Atmospheric Escape Processes and Planetary Atmospheric Evolution
Abstract
The habitability of the surface of any planet is determined by a complex evolution of its interior, surface, and atmosphere. The electromagnetic and particle radiation of stars drive thermal, chemical, and physical alteration of planetary atmospheres, including escape. Many known extrasolar planets experience vastly different stellar environments than those in our solar system: It is crucial to understand the broad range of processes that lead to atmospheric escape and evolution under a wide range of conditions if we are to assess the habitability of worlds around other stars. One problem encountered between the planetary and the astrophysics communities is a lack of common language for describing escape processes. Each community has customary approximations that may be questioned by the other, such as the hypothesis of H‐dominated thermosphere for astrophysicists or the Sun‐like nature of the stars for planetary scientists. Since exoplanets are becoming one of the main targets for the detection of life, a common set of definitions and hypotheses are required. We review the different escape mechanisms proposed for the evolution of planetary and exoplanetary atmospheres. We propose a common definition for the different escape mechanisms, and we show the important parameters to take into account when evaluating the escape at a planet in time. We show that the paradigm of the magnetic field as an atmospheric shield should be changed and that recent work on the history of Xenon in Earth's atmosphere gives an elegant explanation to its enrichment in heavier isotopes: the so‐called Xenon paradox.
Additional Information
© 2020 American Geophysical Union. Issue Online: 31 July 2020; Version of Record online: 31 July 2020; Accepted manuscript online: 07 June 2020; Manuscript accepted: 31 March 2020; Manuscript revised: 06 March 2020; Manuscript received: 22 November 2019. The Living Breathing Planet team is funded by the NASA Nexus for Exoplanet System Science under Grant NNX15AE05G. Work at the Royal Belgian Institute for SpaceAeronomy was supported by PRODEX/Cluster Contract 13127/98/NL/VJ(IC)‐PEA90316. The work of C. S. W. has been partially funded by the Austrian Science Fund under Project P 32035‐N36. We thank Mary Pat Hrybyk‐Keith at NASA/GSFC for her graphics work on the summary figures. We would like to thank N. Wright (Keele University) for his assistance in providing additional figures. The authors would like to thank the Institut d'Astrophysique de Paris (IAP), France, and Ben Jaffel for the IAPIC continuous development. Data Availability Statement: Data were not used nor created for this research.Attached Files
Published - 2019JA027639.pdf
Files
Name | Size | Download all |
---|---|---|
md5:279a3a0ba6f27610aed3c64c4f1fb54b
|
9.0 MB | Preview Download |
Additional details
- Eprint ID
- 106343
- Resolver ID
- CaltechAUTHORS:20201029-124815176
- NASA
- NNX15AE05G
- PRODEX
- 13127/98/NL/VJ(IC)‐PEA90316
- Fonds zur Förderung der wissenschaftlichen Forschung (FWF)
- P 32035‐N36
- Created
-
2020-10-29Created from EPrint's datestamp field
- Updated
-
2021-11-16Created from EPrint's last_modified field