Export citation

Export citation

Choose format for download:

Download Citation

    Fast and accurate calculation of EXAFS Debye-Waller factors in UO2 using the dynamical matrix method

    Nicholas Marcella1,2,*, Shuxiang Zhou3,*, Fernando D. Vila4, Nirmalendu Patra5, Alexei Kuzmin6, Dmitry S. Maltsev7,8, Alexander S. Ivanov9, Sheng Dai7,8, Ruchi Gakhar10 et al.

    Kathy Dardenne11, Jörg Rothe11, Sebastian Couweleers12, Anna L. Smith12, Simerjeet K. Gill5, and Anatoly I. Frenkel13,14,†

    • *These authors contributed equally to this work.
    • †Contact author: frenkel@bnl.gov

    Phys. Rev. Materials 10, 063801 – Published 8 June, 2026

    DOI: https://doi.org/10.1103/l3lr-qhdz

    Abstract

    Theoretical modeling of bonding dynamics in metal oxides is required for predicting their thermal conductivity, catalytic activity, and mechanical properties. A primary challenge is the scarcity of experimental methods for validating theoretical predictions of these atomic-scale dynamics. This work presents a workflow that uses experimental extended x-ray absorption fine structure (EXAFS) data collected at high temperatures to validate an interatomic force field for uranium dioxide (UO2), an important model material. The validated force field is then used to drive computationally intensive molecular dynamics (MD) simulations and as input for the much faster dynamical matrix Debye-Waller (DMDW) method. The predicted values of the Debye-Waller factors from the DMDW calculations are in good agreement with those obtained from the MD simulations, with residual pair-specific differences attributable to quantum zero-point motion at low temperatures and lattice anharmonicity at high temperatures. We further show that theoretical EXAFS spectra constructed directly from DMDW-derived Debye-Waller factors reproduce the experimental data (at relatively low temperatures) with accuracy comparable to full MD-EXAFS, providing an additional validation of the choice of the potential. This study establishes a validated, rapid computational pathway for modeling bond dynamics, naturally incorporating quantum nuclear statistics absent in classical simulations, which are essential for the mechanistic understanding of complex oxide materials.

    Physics Subject Headings (PhySH)

    Corrections

    11 June, 2026

    Correction: The source information for Ref. [31] was incorrect and has been fixed.

    Authorization Required

    We need you to provide your credentials before accessing this content.

    Supplemental Material (Subscription Required)

    References (Subscription Required)

    Outline

    Information

    Sign In to Your Journals Account

    Filter

    Filter

    Article Lookup

    Enter a citation