Photoelectron spectra of early $3d$-transition metal dioxide cluster anions from $GW$ calculations
Meisam Rezaei, Serdar \"O\u{g}\"ut

TL;DR
This study evaluates different $GW$ approximation methods for calculating photoelectron spectra of early $3d$-transition metal dioxide anions, finding that one-shot $GW$ with PBE0 starting point yields the most accurate results.
Contribution
It demonstrates that one-shot $GW$ with PBE0 starting point provides highly accurate electron removal energies for transition metal dioxide anions, outperforming other $GW$ variants.
Findings
$G_0W_0$@PBE0 matches experimental binding energies within 0.1-0.2 eV.
$G_0W_0$@PBE underestimates binding energies by about 1.5 eV.
Eigenvalue self-consistent $GW$ with fixed $W$ offers reasonable accuracy (~0.3 eV).
Abstract
Photoelectron spectra of early transition metal dioxide anions, ScO, TiO, VO, CrO, MnO, are calculated using semilocal and hybrid density functional theory (DFT) and many-body perturbation theory within the approximation using one-shot perturbative and eigenvalue self-consistent formalisms. Different levels of theory are compared with each other and with available photoelectron spectra. We show that one-shot with a PBE0 starting point (@PBE0) consistently provides very good agreement for all experimentally measured binding energies (within 0.1-0.2 eV or less), which we attribute to the success of PBE0 in mitigating self-interaction error and providing good quasiparticle wave functions, which renders a first-order perturbative correction effective. One-shot calculations with semilocal exchange in the DFT starting…
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