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Dynamic exchange-correlation effects in the strongly coupled electron liquid

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arxiv 2405.08480 v1 pith:RMFJ2K3T submitted 2024-05-14 cond-mat.str-el physics.chem-phphysics.plasm-ph

classification cond-mat.str-elphysics.chem-phphysics.plasm-ph
keywords textitdynamiceffectscorrectioncoupledelectronfieldlocal
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abstract

We present the first quasi-exact \textit{ab initio} path integral Monte Carlo (PIMC) results for the dynamic local field correction $\widetilde{G}(\mathbf{q},z_l;r_s,\Theta)$ in the imaginary Matsubara frequency domain, focusing on the strongly coupled finite temperature uniform electron gas. These allow us to investigate the impact of dynamic exchange--correlation effects onto the static structure factor. Our results provide a straightforward explanation for previously reported spurious effects in the so-called \textit{static approximation} [Dornheim \textit{et al.}, \textit{Phys.~Rev.~Lett.}~\textbf{125}, 235001 (2020)], where the frequency-dependence of the local field correction is neglected. Our findings hint at the intriguing possibility of constructing an analytical four-parameter representation of $\widetilde{G}(\mathbf{q},z_l;r_s,\Theta)$ valid for a substantial part of the phase diagram, which would constitute key input for thermal density functional theory simulations.

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  1. Modification of the uniform electron gas polarizational stopping power due to the interaction of the projectile with new collective modes at moderate and strong coupling

    physics.plasm-ph 2025-05 conditional novelty 6.0 of 10

    At strong coupling (rs around 16 to 28), the nine-moment model predicts that the ion stopping power splits into two peaks and the friction function deviates from linear behavior, a signature of roton-like collective modes.

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