Early Solar System instability triggered by dispersal of the gaseous disk
arXiv:2205.02026 · doi:10.1038/s41586-022-04535-1
Abstract
The Solar System's orbital structure is thought to have been sculpted by an episode of dynamical instability among the giant planets. However, the instability trigger and timing have not been clearly established. Hydrodynamical modeling has shown that while the Sun's gaseous protoplanetary disk was present the giant planets migrated into a compact orbital configuration in a chain of resonances. Here we use dynamical simulations to show that the giant planets' instability was likely triggered by the dispersal of the gaseous disk. As the disk evaporated from the inside-out, its inner edge swept successively across and dynamically perturbed each planet's orbit in turn. The associated orbital shift caused a dynamical compression of the exterior part of the system, ultimately triggering instability. The final orbits of our simulated systems match those of the Solar System for a viable range of astrophysical parameters. The giant planet instability therefore took place as the gaseous disk dissipated, constrained by astronomical observations to be a few to ten million years after the birth of the Solar System. Terrestrial planet formation would not complete until after such an early giant planet instability; the growing terrestrial planets may even have been sculpted by its perturbations, explaining the small mass of Mars relative to Earth.
Authors' version, 12 pages, 4 figures
References in corpus (10)
- Dynamics of the giant planets of the solar system in the gaseous proto-planetary disk and relationship to the current orbital architecture
- Photoevaporation of protoplanetary discs I: hydrodynamic models
- The Exoplanet Mass-Ratio Function from the MOA-II Survey: Discovery of a Break and Likely Peak at a Neptune Mass
- Highly Siderophile Elements in the Earth's Mantle as a Clock for the Moon-forming Impact
- Dynamical evidence for an early giant planet instability
- Outward migration of Jupiter and Saturn in 3:2 or 2:1 resonance in radiative disks: implications for the Grand Tack and Nice models
- Instabilities in the Early Solar System due to a Self-gravitating Disk
- Migration and Growth of Protoplanetary Embryos II: Emergence of Proto-Gas-Giants Cores versus Super Earths' Progenitor
- Spacing of Kepler Planets: Sculpting by Dynamical Instability
- Dynamical rearrangement of super-Earths during disk dispersal II. Assessment of the magnetospheric rebound model for planet formation scenarios
Cited by in corpus (29)
- Early Bombardment of the Moon: Connecting the Lunar Crater Record to the Terrestrial Planet Formation
- Bioverse: The Habitable Zone Inner Edge Discontinuity as an Imprint of Runaway Greenhouse Climates on Exoplanet Demographics
- Hint of an exocomet transit in the CHEOPS lightcurve of HD 172555
- Resonant and Ultra-short-period Planet Systems are at Opposite Ends of the Exoplanet Age Distribution
- The Dissipation of the Solar Nebula Constrained by Impacts and Core Cooling in Planetesimals
- A race against the clock: Constraining the timing of cometary bombardment relative to Earth's growth
- Formation of Lunar Basins from Impacts of Leftover Planetesimals
- Explaining Mercury via a single giant impact is highly unlikely
- Comparisons of the core and mantle compositions of earth analogs from different terrestrial planet formation scenarios
- Rethinking the role of the giant planet instability in terrestrial planet formation models
- Terrestrial planet and asteroid belt formation by Jupiter-Saturn chaotic excitation
- Late Accretion of Ceres-like Asteroids and Their Implantation into the Outer Main Belt
- Mercury's formation within the Early Instability Scenario
- An early giant planet instability recorded in asteroidal meteorites
- Formation of Multiple Dynamical Classes in the Kuiper Belt via Disk Dissipation
- Crash Chronicles: relative contribution from comets and carbonaceous asteroids to Earth's volatile budget in the context of an Early Instability
- Very-wide-orbit planets from dynamical instabilities during the stellar birth cluster phase
- Forming rocky exoplanets around K-dwarf stars
- Planetesimal Dynamics in the Presence of a Giant Planet II: Dependence on Planet Mass and Eccentricity
- Oort Cloud Ecology. III. The Sun left the parent star cluster shortly after the giant planets formed
- The Dynamical History of the Kepler-221 Planet System
- Formation of the four terrestrial planets in the Jupiter-Saturn chaotic excitation scenario: fundamental properties and water delivery
- A Bayesian Monte Carlo assessment of orbital stability in the late stages of planetary system formation
- Spectroscopic Mapping of Callisto with HST/STIS and Implications for its Surface Composition
- Late gas released in the young Kuiper belt could have significantly contributed to the carbon enrichment of the atmospheres of Neptune and Uranus
- Coupling dynamical accretion and chemical differentiation: A unified framework for the diversity of Earth and Mars
- Asteroids fail to retain cometary impact signatures
- The role of inner disk edges in shaping ultra-short-period planet systems around late M dwarfs
- Episodic planetesimal disruptions triggered by dissipation of gas disk