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TOI-1695 b: A Water World Orbiting an Early-M Dwarf in the Planet Radius Valley

Authors :
Collin Cherubim
Ryan Cloutier
David Charbonneau
Chris Stockdale
Keivan G. Stassun
Richard P. Schwarz
Boris Safonov
Annelies Mortier
Pablo Lewin
David W. Latham
Keith Horne
Raphaëlle D. Haywood
Erica Gonzales
Maria V. Goliguzova
Karen A. Collins
David R. Ciardi
Allyson Bieryla
Alexandre A. Belinski
Bill Wohler
Christopher A. Watson
Roland Vanderspek
Stéphane Udry
Alessandro Sozzetti
Damien Ségransan
Dimitar Sasselov
George R. Ricker
Ken Rice
Ennio Poretti
Giampaolo Piotto
Francesco Pepe
Emilio Molinari
Giuseppina Micela
Michel Mayor
Christophe Lovis
Mercedes López-Morales
Jon M. Jenkins
Zahra Essack
Xavier Dumusque
John P. Doty
Knicole D. Colón
Andrew Collier Cameron
Lars A. Buchhave
Source :
The Astronomical Journal, Vol 165, Iss 4, p 167 (2023)
Publication Year :
2023
Publisher :
IOP Publishing, 2023.

Abstract

Characterizing the bulk compositions of transiting exoplanets within the M dwarf radius valley offers a unique means to establish whether the radius valley emerges from an atmospheric mass-loss process or is imprinted by planet formation itself. We present the confirmation of such a planet orbiting an early-M dwarf ( T _mag = 11.0294 ± 0.0074, M _s = 0.513 ± 0.012 M _⊙ , R _s = 0.515 ± 0.015 R _⊙ , and T _eff = 3690 ± 50 K): TOI-1695 b ( P = 3.13 days and ${R}_{p}={1.90}_{-0.14}^{+0.16}\ {R}_{\oplus }$ ). TOI-1695 b’s radius and orbital period situate the planet between model predictions from thermally driven mass loss versus gas depleted formation, offering an important test case for radius valley emergence models around early-M dwarfs. We confirm the planetary nature of TOI-1695 b based on five sectors of TESS data and a suite of follow-up observations including 49 precise radial velocity measurements taken with the HARPS-N spectrograph. We measure a planetary mass of 6.36 ± 1.00 M _⊕ , which reveals that TOI-1695 b is inconsistent with a purely terrestrial composition of iron and magnesium silicate, and instead is likely a water-rich planet. Our finding that TOI-1695 b is not terrestrial is inconsistent with the planetary system being sculpted by thermally driven mass loss. We present a statistical analysis of seven well-characterized planets within the M dwarf radius valley demonstrating that a thermally driven mass-loss scenario is unlikely to explain this population.

Details

Language :
English
ISSN :
15383881 and 47407042
Volume :
165
Issue :
4
Database :
Directory of Open Access Journals
Journal :
The Astronomical Journal
Publication Type :
Academic Journal
Accession number :
edsdoj.17f5d47407042da95732b919709637c
Document Type :
article
Full Text :
https://doi.org/10.3847/1538-3881/acbdfd