For the first time, we present a Bayesian time-resolved spectral study of the X-ray afterglow datasets of GW170817/GRB17017A observed by the Chandra X-ray Observatory. These include all 12 public datasets, from the earliest observation taken at t∼9d to the newest observation at ∼359d post-merger. While our results are consistent with the other works using Cash statistic within uncertainty, the Bayesian analysis we performed in this work have yielded Gaussian-like parameter distributions. We also obtained the parameter uncertainties directly from their posterior probability distributions. We are able to confirm that the power-law photon index has remained constant of Γ∼1.6 throughout the entire year-long observing period, except for the first dataset observed at t=8.9d when Γ=1.04±0.44 is marginally harder. We also found that the unabsorbed X-ray flux peaked at t∼155d, temporally consistent with the X-ray flare model suggested recently by Piro et al (2018). The X-ray flux has been fading since ∼160 days after the merger and has returned to the level as first discovered after one year. Our result shows that the X-ray spectrum of GW170817/GRB170817A is well-described by a simple power-law originated from non-thermal slow-cooling synchrotron radiation.
@article{arxiv.1901.08262,
title = {Bayesian Analysis on the X-ray Spectra of the Binary Neutron Star Merger GW170817},
author = {En-Tzu Lin and Hoi-Fung Yu and Albert K. H. Kong},
journal= {arXiv preprint arXiv:1901.08262},
year = {2019}
}
Comments
Accepted for publication in the Journal of High Energy Astrophysics