English

Relativistic fully self-consistent $GW$ for molecules: Total energies and ionization potentials

Chemical Physics 2024-01-23 v1

Abstract

The fully self-consistent GWGW (scGWGW) method with the iterative solution of Dyson equation provides a consistent approach for describing the ground and excited states without any dependence on the mean-field reference. In this work, we present a relativistic version of scGWGW for molecules containing heavy element using the exact two-component (X2C) Coulomb approximation. We benchmark SOC-81\texttt{SOC-81} dataset containing closed shell heavy elements for the first ionization potential using the fully self-consistent GWGW as well as one-shot GWGW. The self-consistent GWGW provides superior result compared to G0W0G_0W_0 with PBE reference and comparable to G0W0G_0W_0 with PBE0 while also removing the starting point dependence. The photoelectron spectra obtained at the X2C level demonstrate very good agreement with experimental spectra. We also observe that scGWGW provides very good estimation of ionization potential for the inner dd shell orbitals. Additionally, using the well conserved total energy, we investigate the equilibrium bond length and harmonic frequencies of few halogen dimers using scGWGW. Overall, our findings demonstrate the applicability of the fully self-consistent GWGW method for accurate ionization potential, photoelectron spectra and total energies in finite systems with heavy elements with a reasonable computational scaling.

Keywords

Cite

@article{arxiv.2401.11303,
  title  = {Relativistic fully self-consistent $GW$ for molecules: Total energies and ionization potentials},
  author = {Vibin Abraham and Gaurav Harsha and Dominika Zgid},
  journal= {arXiv preprint arXiv:2401.11303},
  year   = {2024}
}
R2 v1 2026-06-28T14:22:34.527Z