English

The $\gamma$-ray deposition histories of core-collapse supernovae

High Energy Astrophysical Phenomena 2020-07-24 v2

Abstract

The γ\gamma-ray deposition history in an expanding supernova (SN) ejecta has been mostly used to constrain models for Type Ia SN. Here we expand this methodology to core-collapse SNe, including stripped envelope (SE; Type Ib/Ic/IIb) and Type IIP SNe. We construct bolometric light curves using photometry from the literature and we use the Katz integral to extract the γ\gamma-ray deposition history. We recover the tight range of γ\gamma-ray escape times, t03045dt_0\approx30-45\,\textrm{d}, for Type Ia SNe, and we find a new tight range t080140dt_0\approx80-140\,\textrm{d}, for SE SNe. Type IIP SNe are clearly separated from other SNe types with t0400dt_0\gtrsim400\,\textrm{d}, and there is a possible negative correlation between t0t_0 and the synthesized 56^{56}Ni mass. We find that the typical masses of the synthesized 56^{56}Ni in SE SNe are larger than those in Type IIP SNe, in agreement with the results of Kushnir. This disfavours progenitors with the same initial mass range for these explosions. We recover the observed values of ETET, the time-weighted integrated luminosity from cooling emission, for Type IIP, and we find hints of non-zero ETET values in some SE SNe. We apply a simple γ \gamma-ray radiation transfer code to calculate the γ\gamma-ray deposition histories of models from the literature, and we show that the observed histories are a powerful tool for constraining models.

Keywords

Cite

@article{arxiv.2004.07244,
  title  = {The $\gamma$-ray deposition histories of core-collapse supernovae},
  author = {Amir Sharon and Doron Kushnir},
  journal= {arXiv preprint arXiv:2004.07244},
  year   = {2020}
}

Comments

29 pages, 12 figures, accepted to MNRAS