Exploring Gravitationally-Lensed $z\gtrsim6$ X-ray AGN Behind the RELICS clusters
Abstract
Although observations of high-redshift quasars demonstrate that many supermassive black holes (BHs) reached large masses within one billion years after the Big Bang, the origin of the first BHs is still a mystery. A promising way to constrain the origin of the first BHs is to explore the average properties of BHs. However, typical BHs remain hidden from X-ray surveys, which is due to their relatively faint nature and the limited sensitivity of X-ray telescopes. Gravitational lensing provides an attractive way to study this unique galaxy population as it magnifies the faint light from these high-redshift galaxies. Here, we study the X-ray emission originating from 155 gravitationally-lensed galaxies that were detected in the RELICS survey. We utilize Chandra X-ray observations to search for AGN in the individual galaxies and in the stacked galaxy samples. We did not identify an individual X-ray source that was undoubtedly associated with a high-redshift galaxy. We stack the signal from all galaxies and do not find a statistically significant detection. We split our sample based on stellar mass, star-formation rate, and lensing magnification and stack these sub-samples. We obtain a detection for massive galaxies with an X-ray luminosity of , which corresponds to a BH accreting at its Eddington rate. Other stacks remain undetected and we place upper limits on the AGN emission. These limits imply that the bulk of BHs at either accrete at a few percent of their Eddington rate and/or are orders of magnitude less massive than expected based on the stellar mass of their host galaxy.
Keywords
Cite
@article{arxiv.2111.03669,
title = {Exploring Gravitationally-Lensed $z\gtrsim6$ X-ray AGN Behind the RELICS clusters},
author = {Akos Bogdan and Orsolya E. Kovacs and Christine Jones and William R. Forman and Ralph P. Kraft and Victoria Strait and Dan Coe and Marusa Bradac},
journal= {arXiv preprint arXiv:2111.03669},
year = {2022}
}
Comments
14 pages, 5 figures, accepted for publication in The Astrophysical Journal