Evidence that Planets in the Radius Gap Do Not Resemble Their Neighbors
arXiv:2410.02150 · doi:10.3847/1538-3881/ae77ec
Abstract
Planets in compact multi-transiting systems tend to exhibit self-similarity with their neighbors, a phenomenon commonly called ``peas-in-a-pod.'' Previous studies have identified that this self-similarity appears independently among super-Earths and sub-Neptunes orbiting the same star. Here we investigate whether this phenomenon holds for planets in the radius valley (). Employing the \textit{Kepler} sample of planets in multi-transiting systems, we construct a difference-in-differences test comparing the observed fraction of size-similar adjacent pairs to the fraction expected from the underlying radius distribution alone, computed independently for valley-inclusive and valley-exclusive pairs. Non-valley pairs exhibit a enhancement of size-similar pairs above the baseline, consistent with the well-established peas-in-a-pod phenomenon. Pairs involving a radius valley planet show no such enhancement, and we exclude at the hypothesis that the same size-similarity mechanism operates at the same strength for valley-inclusive pairs. The observed fraction of size-similar valley-inclusive pairs is consistent with independent draws from the radius distribution, with no additional intra-system correlation. We further compare the period ratio distributions for the two pair classes. While globally indistinguishable (KS ), valley-inclusive pairs cluster near the 3:2 mean-motion resonance at more than twice the rate of the parent population, while avoiding the tightest orbital spacings entirely. The convergence of disrupted size-similarity and anomalous resonance architecture, together with independently measured elevated eccentricities among valley planets, is consistent with a stochastic process such as late-stage giant impacts contributing to the population of planets in the radius valley.
21 pages, 9 figures
References in corpus (30)
- Array Programming with NumPy
- Gaia Data Release 3: Summary of the content and survey properties
- Growth Model Interpretation of Planet Size Distribution
- Migration and the formation of systems of hot super-Earths and Neptunes
- Planetary population synthesis coupled with atmospheric escape: a statistical view of evaporation
- Suppression of extreme orbital evolution in triple systems with short range forces
- Atmospheric Mass Loss During Planet Formation: The Importance of Planetesimal Impacts
- Gaia Data Release 3: Analysis of the Gaia BP/RP spectra using the General Stellar Parameterizer from Photometry
- The Gaia-Kepler Stellar Properties Catalog. II. Planet Radius Demographics as a Function of Stellar Mass and Age
- Kepler Multi-Planet Systems Exhibit Unexpected Intra-system Uniformity in Mass and Radius
- Gaia Data Release 3: Apsis II -- Stellar Parameters
- The California-Kepler Survey. X. The Radius Gap as a Function of Stellar Mass, Metallicity, and Age
- Mass-radius relationships for irradiated ocean planets
- A giant impact as the likely origin of different twins in the Kepler-107 exoplanet system
- Obliquity-Driven Sculpting of Exoplanetary Systems
- Mean motion resonances from planet-planet scattering
- The Exoplanet Radius Valley from Gas-driven Planet Migration and Breaking of Resonant Chains
- A deep radius valley revealed by Kepler short cadence observations
- Creating the Radius Gap without Mass Loss
- Two Views of the Radius Gap and the Role of Light Curve Fitting
- Current Population Statistics Do Not Favor Photoevaporation over Core-Powered Mass Loss as the Dominant Cause of the Exoplanet Radius Gap
- Shallower radius valley around low-mass hosts: Evidence for icy planets, collisions or high-energy radiation scatter
- Bridging the Planet Radius Valley: Stellar Clustering as a Key Driver for Turning Sub-Neptunes into Super-Earths
- Planets larger than Neptune have elevated eccentricities
- Generalized Peas-in-a-Pod: Extending Intra-System Mass Uniformity to Non-TTV Systems via the Gini Index
- Resonant and Ultra-short-period Planet Systems are at Opposite Ends of the Exoplanet Age Distribution
- Signatures of impact-driven atmospheric loss in large ensembles of exoplanets
- Enhanced Size Uniformity for Near-resonant Planets
- Period Ratio Sculpting Near Second-Order Mean-Motion Resonances
- Can the orbital distribution of Neptune's 3:2 mean motion resonance result from stability sculpting?