Yun Kyuseok, Choi Sungwook, Kim Hyunjung
Center for Ultrafast Phase Transformation, Department of Physics, Sogang University, Seoul 04107, Republic of Korea.
J Synchrotron Radiat. 2025 May 1;32(Pt 3):743-749. doi: 10.1107/S1600577525002942. Epub 2025 Apr 25.
Understanding atomic-level imperfections is crucial in various technological applications. Bragg coherent X-ray diffraction imaging (BCDI) enables non-destructive, three-dimensional imaging of those materials under in situ and operando conditions but has limited spatial resolution. This limitation hinders accurate calculations of physical quantities, e.g. strain field energy and strain correlation lengths. In this study, we introduce the extended image restoration (ExImRes) method, which infers enhanced resolution images based primarily on the process of averaging and combining multiple datasets obtained by restricting the original measured datasets through binning or cropping. We apply ExImRes to two nanocrystal examples-a chiral gold nanoparticle and a platinum nanoparticle-with an improved spatial resolution that allowed us to obtain precise calculation results of strain field energy and the correlation lengths of atomic deformations. The enhanced images reveal detailed lattice-scale information previously inaccessible through traditional BCDI methods. Our findings advance ExImRes to obtain high-resolution analysis in imaging techniques that involve reciprocal to real space transformations and understand underlying phenomena in materials science.
了解原子级缺陷在各种技术应用中至关重要。布拉格相干X射线衍射成像(BCDI)能够在原位和操作条件下对这些材料进行非破坏性三维成像,但空间分辨率有限。这种限制阻碍了对物理量的精确计算,例如应变场能量和应变相关长度。在本研究中,我们引入了扩展图像恢复(ExImRes)方法,该方法主要基于对通过分箱或裁剪限制原始测量数据集而获得的多个数据集进行平均和组合的过程来推断增强分辨率的图像。我们将ExImRes应用于两个纳米晶体示例——手性金纳米颗粒和铂纳米颗粒——其空间分辨率得到了提高,这使我们能够获得应变场能量和原子变形相关长度的精确计算结果。增强后的图像揭示了以前通过传统BCDI方法无法获得的详细晶格尺度信息。我们的研究结果推动了ExImRes在涉及倒易空间到实空间变换的成像技术中进行高分辨率分析,并有助于理解材料科学中的潜在现象。