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Multi-wavelength Bragg coherent X-ray diffraction imaging of Au particles

机译:Au颗粒的多波长布拉格相干X射线衍射成像

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摘要

Multi-wavelength (mw) Bragg coherent X-ray diffraction imaging (BCDI) is demonstrated on a single Au particle. The multi-wavelength Bragg diffraction patterns are inverted using conventional phase-retrieval algorithms where the dilation of the effective pixel size of a pixelated 2D detector caused by the variation of the X-ray beam energy is mitigated by interpolating the raw data. The reconstructed Bragg electron density and phase field are in excellent agreement with the results obtained from conventional rocking scans of the same particle. Voxel sizes of about 6(3) nm(3) are obtained for reconstructions from both approaches. Phase shifts as small as 0.41 rad, which correspond to displacements of 14 pm and translate into strain resolution better than 10(-4) in the Au particle, are resolved. The displacement field changes shape during the experiment, which is well reproduced by finite element method simulations considering an inhomogeneous strained carbon layer deposited on the Au particle over the course of the measurements. These experiments thus demonstrate the very high sensitivity of BCDI and mw-BCDI to strain induced by contaminations. Furthermore, mw-BCDI offers new opportunities for in situ and operando 3D strain imaging in complex sample environments.
机译:在单个Au颗粒上证明了多波长(MW)布拉格相干X射线衍射成像(BCDI)。使用传统的相位检索算法反转多波长布拉格衍射图案,其中通过插入原始数据来减轻由X射线光束能量的变化引起的像素化2D检测器的有效像素尺寸的扩张。重建的布拉格电子密度和相位领域与来自相同颗粒的常规摇摆扫描获得的结果非常一致。从两种方法中获得约6(3)(3)的体素尺寸为约6(3)(3)。分辨率为小于0.41ar的相移,其对应于14μm的位移并转化为在Au粒子中的10(-4)的应变分辨率,进行。在实验期间,位移场改变形状,其通过在测量过程中考虑沉积在Au粒子上的不均匀应变碳层的有限元方法模拟来再现。因此,这些实验证明了BCDI和MW-BCDI对污染诱导的菌株的非常高的敏感性。此外,MW-BCDI在复杂的样本环境中为原位和Operando 3D应变成像提供了新的机会。

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