A Magnetized Black Hole Envelope Model for Little Red Dots
Shinsuke Takasao, Kohei Inayoshi

TL;DR
This paper proposes a magnetized black hole envelope model to explain the properties of little red dots, a new class of active galactic nuclei, accounting for their spectral features and X-ray non-detections.
Contribution
It introduces a novel dynamical and spectral model of magnetized black hole envelopes for LRDs, challenging traditional black hole mass estimation methods.
Findings
Model reproduces broad emission line Doppler components up to a few thousand km/s.
X-ray luminosities are constrained to be below 10^41 erg/s, consistent with non-detections.
Suggests conventional virial mass estimates may be inaccurate for LRDs.
Abstract
Recent observations have revealed a unique class of active galactic nuclei (AGNs), termed little red dots (LRDs). These objects are hypothesized to be powered by massive black holes rapidly accreting in dense gaseous environments. Theoretical studies suggest that the circum-nuclear gas can form an optically thick black hole envelope (BHE), whose structure resembles the atmospheres of convective stars near the Hayashi limit. Given that such cool stars typically generate magnetic fields, we propose a dynamical and spectral model for an LRD enshrouded by a magnetized BHE. Assuming spherical free-fall accretion onto a rotating, magnetized BHE, our model accounts for key observational properties of LRDs. We propose that the Doppler component of broad emission lines originates from plasma clumps co-rotating within the BHE magnetosphere. Including additional broadening due to electron…
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