English

Developments and Further Applications of Ephemeral Data Derived Potentials

Materials Science 2023-10-16 v2 Computational Physics

Abstract

Machine-learned interatomic potentials are fast becoming an indispensable tool in computational materials science. One approach is the ephemeral data-derived potential (EDDP), which was designed to accelerate atomistic structure prediction. The EDDP is simple and cost-efficient. It relies on training data generated in small unit cells and is fit using a lightweight neural network, leading to smooth interactions which exhibit the robust transferability essential for structure prediction. Here, we present a variety of applications of EDDPs, enabled by recent developments of the open-source EDDP software. New features include interfaces to phonon and molecular dynamics codes, as well as deployment of the ensemble deviation for estimating the confidence in EDDP predictions. Through case studies ranging from elemental carbon and lead to the binary scandium hydride and the ternary zinc cyanide, we demonstrate that EDDPs can be trained to cover wide ranges of pressures and stoichiometries, and used to evaluate phonons, phase diagrams, superionicity, and thermal expansion. These developments complement continued success in accelerated structure prediction.

Keywords

Cite

@article{arxiv.2306.06475,
  title  = {Developments and Further Applications of Ephemeral Data Derived Potentials},
  author = {Pascal T. Salzbrenner and Se Hun Joo and Lewis J. Conway and Peter I. C. Cooke and Bonan Zhu and Milosz P. Matraszek and William C. Witt and Chris J. Pickard},
  journal= {arXiv preprint arXiv:2306.06475},
  year   = {2023}
}

Comments

22 pages, 15 figures

R2 v1 2026-06-28T11:01:59.289Z