Biases for neutron-star mass, radius and distance measurements from Eddington-limited X-ray bursts
arXiv:0712.0412 · doi:10.1111/j.1365-2966.2008.13219.x
Abstract
Eddington-limited X-ray bursts from neutron stars can be used in conjunction with other spectroscopic observations to measure neutron star masses, radii, and distances. In order to quantify some of the uncertainties in the determination of the Eddington limit, we analysed a large sample of photospheric radius-expansion thermonuclear bursts observed with the Rossi X-ray Timing Explorer. We identified the instant at which the expanded photosphere "touches down" back onto the surface of the neutron star and compared the corresponding touchdown flux to the peak flux of each burst. We found that for the majority of sources, the ratio of these fluxes is smaller than 1.6, which is the maximum value expected from the changing gravitational redshift during the radius expansion episodes (for a 2M_sun neutron star). The only sources for which this ratio is larger than 1.6 are high inclination sources that include dippers and Cyg X-2. We discuss two possible geometric interpretations of this effect and show that the inferred masses and radii of neutron stars are not affected by this bias. On the other hand, systematic uncertainties as large as ~50% may be introduced to the distance determination.
6 pages, 4 figures, accepted by the Monthly Notices of the Royal Astronomical Society; minor changes in response to the referee's report, added an assessment on the orbital phase dependence of the f-ratio for two systems, and a discussion of other systematic effects on the neutron-star mass and radii
References in corpus (1)
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