The Ni isotopic composition of Ryugu reveals a common accretion region for carbonaceous chondrites
arXiv:2410.04192 · doi:10.1126/sciadv.adp2426
Abstract
The isotopic compositions of samples returned from Cb-type asteroid Ryugu and Ivuna-type (CI) chondrites are distinct from other carbonaceous chondrites, which has led to the suggestion that Ryugu and CI chondrites formed in a different region of the accretion disk, possibly around the orbits of Uranus and Neptune. We show that, like for Fe, Ryugu and CI chondrites also have indistinguishable Ni isotope anomalies, which differ from those of other carbonaceous chondrites. We propose that this unique Fe and Ni isotopic composition reflects different accretion efficiencies of small FeNi metal grains among the carbonaceous chondrite parent bodies. The CI chondrites incorporated these grains more efficiently, possibly because they formed at the end of the disk's lifetime, when planetesimal formation was also triggered by photoevaporation of the disk. Isotopic variations among carbonaceous chondrites may thus reflect fractionation of distinct dust components from a common reservoir, implying CI chondrites and Ryugu may have formed in the same region of the accretion disk as other carbonaceous chondrites.
Published open access in Science Advances
References in corpus (10)
- Abundance, distribution, and origin of 60Fe in the solar protoplanetary disk
- Terrestrial planet formation from lost inner solar system material
- Extreme 54Cr-rich nano-oxides in the CI chondrite Orgueil -Implication for a late supernova injection into the Solar System
- Early evolution of the solar accretion disk inferred from Cr-Ti-O isotopes in individual chondrules
- Mixing and transport of dust in the early solar nebula as inferred from titanium isotope variations among chondrules
- The origin of s-process isotope heterogeneity in the solar protoplanetary disk
- Isotopic evolution of the inner Solar System inferred from molybdenum isotopes in meteorites
- Origin of isotopic diversity among carbonaceous chondrites
- Condensate evolution in the solar nebula inferred from combined Cr, Ti, and O isotope analyses of amoeboid olivine aggregates
- Age and genetic relationships among CB, CH and CR chondrites