Accurate absolute and relative core-level binding energies from $GW$
Abstract
We present an accurate approach to compute X-ray photoelectron spectra based on the Green's function method, that overcomes shortcomings of common density functional theory approaches. has become a popular tool to compute valence excitations for a wide range of materials. However, core-level spectroscopy is thus far almost uncharted in . We show that single-shot perturbation calculations in the approximation, which are routinely used for valence states, cannot be applied for core levels and suffer from an extreme, erroneous transfer of spectral weight to the satellite spectrum. The correct behavior can be restored by partial self-consistent schemes or by using hybrid functionals with almost 50% of exact exchange as starting point for . We include also relativistic corrections and present a benchmark study for 65 molecular 1s excitations. Our absolute and relative core-level binding energies agree within 0.3 and 0.2 eV with experiment, respectively.
Cite
@article{arxiv.1911.08428,
title = {Accurate absolute and relative core-level binding energies from $GW$},
author = {Dorothea Golze and Levi Keller and Patrick Rinke},
journal= {arXiv preprint arXiv:1911.08428},
year = {2020}
}