M. Jadhav1, M. Pignatari2,6, F. Herwig3,6,7, E. Zinner4, R. Gallino5 and G. R. Huss1
1Hawai’i Institute of Geophysics and Planetology, University of Hawai’i at Mānoa, Honolulu, HI 96822, USA
2Department of Physics, University of Basel, CH-4056 Basel, Switzerland
3Department of Physics & Astronomy, University of Victoria, Victoria, BC V8P5C2, Canada
4Laboratory for Space Sciences & the Physics Department, Washington University, St. Louis, MO 63130, USA
5Dipartimento di Fisica Generale, Università di Torino & INAF, Via Pietro Giuria 1, 10125 Torino, Italy
6NuGrid Collaboration: http://www.nugridstars.org.
7Also at The Joint Institute for Nuclear Astrophysics, Notre Dame, IN 46556, USA.
Graphite is one of the many presolar circumstellar condensate species found in primitive meteorites. While the isotopic compositions of low-density graphite grains indicate an origin in core-collapse supernovae, some high-density grains have extreme isotopic anomalies in C, Ca, and Ti, which cannot be explained by envelope predictions of asymptotic giant branch (AGB) stars or theoretical supernova models. The Ca and Ti isotopic anomalies, however, match the predictions of He-shell abundances in AGB stars. In this study, we show that the C, Ca, and Ti isotopic anomalies are consistent with nucleosynthesis predictions of the H-ingestion phase during a very late thermal pulse (VLTP) event in post-AGB stars. The low 12C/13C isotopic ratios in these grains are a result of abundant 12C efficiently capturing the protons that are being ingested during the VLTP. Very high neutron densities of ~1015 cm−3, typical of the i-process, are achieved during this phase in post-AGB stars. The large 42,43,44Ca excesses in some graphite grains are indicative of neutron capture nucleosynthesis during VLTP. The comparison of VLTP nucleosynthesis calculations to the graphite data also indicate that apparent anomalies in the Ti isotopic ratios are due to large contributions from 46,48Ca, which cannot be resolved from the isobars 46,48Ti during the measurements. We conclude that presolar graphite grains with moderate to extreme Ca and Ti isotopic anomalies originate in post-AGB stars that suffer a VLTP.
Reference
Jadhav M, Pignatari M, Herwig F, Zinner E, Gallino R, and Huss GR (in press) Relics of Ancient Post-AGB Stars in a Primitive Meteorite. The Astrophysical Journal – Letters
[doi:10.1088/2041-8205/777/2/L27]