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Impact of cosmic rays on atmospheric ion chemistry and spectral transmission features of TRAPPIST-1e

dc.contributor.authorHerbst, Konstantin
dc.contributor.authorBartenschlager, Andreas
dc.contributor.authorGrenfell, John Lee
dc.contributor.authorIro, Nicolas
dc.contributor.authorSinnhuber, Miriam
dc.contributor.authorTaysum, Benjamin
dc.contributor.authorWunderlich, Fabian
dc.contributor.authorEngelbrecht, N. Eugene
dc.contributor.authorLight, Juandre
dc.contributor.authorMoloto, Katlego D.
dc.contributor.authorHarre, Jan-Vincent
dc.contributor.authorRauer, Heike
dc.contributor.authorSchreier, Franz
dc.date.accessioned2025-12-11T11:58:01Z
dc.date.issued2024
dc.descriptionArticle, Faculty of Natural and Agricultural Sciences (Centre for Space Research (CSR)--Northwest University, Potchefstroom Campus
dc.description.abstractOngoing observing projects like the James Webb Space Telescope and future missions offer the chance to characterize Earth-like exoplanetary atmospheres. Thereby, M dwarfs are preferred targets for transit observations, for example, due to their favorable planet-star contrast ratio. However, the radiation and particle environment of these cool stars could be far more extreme than what we know from the Sun. Thus, knowing the stellar radiation and particle environment and its possible influence on detectable biosignatures--in particular, signs of life like ozone and methane--is crucial to understanding upcoming transit spectra. In this study, with the help of our unique model suite INCREASE, we investigate the impact of a strong stellar energetic particle event on the atmospheric ionization, neutral and ion chemistry, and atmospheric biosignatures of TRAPPIST-1e. Therefore, transit spectra for six scenarios are simulated. We find that a Carrington-like event drastically increases atmospheric ionization and induces substantial changes in ion chemistry and spectral transmission features: all scenarios show high event-induced amounts of nitrogen dioxide (i.e., at 6.2 μm), a reduction of the atmospheric transit depth in all water bands (i.e., at 5.5-7.0 μm), a decrease of the methane bands (i.e., at 3.0-3.5 μm), and depletion of ozone (i.e., at ∼9.6 μm). Therefore, it is essential to include high-energy particle effects to correctly assign biosignature signals from, e.g., ozone and methane. We further show that the nitric acid feature at 11.0-12.0 μm, discussed as a proxy for stellar particle contamination, is absent in wet-dead atmospheres.
dc.identifier.citationHerbst, Konstantin. et al. 2024. Impact of Cosmic Rays on Atmospheric Ion Chemistry and Spectral Transmission Features of TRAPPIST-1e. The Astrophysical Journal, 961:164 (14pp). [https://doi.org/10.3847/1538-4357/ad0895]
dc.identifier.urihttps://doi.org/10.3847/1538-4357/ad0895
dc.identifier.urihttp://hdl.handle.net/10394/44814
dc.language.isoen
dc.publisherAmerican Astronomical Society
dc.subjectBiosignatures (2018)
dc.subjectExoplanet atmospheric composition (2021)
dc.subjectExtrasolar rocky planets (511)
dc.subjectCosmic rays (329)
dc.titleImpact of cosmic rays on atmospheric ion chemistry and spectral transmission features of TRAPPIST-1e
dc.typeArticle

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