Empirically Derived Integrated Stellar Yields of Fe-Peak Elements
R.B.C. Henry, John J. Cowan, Jennifer Sobeck

TL;DR
This study compiles stellar abundance data to empirically derive integrated yields of Fe-peak elements, revealing discrepancies with theoretical models and providing constraints for future stellar nucleosynthesis predictions.
Contribution
It presents empirically derived integrated stellar yields of Fe-peak elements across metallicities, challenging existing theoretical yields and offering new constraints for stellar evolution models.
Findings
Yields of Ti, V, and Co are larger and anticorrelated with metallicity.
Yields of Cr and Mn are smaller and directly correlated with metallicity.
Ni yields are consistent with theory but may need slight scaling.
Abstract
We present here the initial results of a new study of massive star yields of Fe-peak elements. We have compiled from the literature a database of carefully determined solar neighborhood stellar abundances of seven iron-peak elements, Ti, V, Cr, Mn, Fe, Co, and Ni and then plotted [X/Fe] versus [Fe/H] to study the trends as functions of metallicity. Chemical evolution models were then employed to force a fit to the observed trends by adjusting the input massive star metallicity-sensitive yields of Kobayashi et al. Our results suggest that yields of Ti, V, and Co are generally larger as well as anticorrelated with metallicity, in contrast to the Kobayashi et al. predictions. We also find the yields of Cr and Mn to be generally smaller and directly correlated with metallicity compared to the theoretical results. Our results for Ni are consistent with theory, although our model suggests…
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Taxonomy
TopicsStellar, planetary, and galactic studies · Astro and Planetary Science · Astronomy and Astrophysical Research
