Molecule-dependent oxygen isotopic ratios in the coma of comet 67P/Churyumov–Gerasimenko

Author:

Altwegg K1ORCID,Balsiger H1,Combi M2,De Keyser J3ORCID,Drozdovskaya M N4ORCID,Fuselier S A56,Gombosi T I2,Hänni N1ORCID,Rubin M1ORCID,Schuhmann M1,Schroeder I1ORCID,Wampfler S4ORCID

Affiliation:

1. Physikalisches Institut, University of Bern, Sidlerstr 5, CH-3012 Bern, Switzerland

2. Department of Climate and Space Sciences and Engineering, University of Michigan, 2455 Hayward, Ann Arbor, MI 48109, USA

3. Royal Belgian Institute for Space Aeronomy, BIRA-IASB, Ringlaan 3, B-1180 Brussels, Belgium

4. Center for Space and Habitability, University of Bern, Gesellschaftsstr 6, CH-3012 Bern, Switzerland

5. Space Science Directorate, Southwest Research Institute, 6220 Culebra Rd., San Antonio, TX 78228, USA

6. Department of Physics and Astronomy, The University of Texas at San Antonio, San Antonio, TX 78249, USA

Abstract

ABSTRACT The ratios of the three stable oxygen isotopes 16O, 17O, and 18O on the Earth and, as far as we know in the Solar system, show variations on the order of a few per cent at most, with a few outliers in meteorites. However, in the interstellar medium there are some highly fractionated oxygen isotopic ratios in some specific molecules. The goal of this work is to investigate the oxygen isotopic ratios in different volatile molecules found in the coma of comet 67P/Churyumov–Gerasimenko and compare them with findings from interstellar clouds in order to assess commonalities and differences. To accomplish this goal, we analysed data from the ROSINA instrument on Rosetta during its mission around the comet. 16O/18O ratios could be determined for O2, methanol, formaldehyde, carbonyl sulfide, and sulfur monoxide/dioxide. For O2 the 16O/17O ratio is also available. Some ratios are strongly enriched in the heavy isotopes, especially for sulfur-bearing molecules and formaldehyde, whereas for methanol the ratios are compatible with the ones in the Solar system. O2 falls in-between, but its oxygen isotopic ratios clearly differ from water, which likely rules out an origin of O2 from water, be it by radiolysis, dismutation during sublimation, or the Eley–Rideal process from water ions hitting the nucleus as postulated in the literature.

Funder

SERI

European Space Agency

SNSF

Belgian Science Policy Office

JPL

Gruber Foundation

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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