High-temperature simulation of the Raman spectra of the isotopologues 13C16O2 and 16O13C18O
Eduardo Suárez, Christian Ostertag-Henning, Miguel Carvajal, Renato Lemus
Abstract
Recently, experimental Raman spectra of the isotopologues 13C16O2 and 16O13C18O at high temperature have been reported. Separately, a reliable approach for obtaining vibrational wave functions for most isotopologues has been proposed. These descriptions, based on the SU1(2)× U(3)× SU2(2) dynamical group, provide spectroscopic-quality fits to vibrational term values with root-mean-square deviations of 0.06 and 0.07~cm-1, respectively. Using the resulting wave functions, we simulate the Raman spectra of both species by evaluating transition moments of the mean polarizability, represented as an expansion in curvilinear coordinates up to cubic terms within the same algebraic framework. The difference of two independent experimental Raman spectra under comparable temperature conditions is analyzed with the help of the simulations provided by our model. The resulting simulations show excellent agreement with experiment, reinforcing the reliability of the model, while the estimated transition moments are also consistent with experimental values.
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