Limits on stable iron in Type$\,$Ia supernovae from NIR spectroscopy
Abstract
We obtained optical and near-infrared spectra of TypeIa supernovae (SNeIa) at epochs ranging from 224 to 496 days after the explosion. The spectra show emission lines from forbidden transitions of singly ionised iron and cobalt atoms. We used non-local thermodynamic equilibrium (NLTE) modelling of the first and second ionisation stages of iron, nickel, and cobalt to fit the spectra using a sampling algorithm allowing us to probe a broad parameter space. We derive velocity shifts, line widths, and abundance ratios for iron and cobalt. The measured line widths and velocity shifts of the singly ionised ions suggest a shared emitting region. Our data are fully compatible with radioactive Ni decay as the origin for cobalt and iron. We compare the measured abundance ratios of iron and cobalt to theoretical predictions of various SNIa explosion models. These models include, in addition to Ni, different amounts of Ni and stable Fe. We can exclude models that produced only Fe or only Ni in addition to Ni. If we consider a model that has Ni, Ni, and Fe then our data imply that these ratios are Fe / Ni and Ni / Ni .
Keywords
Cite
@article{arxiv.1810.10781,
title = {Limits on stable iron in Type$\,$Ia supernovae from NIR spectroscopy},
author = {A. Flörs and J. Spyromilio and K. Maguire and S. Taubenberger and W. E. Kerzendorf and S. Dhawan},
journal= {arXiv preprint arXiv:1810.10781},
year = {2018}
}
Comments
10 pages, 7 figures, Accepted for publication in A&A