The Relevance of Electronic Perturbations in the Warm Dense Electron Gas
arXiv:2107.00631 · doi:10.1063/5.0062325
Abstract
Warm dense matter (WDM) has emerged as one of the frontiers of both experimental and theoretical physics and is challenging traditional concepts of plasma, atomic, and condensed-matter physics. While it has become common practice to model correlated electrons in WDM within the framework of Kohn-Sham density functional theory, quantitative benchmarks of exchange-correlation (XC) functionals under WDM conditions are yet incomplete. Here, we present the first assessment of common XC functionals against exact path-integral Monte Carlo calculations of the harmonically perturbed thermal electron gas. This system is directly related to the numerical modeling of X-Ray scattering experiments on warm dense samples. Our assessment yields the parameter space where common XC functionals are applicable. More importantly, we pinpoint where the tested XC functionals fail when perturbations on the electronic structure are imposed. We indicate the lack of XC functionals that take into account the needs of WDM physics in terms of perturbed electronic structures.
References in corpus (14)
- Restoring the density-gradient expansion for exchange in solids and surfaces
- Generalized gradient approximation for solids and their surfaces
- Computational complexity and fundamental limitations to fermionic quantum Monte Carlo simulations
- Worm Algorithm and Diagrammatic Monte Carlo: A New Approach to Continuous-Space Path Integral Monte Carlo Simulations
- A Massive Core in Jupiter Predicted From First-Principles Simulations
- DFT: A Theory Full of Holes?
- Structure, superfluidity, and quantum melting of hydrogen clusters
- Tetrahedral clustering in molten lithium under pressure
- Classical and quantum Coulomb crystals
- Nonlinear Electronic Density Response in Warm Dense Matter
- Electron-ion scattering in dense multi-component plasmas: application to the outer crust of an accreting neutron star
- Path Integral Monte Carlo Simulation of Degenerate Electrons: Permutation-Cycle Properties
- Configuration Path Integral Monte Carlo Approach to the Static Density Response of the Warm Dense Electron Gas
- Permutation Blocking Path Integral Monte Carlo approach to the Static Density Response of the Warm Dense Electron Gas