Energy response and spatial alignment of the perturbed electron gas

Author:

Dornheim Tobias12ORCID,Tolias Panagiotis3ORCID,Moldabekov Zhandos A.12ORCID,Vorberger Jan2ORCID

Affiliation:

1. Center for Advanced Systems Understanding (CASUS) 1 , D-02826 Görlitz, Germany

2. Helmholtz-Zentrum Dresden-Rossendorf (HZDR) 2 , D-01328 Dresden, Germany

3. Space and Plasma Physics, Royal Institute of Technology (KTH) 3 , Stockholm SE-100 44, Sweden

Abstract

We study the linear energy response of the uniform electron gas to an external harmonic perturbation with a focus on resolving different contributions to the total energy. This has been achieved by carrying out highly accurate ab initio path integral Monte Carlo (PIMC) calculations for a variety of densities and temperatures. We report a number of physical insights into effects such as screening and the relative importance of kinetic and potential energies for different wave numbers. A particularly interesting finding is obtained from the observed non-monotonic behavior of the induced change in the interaction energy, which becomes negative for intermediate wave numbers. This effect is strongly dependent on the coupling strength and constitutes further direct evidence for the spatial alignment of electrons introduced in earlier works [T. Dornheim et al., Commun. Phys. 5, 304 (2022)]. The observed quadratic dependence on the perturbation amplitude in the limit of weak perturbations and the quartic dependence of perturbation amplitude corrections are consistent with linear and nonlinear versions of the density stiffness theorem. All PIMC simulation results are freely available online and can be used to benchmark new methods or as input for other calculations.

Funder

Sächsisches Staatsministerium für Wissenschaft und Kunst

Bundesministerium für Bildung und Forschung

Publisher

AIP Publishing

Subject

Physical and Theoretical Chemistry,General Physics and Astronomy

Reference154 articles.

1. The uniform electron gas;Wiley Interdiscip. Rev.: Comput. Mol. Sci.,2016

2. The uniform electron gas at warm dense matter conditions;Phys. Rep.,2018

3. Quantum Monte Carlo simulations of solids;Rev. Mod. Phys.,2001

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