English

Determining neutron star masses and radii using energy-resolved waveforms of X-ray burst oscillations

High Energy Astrophysical Phenomena 2015-06-15 v1

Abstract

Simultaneous, precise measurements of the mass MM and radius RR of neutron stars can yield uniquely valuable information about the still uncertain properties of cold matter at several times the density of nuclear matter. One method that could be used to measure MM and RR is to analyze the energy-dependent waveforms of the X-ray flux oscillations seen during some thermonuclear bursts from some neutron stars. These oscillations are thought to be produced by X-ray emission from hotter regions on the surface of the star that are rotating at or near the spin frequency of the star. Here we explore how well MM and RR could be determined by generating, and analyzing using Bayesian techniques, synthetic energy-resolved X-ray data that we produce assuming a future space mission having 2--30 keV energy coverage and an effective area of 10 m2^2, such as the proposed \textit{LOFT} or \textit{AXTAR} missions. We find that if the hot spot is within 10^\circ of the rotation equator, both MM and RR can usually be determined with an uncertainty of about 10% if there are 10610^6 total counts from the spot, whereas waveforms from spots within 20^\circ of the rotation pole provide no useful constraints. These constraints can usually be achieved even if the burst oscillations vary with time and data from multiple bursts must be used to obtain 106^6 counts from the hot spot. This is therefore a promising method to constrain MM and RR tightly enough to discriminate strongly between competing models of cold, high-density matter.

Keywords

Cite

@article{arxiv.1304.2330,
  title  = {Determining neutron star masses and radii using energy-resolved waveforms of X-ray burst oscillations},
  author = {Ka-Ho Lo and M. Coleman Miller and Sudip Bhattacharyya and Frederick K. Lamb},
  journal= {arXiv preprint arXiv:1304.2330},
  year   = {2015}
}

Comments

73 pages, including 26 figures and 8 tables. Submitted to The Astrophysical Journal