Probing the geological setting of exoplanets through atmospheric analysis: using Mars as a test case

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Main Authors: Rainer, Monica, Balbi, Evandro, Borsa, Francesco, Cianfarra, Paola, Harutyunyan, Avet, Tosi, Silvano
Format: Preprint
Published: 2025
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author Rainer, Monica
Balbi, Evandro
Borsa, Francesco
Cianfarra, Paola
Harutyunyan, Avet
Tosi, Silvano
author_facet Rainer, Monica
Balbi, Evandro
Borsa, Francesco
Cianfarra, Paola
Harutyunyan, Avet
Tosi, Silvano
contents One of the frontier research fields of exoplanetary science is the study of the composition and variability of exoplanetary atmospheres. This field is now moving from the gas giant planets towards the smaller and colder telluric planets, and future instruments like ANDES will focus on the observations of the atmosphere of telluric planets in the habitable zone in reflected light. These future observations will possibly find variable signals due to the view of different hemispheres of the planet. Particularly, the strength of the signal may be linked to the thickness of the atmospheric layer probed, and therefore to the average altitude variations of the planetary surface, that are related to the global geodynamic evolution of the planet. To better prepare for the interpretation and exploitation of these future data, we used Mars as a Solar System analog of a spatially resolved telluric exoplanet. We observed the reflected light of Mars with the high-resolution near-infrared (NIR) spectrograph GIANO-B (widely used in exoplanetary atmospheric studies) during a 3 month period: we studied the spatial and temporal variations of the Martian CO2 signal using the least-squared deconvolution technique (LSD), to mimic as closely as possible the standard exoplanetary atmospheric analysis. We linked the variations found to the well-known Martian geological surface characteristics: we found a clear dependence of the strength of the CO2 signal with the thickness of the Martian atmospheric layer by comparing the retrieved CO2 signal with the altitudes of our pointings. The proposed strategy is promising: it proved to be effective on Mars and may shed light on the variations in the strength of atmospheric signal of telluric exoplanets.
format Preprint
id arxiv_https___arxiv_org_abs_2510_09305
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Probing the geological setting of exoplanets through atmospheric analysis: using Mars as a test case
Rainer, Monica
Balbi, Evandro
Borsa, Francesco
Cianfarra, Paola
Harutyunyan, Avet
Tosi, Silvano
Earth and Planetary Astrophysics
One of the frontier research fields of exoplanetary science is the study of the composition and variability of exoplanetary atmospheres. This field is now moving from the gas giant planets towards the smaller and colder telluric planets, and future instruments like ANDES will focus on the observations of the atmosphere of telluric planets in the habitable zone in reflected light. These future observations will possibly find variable signals due to the view of different hemispheres of the planet. Particularly, the strength of the signal may be linked to the thickness of the atmospheric layer probed, and therefore to the average altitude variations of the planetary surface, that are related to the global geodynamic evolution of the planet. To better prepare for the interpretation and exploitation of these future data, we used Mars as a Solar System analog of a spatially resolved telluric exoplanet. We observed the reflected light of Mars with the high-resolution near-infrared (NIR) spectrograph GIANO-B (widely used in exoplanetary atmospheric studies) during a 3 month period: we studied the spatial and temporal variations of the Martian CO2 signal using the least-squared deconvolution technique (LSD), to mimic as closely as possible the standard exoplanetary atmospheric analysis. We linked the variations found to the well-known Martian geological surface characteristics: we found a clear dependence of the strength of the CO2 signal with the thickness of the Martian atmospheric layer by comparing the retrieved CO2 signal with the altitudes of our pointings. The proposed strategy is promising: it proved to be effective on Mars and may shed light on the variations in the strength of atmospheric signal of telluric exoplanets.
title Probing the geological setting of exoplanets through atmospheric analysis: using Mars as a test case
topic Earth and Planetary Astrophysics
url https://arxiv.org/abs/2510.09305