Embedding Theory Average Atom Model: Implementation and Application to Warm Dense Hydrogen
ORAL
Abstract
Accurate modeling in the Warm Dense Matter regime is a persistent challenge with the most detailed models being immensely computationally expensive. Density Functional Theory (DFT)-based Average Atom Models (AAM) offer significant speed-ups in calculation times while still retaining fair accuracy in evaluating equations of state, mean ionizations, and more. Despite their success, AAMs struggle to precisely account for electronic interactions – in particular, they do not account for effects on the kinetic energy arising from overlaps in neighboring atom densities. We aim to enhance these models by including such interactions via the non-additive kinetic potential VNAD as in DFT embedding theories. VNAD can be computed using Thomas-Fermi, von Weizsäcker, or more sophisticated kinetic energy functionals. The proposed model includes interactions beyond the central atom and introduces VNAD as a novel interaction term in existing AAMs. We have applied this model to hydrogen at solid density and a few eV temperatures and investigated the effects of VNAD on electron densities, energy shifts, and mean ionization.
*This work was supported by the U.S. Department of Energy, National Nuclear Security Administration, Minority Serving Institution Partnership Program, under Award DE-NA0003984.
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Presenters
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Sameen Yunus
- University of California, Merced