by the great flexibility provided for easy simulation of a large-parameter space.
相干衍射成像(CDI)实验可以通过薄样品近似假设和使用菲涅耳或夫琅和费波前传播算子来充分模拟,以获得衍射图案。尽管这种方法在基于波或混合 X 射线模拟器中使用,但此处研究了一种仅基于惠更斯子波光线追踪的替代方法的适用性和有效性。结果表明,光栅状源的衍射条纹可以得到准确预测,并且可以对具有实际参数的实验的叠层相位成像数据集的衍射图案进行充分采样,以便通过标准相位恢复算法进行恢复。突出了该方法的潜力和局限性。建议可以将其应用于研究缺乏令人满意的理论公式的不完美或非标准 CDI 配置。该方法需要大量的计算工作量,但为方便模拟大参数空间提供了很大的灵活性,这是合理的。