English

Quantum dynamics of CO-H$_2$ in full dimensionality

Solar and Stellar Astrophysics 2015-06-23 v1 Chemical Physics

Abstract

Accurate rate coefficients for molecular vibrational transitions due to collisions with H2_2, critical for interpreting infrared astronomical observations, are lacking for most molecules. Quantum calculations are the primary source of such data, but reliable values that consider all internal degrees of freedom of the collision complex have only been reported for H2_2-H2_2 due to the difficulty of the computations. Here we present essentially exact full-dimensional dynamics computations for rovibrational quenching of CO due to H2_2 impact. Using a high-level six-dimensional potential surface, time-independent scattering calculations, within a full angular-momentum-coupling formulation, were performed for the deexcitation of vibrationally excited CO. Agreement with experimentally-determined results confirms the accuracy of the potential and scattering computations, representing the largest of such calculations performed to date. This investigation advances computational quantum dynamics studies representing initial steps toward obtaining CO-H2_2 rovibrational quenching data needed for astrophysical modeling.

Keywords

Cite

@article{arxiv.1502.02645,
  title  = {Quantum dynamics of CO-H$_2$ in full dimensionality},
  author = {Benhui Yang and P. Zhang and X. Wang and P. C. Stancil and J. M. Bowman and N. Balakrishnan and R. C. Forrey},
  journal= {arXiv preprint arXiv:1502.02645},
  year   = {2015}
}
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