Fermi–Löwdin orbital self-interaction correction of adsorption energies on transition metal ions
Article 2022 en
Authors
KW
Kushantha P. K. Withanage
KS
Kamal Sharkas
JJ
J. Karl Johnson
Abstract
1 min read
Density functional theory (DFT)-based descriptions of the adsorption of small molecules on transition metal ions are prone to self-interaction errors. Here, we show that such errors lead to a large over-estimation of adsorption energies of small molecules on Cu<sup>+</sup>, Zn<sup>+</sup>, Zn<sup>2+</sup>, and Mn<sup>+</sup> in local spin density approximation (LSDA) and Perdew, Burke, Ernzerhof (PBE) generalized gradient approximation calculations compared to reference values computed using the coupled-cluster with single, doubles, and perturbative triple excitations method. These errors are significantly reduced by removing self-interaction using the Perdew-Zunger self-interaction correction (PZ-SIC) in the Fermi-Löwdin Orbital (FLO) SIC framework. In the case of FLO-PBE, typical errors are reduced to less than 0.1 eV. Analysis of the results using DFT energies evaluated on self-interaction-corrected densities [DFT(@FLO)] indicates that the density-driven contributions to the FLO-DFT adsorption energy corrections are roughly the same size in DFT = LSDA and PBE, but the total corrections due to removing self-interaction are larger in LSDA.
Kushantha P. K. Withanage, Sharmin Akter, Chandra Shahi, Rajendra P. Joshi, Carlos M. Diaz, Yoh Yamamoto, Rajendra R. Zope, Tunna Baruah, John P Perdew, Juan E. Peralta, Koblar Alan Jackson
Discussion(0)
No comments yet. Be the first to comment.