A Formation-Stage Bottleneck for Exomoons around Close-in Rocky Planets
Abstract
Massive moons around rocky exoplanets are expected outcomes of giant impacts, yet no exomoon has been securely confirmed. We address this problem using meshless finite-mass simulations of giant impacts between differentiated rocky planets that include stellar tidal and Coriolis forces in a local co-rotating frame for orbital periods of 1--300 days, and compare these simulations with otherwise identical collisions in isolation. We find that stellar perturbations impose a severe formation-stage bottleneck on moon-forming disks. Ultra-short-period impacts leave essentially no surviving circumplanetary disk, whereas 10-day systems retain only strongly depleted, radially truncated, and dynamically compact disks. High impact velocities, expected for close-in planets, are devastating for disk generation, while retrograde impacts can slightly compensate for disk mass depletion. These results show that stellar perturbations can suppress exomoon formation around close-in rocky planets, reshaping expectations for the demographics of exomoons.
Keywords
Cite
@article{arxiv.2608.04512,
title = {A Formation-Stage Bottleneck for Exomoons around Close-in Rocky Planets},
author = {Rongxi Bi and Hongping Deng and Christian Reinhardt and Shangfei Liu and Yun Liu},
journal= {arXiv preprint arXiv:2608.04512},
year = {2026}
}
Comments
18 pages, 7 figures, 4 tables; submitted to The Astrophysical Journal Letters