English

Magnetar Models of Superluminous Supernovae from the Dark Energy Survey: Exploring Redshift Evolution

High Energy Astrophysical Phenomena 2021-11-16 v3 Solar and Stellar Astrophysics

Abstract

Superluminous supernovae (SLSNe) are luminous transients that can be detected to high redshifts with upcoming optical time-domain surveys such as the Vera C. Rubin Observatory Legacy Survey of Space and Time (LSST). An interesting open question is whether the properties of SLSNe evolve through cosmic time. To address this question, in this paper we model the multi-color light curves of all 21 Type I SLSNe from the Dark Energy Survey (DES) with a magnetar spin-down engine, implemented in the Modular Open Source Fitter for Transients (MOSFiT). With redshifts up to z2z\approx 2, this sample includes some of the highest-redshift SLSNe. We find that the DES SLSNe span a similar range of ejecta and magnetar engine parameters to previous samples of mostly lower-redshift SLSNe (spin period P0.7913.61P\approx 0.79-13.61 ms, magnetic field B(0.037.33)×1014B\approx (0.03-7.33)\times10^{14} G, ejecta mass Mej1.5430.32M_{\rm ej}\approx 1.54-30.32 M_{\odot}, and ejecta velocity vej(0.551.45)×104v_{\rm ej}\approx (0.55-1.45)\times 10^4 km s1^{-1}). The DES SLSN sample by itself exhibits the previously found negative correlation between MejM_{\rm ej} and PP, with a pronounced absence of SLSNe with low ejecta mass and rapid spin. Combining our results for the DES SLSNe with 60 previous SLSNe modeled in the same way, we find no evidence for redshift evolution in any of the key physical parameters.

Keywords

Cite

@article{arxiv.2104.09639,
  title  = {Magnetar Models of Superluminous Supernovae from the Dark Energy Survey: Exploring Redshift Evolution},
  author = {Brian Hsu and Griffin Hosseinzadeh and Edo Berger},
  journal= {arXiv preprint arXiv:2104.09639},
  year   = {2021}
}

Comments

12 pages, 6 figures; matches published version. Minor changes following referee comments; conclusions unchanged