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Modeling the Redshift Evolution of the Normal Galaxy X-Ray Luminosity FunctionEmission from X-ray binaries (XRBs) is a major component of the total X-ray luminosity of normal galaxies, so X-ray studies of high-redshift galaxies allow us to probe the formation and evolution of XRBs on very long timescales (approximately 10 Gyr). In this paper, we present results from large-scale population synthesis models of binary populations in galaxies from z = 0 to approximately 20. We use as input into our modeling the Millennium II Cosmological Simulation and the updated semi-analytic galaxy catalog by Guo et al. to self-consistently account for the star formation history (SFH) and metallicity evolution of each galaxy. We run a grid of 192 models, varying all the parameters known from previous studies to affect the evolution of XRBs. We use our models and observationally derived prescriptions for hot gas emission to create theoretical galaxy X-ray luminosity functions (XLFs) for several redshift bins. Models with low common envelope efficiencies, a 50% twins mass ratio distribution, a steeper initial mass function exponent, and high stellar wind mass-loss rates best match observational results from Tzanavaris & Georgantopoulos, though they significantly underproduce bright early-type and very bright (L(sub x) greater than 10(exp 41)) late-type galaxies. These discrepancies are likely caused by uncertainties in hot gas emission and SFHs, active galactic nucleus contamination, and a lack of dynamically formed low-mass XRBs. In our highest likelihood models, we find that hot gas emission dominates the emission for most bright galaxies. We also find that the evolution of the normal galaxy X-ray luminosity density out to z = 4 is driven largely by XRBs in galaxies with X-ray luminosities between 10(exp 40) and 10(exp 41) erg s(exp −1).
Document ID
20150002688
Acquisition Source
Goddard Space Flight Center
Document Type
Reprint (Version printed in journal)
Authors
Tremmel, M.
(Washington Univ. Seattle, WA, United States)
Fragos, T.
(Harvard-Smithsonian Center for Astrophysics Cambridge, MA, United States)
Lehmer, B. D.
(Johns Hopkins Univ. Baltimore, MD, United States)
Tzanavaris, P.
(Johns Hopkins Univ. Baltimore, MD, United States)
Belczynski, K.
(Warsaw Univ. Observatory Warsaw, Poland)
Kalogera, V.
(Northwestern Univ. Evanston, IL, United States)
Basu-Zych, A. R.
(Universities Space Research Association Greenbelt, MD, United States)
Farr, W. M.
(Northwestern Univ. Evanston, IL, United States)
Hornschemeier, A.
(NASA Goddard Space Flight Center Greenbelt, MD, United States)
Jenkins, L.
Ptak, A.
(NASA Goddard Space Flight Center Greenbelt, MD, United States)
Zezas, A.
(Harvard-Smithsonian Center for Astrophysics Cambridge, MA, United States)
Date Acquired
March 9, 2015
Publication Date
March 1, 2013
Publication Information
Publication: The Astrophysical Journal
Publisher: IOP Publishing
Volume: 766
Issue: 1
Subject Category
Astrophysics
Report/Patent Number
GSFC-E-DAA-TN8703
Report Number: GSFC-E-DAA-TN8703
Funding Number(s)
CONTRACT_GRANT: NNX12AL39G
CONTRACT_GRANT: N203 404939
CONTRACT_GRANT: NNG04GB78A
CONTRACT_GRANT: NNG06EO90A
Distribution Limits
Public
Copyright
Public Use Permitted.
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