English

Relativistic X-ray reflection from the accreting millisecond X-ray pulsar IGR J17498-2921

High Energy Astrophysical Phenomena 2024-09-12 v2

Abstract

The accreting millisecond X-ray pulsar IGR J17498-2921 went into X-ray outburst on April 13-15, 2023, for the first time since its discovery on August 11, 2011. Here, we report on the first follow-up \nustar{} observation of the source, performed on April 23, 2023, around ten days after the peak of the outburst. The \nustar{} spectrum of the persistent emission (3603-60 \kev{} band) is well described by an absorbed blackbody with a temperature of kTbb=1.61±0.04kT_{bb}=1.61\pm 0.04\kev{}, most likely arising from the NS surface and a Comptonization component with power-law index Γ=1.79±0.02\Gamma=1.79\pm0.02, arising from a hot corona at kTe=16±2kT_{e}=16\pm 2 keV. The X-ray spectrum of the source shows robust reflection features which have not been observed before. We use a couple of self-consistent reflection models, {\tt relxill} and {\tt relxillCp}, to fit the reflection features. We find an upper limit to the inner disc radius of 6RISCO 6\: R_{ISCO} and 9RISCO 9\: R_{ISCO} from {\tt relxill} and {\tt relxillCp} model, respectively. The inclination of the system is estimated to be 40\degr\simeq 40\degr from both reflection models. Assuming magnetic truncation of the accretion disc, the upper limit of magnetic field strength at the pole of the NS is found to be B1.8×108B\lesssim 1.8\times 10^{8} G. Furthermore, the \nustar{} observation revealed two type I X-ray bursts and the burst spectroscopy confirms the thermonuclear nature of the burst. The blackbody temperature reaches nearly 2.22.2 keV at the peak of the burst.

Keywords

Cite

@article{arxiv.2408.06193,
  title  = {Relativistic X-ray reflection from the accreting millisecond X-ray pulsar IGR J17498-2921},
  author = {Mahasweta Bhattacharya and Aditya S. Mondal and Mayukh Pahari and Biplab Raychaudhuri and Rohit Ghosh and Gulab C. Dewangan},
  journal= {arXiv preprint arXiv:2408.06193},
  year   = {2024}
}

Comments

13 pages, 17 figures, Accepted for publication in MNRAS main journal