Planetary system LHS 1140 revisited with ESPRESSO and TESS
J. Lillo-Box, P. Figueira, A. Leleu, L. Acu\~na, J.P. Faria, N. Hara,, N.C. Santos, A. C. M. Correia, P. Robutel, M. Deleuil, D. Barrado, S. Sousa,, X. Bonfils, O. Mousis, J.M. Almenara, N. Astudillo-Defru, E. Marcq, S. Udry,, C. Lovis, F. Pepe

TL;DR
This study refines the physical and orbital parameters of the LHS 1140 planetary system using ESPRESSO and TESS data, discovering a new candidate planet and constraining the presence of co-orbitals, advancing habitable exoplanet research.
Contribution
The paper provides improved mass measurements, internal structure insights, and searches for additional planets and co-orbitals in the LHS 1140 system, including the discovery of a new candidate.
Findings
Refined masses of LHS 1140 b and c with 6% and 9% precision.
Detected a new planet candidate with ~78.9-day orbit.
Disproved existence of co-orbitals down to 1 M⊕ for LHS 1140 b.
Abstract
LHS 1140 is an M dwarf known to host two known transiting planets at orbital periods of 3.77 and 24.7 days. The external planet (LHS 1140 b) is a rocky super-Earth that is located in the middle of the habitable zone of this low-mass star, placing this system at the forefront of the habitable exoplanet exploration. We further characterize this system by improving the physical and orbital properties and search for additional planetary-mass components in the system, also exploring the possibility of co-orbitals. We collected 113 new radial velocity observations with ESPRESSO over a 1.5-year time span with an average photon-noise precision of 1.07 m/s. We determine new masses with a precision of 6% for LHS 1140 b () and 9% for LHS 1140 c (), reducing by half the previously published uncertainties. Although both planets have Earth-like…
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