The energetic particle environment of a GJ 436 b-like planet

Author:

Rodgers-Lee D12ORCID,Rimmer P B3ORCID,Vidotto A A4ORCID,Louca A J4ORCID,Taylor A M5,Mesquita A L4ORCID,Miguel Y46,Venot O7ORCID,Helling C89,Barth P8101112,Lacy E113

Affiliation:

1. Dublin Institute for Advanced Studies, School of Cosmic Physics , 31 Fitzwilliam Place, Dublin 2, D02 XF86, Ireland

2. Trinity College Dublin, School of Physics, University of Dublin , College Green, Dublin 2, D02 PN40, Ireland

3. Cavendish Laboratory, University of Cambridge , JJ Thomson Avenue, Cambridge CB3 0HE, UK

4. Leiden Observatory, Leiden University , PO Box 9513, NL-2300 RA Leiden, the Netherlands

5. Deutsches Elektronen-Synchrotron , Zeuthen 15738, Germany

6. SRON, Netherlands Institute for Space Research , Niels Bohrweg 4, NL-2333 CA Leiden, the Netherlands

7. Laboratoire Interuniversitaire des Systèmes Atmosphériques (LISA), Université Paris Cité and Univ Paris Est Creteil , CNRS, LISA, F-75013 Paris, France

8. Space Research Institute, Austrian Academy of Sciences , Schmiedlstrasse 6, A-8042 Graz, Austria

9. Institute for Theoretical Physics and Computational Physics, Graz University of Technology , Petersgasse 16, A-8010 Graz, Austria

10. St Andrews Centre for Exoplanet Science, University of St Andrews , North Haugh, St Andrews KY16 9SS, UK

11. SUPA, School of Physics and Astronomy, University of St Andrews , North Haugh, St Andrews KY16 9SS, UK

12. School of Earth & Environmental Sciences, University of St Andrews , Bute Building, Queen’s Terrace, St Andrews KY16 9TS, UK

13. School of Physics, University College Dublin , Belfield, Dublin 4, D04 N2E5, Ireland

Abstract

ABSTRACTA key first step to constrain the impact of energetic particles in exoplanet atmospheres is to detect the chemical signature of ionization due to stellar energetic particles and Galactic cosmic rays. We focus on GJ 436, a well-studied M dwarf with a warm Neptune-like exoplanet. We demonstrate how the maximum stellar energetic particle momentum can be estimated from the stellar X-ray luminosity. We model energetic particle transport through the atmosphere of a hypothetical exoplanet at orbital distances between $a=0.01\text{ and }0.2\,$au from GJ 436, including GJ 436 b’s orbital distance (0.028 au). For these distances, we find that, at the top of atmosphere, stellar energetic particles ionize molecular hydrogen at a rate of $\zeta _{\rm StEP,H_2} \sim 4\times 10^{-10}\text{ to }2\times 10^{-13}\, \mathrm{s^{-1}}$. In comparison, Galactic cosmic rays alone lead to $\zeta _{\rm GCR, H_2}\sim 2\times 10^{-20}\!-\!10^{-18} \, \mathrm{s^{-1}}$. At 10 au, we find that ionization due to Galactic cosmic rays equals that of stellar energetic particles: $\zeta _{\rm GCR,H_2} = \zeta _{\rm StEP,H_2} \sim 7\times 10^{-18}\, \rm {s^{-1}}$ for the top-of-atmosphere ionization rate. At GJ 436 b’s orbital distance, the maximum ion-pair production rate due to stellar energetic particles occurs at pressure $P\sim 10^{-3}\,$bar, while Galactic cosmic rays dominate for $P\gt 10^2\,$bar. These high pressures are similar to what is expected for a post-impact early Earth atmosphere. The results presented here will be used to quantify the chemical signatures of energetic particles in warm Neptune-like atmospheres.

Funder

Science Foundation Ireland

European Research Council

Royal Irish Academy

ANR

CNRS

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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1. Super-Earths and Earth-like exoplanets;Reference Module in Earth Systems and Environmental Sciences;2024

2. Dynamics and clouds in planetary atmospheres from telescopic observations;The Astronomy and Astrophysics Review;2023-12

3. Exploring the photometric variability of ultra-cool dwarfs with TESS;Monthly Notices of the Royal Astronomical Society;2023-11-27

4. The space weather around the exoplanet GJ 436b;Astronomy & Astrophysics;2023-10

5. The space weather around the exoplanet GJ 436b;Astronomy & Astrophysics;2023-08

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