Late-afterglow Emission from a Quasi-spherical Outflow in a stratified environment
Abstract
Gamma-ray bursts (GRBs) are cosmic events occurring at large distances beyond our galaxy. They provide a unique opportunity to study electromagnetic patterns not seen elsewhere. When the collimated GRB outflow interacts with the outer layers of a star or the wind generated by a binary neutron star merger, it releases energy, forming a quasi-spherical outflow around it. This broad outflow begins to radiate once it has transferred enough energy to the surrounding medium. We have developed a new analytical model that describes the synchrotron afterglow scenario of the quasi-spherical outflow, including factors such as stratified density, self-absorption regime, and the fraction of electrons accelerated by the shock front. We also successfully describe the multiwavelength observations of a sample of llGRB afterglows (GRB 980425, 031203, 060218, 100316D, 130603B, 150101B and 171205A) that exhibited a late component, analyzed in both stellar wind and constant-density environments. Our analysis shows that a constant-density environment is favored. Additionally, we consider the multiwavelength upper limits of the short bursts reported in the Swift-BAT database.
Keywords
Cite
@article{arxiv.2510.00248,
title = {Late-afterglow Emission from a Quasi-spherical Outflow in a stratified environment},
author = {Nissim Fraija and Boris Betancourt-Kamenetskaia and Antonio Galván and Alvaro Montalvo and A. C. Caligula Do E. S. Pedreira and Peter Veres and Rosa Leticia Becerra and Maria G. Dainotti and Simone Dichiara and Hermes León Vargas},
journal= {arXiv preprint arXiv:2510.00248},
year = {2025}
}
Comments
26 pages, 9 figures, 5 tables, Accepted in MNRAS