Optically Thick Outflow Driven by Supercritical Accretion May Explain Little Red Dots
Jun-Rong Liu, Hua Feng, Luis C. Ho
astro-ph.HE, astro-ph.GA
Submitted: 2026-07-20
Comments: Accepted for publication in ApJL
License: http://creativecommons.org/licenses/by/4.0/
The gist: Recent JWST observations have revealed a population of compact, optically red sources known as Little Red Dots (LRDs).
Terminology
Abstract
Recent JWST observations have revealed a population of compact, optically red sources known as Little Red Dots (LRDs). A popular interpretation is that LRDs host massive black holes embedded in dense gaseous envelopes, yet the physical origin of such envelopes remains unclear. We propose that the optically thick outflow driven by supercritical accretion onto black holes may explain the envelope. Based on an analytic radiative hydrodynamic outflow model, we relate the outflow properties to the black hole mass M and dimensionless accretion rate. With M about10 5-10 7,M and m about 1500-5000, the outflow photosphere reaches luminosities of 10 43-10 45, erg,s-1 and temperatures of about 3000-6000 K, effectively matching the red optical continua observed in LRDs. The presence of a thick scattering region beyond the photosphere is central to deciphering the distinctive properties of LRDs. For each object, if one derives M and from the observed luminosity and temperature, while accounting for both kinematic broadening and scattering effects, the model predicts an emission line FWHM consistent with observations within a factor of 1.5 for more than 80% objects. Furthermore, with Cloudy simulations, we find that the partially ionized gas beyond the photosphere produces Balmer breaks broadly consistent with measurements.
Sources
- Spectral Appearance of Self-gravitating Disks Powered by Stellar Objects: Universal Effective Temperature in the Optical Continuum and Application to Little Red Dots
- Little Red Dots as Globular Clusters in Formation
- ABCD: The Nuclear Structure of the Little Red Dots Revealted through Absorption, Break, Continuum, and Decrement
- Little Red Dots host Black Hole Stars: A unified family of gas-reddened AGN revealed by JWST/NIRSpec spectroscopy
- Irony at z=6.68: a bright AGN with forbidden Fe emission and multi-component Balmer absorption
- A Critical Evaluation of the Physical Nature of the Little Red Dots
- An unambiguous AGN and a Balmer break in an Ultraluminous Little Red Dot at z=4.47 from Ultradeep UNCOVER and All the Little Things Spectroscopy
- The GlimmIr: Spectroscopic Variability in a z~7 LRD Indicates Rapid Changes in Both the Narrow and Broad Line Regions
- Synthetic Spectral Library of Optically Thick Atmospheres for Little Red Dots
- The Engine and its Flows: Little Red Dot spectra are shaped by the column densities of their gas envelopes
- A "Black Hole Star" Reveals the Remarkable Gas-Enshrouded Hearts of the Little Red Dots
- Evidence of violation of Case B recombination in Little Red Dots
- Optical Counterparts of Ultraluminous X-Ray Sources
- Evolutionary Tracks and Spectral Properties of Quasi-stars and Their Correlation with Little Red Dots
- Inside the cocoon: a comprehensive explanation of the spectra of Little Red Dots
- Little Red Dot $-$ Host Galaxy $=$ Black Hole Star: A Gas-Enshrouded Heart at the Center of Every Little Red Dot
- You can't see me: Super-Eddington growth hindering X-ray detection in high-z broad-line active galactic nuclei
- Water absorption confirms cool atmospheres in two little red dots
- Little red dots as embryos of active galactic nuclei
- Little Red Dots as self-gravitating discs accreting on supermassive stars: Spectral appearance and formation pathway of the progenitors to direct collapse black holes
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