The spatial clustering of X-ray selected AGN in the XMM-COSMOS field
R. Gilli, G. Zamorani, T. Miyaji, J. Silverman, M. Brusa, V. Mainieri,, N. Cappelluti, E. Daddi, C. Porciani, L. Pozzetti, F. Civano, A. Comastri, A., Finoguenov, F. Fiore, M. Salvato, C. Vignali, G. Hasinger, S. Lilly, C., Impey, J. Trump, P. Capak, H. McCracken, N. Scoville

TL;DR
This study measures the spatial clustering of X-ray selected AGN in the XMM-COSMOS field, revealing a strong clustering signal consistent with massive galaxy hosts at redshift around 1, and identifying large-scale structure effects.
Contribution
It provides the most significant clustering measurement for X-ray selected AGN to date, including analysis of large-scale structure and comparison with optical QSOs and galaxy hosts.
Findings
Clustering signal detected at ~18sigma significance.
Correlation length r_0 = 8.6 ± 0.5 Mpc/h on large scales.
Large-scale structure at z ~ 0.36 influences clustering measurements.
Abstract
We study the spatial clustering of 538 X-ray selected AGN in the 2 deg^2 XMM-COSMOS field that are spectroscopically identified to I_{AB}<23 and span the redshift range z=0.2-3.0. The median redshift and luminosity of the sample are z = 0.98 and L_{0.5-10}=6.3 x 10^{43} erg/s, respectively. A strong clustering signal is detected at ~18sigma level, which is the most significant measurement obtained to date for clustering of X-ray selected AGN. By fitting the projected correlation function w(r_p) with a power law on scales of r_p=0.3-40 Mpc/h, we derive a best fit comoving correlation length of r_0 = 8.6 +- 0.5 Mpc/h and slope of gamma=1.88 +- 0.07 (Poissonian errors; bootstrap errors are about a factor of 2 larger). An excess signal is observed in the range r_p~5-15 Mpc/h, which is due to a large scale structure at z ~ 0.36 containing about 40 AGN. When removing the z ~ 0.36 structure,…
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