Planet-Planet Scattering Explains the Mass-Eccentricity Relation of Warm Jupiters

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Main Authors: Dong, Jiayin, Lee, Eve J., Kokubo, Eiichiro, Murray-Clay, Ruth, Gupta, Arvind
Format: Preprint
Published: 2026
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author Dong, Jiayin
Lee, Eve J.
Kokubo, Eiichiro
Murray-Clay, Ruth
Gupta, Arvind
author_facet Dong, Jiayin
Lee, Eve J.
Kokubo, Eiichiro
Murray-Clay, Ruth
Gupta, Arvind
contents Warm giant planets with orbital periods of tens of days exhibit a positive correlation between mass and eccentricity. We interpret this trend as the outcome of planet-planet scattering, representing a transition from collision-dominated interactions among low-mass planets to ejection-dominated interactions among high-mass planets. This framework has important implications for warm Jupiter origins. It suggests that warm Jupiters originate from compact, multi-planet configurations. The dynamical interactions that shape their present-day architectures likely occur near their current semimajor axes, regardless of whether warm Jupiters formed through convergent disk-driven migration or in-situ formation. We argue that several observed properties of warm Jupiter systems, including the eccentricity bimodality, the mass-eccentricity relation, and generally low stellar obliquities, can be explained by this picture. We further predict that not only circular warm Jupiters, but also eccentric warm Jupiters, should frequently have additional planetary companions that are detectable through radial velocity observations. Finally, scattering can produce eccentricities high enough to trigger high-eccentricity tidal migration, potentially explaining the emerging population of proto-hot Jupiters on tidal migration tracks.
format Preprint
id arxiv_https___arxiv_org_abs_2603_22426
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Planet-Planet Scattering Explains the Mass-Eccentricity Relation of Warm Jupiters
Dong, Jiayin
Lee, Eve J.
Kokubo, Eiichiro
Murray-Clay, Ruth
Gupta, Arvind
Earth and Planetary Astrophysics
Warm giant planets with orbital periods of tens of days exhibit a positive correlation between mass and eccentricity. We interpret this trend as the outcome of planet-planet scattering, representing a transition from collision-dominated interactions among low-mass planets to ejection-dominated interactions among high-mass planets. This framework has important implications for warm Jupiter origins. It suggests that warm Jupiters originate from compact, multi-planet configurations. The dynamical interactions that shape their present-day architectures likely occur near their current semimajor axes, regardless of whether warm Jupiters formed through convergent disk-driven migration or in-situ formation. We argue that several observed properties of warm Jupiter systems, including the eccentricity bimodality, the mass-eccentricity relation, and generally low stellar obliquities, can be explained by this picture. We further predict that not only circular warm Jupiters, but also eccentric warm Jupiters, should frequently have additional planetary companions that are detectable through radial velocity observations. Finally, scattering can produce eccentricities high enough to trigger high-eccentricity tidal migration, potentially explaining the emerging population of proto-hot Jupiters on tidal migration tracks.
title Planet-Planet Scattering Explains the Mass-Eccentricity Relation of Warm Jupiters
topic Earth and Planetary Astrophysics
url https://arxiv.org/abs/2603.22426