Exploring the canonical behaviour of long gamma-ray bursts using an intrinsic multi-wavelength afterglow correlation
Abstract
In this paper we further investigate the relationship, reported by Oates et al., 2012, between the optical/UV afterglow luminosity (measured at restframe 200s) and average afterglow decay rate (measured from restframe 200s onwards) of long duration Gamma-ray Bursts (GRBs). We extend the analysis by examining the X-ray light curves, finding a consistent correlation. We therefore explore how the parameters of these correlations relate to the prompt emission phase and, using a Monte Carlo simulation, explore whether these correlations are consistent with predictions of the standard afterglow model. We find significant correlations between: and ; and , consistent with simulations. The model also predicts relationships between and , however, while we find such relationships in the observed sample, the slope of the linear regression is shallower than that simulated and inconsistent at . Simulations also do not agree with correlations observed between and , or and . Overall, these observed correlations are consistent with a common underlying physical mechanism producing GRBs and their afterglows regardless of their detailed temporal behaviour. However, a basic afterglow model has difficulty explaining all the observed correlations. This leads us to briefly discuss alternative more complex models.
Keywords
Cite
@article{arxiv.1508.06567,
title = {Exploring the canonical behaviour of long gamma-ray bursts using an intrinsic multi-wavelength afterglow correlation},
author = {S. R. Oates and J. L. Racusin and M. De Pasquale and M. J. Page and A. J. Castro-Tirado and J. Gorosabel and P. J. Smith and A. A. Breeveld and N. P. M Kuin},
journal= {arXiv preprint arXiv:1508.06567},
year = {2015}
}
Comments
17 pages, 5 figures, accepted for publication in MNRAS