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arXiv · 2306.12885

Type Ia Supernova Nucleosynthesis: Metallicity-Dependent Yields

Abstract

Type Ia supernova explosions (SNIa) are fundamental sources of elements for the chemical evolution of galaxies. They efficiently produce intermediate-mass (with Z between 11 and 20) and iron group elements - for example, about 70% of the solar iron is expected to be made by SNIa. In this work, we calculate complete abundance yields for 39 models of SNIa explosions, based on three progenitors - a 1.4M deflagration detonation model, a 1.0 double detonation model and a 0.8 M double detonation model - and 13 metallicities, with 22Ne mass fractions of 0, 1x10-7, 1x10-6, 1x10-5, 1x10-4, 1x10-3, 2x10-3, 5x10-3, 1x10-2, 1.4x10-2, 5x10-2, and 0.1 respectively. Nucleosynthesis calculations are done using the NuGrid suite of codes, using a consistent nuclear reaction network between the models. Complete tables with yields and production factors are provided online at Zenodo: Yields. We discuss the main properties of our yields in the light of the present understanding of SNIa nucleosynthesis, depending on different progenitor mass and composition. Finally, we compare our results with a number of relevant models from the literature.

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James D Keegans, Marco Pignatari, Richard J Stancliffe, Claudia Travaglio, Samuel Jones, Brad K Gibson, Dean M Townsley, Broxton J Miles, Ken J Shen, Gareth Few. 2023-06-22. Type Ia Supernova Nucleosynthesis: Metallicity-Dependent Yields. https://doi.org/10.3847/1538-4365%2Face102

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