| Literature DB >> 29727500 |
Franco Egidi1, Marco Fusè1, Alberto Baiardi1, Julien Bloino2, Xiaosong Li3, Vincenzo Barone1.
Abstract
In this computational study, we illustrate a method for computing phosphorescence and circularly polarized phosphorescence spectra of molecular systems, which takes into account vibronic effects including both Franck-Condon and Herzberg-Teller contributions. The singlet and triplet states involved in the phosphorescent emission are described within the harmonic approximation, and the method fully takes mode-mixing effects into account when evaluating Franck-Condon integrals. Spin-orbit couplings, which are responsible for these otherwise forbidden phenomena, are accounted for by means of a relativistic two-component time-dependent density functional theory method. The model is applied to two types of chiral systems: camphorquinone, a rigid organic system that allows for an extensive benchmark, and some members of a class of iridium complexes. The merits and shortcomings of the methods are discussed, and some perspectives for future developments are offered.Entities:
Keywords: camphorquinone; circularly polarized phosphorescence; iridium complexes; phosphorescence; vibronic spectroscopy
Year: 2018 PMID: 29727500 PMCID: PMC6003600 DOI: 10.1002/chir.22864
Source DB: PubMed Journal: Chirality ISSN: 0899-0042 Impact factor: 2.437