English

Abundance of 26Al and 60Fe in evolving Giant Molecular Clouds

Earth and Planetary Astrophysics 2015-06-12 v2 Astrophysics of Galaxies Solar and Stellar Astrophysics

Abstract

The nucleosynthesis and ejection of radioactive 26^{26}Al (t1/2_{1/2} \sim 0.72\,Myr) and 60^{60}Fe, (t1/2_{1/2} \sim 2.5\,Myr) into the interstellar medium is dominated by the stellar winds of massive stars and supernova type II explosions. Studies of meteorites and their components indicate that the initial abundances of these short-lived radionuclides in the solar protoplanetary disk were higher than the background levels of the galaxy inferred from γ\gamma--ray astronomy and models of the galactic chemical evolution. This observation has been used to argue for a late-stage addition of stellar debris to the Solar System's parental molecular cloud or, alternatively, the solar protoplanetary disk, thereby requiring a special scenario for the formation of our Solar System. Here, we use supercomputers to model---from first principles---the production, transport and admixing of freshly synthesized 26^{26}Al and 60^{60}Fe in star-forming regions within giant molecular clouds. Under typical star-formation conditions, the levels of 26^{26}Al in most star-forming regions are comparable to that deduced from meteorites, suggesting that the presence of short-lived radionuclides in the early Solar System is a generic feature of the chemical evolution of giant molecular clouds. The 60^{60}Fe/26^{26}Al yield ratio of 0.2\approx 0.2 calculated from our simulations is consistent with the galactic value of 0.15 ±\pm 0.06 inferred from γ\gamma--ray astronomy but is significantly higher than most current Solar System measurements indicate. We suggest that estimates based on differentiated meteorites and some chondritic components may not be representative of the initial 60^{60}Fe abundance of the bulk Solar System.

Keywords

Cite

@article{arxiv.1302.0843,
  title  = {Abundance of 26Al and 60Fe in evolving Giant Molecular Clouds},
  author = {Aristodimos Vasileiadis and Aake Nordlund and Martin Bizzarro},
  journal= {arXiv preprint arXiv:1302.0843},
  year   = {2015}
}

Comments

6 pages, 5 figures, resubmitted to Astrophysical Journal Letters in response to referee report