Benchmarking CASPT3 Vertical Excitation Energies
arXiv:2204.06480 · doi:10.1063/5.0095887
Abstract
Based on 280 reference vertical transition energies of various natures (singlet, triplet, valence, Rydberg, , , and double excitations) extracted from the QUEST database, we assess the accuracy of third-order multireference perturbation theory, CASPT3, in the context of molecular excited states. When one applies the disputable ionization-potential-electron-affinity (IPEA) shift, we show that CASPT3 provides a similar accuracy as its second-order counterpart, CASPT2, with the same mean absolute error of eV. However, as already reported, we also observe that the accuracy of CASPT3 is almost insensitive to the IPEA shift, irrespective of the transition type and system size, with a small reduction of the mean absolute error to eV when the IPEA shift is switched off.
12 pages, 3 figures (supplementary material available)
References in corpus (9)
- QUESTDB: a database of highly-accurate excitation energies for the electronic structure community
- Reference Energies for Intramolecular Charge-Transfer Excitations
- A canonical transformation theory from extended normal ordering
- Assessing the Performances of CASPT2 and NEVPT2 for Vertical Excitation Energies
- Third order Møller-Plesset theory made more useful? The role of density functional theory orbitals
- Perturbation Theory in the Complex Plane: Exceptional Points and Where to Find Them
- Accurate full configuration interaction correlation energy estimates for five- and six-membered rings
- Spin-free formulation of the multireference driven similarity renormalization group: A benchmark study of first-row diatomic molecules and spin-crossover energetics
- Revisiting the performance of time-dependent density functional theory for electronic excitations: Assessment of 43 popular and recently developed functionals from rungs one to four