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Upcoming telescopes such as the James Webb Space Telescope (JWST), or the Extremely Large Telescope (ELTs), may soon be able to characterize, through transmission, emission or reflection spectroscopy, the atmospheres of rocky exoplanets…

The recent discovery of the planetary system hosted by the ultracool dwarf star TRAPPIST-1 could open new perspectives into the investigation of planetary climates of Earth-sized exoplanets, their atmospheres and their possible…

Earth and Planetary Astrophysics · Physics 2017-07-19 Tommaso Alberti , Vincenzo Carbone , Fabio Lepreti , Antonio Vecchio

The Trappist-1 planets provide a unique opportunity to test the current understanding of rocky planet evolution. The James Webb Space Telescope is expected to characterize the atmospheres of these planets, potentially detecting CO$_2$, CO,…

Earth and Planetary Astrophysics · Physics 2022-07-12 Joshua Krissansen-Totton , Jonathan J. Fortney

TRAPPIST-1 planets are invaluable for the study of comparative planetary science outside our Solar System and possibly habitability. First, we derive from N-body simulations possible planetary evolution scenarios, and show that each of the…

The TRAPPIST-1 system offers one of the best opportunities to characterize temperate terrestrial planets beyond our own solar system. Within the TRAPPIST-1 system, planet e stands out as highly likely to sustain surface liquid water if it…

TRAPPIST-1 is a fantastic nearby (~39.14 light years) planetary system made of at least seven transiting terrestrial-size, terrestrial-mass planets all receiving a moderate amount of irradiation. To date, this is the most observationally…

Earth and Planetary Astrophysics · Physics 2020-08-05 Martin Turbet , Emeline Bolmont , Vincent Bourrier , Brice-Olivier Demory , Jérémy Leconte , James Owen , Eric T. Wolf

The TRAPPIST-1 system provides an extraordinary opportunity to study multiple terrestrial extrasolar planets and their atmospheres. Here we use the National Center for Atmospheric Research Community Atmosphere Model version 4 to study the…

Earth and Planetary Astrophysics · Physics 2018-04-03 Eric T. Wolf

The TRAPPIST-1 system is home to at least seven terrestrial planets and is a target of interest for future James Webb Space Telescope (JWST) observations. Additionally, these planets will be of interest to future missions making…

Earth and Planetary Astrophysics · Physics 2022-07-26 Kathleen Mandt , Adrienn Luspay-Kuti , Jacob Lustig-Yaeger , Ryan Felton , Shawn Domagal-Goldman

The James Webb Space Telescope (JWST) will offer the first opportunity to characterize terrestrial exoplanets with sufficient precision to identify high mean molecular weight atmospheres, and TRAPPIST-1's seven known transiting Earth-sized…

Earth and Planetary Astrophysics · Physics 2019-06-26 Jacob Lustig-Yaeger , Victoria S. Meadows , Andrew P. Lincowski

Available JWST observations TRAPPIST-1 system have suggested that several of the planets are likely airless, or possess a very tenuous atmosphere. However, the high atmospheric escape rates expected for these planets suggest that any…

Earth and Planetary Astrophysics · Physics 2026-05-15 Megan Gialluca , Victoria Meadows , Andrew Lincowski , Trent Thomas , Parker Hinton , David Brain , David Crisp

The precise characterization of terrestrial atmospheres with the James Webb Space Telescope (JWST) is one of the utmost goals of exoplanet astronomy in the next decade. With JWST's impending launch, it is crucial we are well prepared to…

Earth and Planetary Astrophysics · Physics 2021-04-28 E. M. May , J. Taylor , T. D. Komacek , M. R. Line , V. Parmentier

The nearby TRAPPIST-1 planetary system is an exciting target for characterizing the atmospheres of terrestrial planets. The planets e, f and g lie in the circumstellar habitable zone and could sustain liquid water on their surfaces. During…

The nearby TRAPPIST-1 system, with its seven small rocky planets orbiting a late-type M8 star, offers an unprecedented opportunity to search for secondary atmospheres on temperate terrestrial worlds. In particular, the 0.8 Earth-radii…

JWST observations of the 7-planet TRAPPIST-1 system will provide an excellent opportunity to test outcomes of stellar-driven evolution of terrestrial planetary atmospheres, including atmospheric escape, ocean loss and abiotic oxygen…

Earth and Planetary Astrophysics · Physics 2024-05-07 Megan T. Gialluca , Rory Barnes , Victoria S. Meadows , Rodolfo Garcia , Jessica Birky , Eric Agol

Transiting planets orbiting M dwarfs provide the best opportunity to study the atmospheres of rocky planets with current facilities. As JWST enters its second year of science operations, an important initial endeavor is to determine whether…

Earth and Planetary Astrophysics · Physics 2023-11-30 Katie E. Teixeira , Caroline V. Morley , Bradford J. Foley , Cayman T. Unterborn

With the commissioning of powerful, new-generation telescopes such as the James Webb Space Telescope (JWST) and the ground-based Extremely Large Telescopes, the first characterization of a high molecular weight atmosphere around a temperate…

JWST secondary eclipse observations of Trappist-1b seemingly disfavor atmospheres >~1 bar since heat redistribution is expected to yield dayside emission temperature below the ~500 K observed. Given the similar densities of Trappist-1…

Earth and Planetary Astrophysics · Physics 2023-07-31 Joshua Krissansen-Totton

The TRAPPIST-1 system is remarkable for its seven planets that are similar in size, mass, density, and stellar heating to the rocky planets Venus, Earth, and Mars in our own Solar System (Gillon et al. 2017). All TRAPPIST-1 planets have…

Earth and Planetary Astrophysics · Physics 2023-06-02 Thomas P. Greene , Taylor J. Bell , Elsa Ducrot , Achrène Dyrek , Pierre-Olivier Lagage , Jonathan J. Fortney

The atmospheres of rocky exoplanets are close to being characterized by astronomical observations, in part due to the commissioning of the James Webb Space Telescope. These observations compel us to understand exoplanetary atmospheres, in…

Earth and Planetary Astrophysics · Physics 2022-12-29 Assaf Hochman , Paolo De Luca , Thaddeus D. Komacek
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