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    Fully Coupled Photochemistry of the Deuterated Ionosphere of Mars and Its Effects on Escape of H and D

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    Author
    Cangi, E.
    Chaffin, M.
    Yelle, R., V
    Gregory, B.
    Deighan, J.
    Affiliation
    Lunar and Planetary Laboratory, University of Arizona
    Issue Date
    2023-06-17
    Keywords
    atmospheric escape
    ionosphere
    Mars
    non-thermal
    photochemistry
    water
    
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    Show full item record
    Publisher
    John Wiley and Sons Inc
    Citation
    Cangi, E., Chaffin, M., Yelle, R., Gregory, B., & Deighan, J. (2023). Fully coupled photochemistry of the deuterated ionosphere of Mars and its effects on escape of H and D. Journal of Geophysical Research: Planets, 128, e2022JE007713. https://doi.org/10.1029/2022JE007713
    Journal
    Journal of Geophysical Research: Planets
    Rights
    © 2023. American Geophysical Union. All Rights Reserved.
    Collection Information
    This item from the UA Faculty Publications collection is made available by the University of Arizona with support from the University of Arizona Libraries. If you have questions, please contact us at repository@u.library.arizona.edu.
    Abstract
    Although deuterium (D) on Mars has received substantial attention, the deuterated ionosphere remains relatively unstudied. This means that we also know very little about non-thermal D escape from Mars, since it is primarily driven by excess energy imparted to atoms produced in ion-neutral reactions. Most D escape from Mars is expected to be non-thermal, highlighting a gap in our understanding of water loss from Mars. In this work, we set out to fill this knowledge gap. To accomplish our goals, we use an upgraded 1D photochemical model that fully couples ions and neutrals and does not assume photochemical equilibrium. To our knowledge, such a model has not been applied to Mars previously. We model the atmosphere during solar minimum, mean, and maximum, and find that the deuterated ionosphere behaves similarly to the H-bearing ionosphere, but that non-thermal escape on the order of 8,000–9,000 cm−2 s−1 dominates atomic D loss under all solar conditions. The total fractionation factor, f, is f = 0.04–0.07, and integrated water loss is 147–158 m global equivalent layer. This is still less than geomorphological estimates. Deuterated ions at Mars are likely difficult to measure with current techniques due to low densities and mass degeneracies with more abundant H ions. Future missions wishing to measure the deuterated ionosphere in situ will need to develop innovative techniques to do so. © 2023. American Geophysical Union. All Rights Reserved.
    Note
    6 month embargo; 17 June 2023
    ISSN
    2169-9097
    DOI
    10.1029/2022JE007713
    Version
    Final Published Version
    ae974a485f413a2113503eed53cd6c53
    10.1029/2022JE007713
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    UA Faculty Publications

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