English

SN2022jli modeled with a $^{56}$Ni double-layer and a magnetar

High Energy Astrophysical Phenomena 2025-07-30 v1 Solar and Stellar Astrophysics

Abstract

We study the bolometric evolution of the exceptional Type Ic Supernova (SN) 2022jli, aiming to understand the underlying mechanisms responsible for its distinctive double-peaked light curve morphology, extended timescales, and the rapid, steep decline in luminosity observed at around 270 days after the SN discovery. We present a quantitative assessment of two leading models through hydrodynamic radiative simulations: two shells enriched with nickel and a combination of nickel and magnetar power. We explore the parameter space of a model in which the SN is powered by radioactive decay assuming a bimodal nickel distribution. While this setup can reproduce the early light curve properties, it faces problems to explain the prominent second peak. We therefore consider a hybrid scenario with a rapidly rotating magnetar as additional energy source. We find that the observed light curve morphology can be well reproduced by a model combining a magnetar engine and a double-layer 56^{56}Ni distribution. The best-fitting case consist of a magnetar with a spin period of P22P\simeq 22 ms and a bipolar magnetic field strength of B5×1014B\simeq 5\times 10^{14} G and a radioactive content with total nickel mass of 0.15 M_\odot, distributed across two distinct shells within a pre-SN structure of 11 M_\odot. To reproduce the abrupt drop in luminosity at 270\sim 270 d, the energy deposition from the magnetar must be rapidly and effectively switched off.

Keywords

Cite

@article{arxiv.2507.21304,
  title  = {SN2022jli modeled with a $^{56}$Ni double-layer and a magnetar},
  author = {Mariana Orellana and Melina C. Bersten and Claudia P. Gutiérrez},
  journal= {arXiv preprint arXiv:2507.21304},
  year   = {2025}
}

Comments

Accepted for publication in A&A as Letter to the Editor