3D deep learning for enhanced atom probe tomography analysis of nanoscale microstructures
Jiwei Yu, Zhangwei Wang, Aparna Saksena, Shaolou Wei, Ye Wei, Timoteo, Colnaghi, Andreas Marek, Markus Rampp, Min Song, Baptiste Gault, Yue Li

TL;DR
This paper introduces AtomNet, a 3D deep learning method that enhances atom probe tomography analysis by accurately identifying nanoscale microstructures like precipitates, chemical orderings, and defects, surpassing traditional techniques.
Contribution
The paper presents AtomNet, a novel 3D deep learning framework that processes APT point cloud data for detailed microstructure extraction, including challenging features like LCOs and stacking faults.
Findings
AtomNet outperforms previous methods in segmenting nanoprecipitates regardless of orientation.
AtomNet enables imaging of subtle chemical orderings that are difficult for conventional analysis.
AtomNet can detect stacking faults without training on defected data.
Abstract
Quantitative analysis of microstructural features on the nanoscale, including precipitates, local chemical orderings (LCOs) or structural defects (e.g. stacking faults) plays a pivotal role in understanding the mechanical and physical responses of engineering materials. Atom probe tomography (APT), known for its exceptional combination of chemical sensitivity and sub-nanometer resolution, primarily identifies microstructures through compositional segregations. However, this fails when there is no significant segregation, as can be the case for LCOs and stacking faults. Here, we introduce a 3D deep learning approach, AtomNet, designed to process APT point cloud data at the single-atom level for nanoscale microstructure extraction, simultaneously considering compositional and structural information. AtomNet is showcased in segmenting L12-type nanoprecipitates from the matrix in an AlLiMg…
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Taxonomy
TopicsAdvanced Materials Characterization Techniques · Ion-surface interactions and analysis · Additive Manufacturing Materials and Processes
