TOI-1235 b: a keystone super-Earth for testing radius valley emergence models around early M dwarfs
Abstract
Small planets on close-in orbits tend to exhibit envelope mass fractions of either effectively zero or up to a few percent depending on their size and orbital period. Models of thermally-driven atmospheric mass loss and of terrestrial planet formation in a gas-poor environment make distinct predictions regarding the location of this rocky/non-rocky transition in period-radius space. Here we present the confirmation of TOI-1235 b ( days, R), a planet whose size and period are intermediate between the competing model predictions thus making the system an important test case for emergence models of the rocky/non-rocky transition around early M dwarfs ( R, M). We confirm the TESS planet discovery using reconnaissance spectroscopy, ground-based photometry, high-resolution imaging, and a set of 38 precise radial-velocities from HARPS-N and HIRES. We measure a planet mass of M, which implies an iron core mass fraction of % in the absence of a gaseous envelope. The bulk composition of TOI-1235 b is therefore consistent with being Earth-like and we constrain a H/He envelope mass fraction to be % at 90% confidence. Our results are consistent with model predictions from thermally-driven atmospheric mass loss but not with gas-poor formation, suggesting that the former class of processes remain efficient at sculpting close-in planets around early M dwarfs. Our RV analysis also reveals a strong periodicity close to the first harmonic of the photometrically-determined stellar rotation period that we treat as stellar activity, despite other lines of evidence favoring a planetary origin ( days, M) that cannot be firmly ruled out by our data.
Keywords
Cite
@article{arxiv.2004.06682,
title = {TOI-1235 b: a keystone super-Earth for testing radius valley emergence models around early M dwarfs},
author = {Ryan Cloutier and Joseph E. Rodriguez and Jonathan Irwin and David Charbonneau and Keivan G. Stassun and Annelies Mortier and David W. Latham and Howard Isaacson and Andrew W. Howard and Stéphane Udry and Thomas G. Wilson and Christopher A. Watson and Matteo Pinamonti and Florian Lienhard and Paolo Giacobbe and Pere Guerra and Karen A. Collins and Allyson Beiryla and Gilbert A. Esquerdo and Elisabeth Matthews and Rachel A. Matson and Steve B. Howell and Elise Furlan and Ian J. M. Crossfield and Jennifer G. Winters and Chantanelle Nava and Kristo Ment and Eric D. Lopez and George Ricker and Roland Vanderspek and Sara Seager and Jon M. Jenkins and Eric B. Ting and Peter Tenenbaum and Alessandro Sozzetti and Lizhou Sha and Damien Ségransan and Joshua E. Schlieder and Dimitar Sasselov and Arpita Roy and Paul Robertson and Ken Rice and Ennio Poretti and Giampaolo Piotto and David Phillips and Joshua Pepper and Francesco Pepe and Emilio Molinari and Teo Mocnik and Giuseppina Micela and Michel Mayor and Aldo F. Martinez Fiorenzano and Franco Mallia and Jack Lubin and Christophe Lovis and Mercedes López-Morales and Molly R. Kosiarek and John F. Kielkopf and Stephen R. Kane and Eric L. N. Jensen and Giovanni Isopi and Daniel Huber and Michelle L. Hill and Avet Harutyunyan and Erica Gonzales and Steven Giacalone and Adriano Ghedina and Andrea Ercolino and Xavier Dumusque and Courtney D. Dressing and Mario Damasso and Paul A. Dalba and Rosario Cosentino and Dennis M. Conti and Knicole D. Colón and Kevin I. Collins and Andrew Collier Cameron and David Ciardi and Jessie Christiansen and Ashley Chontos and Massimo Cecconi and Douglas A. Caldwell and Christopher Burke and Lars Buchhave and Charles Beichman and Aida Behmard and Corey Beard and Joseph M. Akana Murphy},
journal= {arXiv preprint arXiv:2004.06682},
year = {2020}
}
Comments
Accepted to The Astronomical Journal. 8 figures & 5 tables. Table 2 is provided in the arXiv source code