Shaving the Outskirts of Planetary Systems Probed by Roman via Stellar Flybys

arXiv:2609.06112 · astro-ph.EP, astro-ph.GA · Submitted 2026-09-05 · Read on arXiv

astro-ph.EP, astro-ph.GA

Submitted: 2026-09-05

Updated: 2026-09-05

Comments: 17 pages, 10 figures. submitted to ApJL

License: http://creativecommons.org/licenses/by/4.0/

The gist: The recently launched Nancy Grace Roman Space Telescope (Roman) will soon begin observations that promise to revolutionize our understanding of exoplanet demographics.

Terminology

Abstract

The recently launched Nancy Grace Roman Space Telescope (Roman) will soon begin observations that promise to revolutionize our understanding of exoplanet demographics. Roman's Galactic Bulge Time-Domain Survey (GBTDS) will observe the Galactic Bulge via transit and microlensing techniques, providing a unique opportunity to study hot Jupiters as well as long-period/free-floating exoplanets in a dense and kinematically hot stellar environment. In this Letter, we quantify how repeated, impulsive stellar flybys truncate the outskirts of planetary systems in the Bulge. We find that flybys result in ejections on about Gyr timescales for wide orbits (250 au) around low-mass hosts. Provided these wide orbits are populated, these ejections likely contribute to the population of free-floating planets probed by Roman. Surviving planets outside of about 10 au are placed on eccentric and misaligned orbits. We show that, though systems suffer many close encounters, the evolution is dominated by the single strongest perturbation; planetary orbits (even those that evade ejection) undergo superdiffusion (i.e. a Lévy flight). We comment on the implications of our results for the origin of hot Jupiters amenable to Roman 's transit search. Our work serves as a quantitative baseline from which future dynamical studies can build to better understand the evolution of planetary systems in the Galactic Bulge.

Related papers