English

Reconciling Experimental and Theoretical Vibrational Deactivation in Low-Energy O+N$_2$ Collisions

Chemical Physics 2021-08-11 v1

Abstract

Molecular dynamics calculations of inelastic collisions of atomic oxygen with molecular nitrogen are known to show orders of magnitude discrepancies with experimental results in the range from room temperature to many thousands of degrees Kelvin. In this work, we have achieved an unprecedented quantitative agreement with experiments even at low temperature, by including a non-adiabatic treatment involving vibronic states on newly developed potential energy surfaces. This result paves the way to the calculation of accurate and detailed databases of vibrational energy exchange rates for this collisional system. This is bound to have an impact on air plasma simulations in a wide range of conditions and on the development of Very Low Earth Orbit (VLEO) satellites, operating in the low thermosphere, objects of great technological interest due to their potential at a competitive cost.

Keywords

Cite

@article{arxiv.2104.06068,
  title  = {Reconciling Experimental and Theoretical Vibrational Deactivation in Low-Energy O+N$_2$ Collisions},
  author = {Qizhen Hong and Massimiliano Bartolomei and Fabrizio Esposito and Cecilia Coletti and Quanhua Sun and Fernando Pirani},
  journal= {arXiv preprint arXiv:2104.06068},
  year   = {2021}
}

Comments

17 pages, 8 figures