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Formation of planetary systems by pebble accretion and migration: Hot super-Earth systems from breaking compact resonant chains

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arxiv 1902.08772 v2 pith:RL3YDJU4 submitted 2019-02-23 astro-ph.EP

classification astro-ph.EP
keywords systemsresonantchainspebblesimulationsdiskplanetaryplanets
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abstract

At least 30\% of main sequence stars host planets with sizes of between 1 and 4 Earth radii and orbital periods of less than 100 days. We use N-body simulations including a model for gas-assisted pebble accretion and disk--planet tidal interaction to study the formation of super-Earth systems. We show that the integrated pebble mass reservoir creates a bifurcation between hot super-Earths or hot-Neptunes ($\lesssim15M_{\oplus}$) and super-massive planetary cores potentially able to become gas giant planets ($\gtrsim15M_{\oplus}$). Simulations with moderate pebble fluxes grow multiple super-Earth-mass planets that migrate inwards and pile up at the inner edge of the disk forming long resonant chains. We follow the long-term dynamical evolution of these systems and use the period ratio distribution of observed planet-pairs to constrain our model. Up to $\sim$95\% of resonant chains become dynamically unstable after the gas disk dispersal, leading to a phase of late collisions that breaks the original resonant configurations. Our simulations naturally match observations when they produce a dominant fraction ($\gtrsim95\%$) of unstable systems with a sprinkling ($\lesssim5\%$) of stable resonant chains (the Trappist-1 system represents one such example). Our results demonstrate that super-Earth systems are inherently multiple (${\rm N\geq2}$) and that the observed excess of single-planet transits is a consequence of the mutual inclinations excited by the planet--planet instability. In simulations in which planetary seeds are initially distributed in the inner and outer disk, close-in super-Earths (abridged).

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Dynamically Selected Mass-Radius Relationship for Low Mass Exoplanets

    astro-ph.EP 2026-07 conditional novelty 6.0 of 10

    Planets inferred to have suffered giant collisions are more massive than pristine ones but retain comparable hydrogen envelope fractions, implying collisions occurred before disk gas dispersal.

  2. Accretion of Uranus and Neptune: confronting different giant impact scenarios

    astro-ph.EP 2024-12 conditional novelty 6.0 of 10

    Both the equal-mass-embryo scenario and the high-mass-ratio impact scenario form Uranus and Neptune analogues with comparable low probability (~0.1-1%), so neither is dynamically preferred.

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