Parameterizing empirical interatomic potentials for predicting thermophysical properties via an irreducible derivative approach: the case of ThO2 and UO2

  • Shuxiang Zhou
  • , Chao Jiang
  • , Enda Xiao
  • , Sasaank Bandi
  • , Michael W.D. Cooper
  • , Miaomiao Jin
  • , David H Hurley
  • , Marat Khafizov
  • , Chris A. Marianetti

Research output: Contribution to journalArticlepeer-review

2 Scopus citations

Abstract

The accuracy of classical physical property predictions using molecular dynamics simulations is determined by the quality of the interatomic potentials. Here we introduce a training approach for empirical interatomic potentials (EIPs) which is well suited for capturing phonons and phonon-related properties. Our approach is based on direct comparisons of the second- and third-order irreducible derivatives (IDs) between an EIP and the Born-Oppenheimer potential within density functional theory (DFT) calculations. IDs fully exploit space group symmetry and allow for training without redundant information. We demonstrate the fidelity of our approach in the context of ThO2 and UO2, where we optimize parameters of an embedded-atom method potential in addition to core-shell interactions. Our EIPs provide thermophysical properties in good agreement with DFT and outperform widely utilized EIPs for phonon dispersion and thermal conductivity predictions. Reasonable estimates of thermal expansion and formation energies of Frenkel pairs are also obtained.

Original languageEnglish (US)
Article number255901
JournalJournal of Physics Condensed Matter
Volume37
Issue number25
DOIs
StatePublished - Jun 23 2025

All Science Journal Classification (ASJC) codes

  • General Materials Science
  • Condensed Matter Physics

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