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Astrophysics > Earth and Planetary Astrophysics

arXiv:2409.01121 (astro-ph)
[Submitted on 2 Sep 2024]

Title:Why heterogeneous cloud particles matter: Iron-bearing species and cloud particle morphology affects exoplanet transmission spectra

Authors:Sven Kiefer, Dominic Samra, David A. Lewis, Aaron D. Schneider, Michiel Min, Ludmila Carone, Leen Decin, Christiane Helling
View a PDF of the paper titled Why heterogeneous cloud particles matter: Iron-bearing species and cloud particle morphology affects exoplanet transmission spectra, by Sven Kiefer and 7 other authors
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Abstract:The possibility of observing spectral features in exoplanet atmospheres with space missions like JWST and ARIEL necessitates the accurate modelling of cloud particle opacities. In exoplanet atmospheres, cloud particles can be made from multiple materials and be considerably chemically heterogeneous. Therefore, assumptions on the morphology of cloud particles are required to calculate their opacities. The aim of this work is to analyse how different approaches to calculate the opacities of heterogeneous cloud particles affect cloud particle optical properties. We calculate cloud particle optical properties using seven different mixing treatments: four effective medium theories (EMTs: Bruggeman, Landau-Lifshitz-Looyenga (LLL), Maxwell-Garnett, and Linear), core-shell, and two homogeneous cloud particle approximations. We study the mixing behaviour of 21 commonly considered cloud particle materials for exoplanets. To analyse the impact on observations, we study the transmission spectra of HATS-6b, WASP-39b, WASP-76b, and this http URL with large refractive indices, like iron-bearing species or carbon, can change the optical properties of cloud particles when they comprise less than 1\% of the total particle volume. The mixing treatment of heterogeneous cloud particles also has an observable effect on transmission spectroscopy. Assuming core-shell or homogeneous cloud particles results in less muting of molecular features and retains the cloud spectral features of the individual cloud particle materials. The predicted transit depth for core-shell and homogeneous cloud particle materials are similar for all planets used in this work. If EMTs are used, cloud spectral features are broader and cloud spectral features of the individual cloud particle materials are not retained. Using LLL leads to less molecular features in transmission spectra compared to Bruggeman.
Comments: 21 pages, 15 figures, Accepted by A&A
Subjects: Earth and Planetary Astrophysics (astro-ph.EP); Instrumentation and Methods for Astrophysics (astro-ph.IM)
Cite as: arXiv:2409.01121 [astro-ph.EP]
  (or arXiv:2409.01121v1 [astro-ph.EP] for this version)
  https://doi.org/10.48550/arXiv.2409.01121
arXiv-issued DOI via DataCite
Journal reference: A&A 690, A244 (2024)
Related DOI: https://doi.org/10.1051/0004-6361/202450526
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From: Sven Kiefer [view email]
[v1] Mon, 2 Sep 2024 09:57:41 UTC (15,633 KB)
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