English

Progenitor, environment, and modelling of the interacting transient, AT 2016jbu (Gaia16cfr)

High Energy Astrophysical Phenomena 2022-06-08 v4 Solar and Stellar Astrophysics

Abstract

We present the bolometric lightcurve, identification and analysis of the progenitor candidate, and preliminary modelling of AT2016jbu (Gaia16cfr). We find a progenitor consistent with a \sim22--25~MM_{\odot} yellow hypergiant surrounded by a dusty circumstellar shell, in agreement with what has been previously reported. We see evidence for significant photometric variability in the progenitor, as well as strong Hα\alpha emission consistent with pre-existing circumstellar material. The age of the environment as well as the resolved stellar population surrounding AT2016jbu, support a progenitor age of >>10 Myr, consistent with a progenitor mass of \sim22~MM_{\odot}. A joint analysis of the velocity evolution of AT2016jbu, and the photospheric radius inferred from the bolometric lightcurve shows the transient is consistent with two successive outbursts/explosions. The first outburst ejected material with velocity \sim650kms1kms^{-1}, while the second, more energetic event, ejected material at \sim4500kms1kms^{-1}. Whether the latter is the core-collapse of the progenitor remains uncertain. We place a limit on the ejected 56^{56}Ni mass of <<0.016MM_{\odot}. Using the BPASS code, we explore a wide range of possible progenitor systems, and find that the majority of these are in binaries, some of which are undergoing mass transfer or common envelope evolution immediately prior to explosion. Finally, we use the SNEC code to demonstrate that the low-energy explosion within some of these binary systems, together with sufficient CSM, can reproduce the overall morphology of the lightcurve of AT2016jbu.

Keywords

Cite

@article{arxiv.2102.09576,
  title  = {Progenitor, environment, and modelling of the interacting transient, AT 2016jbu (Gaia16cfr)},
  author = {S. J. Brennan and M. Fraser and J. Johansson and A. Pastorello and R. Kotak and H. F. Stevance and T. -W. Chen and J. J. Eldridge and S. Bose and P. J. Brown and E. Callis and R. Cartier and M. Dennefeld and Subo Dong and P. Duffy and N. Elias-Rosa and G. Hosseinzadeh and E. Hsiao and H. Kuncarayakti and A. Martin-Carrillo and B. Monard and G. Pignata and D. Sand and B. J. Shappee and S. J. Smartt and B. E. Tucker and L. Wyrzykowski and H. Abbot and S. Benetti and S. Blondin and Ping Chen and J. Bento and A. Delgado and L. Galbany and M. Gromadzki and C. P. Gutiérrez and L. Hanlon and D. L. Harrison and D. Hiramatsu and S. T. Hodgkin and T. W. -S. Holoien and D. A. Howell and C. Inserra and E. Kankare and S. Kozlowski and K. Maguire and T. E. Müller-Bravo and C. McCully and P. Meintjes and N. Morrell and M. Nicholl and D. O'Neill and P. Pietrukowicz and R. Poleski and J. L. Prieto and A. Rau and D. E. Reichart and T. Schweyer and M. Shahbandeh and J. Skowron and J. Sollerman and I. Soszńyski and M. D. Stritzinger and M. Szymański and L. Tartaglia and A. Udalski and K. Ulaczyk and D. R. Young and M. van Leeuwen and B. van Soelen},
  journal= {arXiv preprint arXiv:2102.09576},
  year   = {2022}
}

Comments

23 pages, 15 figures, accepted for publication in MNRAS