Recoiling Black Holes I. Burst of Observables
Erwan Hochart, Simon Portegies Zwart
Abstract
We aim to investigate the tidal disruption and gravitational wave events shortly after a massive black hole binary merges in the galactic centre and whose remnant black hole is ejected from the galaxy. Using computational methods, black holes of mass M=105 M and 4×105 M embedded in a nuclear star cluster are kicked at velocities of vk=300 and 600 km s-1. Systems are integrated for 0.1 Myr using a 4th-order Hermite scheme. The kick instantaneously repopulates the loss cone, producing a strong burst of tidal disruption events and gravitational wave mergers. The anisotropy in the apsidal orientation of bound stars prolongs this burst phase. Rates increase for lower vk, larger M and for steeper nuclear star cluster density profiles at moment of merger. Assuming binary black holes scour a Bahcall-Wolf density profile during coalescence, ejected remnants with mass between 105≤ M [M] ≤ 4×105 generate observable offset events at a forecasted rate of N290 yr-1 up to redshift z=3. If, at the moment of merger, the milliparsec scales of the nuclear star cluster are described by a shallow density profile (γ=1), this decreases to N30 yr-1. The strong dependence on the initial density profile and recoil kick makes observables powerful probes of the nuclear star cluster post-massive black hole binary coalescence, and provides test for numerical relativity.
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