paper

Electron-capture Supernova Candidates from Light Curves: Implications for Their Progenitors and Explosion Properties

arXiv:2606.14044 · doi:10.3847/1538-4357/ae6808

Abstract

Core-collapse supernovae are explosions of massive stars. While most massive stars end as iron-core-collapse supernovae, less massive stars are expected to explode as electron-capture supernovae (ECSNe), defining the low-mass boundary of core-collapse supernovae. ECSNe were proposed years ago, and first-principles simulations predict their successful explosions with low energies of ~erg. Nevertheless, only one convincing candidate, SN~2018zd, has been proposed other than SN~1054, the progenitor of the Crab Nebula. We search for ECSN candidates among Type~II SNe from the literature and a public Zwicky Transient Facility sample, using a color-based diagnostic, selecting ten candidates with blue colors at the middle of the plateau. We classify three as \textit{gold}, for which a spectrum around the middle of the plateau disfavors strong circumstellar-medium interaction that would make the SN bluer, and seven as \textit{silver} without such spectra. Comparing the observed multicolor light curves with radiation-hydrodynamical models, we infer the explosion energies, ~erg for the \textit{gold candidates} and ~erg including the \textit{silver candidates}, consistent with first-principles predictions and the mass-loss rates, for the \textit{gold candidates}, which remain similar when the \textit{silver candidates} are included, higher than those expected for the early super-asymptotic-giant-branch phase. The ECSN occurrence ratios among SNe~II are inferred as and from the \textit{gold} and \textit{silver candidates}, respectively, which we interpret as lower and upper limits. To robustly identify ECSNe and refine this ratio, spectroscopic follow-ups of ECSN candidates around the middle of the plateau are essential.

24 pages, 9 figures, 4 tables, accepted for publication in ApJ

Electron-capture Supernova Candidates from Light Curves: Implications for Their Progenitors and Explosion Properties · wovepaper