English

High-density disc reflection spectroscopy of low-mass active galactic nuclei

High Energy Astrophysical Phenomena 2022-04-20 v2 Cosmology and Nongalactic Astrophysics Astrophysics of Galaxies

Abstract

The standard alpha-disc model predicts an anti-correlation between the density of the inner accretion disc and the black hole mass times square of the accretion rate, as seen in higher mass (MBH>106MM_{\rm BH}>10^{6} M_{\odot}) active galactic nuclei (AGNs). In this work, we test the predictions of the alpha-disc model and study the properties of the inner accretion flow for the low-mass end (MBH1056MM_{\rm BH}\approx 10^{5-6}M_{\odot}) of AGNs. We utilize a new high-density disc reflection model where the density parameter varies from ne=1015n_{\rm e}=10^{15} to 102010^{20} cm3^{-3} and apply it to the broadband X-ray (0.3-10 keV) spectra of the low-mass AGN sample. The sources span a wide range of Eddington fractions and are consistent with being sub-Eddington or near-Eddington. The X-ray spectra reveal a soft X-ray excess below 1.5\sim 1.5 keV which is well modeled by high-density reflection from an ionized accretion disc of density ne1018n_{\rm e}\sim 10^{18} cm3^{-3} on average. The results suggest a radiation pressure-dominated disc with an average of 70% fraction of the disc power transferred to the corona, consistent with that observed in higher mass AGNs. We show that the disc density higher than 101510^{15} cm3^{-3} can result from the radiation pressure compression when the disc surface does not hold a strong magnetic pressure gradient. We find tentative evidence for a drop in black hole spin at low-mass regimes.

Keywords

Cite

@article{arxiv.2203.04522,
  title  = {High-density disc reflection spectroscopy of low-mass active galactic nuclei},
  author = {L. Mallick and A. C. Fabian and J. A. García and J. A. Tomsick and M. L. Parker and T. Dauser and D. R. Wilkins and B. De Marco and J. F. Steiner and R. M. T. Connors and G. Mastroserio and A. G. Markowitz and C. Pinto and W. N. Alston and A. M. Lohfink and P. Gandhi},
  journal= {arXiv preprint arXiv:2203.04522},
  year   = {2022}
}

Comments

20 pages, 10 figures, 6 tables. Accepted for publication in MNRAS

R2 v1 2026-06-24T10:06:54.301Z