English

Overcoming finite-size effects in electronic structure simulations at extreme conditions

Statistical Mechanics 2021-04-21 v1 Plasma Physics

Abstract

\textit{Ab initio} quantum Monte Carlo (QMC) methods in principle allow for the calculation of exact properties of correlated many-electron systems, but are in general limited to the simulation of a finite number of electrons NN in periodic boundary conditions. Therefore, an accurate theory of finite-size effects is indispensable to bridge the gap to realistic applications in the thermodynamic limit. In this work, we revisit the uniform electron gas (UEG) at finite temperature as it is relevant to contemporary research e.g. in the field of warm dense matter. In particular, we present a new scheme to eliminate finite-size effects both in the static structure factor S(q)S(q) and in the interaction energy vv, which is based on the density response formalism. We demonstrate that this method often allows to obtain vv in the TDL within a relative accuracy of 0.2%\sim0.2\% from as few as N=4N=4 electrons without any empirical choices or knowledge of results for other values of NN. Finally, we evaluate the applicability of our method upon increasing the density parameter rsr_s and decreasing the temperature TT.

Keywords

Cite

@article{arxiv.2101.11364,
  title  = {Overcoming finite-size effects in electronic structure simulations at extreme conditions},
  author = {Tobias Dornheim and Jan Vorberger},
  journal= {arXiv preprint arXiv:2101.11364},
  year   = {2021}
}

Comments

arXiv admin note: text overlap with arXiv:2101.05498