Atomic Resolution Observations of Nanoparticle Surface Dynamics and Instabilities Enabled by Artificial Intelligence
Peter A. Crozier, Matan Leibovich, Piyush Haluai, Mai Tan, Andrew M., Thomas, Joshua Vincent, Sreyas Mohan, Adria Marcos Morales, Shreyas A., Kulkarni, David S. Matteson, Yifan Wang, Carlos Fernandez-Granda

TL;DR
This paper introduces an AI-based denoising method that enables atomic-resolution visualization of nanoparticle surface dynamics at 10 ms intervals, revealing continuous surface transitions and defect formation.
Contribution
The study presents a novel unsupervised AI denoising framework that enhances temporal and spatial resolution in electron microscopy for observing nanoparticle surface dynamics.
Findings
Nanoparticle surfaces transition between ordered and disordered states.
Stress fields cause defect formation and destabilization.
AI denoising improves atomic-level dynamic observations.
Abstract
Nanoparticle surface structural dynamics is believed to play a significant role in regulating functionalities such as diffusion, reactivity, and catalysis but the atomic-level processes are not well understood. Atomic resolution characterization of nanoparticle surface dynamics is challenging since it requires both high spatial and temporal resolution. Though ultrafast transmission electron microscopy (TEM) can achieve picosecond temporal resolution, it is limited to nanometer spatial resolution. On the other hand, with the high readout rate of new electron detectors, conventional TEM has the potential to visualize atomic structure with millisecond time resolutions. However, the need to limit electron dose rates to reduce beam damage yields millisecond images that are dominated by noise, obscuring structural details. Here we show that a newly developed unsupervised denoising framework…
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Taxonomy
TopicsAdvanced Materials Characterization Techniques · Ion-surface interactions and analysis · Electron and X-Ray Spectroscopy Techniques
