Intensities of KCs band system up to dissociation threshold: an interplay between spin-orbit, hyperfine and rovibronic coupling effects
arXiv:2207.03237 · doi:10.1016/j.jqsrt.2022.108351
Abstract
The relative intensity distribution in the rotationally resolved laser-induced fluorescence spectra belonging to the band systems of the KCs molecule was analyzed. The experimental intensities in doublet , progressions assigned to spin-allowed and spin-forbidden transitions up to their common ground dissociation limit were described in the framework of a coupled-channels (CC) deperturbation model applied for the interacting \Xstate\ and \astate\ states. The CC intensity simulation was based solely on fixed electronic structure parameters as functions of the internuclear distance , namely: accurate empirical potential energy curves for all three states, \emph{ab initio} estimates for matrix elements of the hyperfine structure (HFS) , and transition dipole moments and . A comparison between the measured intensities and their theoretical counterparts demonstrates a strong competition between different intramolecular interactions. A weak spin-orbit coupling of the upper \Estate\ state with the remote states is responsible for appearance of the vibrational bands for the intermediate -values. In turn, the HFS coupling between \Xstate\ and \astate\ states leads to peculiarities in intensities, which are pronounced for high -values in the vicinity of K(4)+Cs(6) dissociation threshold. Both adiabatic ro-vibrational and non-adiabatic electronic-rotational interactions explain the abrupt deviation of some observed intensity ratios from the expected Hönl-London factors.
15 pages, 7 figures
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