Planet-moon ejections in close stellar encounters
Abstract
Free-floating planet-moon pairs (FFPMs) may form when planetary systems experience close stellar encounters. We quantify moon-retention probabilities and ejection cross sections for planets and planet-moon systems subject to close stellar encounters, and to dentify the orbital conditions most favorable for forming FFPMs. We conducted extensive numerical scattering experiments to compute ejection cross-sections on a grid in the orbital separation of the planet () and the moon (), marginalizing over all other initial parameters. The simulations tracked both planetary and lunar fates across a wide range of encounter geometries. FFPM cross-sections depend on the moon semi-major axis , decreasing gradually until a drop near . Planet-only ejection cross-sections instead decline steadily with . Io-like moons () survive, but survival falls beyond . Compared with planet-planet scattering, stellar encounters preserve moons more effectively across all separations. Surviving moons at retain near-circular, low-inclination orbits, while wide-orbit moons show stronger dynamical excitation. Applying our cross-sections to the microlensing system MOA-2011-BLG-262Lb suggests possible progenitor semi-major axes between \,au and au for a solar-mass host. Uncertainties remain large and the probability distribution is flat but we prefer \,au. Stellar-encounter ejections constitute a viable channel for producing FFPMs whose orbital properties differ from those formed by planet-planet scattering. Moon retention and orbital excitation provide promising diagnostics of ejection history. Current and upcoming microlensing and direct-imaging surveys may be capable of detecting Galilean-mass moons around rogue planets, offering new tests of dynamical formation pathways.
Cite
@article{arxiv.2607.16402,
title = {Planet-moon ejections in close stellar encounters},
author = {Yannick Badoux and Simon Portegies Zwart},
journal= {arXiv preprint arXiv:2607.16402},
year = {2026}
}
Comments
Submitted to A&A