H2020Individual fellowship2019–2021

ESCAPE · Exploring Shortcuts for the Characterization of the Atmospheres of Planets similar to Earth

Horizon 2020 — Marie Skłodowska-Curie Actions

Duration
2019-04-01 → 2021-03-31
EU contribution
€191,149
Participants
1
Scheme
MSCA-IF-EF-ST

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Results in brief

Exploring Shortcuts for the Characterization of the Atmospheres of Planets similar to Earth

The question of whether or not there is life beyond our solar system has recently taken a giant leap forward with the detection of several nearby Earth-sized, temperate exoplanets (Proxima b, TRAPPIST-1 planets, etc.). Finding exoplanets with atmospheres and identifying their atmospheric composition is a crucial step in pinpointing places with signs of life. Future ground and space-based telescopes such as the European-Extremely Large Telescope, the James Webb Space Telescope and LUVOIR will theoretically be able to perform the first characterization of the atmosphere of these potentially habitable planets. Yet, the implementation of these telescopes is either risky, far in the future, or both. The ESCAPE project aims to investigate possible shortcuts for the characterization of the atmospheres of Earth-like exoplanets with existing ground and space-based telescopes, thanks to innovative combinations of observing techniques and instruments. The general strategy of the ESCAPE project is to use a suite of sophisticated 1D and 3D numerical climate models to assess the possibility to make the first atmospheric characterization observations of potentially habitable planets with existing telescopes.

Data: CORDIS, © European Union

Project objective

The question of whether or not there is life elsewhere in the Universe has recently taken a giant leap forward with the detection of several nearby Earth-sized, temperate exoplanets. Future ground and space-based telescopes such as the European-Extremely Large Telescope, the James Webb Space Telescope and LUVOIR will theoretically be able to perform the first characterization of the atmosphere of these potentially habitable planets. Yet, the implementation of these telescopes is either risky, far in the future, or both. The ESCAPE project aims to investigate possible shortcuts for the characterization of the atmospheres of Earth-like exoplanets with existing ground and space-based telescopes, thanks to innovative combinations of observing techniques and instruments. The first objective is to investigate the possibility to detect and characterize an atmosphere around the recently discovered planet Proxima b – the closest exoplanet from us – with the high-contrast/high-resolution technique, using an adaptive optics system coupled to a high-resolution spectrograph on the Very Large Telescope. The second objective of the project is to calculate whether or not the signature (absorption lines) of a thick hydrogen/helium envelope around a habitable planet can be detected by (i) the Hubble Space Telescope and/or (ii) high-precision spectrographs mounted on ground-based telescopes. The general strategy is to use a sophisticated Global Climate Model – previously co-developed and used by the fellow – in combination with numerical models of exoplanet’s observability – developed at the University of Geneva, the host institution – to assess the possibility to make the first observations of potentially habitable planets. This project will provide pathfinder results that will further be used (1) to propose original observations of Earth-like exoplanets with existing telescopes and (2) to influence the development of the next generation of giant telescopes and their instruments.

Original text from CORDIS.

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Data: CORDIS, © European Union