Benchmark of $\boldsymbol{GW}$ Methods for Core-Level Binding Energies
Abstract
The approximation has recently gained increasing attention as a viable method for the computation of deep core-level binding energies as measured by X-ray photoelectron spectroscopy (XPS). We present a comprehensive benchmark study of different methodologies (starting-point optimized, partial and full eigenvalue-self-consistent, Hedin shift and renormalized singles) for molecular inner-shell excitations. We demonstrate that all methods yield a unique solution and apply them to the CORE65 benchmark set and ethyl trifluoroacetate. Three schemes clearly outperform the other methods for absolute core-level energies with a mean absolute error of 0.3 eV with respect to experiment. These are partial eigenvalue self-consistency, in which the eigenvalues are only updated in the Green's function, single-shot calculations based on an optimized hybrid functional starting point and a Hedin shift in the Green's function. While all methods reproduce the experimental relative binding energies well, the eigenvalue self-consistent schemes and the Hedin shift yield with mean errors eV the best results.
Keywords
Cite
@article{arxiv.2206.05627,
title = {Benchmark of $\boldsymbol{GW}$ Methods for Core-Level Binding Energies},
author = {Jiachen Li and Ye Jin and Patrick Rinke and Weitao Yang and Dorothea Golze},
journal= {arXiv preprint arXiv:2206.05627},
year = {2022}
}