Ab Initio Spectroscopic Characterization Of The Radical Ch3och2 At Low Temperatures

JOURNAL OF CHEMICAL PHYSICS(2019)

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Abstract
Spectroscopic and structural properties of methoxymethyl radical (CH3OCH2, RDME) are determined using explicitly correlated ab initio methods. This radical of astrophysical and atmospheric relevance has not been fully characterized at low temperatures, which has delayed astrophysical research. We provide rovibrational parameters, excitations to the low energy electronic states, torsional and inversion barriers, and low vibrational energy levels. In the electronic ground state (X(2)A), which appears "clean" from nonadiabatic effects, the minimum energy structure is an asymmetric geometry whose rotational constants and dipole moment have been determined to be A(0) = 46 718.67 MHz, B-0 = 10 748.42 MHz, and C-0 = 9272.51 MHz, and 1.432D (mu(A) = 0.695D, mu(B) = 1.215D, mu(C) = 0.302D), respectively. A variational procedure has been applied to determine torsion-inversion energy levels. Each level splits into 3 subcomponents (A(1)/A(2) and E) corresponding to the three methyl torsion minima. Although the potential energy surface presents 12 minima, at low temperatures, the infrared band shapes correspond to a surface with only three minima because the top of the inversion V-alpha barrier at ff = 0 X (109 cm(-1)) stands below the zero point vibrational energy and the CH2 torsional barrier is relatively high (similar to 2000 cm(-1)). The methyl torsion barrier was computed to be similar to 500 cm(-1) and produces a splitting of 0.01 cm(-1) of the ground vibrational state. Published under license by AIP Publishing.
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Chemical Composition
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