Gas giant planets as dynamical barriers to inward-migrating super-Earths
Abstract
Planets of 1-4 times Earth's size on orbits shorter than 100 days exist around 30-50% of all Sun-like stars. In fact, the Solar System is particularly outstanding in its lack of "hot super-Earths" (or "mini-Neptunes"). These planets -- or their building blocks -- may have formed on wider orbits and migrated inward due to interactions with the gaseous protoplanetary disk. Here, we use a suite of dynamical simulations to show that gas giant planets act as barriers to the inward migration of super-Earths initially placed on more distant orbits. Jupiter's early formation may have prevented Uranus and Neptune (and perhaps Saturn's core) from becoming hot super-Earths. Our model predicts that the populations of hot super-Earth systems and Jupiter-like planets should be anti-correlated: gas giants (especially if they form early) should be rare in systems with many hot super-Earths. Testing this prediction will constitute a crucial assessment of the validity of the migration hypothesis for the origin of close-in super-Earths.
Keywords
Cite
@article{arxiv.1501.06308,
title = {Gas giant planets as dynamical barriers to inward-migrating super-Earths},
author = {Andre Izidoro and Sean N. Raymond and Alessandro Morbidelli and Franck Hersant and Arnaud Pierens},
journal= {arXiv preprint arXiv:1501.06308},
year = {2015}
}
Comments
Accepted for publication in ApJL