Rattle-and-Break: the Impact of Planetesimal Scattering on Super-Earth Resonant Chains

Fuente: arXiv
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Autori principali: Hadden, Sam, Wu, Yanqin
Natura: Preprint
Pubblicazione: 2026
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author Hadden, Sam
Wu, Yanqin
author_facet Hadden, Sam
Wu, Yanqin
contents The spacings of super-Earths in multi-transiting systems exhibit a distribution that is broad and mostly featureless, with the exception of notable excesses of planet pairs situated a few percent wide of first-order mean motion resonances (MMRs). In this work, we extend the so-called "breaking-the-chains" model to account for both of these characteristics. Assuming that super-Earths are settled into stable chains of resonances after disk-driven migration, we show that scattering a planetesimal population that contains only a few percent of a system's mass can reorganize primordial chains in remarkable ways. The planetesimal scattering "rattles" the chains by repelling adjacent planet pairs wide of their initial MMRs. Some chains remain rattled but otherwise intact and make up the observed excesses wide of MMRs. In other systems, however, this initial rattling sows the seeds of later orbital instabilities that break the chains entirely. If individual planetesimals' masses are of order a Pluto mass or so, the onset of these instabilities can occur tens or hundreds of Myr after birth, naturally explaining the apparent disappearance of near-resonant pairs on this timescale. The origin of such Pluto-mass debris is currently unknown.
format Preprint
id arxiv_https___arxiv_org_abs_2602_21349
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Rattle-and-Break: the Impact of Planetesimal Scattering on Super-Earth Resonant Chains
Hadden, Sam
Wu, Yanqin
Earth and Planetary Astrophysics
The spacings of super-Earths in multi-transiting systems exhibit a distribution that is broad and mostly featureless, with the exception of notable excesses of planet pairs situated a few percent wide of first-order mean motion resonances (MMRs). In this work, we extend the so-called "breaking-the-chains" model to account for both of these characteristics. Assuming that super-Earths are settled into stable chains of resonances after disk-driven migration, we show that scattering a planetesimal population that contains only a few percent of a system's mass can reorganize primordial chains in remarkable ways. The planetesimal scattering "rattles" the chains by repelling adjacent planet pairs wide of their initial MMRs. Some chains remain rattled but otherwise intact and make up the observed excesses wide of MMRs. In other systems, however, this initial rattling sows the seeds of later orbital instabilities that break the chains entirely. If individual planetesimals' masses are of order a Pluto mass or so, the onset of these instabilities can occur tens or hundreds of Myr after birth, naturally explaining the apparent disappearance of near-resonant pairs on this timescale. The origin of such Pluto-mass debris is currently unknown.
title Rattle-and-Break: the Impact of Planetesimal Scattering on Super-Earth Resonant Chains
topic Earth and Planetary Astrophysics
url https://arxiv.org/abs/2602.21349