Direct confirmation of the radial-velocity planet $\beta$ Pic c
Abstract
Methods used to detect giant exoplanets can be broadly divided into two categories: indirect and direct. Indirect methods are more sensitive to planets with a small orbital period, whereas direct detection is more sensitive to planets orbiting at a large distance from their host star. %, and thus on long orbital period. This dichotomy makes it difficult to combine the two techniques on a single target at once. Simultaneous measurements made by direct and indirect techniques offer the possibility of determining the mass and luminosity of planets and a method of testing formation models. Here, we aim to show how long-baseline interferometric observations guided by radial-velocity can be used in such a way. We observed the recently-discovered giant planet Pictoris c with GRAVITY, mounted on the Very Large Telescope Interferometer (VLTI). This study constitutes the first direct confirmation of a planet discovered through radial velocity. We find that the planet has a temperature of \,K and a dynamical mass of . At \,Myr, this puts Pic c close to a 'hot start' track, which is usually associated with formation via disk instability. Conversely, the planet orbits at a distance of 2.7\,au, which is too close for disk instability to occur. The low apparent magnitude () favours a core accretion scenario. We suggest that this apparent contradiction is a sign of hot core accretion, for example, due to the mass of the planetary core or the existence of a high-temperature accretion shock during formation.
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Cite
@article{arxiv.2010.04442,
title = {Direct confirmation of the radial-velocity planet $\beta$ Pic c},
author = {M. Nowak and S. Lacour and A. -M. Lagrange and P. Rubini and J. Wang and T. Stolker and A. Amorim and R. Asensio-Torres and M. Bauböck and M. Benisty and J. P. Berger and H. Beust and S. Blunt and A. Boccaletti and M. Bonnefoy and H. Bonnet and W. Brandner and F. Cantalloube and B. Charnay and E. Choquet and V. Christiaens and Y. Clénet and V. Coudé du Foresto and A. Cridland and P. T. de Zeeuw and R. Dembet and J. Dexter and A. Drescher and G. Duvert and A. Eckart and F. Eisenhauer and F. Gao and P. Garcia and R. Garcia Lopez and T. Gardner and E. Gendron and R. Genzel and S. Gillessen and J. Girard and X. Haubois and G. Heißel and T. Henning and S. Hinkley and S. Hippler and M. Horrobin and M. Houllé and Z. Hubert and A. Jiménez-Rosales and L. Jocou and J. Kammerer and P. Kervella and M. Keppler and L. Kreidberg and M. Kulikauskas and V. Lapeyrère and J. -B. Le Bouquin and P. Léna and A. Mérand and A. -L. Maire and P. Mollière and J. D. Monnier and D. Mouillet and A. Müller and E. Nasedkin and T. Ott and G. Otten and T. Paumard and C. Paladini and K. Perraut and G. Perrin and L. Pueyo and O. Pfuhl and J. Rameau and L. Rodet and G. Rodríguez-Coira and G. Rousset and S. Scheithauer and J. Shangguan and J. Stadler and O. Straub and C. Straubmeier and E. Sturm and L. J. Tacconi and E. F. van Dishoeck and A. Vigan and F. Vincent and S. D. von Fellenberg and K. Ward-Duong and F. Widmann and E. Wieprecht and E. Wiezorrek and J. Woillez and the GRAVITY Collaboration},
journal= {arXiv preprint arXiv:2010.04442},
year = {2020}
}
Comments
10 pages