AGN-driven BBH mergers: Black hole populations and hierarchical growth across the AGN parameter space
astro-ph.GA, astro-ph.CO, astro-ph.HE
Submitted: 2026-06-09
Updated: 2026-08-26
Comments: 21 pages, 15 figures
License: http://creativecommons.org/licenses/by/4.0/
The gist: Active galactic nuclei (AGNs) have been proposed as efficient environments for the formation of binary black holes (BBHs).
Terminology
Abstract
Active galactic nuclei (AGNs) have been proposed as efficient environments for the formation of binary black holes (BBHs). We present an updated semi-analytical framework for BBH formation and evolution in AGN disks, following the capture, migration, pair-up, gas-driven hardening, binary--single encounters, and merger of stellar-origin black holes. We systematically explore the dependence of the resulting BBH merger population on the main AGN parameters, namely the supermassive black hole mass M, the Eddington ratio λ, and the disk viscosity parameter α, and construct an intrinsic BBH population by weighting the simulations according to observed low-redshift AGN properties. We find that AGN disks can produce repeated mergers and build a high-mass tail extending beyond the pair-instability mass gap and into the intermediate-mass range. Hierarchical growth is more efficient in lower-viscosity disks, with α=0.01, while higher-viscosity disks suppress the formation of massive remnants. The merger efficiency generally increases with λ, but its dependence on M is non-trivial. The AGN-assisted BBH population is characterized by increasingly unequal mass ratios at high primary mass, a correlation between primary mass and χ eff, and an effective-spin distribution that depends strongly on the fraction of binaries born in prograde or retrograde configurations. We find that the AGN channel can reproduce systems broadly consistent with the massive BBH events GW190521 and GW231123. We test several variations of the physical model, including different formalisms for migration torques, gas hardening, and three-body encounters. The general properties of the population are robust across these variations, with the high-mass tail and spin signatures persisting in all cases except when gas hardening is switched off.
Sources
- GWTC-5.0: Observations from the Second Part of the Fourth LIGO-Virgo-KAGRA Observing Run and Updates to the Gravitational-Wave Transient Catalog
- GWTC-4.0: Population Properties of Merging Compact Binaries
- GWTC-4.0: Updating the Gravitational-Wave Transient Catalog with Observations from the First Part of the Fourth LIGO-Virgo-KAGRA Observing Run
- Isolated or Dynamical? Tracing Black Hole Binary Formation through the Population of Gravitational-Wave Sources
- McFACTS II: Mass Ratio--Effective Spin Relationship of Black Hole Mergers in the AGN Channel
- McFacts III: Compact binary mergers from AGN disks over an entire synthetic universe
- The Multiple Paths to Merger of Unequal-Mass Black Hole Binaries in the Disks of Active Galactic Nuclei
- Mean Motion Resonances in AGN Disks
- McFACTS I: Testing the LVK AGN channel with Monte Carlo For AGN Channel Testing & Simulation (McFACTS)
- McFACTS. IV. Electromagnetic Counterparts to AGN-disk-embedded Binary Black Hole Mergers
- Probing the Formation Environment of Strongly Lensed Black Hole Mergers: Implications for the AGN-disk Channel
- Electromagnetic Flares from Compact-Object Mergers in AGN Disks: Signatures and Predictions
- Properties of black hole mergers in disks of active galactic nuclei
- What Determines the Maximum Mass of AGN-assisted Black Hole Mergers?
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