English

Galactic Population Synthesis of Radioactive Nucleosynthesis Ejecta

Astrophysics of Galaxies 2023-04-05 v1 High Energy Astrophysical Phenomena

Abstract

Diffuse gamma-ray line emission traces freshly produced radioisotopes in the interstellar gas, providing a unique perspective on the entire Galactic cycle of matter from nucleosynthesis in massive stars to their ejection and mixing in the interstellar medium. We aim at constructing a model of nucleosynthesis ejecta on galactic scale which is specifically tailored to complement the physically most important and empirically accessible features of gamma-ray measurements in the MeV range, in particular for decay gamma-rays such as 26^{26}Al, 60^{60}Fe or 44^{44}Ti. Based on properties of massive star groups, we developed a Population Synthesis Code which can instantiate galaxy models quickly and based on many different parameter configurations, such as the star formation rate, density profiles, or stellar evolution models. As a result, we obtain model maps of nucleosynthesis ejecta in the Galaxy which incorporate the population synthesis calculations of individual massive star groups. Based on a variety of stellar evolution models, supernova explodabilities, and density distributions, we find that the measured 26^{26}Al distribution from INTEGRAL/SPI can be explained by a Galaxy-wide population synthesis model with a star formation rate of 44-8Myr18\,\mathrm{M_{\odot}\,yr^{-1}} and a spiral-arm dominated density profile with a scale height of at least 700 pc. Our model requires that most massive stars indeed undergo a supernova explosion. This corresponds to a supernova rate in the Milky Way of 1.81.8-2.82.8 per century, with quasi-persistent 26^{26}Al and 60^{60}Fe masses of 1.21.2-2.4M2.4\,\mathrm{M_{\odot}} and 11-6M6\,\mathrm{M_{\odot}}, respectively. Comparing the simulated morphologies to SPI data suggests that a frequent merging of superbubbles may take place in the Galaxy, and that an unknown but strong foreground emission at 1.8 MeV could be present.

Keywords

Cite

@article{arxiv.2301.10192,
  title  = {Galactic Population Synthesis of Radioactive Nucleosynthesis Ejecta},
  author = {Thomas Siegert and Moritz M. M. Pleintinger and Roland Diehl and Martin G. H. Krause and Jochen Greiner and Christoph Weinberger},
  journal= {arXiv preprint arXiv:2301.10192},
  year   = {2023}
}

Comments

16 pages, 12 figures, 2 page appendix, accepted for publication in A&A

R2 v1 2026-06-28T08:18:55.981Z