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扫描透射电子显微镜中的相成像方法

Phase Imaging Methods in the Scanning Transmission Electron Microscope.

作者信息

Sanchez-Santolino Gabriel, Clark Laura, Toyama Satoko, Seki Takehito, Shibata Naoya

机构信息

GFMC, Departamento de Física de Materiales & Instituto Pluridisciplinar, Universidad Complutense de Madrid (UCM), 28040 Madrid, Spain.

School of Physics Engineering and Technology, University of York, York YO10 5DD, U.K.

出版信息

Nano Lett. 2025 Jul 9;25(27):10709-10721. doi: 10.1021/acs.nanolett.4c06697. Epub 2025 Jun 28.

Abstract

Scanning transmission electron microscopy (STEM) has become an essential tool for investigating materials, providing detailed characterization at nano and atomic scales. By combining subangstrom resolution Z-contrast imaging with analytical X-ray and electron spectroscopies, STEM allows the visualization of atomic arrangements, crystal defects, and interfaces, understanding sample properties and correlating these with the functionalities of materials and devices. Recent advancements in phase imaging techniques, including differential phase contrast (DPC) and electron ptychography, have further enhanced STEM capabilities. These methods allow direct imaging of electromagnetic fields, the study of beam-sensitive materials with high dose efficiency, or resolving the 3D structure of materials, proving invaluable for investigating intricate nanoscale phenomena. This review introduces phase imaging methods in the STEM and explores how the most recent innovations are driving progress in nanoscience, deepening material insights and shaping next-generation applications in electronics, energy storage, and catalysis.

摘要

扫描透射电子显微镜(STEM)已成为研究材料的重要工具,可在纳米和原子尺度上提供详细的表征。通过将亚埃分辨率的Z衬度成像与分析型X射线和电子能谱相结合,STEM能够实现原子排列、晶体缺陷和界面的可视化,从而了解样品特性,并将这些特性与材料和器件的功能相关联。包括差分相衬度(DPC)和电子叠层成像在内的相成像技术的最新进展进一步提升了STEM的能力。这些方法能够直接对电磁场进行成像、以高剂量效率研究对电子束敏感的材料或解析材料的三维结构,这对于研究复杂的纳米级现象而言具有极高的价值。本综述介绍了STEM中的相成像方法,并探讨了最新的创新如何推动纳米科学的发展,深化对材料的认识,并塑造电子、储能和催化等领域的下一代应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/94c5/12257644/6964ce12c29a/nl4c06697_0001.jpg

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