Classical bridge functions in classical and quantum plasma liquids
arXiv:2107.03537 · doi:10.1209/0295-5075/ac7166
Abstract
Bridge functions, the missing link in the exact description of strong correlations, are indirectly extracted from specially designed molecular dynamics simulations of classical one-component plasma liquids and accurately parameterized. Their incorporation into an advanced integral equation theory description of Yukawa one-component plasma liquids and a novel dielectric formalism scheme for quantum one-component plasma liquids leads to an unprecedented agreement with available molecular dynamics simulations and new ab initio path integral Monte Carlo simulations, respectively.
7 pages, 5 figures, 2 tables, 27 pages of supplementary material
References in corpus (4)
- Diffusion quantum Monte Carlo study of three-dimensional Wigner crystals
- The Strongly Coupled Electron Liquid: ab initio Path Integral Monte Carlo Simulations and Dielectric Theories
- Isomorph-based empirically modified hypernetted-chain approach for strongly coupled Yukawa one-component plasmas
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- Extraction of the frequency moments of spectral densities from imaginary-time correlation function data
- Quantum version of the integral equation theory based dielectric scheme for strongly coupled electron liquids
- The uniform electron gas at high temperatures: \emph{ab initio} path integral Monte Carlo simulations and analytical theory
- Unravelling the nonlinear ideal density response of many-body systems
- Fourier-Matsubara series expansion for imaginary-time correlation functions
- Revisiting the Vashishta-Singwi dielectric scheme for the warm dense uniform electron fluid
- Energy response and spatial alignment of the perturbed electron gas
- Collective ion dynamics in Coulomb one-component plasmas within the self-consistent relaxation theory
- On the density-density correlations of the non-interacting finite temperature electron gas
- Dynamic properties of the warm dense uniform electron gas with the qSTLS dielectric scheme
- Nonlinear electronic density response of the warm dense electron gas: multiple perturbations and mode coupling