The XMM-Newton Wide-Field Survey in the COSMOS field (XMM-COSMOS): demography and multiwavelength properties of obscured and unobscured luminous AGN
M. Brusa (MPE), F. Civano (CfA), A. Comastri (INAF-OABo), T. Miyaji, (UNAM), M. Salvato (IPP), G. Zamorani (INAF-OABo), N. Cappelluti, F. Fiore,, G. Hasinger, V. Mainieri, A. Merloni, A. Bongiorno, P. Capak, M. Elvis, R., Gilli, H. Hao, K. Jahnke, A.M. Koekemoer, O. Ilbert

TL;DR
This study presents a comprehensive multiwavelength analysis of the XMM-Newton COSMOS survey, identifying and characterizing obscured and unobscured luminous AGN, and constraining their demographics and properties across cosmic time.
Contribution
It introduces a robust method to identify high-redshift obscured AGN candidates and provides detailed insights into the luminosity function and obscured fraction of luminous AGN.
Findings
High-luminosity AGN peak at z~2.
Obscured AGN constitute 15-30% of luminous AGN at high luminosities.
Nearly 100% redshift completeness enables precise demographic constraints.
Abstract
We report the final optical identifications of the medium-depth (~60 ksec), contiguous (2 deg^2) XMM-Newton survey of the COSMOS field. XMM-Newton has detected ~800 X-ray sources down to limiting fluxes of ~5x10^{-16}, ~3x10^{-15}, and ~7x10^{-15} erg/cm2/s in the 0.5-2 keV, 2-10 keV and 5-10 keV bands, respectively. The work is complemented by an extensive collection of multi-wavelength data from 24 micron to UV, available from the COSMOS survey, for each of the X-ray sources, including spectroscopic redshifts for ~50% of the sample, and high-quality photometric redshifts for the rest. The XMM and multiwavelength flux limits are well matched: 1760 (98%) of the X-ray sources have optical counterparts, 1711 (~95%) have IRAC counterparts, and 1394 (~78%) have MIPS 24micron detections. Thanks to the redshift completeness (almost 100%) we were able to constrain the high-luminosity tail of…
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