Constraining black hole spin in PG 1535+547 amidst complex multi-layered absorption
arXiv:2512.17539 · doi:10.1093/mnras/stag157
Abstract
We present a spectroscopic analysis of XMM-Newton and NuSTAR observations of the 'complex' NLS1 PG 1535+547 at redshift . These observations span three epochs: 2002 and 2006 with XMM-Newton alone, covering the keV energy range, and a coordinated XMM-Newton and NuSTAR observation in 2016, covering the keV energy range. The X-ray spectra across all epochs exhibit both neutral and ionized absorption, along with reflection features from the accretion disc, including a prominent Compton hump in the broadband data. Notably, the spectral shape varies across epochs. Our analysis suggests this variability is attributed to changes in both line-of-sight absorption and the intrinsic emission from PG 1535+547. The source is obscured by multiple layers of partially and/or fully covering neutral and ionized absorbers, with neutral column densities ranging from undetectable levels in the least obscured phase to in the most obscured phase. A clear warm absorber is revealed during the least obscured phase. The continuum remains fairly consistent () during the first two observations, followed by a substantial flux decrease (by a factor of in the keV band) in 2016 compared to 2006. The 2016 data indicates the source is in a reflection-dominated state during this epoch, with a reflection fraction of and an X-ray source located at a height . Simultaneous fitting of the multi-epoch data suggests a rapidly rotating black hole with a spin parameter, . These findings imply that strong light-bending effects may account for the observed continuum flux reduction.
14 pages, 9 figures, accepted for publication in MNRAS