paper

The X-ray properties of quasars: no evident evolution of accretion physics in the first Gyr of the Universe

arXiv:1908.09849 · doi:10.1051/0004-6361/201936217

Abstract

X-ray emission from QSOs has been used to assess SMBH accretion properties up to ~6. However, at only ~15 QSOs are covered by sensitive X-ray observations, preventing a statistically significant investigation of the X-ray properties of QSOs in the first Gyr of the Universe. We present new Chandra observations of 10 QSOs, selected to have virial black-hole mass estimates from Mg II line spectroscopy. Adding archival X-ray data for an additional 15 QSOs, we investigate the X-ray properties of the QSO population in the first Gyr of the Universe, focusing in particular on the relation, which is traced by the parameter, and the shape of their X-ray spectra. We performed photometric analyses to derive estimates of the X-ray luminosities, and thus the values and bolometric corrections (). We compared the resulting and distributions with the results found for QSO samples at lower redshift. Finally, we performed a basic X-ray spectral analysis of the brightest QSOs to derive their individual photon indices, and joint spectral analysis of the whole sample to estimate the average photon index. We confirm a lack of significant evolution of with redshift, extending the results from previous works up to , and the trend of an increasing bolometric correction with increasing luminosity found for QSOs at lower redshifts. The average power-law photon index of our sample ( and for sources with and net counts, respectively) is slightly steeper than, but still consistent with, typical QSOs at . All these results point toward a lack of substantial evolution of the inner accretion-disk/hot-corona structure in QSOs from low redshift to . Our data hint at generally high Eddington ratios at .

15 pages. 10 figures. 7 tables. Accepted for publication in A&A