Climates of Terrestrial Exoplanets and Biosignatures

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Main Authors: Bhatnagar, Siddharth, Bolmont, Emeline, Boeren, Nikita J., Hansen, Janina, Konrad, Björn, Schlarmann, Leander, Alei, Eleonora, Azevedo, Marie, Braam, Marrick, Chaverot, Guillaume, Grone, Jonathan, Hakim, Kaustubh, Houelle, Mathilde, Kitzmann, Daniel, Lovis, Christophe, Pommerol, Antoine, Quanz, Sascha P., Turbet, Martin, Vorburger, Audrey, Wampfler, Susanne F., Lang, Francis Zong
Format: Preprint
Published: 2026
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author Bhatnagar, Siddharth
Bolmont, Emeline
Boeren, Nikita J.
Hansen, Janina
Konrad, Björn
Schlarmann, Leander
Alei, Eleonora
Azevedo, Marie
Braam, Marrick
Chaverot, Guillaume
Grone, Jonathan
Hakim, Kaustubh
Houelle, Mathilde
Kitzmann, Daniel
Lovis, Christophe
Pommerol, Antoine
Quanz, Sascha P.
Turbet, Martin
Vorburger, Audrey
Wampfler, Susanne F.
Lang, Francis Zong
author_facet Bhatnagar, Siddharth
Bolmont, Emeline
Boeren, Nikita J.
Hansen, Janina
Konrad, Björn
Schlarmann, Leander
Alei, Eleonora
Azevedo, Marie
Braam, Marrick
Chaverot, Guillaume
Grone, Jonathan
Hakim, Kaustubh
Houelle, Mathilde
Kitzmann, Daniel
Lovis, Christophe
Pommerol, Antoine
Quanz, Sascha P.
Turbet, Martin
Vorburger, Audrey
Wampfler, Susanne F.
Lang, Francis Zong
contents Understanding the climates of terrestrial exoplanets and the detectability of biosignatures is an inherently interdisciplinary challenge, requiring the integration of insights from Solar System exploration, exoplanet observations and climate science. Building from Earth as the only known inhabited planet, NCCR PlanetS has developed models, tools and observational strategies to assess planetary environments far beyond direct reach. Between 2018 and 2025, PlanetS made major contributions across theory, modelling, instrumentation and mission preparation. On the modelling side, the Generic Planetary Climate Model enabled climate studies across a wide range of planetary regimes, from early Venus to temperate terrestrial exoplanets including Proxima b, incorporating advanced developments such as a dynamical slab ocean. In parallel, the THOR global climate model was developed to avoid Earth-centric assumptions and to stably simulate diverse atmospheric regimes. PlanetS has also advanced atmospheric retrieval techniques combining forward modelling, Bayesian inference and machine learning, applied to targets ranging from Solar System bodies to exoplanet phase curves and directly imaged spectra. These efforts have helped assess the scientific return of future missions, notably the Large Interferometer for Exoplanets (LIFE) and to define instrumental requirements for detecting Earth-like atmospheres and biosignatures. Within the Solar System, PlanetS contributed key technologies for biosignature detection, including ORIGIN and SenseLife, enabling in-situ and remote detection of organics, isotopic ratios and microstructures. Finally, PlanetS has played a major role in preparing the next generation of observatories, from JWST, VLT and ELT instruments to LIFE and the Habitable Worlds Observatory. Together, these contributions form an integrated framework advancing the search for life beyond Earth.
format Preprint
id arxiv_https___arxiv_org_abs_2601_20620
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Climates of Terrestrial Exoplanets and Biosignatures
Bhatnagar, Siddharth
Bolmont, Emeline
Boeren, Nikita J.
Hansen, Janina
Konrad, Björn
Schlarmann, Leander
Alei, Eleonora
Azevedo, Marie
Braam, Marrick
Chaverot, Guillaume
Grone, Jonathan
Hakim, Kaustubh
Houelle, Mathilde
Kitzmann, Daniel
Lovis, Christophe
Pommerol, Antoine
Quanz, Sascha P.
Turbet, Martin
Vorburger, Audrey
Wampfler, Susanne F.
Lang, Francis Zong
Earth and Planetary Astrophysics
Understanding the climates of terrestrial exoplanets and the detectability of biosignatures is an inherently interdisciplinary challenge, requiring the integration of insights from Solar System exploration, exoplanet observations and climate science. Building from Earth as the only known inhabited planet, NCCR PlanetS has developed models, tools and observational strategies to assess planetary environments far beyond direct reach. Between 2018 and 2025, PlanetS made major contributions across theory, modelling, instrumentation and mission preparation. On the modelling side, the Generic Planetary Climate Model enabled climate studies across a wide range of planetary regimes, from early Venus to temperate terrestrial exoplanets including Proxima b, incorporating advanced developments such as a dynamical slab ocean. In parallel, the THOR global climate model was developed to avoid Earth-centric assumptions and to stably simulate diverse atmospheric regimes. PlanetS has also advanced atmospheric retrieval techniques combining forward modelling, Bayesian inference and machine learning, applied to targets ranging from Solar System bodies to exoplanet phase curves and directly imaged spectra. These efforts have helped assess the scientific return of future missions, notably the Large Interferometer for Exoplanets (LIFE) and to define instrumental requirements for detecting Earth-like atmospheres and biosignatures. Within the Solar System, PlanetS contributed key technologies for biosignature detection, including ORIGIN and SenseLife, enabling in-situ and remote detection of organics, isotopic ratios and microstructures. Finally, PlanetS has played a major role in preparing the next generation of observatories, from JWST, VLT and ELT instruments to LIFE and the Habitable Worlds Observatory. Together, these contributions form an integrated framework advancing the search for life beyond Earth.
title Climates of Terrestrial Exoplanets and Biosignatures
topic Earth and Planetary Astrophysics
url https://arxiv.org/abs/2601.20620