Back to Search Start Over

Consistent Analysis of the AGN LF in X-Ray and MIR in the XMM-LSS Field.

Authors :
Runburg, Jack
Farrah, Duncan
Sajina, Anna
Lacy, Mark
Lidua, Jenna
Hatziminaoglou, Evanthia
Brandt, W. N.
Chen, Chien-Ting J.
Nyland, Kristina
Shirley, Raphael
Clements, D. L.
Pitchford, Lura K.
Source :
Astrophysical Journal; 1/10/2022, Vol. 924 Issue 2, p1-16, 16p
Publication Year :
2022

Abstract

The luminosity function of active galactic nuclei (AGN) probes the history of supermassive black hole assembly and growth across cosmic time. To mitigate selection biases, we present a consistent analysis of the AGN luminosity functions (LFs) derived for both X-ray and mid-infrared (MIR) selected AGN in the XMM-Large Scale Structure field. There are 4268 AGN used to construct the MIR luminosity function (IRLF) and 3427 AGN used to construct the X-ray luminosity function (XLF), providing the largest census of the AGN population out to z = 4 in both bands with significant reduction in uncertainties. We are able for the first time to see the knee of the IRLF at z > 2 and observe a flattening of the faint-end slope as redshift increases. The bolometric luminosity density, a proxy for the cosmic black hole accretion history, computed from our LFs, shows a peak at z ≈ 2.25, consistent with recent estimates of the peak in the star formation rate density (SFRD). However, at earlier epochs, the AGN luminosity density is flatter than the SFRD. If confirmed, this result suggests that the build up of black hole mass outpaces the growth of stellar mass in high-mass systems at z ≳ 2.5. This is consistent with observations of redshift z ∼ 6 quasars that lie above the local M − σ relationship. The luminosity density derived from the IRLF is higher than that from the XLF at all redshifts. This is consistent with the dominant role of obscured AGN activity in the cosmic growth of supermassive black holes. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
0004637X
Volume :
924
Issue :
2
Database :
Complementary Index
Journal :
Astrophysical Journal
Publication Type :
Academic Journal
Accession number :
154944664
Full Text :
https://doi.org/10.3847/1538-4357/ac37b8