English

Beyond the Random Phase Approximation for the Electron Correlation Energy: The Importance of Single Excitations

Other Condensed Matter 2015-05-20 v2 Chemical Physics

Abstract

The random phase approximation (RPA) for the electron correlation energy, combined with the exact-exchange energy, represents the state-of-the-art exchange-correlation functional within density-functional theory (DFT). However, the standard RPA practice -- evaluating both the exact-exchange and the RPA correlation energy using local or semilocal Kohn-Sham (KS) orbitals -- leads to a systematic underbinding of molecules and solids. Here we demonstrate that this behavior is largely corrected by adding a "single excitation" (SE) contribution, so far not included in the standard RPA scheme. A similar improvement can also be achieved by replacing the non-self-consistent exact-exchange total energy by the corresponding self-consistent Hartree-Fock total energy, while retaining the RPA correlation energy evaluated using Kohn-Sham orbitals. Both schemes achieve chemical accuracy for a standard benchmark set of non-covalent intermolecular interactions.

Keywords

Cite

@article{arxiv.1011.2724,
  title  = {Beyond the Random Phase Approximation for the Electron Correlation Energy: The Importance of Single Excitations},
  author = {Xinguo Ren and Patrick Rinke and Alexandre Tkatchenko and Matthias Scheffler},
  journal= {arXiv preprint arXiv:1011.2724},
  year   = {2015}
}

Comments

5 pages, 4 figures, and an additional supplementary material