TY - JOUR
T1 - The Presolar Heritage of 50Ti and 26Al Heterogeneity in the Protoplanetary Disk
AU - Larsen, Kirsten K.
AU - Haugbolle, Troels
AU - Connelly, James N.
AU - van Kooten, Elishevah
AU - Bizzarro, Martin
AU - Schiller, Martin
PY - 2025/9/8
Y1 - 2025/9/8
N2 - Nucleosynthetic isotope anomalies have been documented within the solar protoplanetary disk for several isotopes, including 48Ca, 50Ti, 54Cr, 94Mo, and 96Zr. However, the existence of isotopic heterogeneities for short-lived radionuclides such as 26Al remains debated. Here, we investigate potential heterogeneity in the 26Al distribution by examining nucleosynthetic 50Ti and 26Al-26Mg isotope systematics in high-temperature early solar system solids-Ca-Al-rich inclusions (CAIs) and hibonites from CM chondrites-and comparing these with presolar grain data. We present high-precision titanium isotope measurements for 13 CAIs, comprising 11 26Al-rich "normal"-type and two 26Al-poor fractionation and unidentified nuclear effect (FUN)-type CAIs. Our data, combined with previously published results, reveal a fundamental decoupling between significant nucleosynthetic 50Ti anomalies and high abundances of 26Al, a pattern also present in presolar grains. We propose that this mutual exclusivity of 50Ti and 26Al observed in CAIs and CM hibonites is inherited directly from protosolar molecular cloud material. Specifically, this isotopic signature reflects the mixing of newly formed, 26Al-rich molecular cloud material with older, Galactically inherited 26Al-poor dust characterized by large nucleosynthetic 50Ti variability. Consequently, solids exhibiting substantial 50Ti anomalies (26Al-poor FUN-type CAIs and CM hibonites) predominantly inherited older, 26Al-poor presolar dust, whereas those with minimal 50Ti anomalies and abundant 26Al (26Al-rich normal CAIs and CM hibonites) incorporated more of the younger, 26Al-rich component. This inherited isotopic signature provides a consistent explanation for disk-scale nucleosynthetic heterogeneity in bulk meteorites, challenging the widely accepted notion that the canonical 26Al/27Al ratio of 5.25 x 10-5 in 26Al-rich CAIs represents the solar system average.
AB - Nucleosynthetic isotope anomalies have been documented within the solar protoplanetary disk for several isotopes, including 48Ca, 50Ti, 54Cr, 94Mo, and 96Zr. However, the existence of isotopic heterogeneities for short-lived radionuclides such as 26Al remains debated. Here, we investigate potential heterogeneity in the 26Al distribution by examining nucleosynthetic 50Ti and 26Al-26Mg isotope systematics in high-temperature early solar system solids-Ca-Al-rich inclusions (CAIs) and hibonites from CM chondrites-and comparing these with presolar grain data. We present high-precision titanium isotope measurements for 13 CAIs, comprising 11 26Al-rich "normal"-type and two 26Al-poor fractionation and unidentified nuclear effect (FUN)-type CAIs. Our data, combined with previously published results, reveal a fundamental decoupling between significant nucleosynthetic 50Ti anomalies and high abundances of 26Al, a pattern also present in presolar grains. We propose that this mutual exclusivity of 50Ti and 26Al observed in CAIs and CM hibonites is inherited directly from protosolar molecular cloud material. Specifically, this isotopic signature reflects the mixing of newly formed, 26Al-rich molecular cloud material with older, Galactically inherited 26Al-poor dust characterized by large nucleosynthetic 50Ti variability. Consequently, solids exhibiting substantial 50Ti anomalies (26Al-poor FUN-type CAIs and CM hibonites) predominantly inherited older, 26Al-poor presolar dust, whereas those with minimal 50Ti anomalies and abundant 26Al (26Al-rich normal CAIs and CM hibonites) incorporated more of the younger, 26Al-rich component. This inherited isotopic signature provides a consistent explanation for disk-scale nucleosynthetic heterogeneity in bulk meteorites, challenging the widely accepted notion that the canonical 26Al/27Al ratio of 5.25 x 10-5 in 26Al-rich CAIs represents the solar system average.
KW - Early solar-system
KW - Aluminum-rich inclusions
KW - Refractory inclusions
KW - Isotope heterogeneity
KW - Titanium isotopes
KW - Calcium
KW - Murchison
KW - Cais
KW - Origin
KW - Oxygen
U2 - 10.3847/1538-4357/adf4bf
DO - 10.3847/1538-4357/adf4bf
M3 - Journal article
SN - 0004-637X
VL - 990
JO - Astrophysical Journal
JF - Astrophysical Journal
IS - 2
M1 - 177
ER -