Newly observed electronic transitions in rhenium monoxide (ReO)
Abstract
We report laser-induced fluorescence excitation and single-vibronic-level emission spectroscopic studies on gas-phase rhenium monoxide, complemented by high-level ab initio calculations for the Λ–S and Ω electronic states below 30 000 cm−1. Altogether, 14 rotationally resolved vibronic bands were observed in excitation spectra within the energy range of 13 850–23 650 cm−1, and vibrationally resolved emission spectra revealed two Ω components of the ground X2∆ state and three Ω components of the a4Π state below 6500 cm−1. Rovibronic analysis of the spectra yielded electronic symmetries and key molecular constants, including the rotational constant, vibrational frequency, and spin–orbit splitting. In addition, time-resolved emission spectroscopy further identified two cascading decay processes, [17.5]5/2–[17.4*]3/2–X 5/2 and [20.2]5/2–[20.0]5/2–X 5/2. Notably, ten excited states with Ω = 5/2 were characterized in the energy range of 17 000–25 000 cm−1, providing a benchmark for quantum chemical calculations of the 5d-atom-containing molecules, which typically exhibit strong relativistic spin–orbit interactions and electron–electron correlations.
Article Details
Journal Info
The Journal of Chemical Physics
American Institute of Physics
Authors (6)
Lei Zhang
Chaofan Li
Wenli Zou
Jianhuang Lv
Institute of Modern Physics, Chinese Academy of Sciences 1 , Lanzhou 730000,
Xianhong Wang
State Key Laboratory of Polymer Science and Technology, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, No.5625, Renmin Street, Changchun, Jilin 130022, P. R. China
Jie Yang