English

A low-eccentricity migration pathway for a 13-h-period Earth analogue in a four-planet system

Earth and Planetary Astrophysics 2022-06-10 v1

Abstract

It is commonly accepted that exoplanets with orbital periods shorter than 1 day, also known as ultra-short period (USP) planets, formed further out within their natal protoplanetary disk, before migrating to their current-day orbits via dynamical interactions. One of the most accepted theories suggests a violent scenario involving high-eccentricity migration followed by tidal circularization. Here, we present the discovery of a four planet system orbiting the bright (V=10.5) K6 dwarf star TOI-500. The innermost planet is a transiting, Earth-sized USP planet with an orbital period of \sim 13 hours, a mass of 1.42 ±\pm 0.18 M_{\oplus}, a radius of 1.1660.0580.0611.166^{0.061}_{-0.058} R_{\oplus}, and a mean density of 4.890.88+1.03^{+1.03}_{-0.88} gcm3^{-3}. Via Doppler spectroscopy, we discovered that the system hosts three outer planets on nearly circular orbits with periods of 6.6, 26.2, and 61.3d and minimum masses of 5.03 ±\pm 0.41 M_{\oplus}, 33.12 ±\pm 0.88 M_{\oplus} and 15.051.11+1.12^{+1.12}_{-1.11} M_{\oplus}, respectively. The presence of both a USP planet and a low-mass object on a 6.6-day orbit indicates that the architecture of this system can be explained via a scenario in which the planets started on low-eccentricity orbits, then moved inwards through a quasi-static secular migration. Our numerical simulations show that this migration channel can bring TOI-500 b to its current location in 2 Gyrs, starting from an initial orbit of 0.02au. TOI-500 is the first four planet system known to host a USP Earth analog whose current architecture can be explained via a non-violent migration scenario.

Keywords

Cite

@article{arxiv.2204.13573,
  title  = {A low-eccentricity migration pathway for a 13-h-period Earth analogue in a four-planet system},
  author = {Luisa Maria Serrano and Davide Gandolfi and Alexander J. Mustill and Oscar Barragán and Judith Korth and Fei Dai and Seth Redfield and Malcolm Fridlund and Kristine W. F. Lam and Matías R. Díaz and Sascha Grziwa and Karen A. Collins and John H. Livingston and William D. Cochran and Coel Hellier and Salvatore E. Bellomo and Trifon Trifonov and Florian Rodler and Javier Alarcon and Jon M. Jenkins and David W. Latham and George Ricker and Sara Seager and Roland Vanderspeck and Joshua N. Winn and Simon Albrecht and Kevin I. Collins and Szilárd Csizmadia and Tansu Daylan and Hans J. Deeg and Massimiliano Esposito and Michael Fausnaugh and Iskra Georgieva and Elisa Goffo and Eike Guenther and Artie P. Hatzes and Steve B. Howell and Eric L. N. Jensen and Rafael Luque and Andrew W. Mann and Felipe Murgas and Hannah L. M. Osborne and Enric Palle and Carina M. Persson and Pam Rowden and Alexander Rudat and Alexis M. S. Smith and Joseph D. Twicken and Vincent Van Eylen and Carl Ziegler},
  journal= {arXiv preprint arXiv:2204.13573},
  year   = {2022}
}

Comments

Published on Nature Astronomy (April 28th, 2022)