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    Modeling of silver transport in cubic SiC: Integrating molecular dynamics, bounds averaging, and uncertainty quantification

    Mohamed AbdulHameed1, Khadija Mahbuba1,2, Mahmoud Yaseen3, Amr Ibrahim1, Daniel Moneghan4, and Benjamin Beeler1,5,*

    • *Contact author: bwbeeler@ncsu.edu

    Phys. Rev. Materials 10, 015402 – Published 16 January, 2026

    DOI: https://doi.org/10.1103/1nt8-9hly

    Abstract

    Silver released from TRISO fuel particles can migrate through the SiC layer and deposit on reactor components, posing radiation hazards and operational challenges. Despite numerous proposed mechanisms, the precise pathway of silver transport through intact 3C-SiC remains unresolved. We present a physics-informed model for estimating the effective diffusivity of silver in polycrystalline 3C–SiC. Molecular dynamics (MD) simulations yield diffusivities for Σ3 and Σ9 grain boundaries (GBs), while literature values are used for other GB types and the bulk. These are combined using a bounds-averaging approach accounting for distinct GB transport properties. Bayesian inference of experimental data provides credible intervals for effective Arrhenius parameters and reveals a correlation between activation energy and pre-exponential factor. Although the homogenized model captures GB-mediated transport mechanisms, it overpredicts silver diffusivity relative to experiments. To resolve this, a multiplicative correction based on reversible trapping at nanopores is introduced. It is derived from first principles and is shown to reproduce observed transport behavior. Sensitivity analysis identified trap desorption energy and Σ9 GB diffusivity as dominant factors influencing Ag transport. The resulting framework provides a mechanistic description of Ag transport suitable for integration into higher-scale fuel performance models.

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