English

Anisotropic Energy Injection from Magnetar Central Engines in Short GRBs

High Energy Astrophysical Phenomena 2024-01-11 v3

Abstract

A long-lived magnetar, potentially originating from a binary neutron star system, has been proposed to explain the extended emission observed in certain short-duration gamma-ray bursts (sGRBs), and is posited as a potential central engine to power the engine-fed kilonovae. Previously, the process by which energy is injected into the surrounding ejecta/jet was widely believed to be nearly isotropic. In this study, we employ special relativity magnetohydrodynamic (SRMHD) simulations to investigate the wind injection process from a magnetar central engine. We explore the dynamics and energy distribution within the system and found that the parameter α=uA/uMWN\alpha=u_{\rm A}/u_{\rm MWN} can be used to indicate the collimation of the magnetar wind energy injection, where uAu_{\rm A} is the local Alfven four-speed and uMWNu_{\rm MWN} is the four-speed of the magnetar wind nebular (MWN) formed from wind-ejecta collision. A significant portion of the injected energy from the magnetar spin-down wind will be channeled to the jet axis due to collimation within the MWN. Achieving isotropic energy injection requires a significantly small α\alpha that necessitates either an ultra-relativistic expanding MWN or an extremely low magnetization MWN, both of which are challenging to attain in sGRBs. Consequently, a considerably reduced energy budget (i.e. energy per solid angle reduced by a factor of up to 10 with respect to the value under isotropic assumption) is anticipated to be injected into the ejecta for engine-fed kilonovae. Engine-fed kilonovae would appear fainter than originally anticipated.

Keywords

Cite

@article{arxiv.2309.15141,
  title  = {Anisotropic Energy Injection from Magnetar Central Engines in Short GRBs},
  author = {Yihan Wang and Bing Zhang and Zhaohuan Zhu},
  journal= {arXiv preprint arXiv:2309.15141},
  year   = {2024}
}

Comments

Accepted for publication in MNRAS