Literature DB >> 33425848

Density Functional Prediction of Quasiparticle, Excitation, and Resonance Energies of Molecules With a Global Scaling Correction Approach.

Xiaolong Yang1, Xiao Zheng1, Weitao Yang2,3.   

Abstract

Molecular quasiparticle and excitation energies determine essentially the spectral characteristics measured in various spectroscopic experiments. Accurate prediction of these energies has been rather challenging for ground-state density functional methods, because the commonly adopted density function approximations suffer from delocalization error. In this work, by presuming a quantitative correspondence between the quasiparticle energies and the generalized Kohn-Sham orbital energies, and employing a previously developed global scaling correction approach, we achieve substantially improved prediction of molecular quasiparticle and excitation energies. In addition, we also extend our previous study on temporary anions in resonant states, which are associated with negative molecular electron affinities. The proposed approach does not require any explicit self-consistent field calculation on the excited-state species, and is thus highly efficient and convenient for practical purposes.
Copyright © 2020 Yang, Zheng and Yang.

Entities:  

Keywords:  delocalization error; density functional theory; electron affinity; electronic excitation energies; quasiparticle energies; scaling correction approach

Year:  2020        PMID: 33425848      PMCID: PMC7793789          DOI: 10.3389/fchem.2020.588808

Source DB:  PubMed          Journal:  Front Chem        ISSN: 2296-2646            Impact factor:   5.221


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