English

Accurate all-electron $G_0W_0$ quasiparticle energies employing the full-potential augmented planewave method

Materials Science 2016-08-03 v1

Abstract

The GWGW approach of many-body perturbation theory (MBPT) has become a common tool for calculating the electronic structure of materials. However, with increasing number of published results, discrepancies between the values obtained by different methods and codes become more and more apparent. For a test set of small- and wide-gap semiconductors, we demonstrate how to reach the numerically \emph{best} electronic structure within the framework of the full-potential linearized augmented planewave (FLAPW) method. We first evaluate the impact of local orbitals in the Kohn-Sham eigenvalue spectrum of the underlying starting point. The role of the basis-set quality is then further analyzed when calculating the G0W0G_0W_0 quasiparticle energies. Our results, computed with the \exciting{} code, are compared to those obtained using the projector-augmented planewave (PAW) formalism, finding overall, good agreement between both methods. We also provide data produced with a typical FLAPW basis set as a benchmark for other G0W0G_0W_0 implementations.

Keywords

Cite

@article{arxiv.1605.07351,
  title  = {Accurate all-electron $G_0W_0$ quasiparticle energies employing the full-potential augmented planewave method},
  author = {Dmitrii Nabok and Andris Gulans and Claudia Draxl},
  journal= {arXiv preprint arXiv:1605.07351},
  year   = {2016}
}