English

On the Functional Dependence of Transition-Potential Coupled Cluster

Chemical Physics 2025-03-17 v1

Abstract

Orbital relaxation of the core region is a primary source of error in the computation of core ionization and core excitation energies. Recently, Transition-Potential Coupled Cluster (TP-CC) methods have been used to explicitly treat orbital relaxation using non-variational molecular orbitals determined by reoccupation of orbitals optimized for a fractional core occupation. The amount of fractional occupation is governed by parameter λ\lambda, and recommended values for accurate TP-CCSD and XTP-CCSD computations of carbon, nitrogen, oxygen, and fluorine 1s K-edges were previously determined. Herein, we explore the performance of a several density functionals for generating the fractionally occupied orbitals used in TP-CCSD. These functionals include HF, BP86, BH&HLYP, B3LYP, M06-2X, and ω\omegaB97m-V. The fractionally occupied orbitals computed across the various functionals were subsequently employed as the initial orbitals for our TP-CCSD calculations of organic K-edge x-ray absorption and photoelectron spectra. Regardless of the functional used to generate the fractionally occupied orbitals, the TP-CCSD calculations yield accurate and comparable core ionization energies, core excitation energies, and oscillator strengths.

Keywords

Cite

@article{arxiv.2503.11558,
  title  = {On the Functional Dependence of Transition-Potential Coupled Cluster},
  author = {Alexis A. A. Delgado and Devin A. Matthews},
  journal= {arXiv preprint arXiv:2503.11558},
  year   = {2025}
}
R2 v1 2026-06-28T22:20:51.475Z