The excitation of CO in CO-dominated cometary comae

Author:

Żółtowski M12,Lique F2,Loreau J3ORCID,Faure A4ORCID,Cordiner M56ORCID

Affiliation:

1. LOMC – UMR 6294, CNRS-Université du Havre , 25 rue Philippe Lebon, BP 1123, F-76063 Le Havre, France

2. Univ Rennes, CNRS , IPR (Institut de Physique de Rennes) – UMR 6251, F-35000 Rennes, France

3. KU Leuven, Department of Chemistry , B-3001 Leuven, Belgium

4. Univ. Grenoble Alpes, CNRS, IPAG, F-38000 Grenoble, France

5. Astrochemistry Laboratory, NASA Goddard Space Flight Center , 8800 Greenbelt Road, Greenbelt, MD 20771, USA

6. Department of Physics, Catholic University of America , Washington, DC 20064, USA

Abstract

ABSTRACT An abundance of CO significantly surpassing the abundance of H2O is observed in the comae of comets at large heliocentric distances. In these environments, CO molecules can be the most abundant species and they may be therefore the dominant projectiles inducing collisional excitation of the cometary molecules. It is thus of high interest to investigate the excitation of CO by CO. This article provides a new set of CO–CO collisional rate coefficients for temperatures up to 150 K and for CO rotational levels j1 up to 10. These data are obtained from quantum scattering calculations using the coupled states approximation. They are used in a simple radiative transfer model in order to test their impact on the excitation of cometary CO. Because mutual (de-)excitations of the target and projectile are important, the CO projectile was assumed to be thermalized at the kinetic temperature. We found that the non-local thermodynamical equilibrium regime extends for CO densities in the range 103–107 cm−3. We also observed that as soon as the CO/H2O ratio is larger than 70 per cent/30 per cent, the contribution of H2O collisions can be neglected. Similarly, the excitation of CO by CO may be ignored for relatively low CO/H2O density ratios (≤30 per cent/70 per cent). Finally, when the coma is a ∼50 per cent/50 per cent mixture of CO and H2O, the contribution of both colliders is similar and has to be considered.

Funder

CNRS

KU Leuven

National Science Foundation

CEA

GENCI

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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