English

Radio evolution of a Type IIb supernova SN 2016gkg

High Energy Astrophysical Phenomena 2022-08-17 v2 Solar and Stellar Astrophysics

Abstract

We present extensive radio monitoring of a type IIb supernova (SN IIb), SN 2016gkg during tt \sim 8-1429 days post explosion at frequencies ν\nu \sim 0.33-25 GHz. The detailed radio light curves and spectra are broadly consistent with self-absorbed synchrotron emission due to the interaction of the SN shock with the circumstellar medium. The model underpredicts the flux densities at tt \sim 299 days post-explosion by a factor of 2, possibly indicating a density enhancement in the CSM due to a non-uniform mass-loss from the progenitor. Assuming a wind velocity vwv_{\rm w} \sim 200 km s1^{-1}, we estimate the mass-loss rate to be M˙\dot{M} \sim (2.2, 3.6, 3.8, 12.6, 3.7, and 5.0) ×\times 106^{-6} MM_{\odot} yr1^{-1} during \sim 8, 15, 25, 48, 87, and 115 years, respectively before the explosion. The shock wave from SN 2016gkg is expanding from RR \sim 0.5 ×\times 1016^{16} to 7 ×\times 1016^{16} cm during tt \sim 24-492 days post-explosion indicating a shock deceleration index, mm \sim 0.8 (RtmR \propto t^m), and mean shock velocity vv \sim 0.1c. The radio data being inconsistent with free-free absorption model and higher shock velocities are in support of a relatively compact progenitor for SN 2016gkg.

Keywords

Cite

@article{arxiv.2206.12103,
  title  = {Radio evolution of a Type IIb supernova SN 2016gkg},
  author = {A. J. Nayana and Poonam Chandra and Anoop Krishna and G. C. Anupama},
  journal= {arXiv preprint arXiv:2206.12103},
  year   = {2022}
}

Comments

18 pages, 8 figures, accepted for publication in ApJ