Little red dots (LRDs) are a newly identified class of broad-line active galactic nuclei (AGN) with a distinctive v-shape spectrum characterized by red optical and blue UV continuum emission. Their high abundance at redshifts of z∼6−8 and decline at lower redshifts suggest a transient origin. We propose that the spectral shape of LRDs originates from compact binary black hole systems, where each black hole is surrounded by a mini-disk and embedded in a larger circum-binary disk. With a binary separation of ≲103 Schwarzschild radii, the Wien tail of a T≃5000K blackbody spectrum at the inner edge of the circum-binary disk produces the red optical emission, while the mini-disks power the UV continuum. Binary torques carve out a gap between the circum-binary disk and mini-disks, setting the turnover wavelength of the v-shaped spectrum around the Balmer limit. This scenario naturally reproduces LRD spectra requiring only modest dust attenuation (AV≲1 mag), resolving overestimated luminosities for LRDs in previous studies and alleviating a tension with the so-called Soltan argument. This model predicts a distinct spectral evolution as the binary orbit decays through binary-disk interactions and gravitational waves (GWs), linking early-stage "proto-LRD" binaries to the broader AGN population and late-stage "LRD-descendants" to coalescing binaries detectable in GW experiments.
@article{arxiv.2505.05322,
title = {The Emergence of Little Red Dots from Binary Massive Black Holes},
author = {Kohei Inayoshi and Jinyi Shangguan and Xian Chen and Luis C. Ho and Zoltan Haiman},
journal= {arXiv preprint arXiv:2505.05322},
year = {2026}
}
Comments
19 pages, 8 figures, accepted for publication in ApJ. An analytical expression for the gas-attenuation transmission curve is provided for modeling LRD spectra