astronomy

MOA-2020-BLG-108Lb: A Giant Planet Beyond the Snow Line of a Low-Mass Lens Near the Lower Boundary of the Mass-Ratio Desert

arXiv:2607.12081 · doi:10.1093/pasj/psag091

summary

The paper reports the discovery of a giant planet (~10 Jupiter masses) orbiting a low‑mass (~0.6 M☉) star beyond the snow line, identified via microlensing analysis of event MOA‑2020‑BLG‑108, and discusses its location near the lower edge of the planet–brown dwarf mass‑ratio desert.

Abstract

We present an analysis of the microlensing event MOA-2020-BLG-108, which was discovered in June 2020 by the MOA collaboration toward the Galactic bulge. The observed light curve shows significant deviations from the standard single-lens single-source model. We find two degenerate binary-lens single-source solutions, corresponding to the wide and close configurations, with a companion-to-host mass ratio of and projected host--companion separations of and , respectively. These solutions improve the fit by compared to the single-lens model. We detected the finite-source effect in the light curve and obtained the angular Einstein radius of , which provides a mass--distance relation for the lens. We conducted a Bayesian analysis to estimate the physical parameters of the lens system. The results indicate that the lens system consists of a host star with a mass of at a distance of kpc and a giant planet with a mass of orbiting beyond the snow line. Conventional planet formation theories suggest that giant planets are unlikely to form around low-mass stars. Furthermore, several statistical studies have suggested the existence of a companion-to-host mass-ratio desert in the range , and the companion in the lens system discovered in this work lies near the lower boundary of this desert. Objects near the planet-brown dwarf boundary may form through multiple pathways, and this discovery provides an additional data point for understanding their formation mechanisms.

Accepted for publication in PASJ. 10 pages, 5 figures. DOI: 10.1093/pasj/psag091

Topics & keywords

#microlensing#exoplanets#planet formation#mass-ratio desert#brown dwarfsbinary lens modelmass ratio q≈0.02angular Einstein radiusfinite-source effectBayesian analysissnow line