Active Galactic Nucleus Tori: Potential Birthplace to Millions of Planets
Bhupendra Mishra, Wladimir Lyra, Barry McKernan, Mordecai-Mark Mac Low, K. E. Saavik Ford, Harrison E. Cook
astro-ph.EP, astro-ph.GA, astro-ph.HE, astro-ph.SR
Submitted: 2026-05-19
Comments: accepted in ApJ
License: http://creativecommons.org/licenses/by/4.0/
The gist: The outer regions of AGN disks have temperatures similar to those of circumstellar disks, permitting dust condensation.
Terminology
Abstract
The outer regions of AGN disks have temperatures similar to those of circumstellar disks, permitting dust condensation. Therefore, planet formation and growth could be active in these dust tori through similar mechanisms. We aim at quantifying the parameter space for the occurrence of streaming instability, and its outcomes in terms of the masses of the objects formed, their total number, and their continued growth via pebble accretion. We use a a recently proposed disk model with strong magnetization to keep the disk gravitationally stable. We find that the dust grain sizes required for streaming instability are easily attained through coagulation; the dust filaments it produces can contain solar masses, collapsing into tens of millions of planetesimals ranging from Earth to super-Jupiter masses. These planets are usually born in the 3D Bondi regime of pebble accretion, and have mass-doubling times from 10 cubed to 10 7 yrs, though 3D Hill and geometric accretion are also realized. Gas accretion occurs concurrently, and crossover mass can be attained while still in the planetary mass range. As a result, vigorous accretion can occur, leading to objects with stellar masses - defining a core accretion channel for star formation. The pebble isolation mass is beyond the hydrogen burning limit, so accretion is limited by stellar feedback instead of gap carving. We also predict a population of exotic objects directly formed above the hydrogen burning limit, yet of pure dust. Our model suggests that AGN dust tori host the largest populations of planets in the universe.
Sources
- Using gravitational waves and multi-messenger Astronomy to reverse-engineer the properties of galactic nuclei
- Magnetic Pressure Dominance Stabilizes AGN Disks Against Gravitational Instability
- Hydro-, Magnetohydro-, and Dust-Gas Dynamics of Protoplanetary Disks
- An Analytical Theory for the Growth from Planetesimals to Planets by Polydisperse Pebble Accretion
- Pair-instability evolution and explosions in massive stars
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