Detection of defects in atomic-resolution images of materials using cycle analysis

Author:

Ovchinnikov Oleg S.ORCID,O’Hara AndrewORCID,Jesse StephenORCID,Hudak Bethany M.ORCID,Yang Shi‐ZeORCID,Lupini Andrew R.ORCID,Chisholm Matthew F.ORCID,Zhou WuORCID,Kalinin Sergei V.ORCID,Borisevich Albina Y.ORCID,Pantelides Sokrates T.ORCID

Abstract

AbstractThe automated detection of defects in high-angle annular dark-field Z-contrast (HAADF) scanning-transmission-electron microscopy (STEM) images has been a major challenge. Here, we report an approach for the automated detection and categorization of structural defects based on changes in the material’s local atomic geometry. The approach applies geometric graph theory to the already-found positions of atomic-column centers and is capable of detecting and categorizing any defect in thin diperiodic structures (i.e., “2D materials”) and a large subset of defects in thick diperiodic structures (i.e., 3D or bulk-like materials). Despite the somewhat limited applicability of the approach in detecting and categorizing defects in thicker bulk-like materials, it provides potentially informative insights into the presence of defects. The categorization of defects can be used to screen large quantities of data and to provide statistical data about the distribution of defects within a material. This methodology is applicable to atomic column locations extracted from any type of high-resolution image, but here we demonstrate it for HAADF STEM images.

Publisher

Springer Science and Business Media LLC

Subject

Spectroscopy,Radiology Nuclear Medicine and imaging,Chemical Engineering (miscellaneous)

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