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DOE OSTI · 3657026

Atomistic Simulation of Glasses and Amorphous Materials: Challenges and Opportunities for the Next Decade

Abstract

Atomistic simulations have become indispensable tools for understanding glass structure, dynamics, and properties, yet persistent challenges limit their predictive power. This perspective examines three interconnected issues, namely glass formation procedures, interatomic potential development, and machine learning applications, which emerged from the 5th International Workshop on Challenges of Atomistic Simulations of Glasses and Amorphous Materials. We identify convergent community priorities for (i) standardized validation protocols, (ii) curated benchmark datasets with complete metadata, and (iii) open repositories for glasses. A systematic was forward is provided by a hierarchical validation framework for assessing the structural fidelity, property prediction, and behavioral realism of simulation techniques. Looking ahead, transformative advances are promised by the fusion of classical techniques with machine learning based approaches, for instance, by integrating swap Monte Carlo with machine-learning (ML) potentials, leveraging foundation models through transfer learning, and finetuning ML potentials with experimental data. Progress depends on the community committing to validated models, reproducible protocols, and sustained data sharing.

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BibTeXRIS

Krishnan, N. M. Anoop, Pedone, Alfonso, Lu, Xiaonan (ORCID:0000000179708148), Zhang, Zhen, Salmon, Philip S., Huang, Liping P., Deng, Lu, Deng, Binghui, Smedskjaer, Morten M., Cormack, Alastair n., Urata, Shingo, Du, Jincheng (ORCID:0000000348057498). 2026-08-12. Atomistic Simulation of Glasses and Amorphous Materials: Challenges and Opportunities for the Next Decade. https://doi.org/10.1111/jace.71055

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