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Updated: Jan 7, 2026

Quantitative Atomic-Site Analysis of Functional Dopants/Point Defects in Crystalline Materials by Electron-Channeling-Enhanced Microanalysis
Published on: May 10, 2021
Electron Microscopy Approaches to Unraveling the Structure of Amorphous Materials
Sooyeon Hwang1, Hyeongjun Koh1, Judith C Yang1
1Center For Functional Nanomaterials, Brookhaven National Laboratory, Upton, New York, USA.
Abstract:
Determining atomic structures in crystalline materials-where atoms are arranged in rigid, periodic lattices-has been highly successful using probes such as electrons, X-rays, and neutrons. In contrast, amorphous materials, despite their ubiquity and technological importance, remain far more challenging to characterize with comparable accuracy and precision. This review highlights existing, emerging, and potential (scanning) transmission electron microscopy ((S)TEM) techniques for probing short- and medium-range order in amorphous materials. Approaches ranging from high-resolution (S)TEM imaging and selected electron diffraction pattern to four-dimensional STEM (4D-STEM) based pair distribution function, fluctuation electron microscopy, tomography, ptychography, and spectroscopic methods are discussed, emphasizing their ability to provide complementary insights across multiple length scales-from sub-angstrom local environments to nanometer-scale correlations. We further explore the promise of multimodal and correlative strategies, as well as the growing role of machine learning and physics-informed AI in enabling real-time, quantitative interpretation of complex structural signatures. Together, these advances point toward a future where electron microscopy not only reveals the hidden order in amorphous systems but also establishes robust structure-property relationships, paving the way for materials innovation in disordered matter.
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