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Isaac Onyett

Publications and source records attributed to Isaac Onyett.

2 recordsLinked to original sources

Late infall of molecular cloud material reshaped the outer Solar System

Understanding the physicochemical evolution of the outer protoplanetary disk is critical because it governed the distribution and delivery of key volatiles such as water and organic compounds to the inner, initially hot and volatile-poor terrestrial planet-forming region. These materials are essential for establishing potentially habitable environments and directly influence the emergence of life on rocky planets. Here, we move beyond the traditional building blocks of the outer disk, the carbonaceous chondrite groups, and examine their ungrouped counterparts, the anomalous chondrites, to constrain a coherent model of disk evolution using Si, Mg, Fe, and Cr nucleosynthetic isotope systematics. Our results show that the outer disk was replenished through the addition of isotopically distinct molecular cloud material that contributed a significant fraction of mass (>30%) to the building blocks of the gas giant accretion region. This late infalling material did not contribute to the main accretion phase of the terrestrial planets, which instead derived their volatile inventory solely from Ivuna-type planetesimals such as Ryugu and Bennu. In our model, these bodies formed at the inward-migrating water ice line. The inferred accretion of these icy planetesimals in the inner disk represents a fundamental shift in our understanding of the evolution of the Solar System.

astro-ph.EP

The nucleosynthetic fingerprint of the outermost protoplanetary disk and early Solar System dynamics

Knowledge of the nucleosynthetic isotope composition of the outermost protoplanetary disk is critical to understand the formation and early dynamical evolution of the Solar System. We report the discovery of outer disk material preserved in a pristine meteorite based on its chemical composition, organic-rich petrology, and 15N-rich, deuterium-rich, and 16O-poor isotope signatures. We infer that this outer disk material originated in the comet-forming region. The nucleosynthetic Fe, Mg, Si and Cr compositions of this material reveal that, contrary to current belief, the isotope signature of the comet-forming region is ubiquitous amongst outer Solar System bodies, possibly reflecting an important planetary building block in the outer Solar System. This nucleosynthetic component represents fresh material added to the outer disk by late accretion streamers connected to the ambient molecular cloud. Our results show that most Solar System carbonaceous asteroids accreted material from the comet-forming region, a signature lacking in the terrestrial planet region.

astro-ph.EP