The Prevalence of Resonance Among Young, Close-in Planets
Abstract
Multiple planets undergoing disk migration may be captured into a chain of mean-motion resonances with the innermost planet parked near the disk's inner edge. Subsequent dynamical evolution may disrupt these resonances, leading to the non-resonant configurations typically observed among {\it Kepler} planets that are Gyrs old. In this scenario, resonant configurations are expected to be more common in younger systems. This prediction can now be tested, thanks to recent discoveries of young planets, particularly those in stellar clusters, by NASA's {\it TESS} mission. We divided the known planetary systems into three age groups: young (100-Myr-old), adolescent (0.1-1-Gyr-old), and mature (-Gyr-old). The fraction of neighboring planet pairs having period ratios within a few percent of a first-order commensurability (e.g.~4:3, 3:2, or 2:1) is 7015\% for young pairs, 248\% for adolescent pairs, and 152\% for mature pairs. The fraction of systems with at least one nearly commensurable pair (either first or second-order) is 86\% among young systems, 38\% for adolescent systems, and 23\% for mature systems. First-order commensurabilities prevail across all age groups, with an admixture of second-order commensurabilities. Commensurabilities are more common in systems with high planet multiplicity and low mutual inclinations. Observed period ratios often deviate from perfect commensurability by 1\% even among young planets, too large to be explained by resonant repulsion with equilibrium eccentricity tides. We also find that super-Earths in the radius gap () are less likely to be near-resonant (11.9) compared to Earth-sized planets (; 25.3) or mini-Neptunes (; 14.4).
Cite
@article{arxiv.2406.06885,
title = {The Prevalence of Resonance Among Young, Close-in Planets},
author = {Fei Dai and Max Goldberg and Konstantin Batygin and Jennifer van Saders and Eugene Chiang and Nick Choksi and Rixin Li and Erik A. Petigura and Gregory J. Gilbert and Sarah C. Millholland and Yuan-Zhe Dai and Luke Bouma and Lauren M. Weiss and Joshua N. Winn},
journal= {arXiv preprint arXiv:2406.06885},
year = {2024}
}
Comments
17 pages, 9 figures, accepted to AAS