Formation of counter-rotating and highly eccentric massive black hole binaries in galaxy mergers
arXiv:2101.07266 · doi:10.1093/mnras/stab351
Abstract
Supermassive black hole (SMBH) binaries represent the main target for missions such as the Laser Interferometer Space Antenna and Pulsar Timing Arrays. The understanding of their dynamical evolution prior to coalescence is therefore crucial to improving detection strategies and for the astrophysical interpretation of the gravitational wave data. In this paper, we use high-resolution -body simulations to model the merger of two equal-mass galaxies hosting a central SMBH. In our models, all binaries are initially prograde with respect to the galaxy sense of rotation. But, binaries that form with a high eccentricity, , quickly reverse their sense of rotation and become almost perfectly retrograde at the moment of binary formation. The evolution of these binaries proceeds towards larger eccentricities, as expected for a binary hardening in a counter-rotating stellar distribution. Binaries that form with lower eccentricities remain prograde and at comparatively low eccentricities. We study the origin of the orbital flip by using an analytical model that describes the early stages of binary evolution. This model indicates that the orbital plane flip is due to the torque from the triaxial background mass distribution that naturally arises from the galactic merger process. Our results imply the existence of a population of SMBH binaries with a high eccentricity and could have significant implications for the detection of the gravitational wave signal emitted by these systems.
Accepted in MNRAS
References in corpus (12)
- Laser Interferometer Space Antenna
- Supermassive black hole binaries in gaseous and stellar circumnuclear discs: orbital dynamics and gas accretion
- Interaction of massive black hole binaries with their stellar environment: I. Ejection of hypervelocity stars
- Satellite dynamics on the Laplace surface
- The Effect of Orbital Eccentricity on Gravitational Wave Background Radiation from Supermassive Black Hole Binaries
- Binary super-massive black hole environments diminish the gravitational-wave signal in the pulsar timing band
- Dynamical friction of massive objects in galactic centres
- Formation of the largest galactic cores through binary scouring and gravitational wave recoil
- Galaxy Rotation and Supermassive Black Hole Binary Evolution
- Defeating stochasticity: coalescence timescales of massive black holes in galaxy mergers
- Inward Bound: The incredible journey of massive black holes as they pair and merge; I. The effect of mass ratio in flattened rotating galactic nuclei
- Eccentric Massive Black Hole Binaries in LISA I : The Detection Capabilities of Circular Templates