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Two-Electron Correlations in the Metallic Electron Gas

2 Pith papers cite this work. Polarity classification is still indexing.

2 Pith papers citing it
abstract

We present high-precision \emph{ab initio} calculations of the four-point vertex function for the three-dimensional uniform electron gas using variational diagrammatic Monte Carlo. From these results, we extract Landau parameters that reveal a density-driven crossover from underscreening to overscreening, and obtain the full two-electron scattering amplitude on the Fermi surface with controlled accuracy. A residual analysis of the scattering amplitude against the charge-channel Kukkonen--Overhauser (KO$^+$) interaction shows that only a minimal s-wave correction in the antiparallel-spin channel is needed, defining the sKO$^+$ ansatz: KO$^+$ within the local-density approximation plus this short-range correction. Using both our direct VDMC amplitudes and the sKO$^+$ ansatz, we compute the electron-electron contribution to the thermal resistivity, obtaining quantitative agreement with experiments on simple metals (Al, Na, K, Rb). sKO$^+$ thus provides a transferable effective interaction for first-principles transport calculations in metals.

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2026 2

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representative citing papers

Quantum effects in plasmas

physics.plasm-ph · 2026-04-04 · unverdicted · novelty 2.0

Quantum effects govern behavior in warm dense matter and inertial fusion plasmas and are best modeled by combining quantum methods through downfolding from first-principles simulations.

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Showing 2 of 2 citing papers.

  • First-Principles Effective Mass in the Three-Dimensional Uniform Electron Gas cond-mat.str-el · 2026-05-04 · unverdicted · none · ref 40 · internal anchor

    The effective mass ratio m*/m in the 3D uniform electron gas stays close to 1 with only shallow non-monotonic density dependence up to r_s=6.

  • Quantum effects in plasmas physics.plasm-ph · 2026-04-04 · unverdicted · none · ref 276 · internal anchor

    Quantum effects govern behavior in warm dense matter and inertial fusion plasmas and are best modeled by combining quantum methods through downfolding from first-principles simulations.