Oort Cloud Ecology. III. The Sun left the parent star cluster shortly after the giant planets formed
arXiv:2505.13666 · doi:10.1051/0004-6361/202554855
Abstract
The Sun was born in a clustered environment with 10,000 other stars. Being an isolated star today, the Sun must have left the nest. We do not directly know when that happened, how violent the ejection was, or how far the Solar siblings have drifted apart. The mass of the fragile outer Opic-Oort cloud, (between \,au and au from the Sun) and the orbital distribution of planetesimals in the inner Hills-Oort cloud (between \,au and au) are sensitive to the dynamical processes involving the Sun in the parent cluster. We aim at understanding the extend to which observing the Oort cloud constrains the Sun's birth environment. This is achieved by a combination of theoretical arguments and N-body simulations. We show that the current mass of the Opic-Oort cloud (between 0.2 and Earth masses) is best explained if the Sun left the nest within \,Myr after the giant planets formed and migrated. As a consequence, the possible dynamical encounter with another star carving the Kuiper belt, the Sun's abduction of Sedna, and other perturbations induced by nearby stars then must have happened shortly after the giant planets in the Solar system formed, but before the Sun left the parent cluster. Signatures of the time spend in the parent cluster must still be visible in the outer parts of the Solar system today. The strongest constraints will be the discovery of a population of relatively low-eccentricity () inner Oort-cloud (but \,au) objects.
Accepted for publication in A&A
References in corpus (23)
- Comparing Jupiter interior structure models to Juno gravity measurements and the role of a dilute core
- Gas expulsion and the destruction of massive young clusters
- The Formation of the Oort Cloud in Open Cluster Environments
- Dynamical evidence for an early giant planet instability
- STARFORGE: The effects of protostellar outflows on the IMF
- Early Solar System instability triggered by dispersal of the gaseous disk
- The fate of planetesimal discs in young open clusters: implications for 1I/'Oumuamua, the Kuiper belt, the Oort cloud and more
- On the survival of resonant and non-resonant planetary systems in star clusters
- Capture of exocomets and the erosion of the Oort cloud due to stellar encounters in the Galaxy
- Massive star cluster formation I. High star formation efficiency while resolving feedback of individual stars
- Radiation shielding of protoplanetary discs in young star-forming regions
- The secular evolution of the Kuiper belt after a close stellar encounter
- The Stability Boundary of the Distant Scattered Disk
- Trajectory of the stellar flyby that shaped the outer solar system
- On the Number of Stars in the Sun's Birth Cluster
- Massive star cluster formation II. Runaway stars as fossils of sub-cluster mergers
- Non-intrusive hierarchical coupling strategies for multi-scale simulations in gravitational dynamics
- A connected component-based method for efficiently integrating multiscale -body systems
- Formation of wide-orbit giant planets in protoplanetary disks with a decreasing pebble flux
- Quantifying kinematic substructure in star-forming regions with statistical tests of spatial autocorrelation
- Terrestrial planet formation during giant planet formation and giant planet migration I: The first 5 million years
- Irregular moons possibly injected from the outer solar system by a stellar flyby
- Past the outer rim, into the unknown: structures beyond the Kuiper Cliff