Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
7837139 | Chemical Physics | 2018 | 21 Pages |
Abstract
A new full-dimensional (6D) diabatic potential energy surface (PES) model is presented representing the five lowest PESs corresponding to the XÌ2A2â²,AÌ2Eâ³, and BÌ2Eâ² electronic states of the nitrate radical (NO3). It is based on high-level ab initio calculations of roughly 90000 energy data over a wide range of nuclear configurations and represents the energies with a root mean-squares (rms) error of about 100â¯cmâ1. An accurate dipole surface was developed for the XÌ state as well. The new PES model is used to re-investigate the infra-red (IR) spectrum corresponding to the electronic ground state by full dimensional quantum dynamics simulations. Vibrational eigenstates, IR transition probabilities, and isotopic shifts are computed and analyzed. Levels up to 2000â¯cmâ1 are obtained and show good to excellent agreement with known experimental values. Some larger deviations are observed and discussed as well. The new results are in agreement with previous theoretical studies that the disputed ν3 fundamental corresponds to a frequency of roughly 1022â¯cmâ1 and that the prominent experimental feature observed at 1492â¯cmâ1 is due to the 3141 (eâ²) combination mode. Observed discrepancies in the IR intensities may be explained by coupling to the BÌ state which is also analysed by diabatic decomposition of the eigenstates.
Related Topics
Physical Sciences and Engineering
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Physical and Theoretical Chemistry
Authors
Alexandra Viel, Wolfgang Eisfeld,