Origin of nucleosynthetic isotope variability in the NC reservoir: Evidence from Ti, Cr, and Mo isotopes
arXiv:2608.19786 · doi:10.1016/j.gca.2026.08.021
Abstract
Nucleosynthetic isotope anomalies allow distinguishing between non-carbonaceous (NC) and carbonaceous (CC) type meteorites, and have revealed correlated isotope variations especially among NC bodies. Understanding the origin of this NC trend is important for identifying the processes that produced the NC isotope heterogeneity, and for using these isotope anomalies to reconstruct the early evolution of the solar protoplanetary disk. We report mass-independent Ti, Cr, and Mo isotope compositions for a comprehensive set of previously not or only poorly investigated meteorites, as well as acid leachates obtained from the sequential digestion of primitive ordinary chondrites. Some of the samples investigated in this study fill previously identified apparent gaps in the NC trend, suggesting these gaps reflect unrepresentative sampling of a more continuous isotopic trend. Bulk meteorites and leachates exhibit distinct isotope systematics, indicating that the NC isotope variability does not reflect selective thermal processing of presolar carriers in the disk. The NC trend also cannot reflect the continuous addition of CC dust from the outer to the inner disk, because early- and late-formed NC meteorites display largely overlapping isotopic compositions. Instead, we find that the NC isotope heterogeneity is best accounted for by fractionation and mixing among chemically and isotopically distinct dust components, similar to the processes that produced the isotopic variability among carbonaceous chondrites. On this basis we argue for the presence of substructures in the inner disk, which facilitated fractionation and mixing among distinct dust components, and helped preserve a long-lived dust reservoir from which NC planetesimals accreted over an extended period of time.
Accepted for publication in Geochimica et Cosmochimica Acta (https://doi.org/10.1016/j.gca.2026.08.021)
References in corpus (17)
- Bifurcation of planetary building blocks during Solar System formation
- Terrestrial planet formation from lost inner solar system material
- Chromium isotopic homogeneity between the Moon, the Earth, and enstatite chondrites
- 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
- Modeling dust growth in protoplanetary disks: The breakthrough case
- Heterogeneous accretion of Earth inferred from Mo-Ru isotope systematics
- Formation and evolution of a protoplanetary disk: combining observations, simulations and cosmochemical constraints
- 53Mn-53Cr chronology and ε54Cr-Δ17O genealogy of Erg Chech 002: the oldest andesite in the Solar System
- 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
- Presolar O- and C-anomalous grains in unequilibrated ordinary chondrite matrices
- Distribution of s-, r-, and p-process nuclides in the early Solar System inferred from Sr isotope anomalies in meteorites
- Infall and Disk Processes - the Message from Meteorites