Back to Search Start Over

Digital twins and deep learning segmentation of defects in monolayer MX2 phases.

Authors :
Fuhr, Addis S.
Ganesh, Panchapakesan
Vasudevan, Rama K.
Roccapriore, Kevin M.
Sumpter, Bobby G.
Source :
Applied Physics Letters; 1/15/2024, Vol. 124 Issue 3, p1-9, 9p
Publication Year :
2024

Abstract

Developing methods to understand and control defect formation in nanomaterials offers a promising route for materials discovery. Monolayer MX<subscript>2</subscript> phases represent a particularly compelling case for defect engineering of nanomaterials due to the large variability in their physical properties as different defects are introduced into their structure. However, effective identification and quantification of defects remain a challenge even as high-throughput scanning transmission electron microscopy methods improve. This study highlights the benefits of employing first principles calculations to produce digital twins for training deep learning segmentation models for defect identification in monolayer MX<subscript>2</subscript> phases. Around 600 defect structures were obtained using density functional theory calculations, with each monolayer MX<subscript>2</subscript> structure being subjected to multislice simulations for the purpose of generating the digital twins. Several deep learning segmentation architectures were trained on this dataset, and their performances evaluated under a variety of conditions such as recognizing defects in the presence of unidentified impurities, beam damage, grain boundaries, and with reduced image quality from low electron doses. This digital twin approach allows benchmarking different deep learning architectures on a theory dataset, which enables the study of defect classification under a broad array of finely controlled conditions. It thus opens the door to resolving the underpinning physical reasons for model shortcomings and potentially chart paths forward for automated discovery of materials defect phases in experiments. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00036951
Volume :
124
Issue :
3
Database :
Complementary Index
Journal :
Applied Physics Letters
Publication Type :
Academic Journal
Accession number :
174910653
Full Text :
https://doi.org/10.1063/5.0181080