The habitability of Proxima Centauri b II. Possible climates and Observability
Abstract
Radial velocity monitoring has found the signature of a ~M planet located within the Habitable Zone (HZ) of Proxima Centauri \citep{Anglada16}. Despite a hotter past and an active host star the planet Proxima~b could have retained enough volatiles to sustain surface habitability \citep{Ribas2016}. Here we use a 3D Global Climate Model (GCM) to simulate Proxima b's atmosphere and water cycle for its two likely rotation modes (1:1 and 3:2 spin-orbit resonances) while varying the unconstrained surface water inventory and atmospheric greenhouse effect. We find that a broad range of atmospheric compositions allow surface liquid water. On a tidally-locked planet with sufficient surface water inventory, liquid water is always present, at least in the substellar region. With a non-synchronous rotation, this requires a minimum greenhouse warming (10~mbar of CO and 1~bar of N). If the planet is dryer, 0.5~bar/1.5~bars of CO (respectively for asynchronous/synchronous rotation) suffice to prevent the trapping of any arbitrary small water inventory into polar/nightside ice caps. We produce reflection/emission spectra and phase curves for the simulated climates. We find that atmospheric characterization will be possible by direct imaging with forthcoming large telescopes. The angular separation of at 1~m (with the E-ELT) and a contrast of 10 will enable high-resolution spectroscopy and the search for molecular signatures, including HO, O, and CO. The observation of thermal phase curves can be attempted with JWST, thanks to a contrast of at 10~m. Proxima~b will also be an exceptional target for future IR interferometers. Within a decade it will be possible to image Proxima~b and possibly determine whether this exoplanet's surface is habitable.
Keywords
Cite
@article{arxiv.1608.06827,
title = {The habitability of Proxima Centauri b II. Possible climates and Observability},
author = {Martin Turbet and Jeremy Leconte and Franck Selsis and Emeline Bolmont and Francois Forget and Ignasi Ribas and Sean N. Raymond and Guillem Anglada-Escudé},
journal= {arXiv preprint arXiv:1608.06827},
year = {2016}
}
Comments
Accepted for publication in Astronomy&Astrophysics, companion paper to Ribas et al