Publication details

A distant brown dwarf coplanar to a warm Jupiter and a hot super-Earth

Authors

JONES Matias I. NAPONIELLO Luca TRIFONOV Trifon BRAHM Rafael PICHIERRI Gabriele ACUNA-AGUIRRE Lorena DE ROSA Robert J. TALA PINTO Marcelo BONOMO Aldo S. MANCINI Luigi SOZZETTI Alessandro REINARZ Yared MORBIDELLI Alessandro ESPINOZA Nestor ROSOTTI Giovanni NIELSEN Eric L. STEFANOV Stefan Y. HENNING Thomas JORDAN Andres EBERHARDT Jan HATZES Artie VANZI Leonardo JANÍK Jan KABATH Petr

Year of publication 2026
Type Peer-reviewed scientific article
Magazine / Source NATURE
MU Faculty or unit

Faculty of Science

Citation
web https://www.nature.com/articles/s41586-026-10586-5
Doi https://doi.org/10.1038/s41586-026-10586-5
Keywords TOI-201; brown dwarf; warm Jupiter; hot super-Earth
Description In transiting planetary systems, in which planetary sizes are accurately determined from transit observations, the presence of transit-timing variations1 (TTVs), especially when combined with radial velocity (RV) data, provides powerful constraints on masses and orbital eccentricities. Together, these measurements offer crucial insights into system architecture, formation mechanisms and dynamical evolution. We present long-term RV and transit/TTV monitoring of the relatively young star (age approximately 1 Gyr) TOI-201, revealing an exceptional multi-planet system composed of a hot super-Earth (SE) size planet transiting every 5.8 days, a warm Jupiter (WJ) on a 53-day orbit and an eccentric (e = 0.62) low-mass brown dwarf (BD) on an approximately 8-year orbit, with an estimated mass MBD of about 16 Jupiter masses. The BD is the longest-period transiting substellar object ever characterized by means of RVs and the only one known to be coplanar with inner planets. The architecture of this system suggests that the SE was formed isolated and in the innermost region of the gaseous disk. On the other hand, the orbital configuration of the outer companions suggests a nearly in situ formation of both objects, with the WJ forming in a dense inner disk. Alternatively, the BD might have formed farther out and migrated inward, while increasing its eccentricity owing to interactions with the disk.

You are running an old browser version. We recommend updating your browser to its latest version.

More info