Suppressed accretion onto massive black hole binaries surrounded by thin disks

Tiede C, Zrake J, Macfadyen A, Haiman Z. 2025. Suppressed accretion onto massive black hole binaries surrounded by thin disks. Astrophysical Journal. 984(2), 144.

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Author
Tiede, Christopher; Zrake, Jonathan; Macfadyen, Andrew; Haiman, ZoltánISTA
Department
Abstract
We demonstrate that gas disks around binary systems might deliver gas to the binary components only when the circumbinary disk is relatively warm. We present new grid-based hydrodynamics simulations, performed with the binary on the grid and a locally isothermal equation of state, in which the binary is seen to functionally "stop accreting" if the orbital Mach number in the disk exceeds a threshold value of about 40. Above this threshold, the disk continues to extract angular momentum from the binary orbit, but it delivers very little mass to the black holes and instead piles up mass in a ring surrounding the binary. This ring will eventually become viscously relaxed and deliver mass to the binary at the large-scale inflow rate. However, we show that the timescale for such relaxation can far exceed the implied binary lifetime. We demonstrate that the ability of a binary–disk system to equilibrate is dependent on the efficiency at which accretion streams deposit mass onto the binary, which, in turn is highly sensitive to the thermodynamic conditions of the inner disk. If disks around massive black hole binaries do operate in such nonaccreting regimes, it suggests these systems may be dimmer than their single black hole counterparts but could exhibit dramatic rebrightening after the black holes inspiral and merge. This dimming begins in the UV/optical and could completely choke high-energy emission, such that these systems would likely be intrinsically X-ray weak with reddened continua, potentially resembling the spectra of "little red dots" recently identified in JWST observations.
Publishing Year
Date Published
2025-05-09
Journal Title
Astrophysical Journal
Publisher
IOP Publishing
Acknowledgement
C.T. sincerely thanks Daniel J. D'Orazio for useful and illuminating discussions. This work was supported by the European Union's Horizon 2023 research and innovation program under Marie Sklodowska-Curie grant agreement No. 101148364, by Sapere Aude Starting grant No. 121587 through the Danish Independent Research Fund, by the LISA Preparatory Science Program (LPS) through NASA grant 80NSSC24K0440, and by NASA Astrophysics Theory Program (ATP) grant 80NSSC22K0822. Computation time for this work was supported through the NYU IT High Performance Computing resources as well as the Tycho supercomputer hosted at the SCIENCE HPC center at the University of Copenhagen.
Volume
984
Issue
2
Article Number
144
ISSN
eISSN
IST-REx-ID

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Tiede C, Zrake J, Macfadyen A, Haiman Z. Suppressed accretion onto massive black hole binaries surrounded by thin disks. Astrophysical Journal. 2025;984(2). doi:10.3847/1538-4357/adc727
Tiede, C., Zrake, J., Macfadyen, A., & Haiman, Z. (2025). Suppressed accretion onto massive black hole binaries surrounded by thin disks. Astrophysical Journal. IOP Publishing. https://doi.org/10.3847/1538-4357/adc727
Tiede, Christopher, Jonathan Zrake, Andrew Macfadyen, and Zoltán Haiman. “Suppressed Accretion onto Massive Black Hole Binaries Surrounded by Thin Disks.” Astrophysical Journal. IOP Publishing, 2025. https://doi.org/10.3847/1538-4357/adc727.
C. Tiede, J. Zrake, A. Macfadyen, and Z. Haiman, “Suppressed accretion onto massive black hole binaries surrounded by thin disks,” Astrophysical Journal, vol. 984, no. 2. IOP Publishing, 2025.
Tiede C, Zrake J, Macfadyen A, Haiman Z. 2025. Suppressed accretion onto massive black hole binaries surrounded by thin disks. Astrophysical Journal. 984(2), 144.
Tiede, Christopher, et al. “Suppressed Accretion onto Massive Black Hole Binaries Surrounded by Thin Disks.” Astrophysical Journal, vol. 984, no. 2, 144, IOP Publishing, 2025, doi:10.3847/1538-4357/adc727.
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2025-05-19
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