English

Static correlation and electron localization in molecular dimers from the self-consistent RPA and GW approximation

Strongly Correlated Electrons 2015-04-10 v2 Chemical Physics

Abstract

We investigate static correlation and delocalization errors in the self-consistent GW and random-phase approximation (RPA) by studying molecular dissociation of the H_2 and LiH molecules. Although both approximations contain topologically identical diagrams, the non-locality and frequency dependence of the GW self-energy crucially influence the different energy contributions to the total energy as compared to the use of a static local potential in the RPA. The latter leads to significantly larger correlation energies which allow for a better description of static correlation at intermediate bond distances. The substantial error found in GW is further analyzed by comparing spin-restricted and spin-unrestricted calculations. At large but finite nuclear separation their difference gives an estimate of the so-called fractional spin error normally determined only in the dissociation limit. Furthermore, a calculation of the dipole moment of the LiH molecule at dissociation reveals a large delocalization error in GW making the fractional charge error comparable to the RPA. The analyses are supplemented by explicit formulae for the GW Green's function and total energy of a simplified two-level model providing additional insights into the dissociation limit.

Keywords

Cite

@article{arxiv.1412.7507,
  title  = {Static correlation and electron localization in molecular dimers from the self-consistent RPA and GW approximation},
  author = {Maria Hellgren and Fabio Caruso and Daniel R. Rohr and Xinguo Ren and Angel Rubio and Matthias Scheffler and Patrick Rinke},
  journal= {arXiv preprint arXiv:1412.7507},
  year   = {2015}
}

Comments

13 pages, 7 figures

R2 v1 2026-06-22T07:42:49.973Z