A Revised Mass and Period for the Habitable Zone super-Earth GJ 3378b: A Planet Straddling the Cosmic Shoreline
Paul Robertson, Michael Endl, William D. Cochran, Gudmundur Stefánsson, Suvrath Mahadevan, Caleb I. Cañas, Gogod James, Roan Arendtsz, Ryan C. Terrien, Chad F. Bender, Scott A. Diddams, Mark R. Giovinazzi, Arvind F. Gupta, Samuel Halverson, Shubham Kanodia, Daniel M. Krolikowski, Sarah E. Logsdon, Joe P. Ninan, Claire J. Rogers, Arpita Roy, Christian Schwab
astro-ph.EP
Submitted: 2026-05-15
Comments: Accepted for publication in AJ
License: http://creativecommons.org/licenses/by/4.0/
The gist: The nearby (d = 7.7 pc) M4V star GJ 3378 is a target of our radial velocity (RV) exoplanet survey of fully convective stars in the Solar neighborhood with the near-infrared spectrograph HPF on the
Terminology
Abstract
The nearby (d = 7.7 pc) M4V star GJ 3378 is a target of our radial velocity (RV) exoplanet survey of fully convective stars in the Solar neighborhood with the near-infrared spectrograph HPF on the Hobby-Eberly Telescope (HET) at McDonald Observatory. Recently, Moutou et al. (2024) announced the discovery of an m i = 5.26+0.94-0.97 M planet, GJ 3378b, with an orbital period of 24.73 plus or minus 0.06 days, based on SPIRou RV data. Here, we present our HPF RVs for GJ 3378, as well as additional Doppler spectroscopy from the extreme precision NEID Spectrometer on the WIYN telescope at Kitt Peak National Observatory. We have analyzed the HPF+NEID RVs jointly with the published RVs from the CARMENES and SPIRou spectrometers. We present an orbital model for GJ 3378b that differs significantly from the Moutou et al. solution. The joint RV model reduces the orbital period to P = 21.45 plus or minus 0.01 d and the minimum mass to m i = 2.3 plus or minus 0.4 M. The shortened orbital distance remains within the conservative circumstellar liquid-water habitable zone (HZ), while the reduced mass increases the likelihood that the planet has a terrestrial composition. The revised planet properties place it near the ``cosmic shoreline," where planets in the HZs of M dwarfs may lose their atmospheres due to radiative stripping.
Sources
- EXOFASTv2: A public, generalized, publication-quality exoplanet modeling code
- Bayesian Model Selection and Extrasolar Planet Detection
- The Habitable Exoplanet Observatory (HabEx) Mission Concept Study Final Report
- The NEID Earth Twin Survey. III. Survey Performance After Three Years on Sky
- The LUVOIR Mission Concept Study Final Report
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