LUMINOSITY FUNCTIONS OF LMXBs IN CENTAURUS A: GLOBULAR CLUSTERS VERSUS THE FIELD
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Author(s) • • • • • • • • •
Voss, Rasmus
Gilfanov, M.
Sivakoff, Gregory R.
Kraft, Ralph P.
Jordan, Andres
Raychaudhury, Somak
Birkinshaw, M.
Brassington, Nicola J.
Croston, J. H.
Evans, Daniel A.
Date Issued
July 2009
Journal
Astrophysical Journal
Publisher
IOP Publishing
Citation
Voss, Rasmus, Marat Gilfanov, Gregory R. Sivakoff, Ralph P. Kraft, Andrés Jordán, Somak Raychaudhury, Mark Birkinshaw, et al. “LUMINOSITY FUNCTIONS OF LMXBs IN CENTAURUS A: GLOBULAR CLUSTERS VERSUS THE FIELD.” The Astrophysical Journal 701, no. 1 (July 23, 2009): 471–480. © 2009 The American Astronomical Society
Version
Final published version
Abstract
We study the X-ray luminosity function (XLF) of low-mass X-ray binaries (LMXB) in the nearby early-type galaxy Centaurus A, concentrating primarily on two aspects of binary populations: the XLF behavior at the low-luminosity limit and the comparison between globular cluster and field sources. The 800 ksec exposure of the deep Chandra VLP program allows us to reach a limiting luminosity of ~8 × 10[superscript 35] erg s[superscript −1], about ~2–3 times deeper than previous investigations. We confirm the presence of the low-luminosity break of the overall LMXB XLF at log(LX) ≈ 37.2–37.6, below which the luminosity distribution follows a dN/d(ln L) ~ const law. Separating globular cluster and field sources, we find a statistically significant difference between the two luminosity distributions with a relative underabundance of faint sources in the globular cluster population. This demonstrates that the samples are drawn from distinct parent populations and may disprove the hypothesis that the entire LMXB population in early-type galaxies is created dynamically in globular clusters. As a plausible explanation for this difference in the XLFs, we suggest an enhanced fraction of helium-accreting systems in globular clusters, which are created in collisions between red giants and neutron stars. Due to the four times higher ionization temperature of He, such systems are subject to accretion disk instabilities at ≈20 times higher mass accretion rate and, therefore, are not observed as persistent sources at low luminosities.
MIT Department
MIT Kavli Institute for Astrophysics and Space Research
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DOI of Published Version
https://doi.org/10.1088/0004-637x/701/1/471