Biases in estimates of black hole kicks from the spin distribution of binary black holes
arXiv:2202.03584 · doi:10.3847/2041-8213/ac5252
Abstract
A population of more than 50 binary black hole mergers has now been observed by the LIGO and Virgo gravitational-wave observatories. While neutron stars are known to have large velocities associated with impulsive kicks imparted to them at birth in supernovae, whether black holes receive similar kicks, and of what magnitude, remains an open question. Recently, Callister et al. (2021) analysed the binary black hole population under the hypothesis that they were all formed through isolated binary evolution and claimed that large black hole kicks (greater than 260 km/s at 99% confidence) were required for the spin distribution of merging binary black holes to match observations. Here we highlight that a key assumption made by Callister et al. (2021) -- that all secondary black holes can be tidally spun up -- is not motivated by physical models, and may lead to a bias in their estimate of the magnitudes of black hole kicks. We make only minor changes to the Callister et al. (2021) model, accounting for a population of wider merging binaries where tidal synchronisation is ineffective. We show that this naturally produces a bimodal spin distribution for secondary black holes, and that the spin-orbit misalignments observed in the binary black hole population can be explained by more typical black hole kicks of order 100 km/s, consistent with kicks inferred from Galactic X-ray binaries containing black holes. We conclude that the majority of the binary black hole population is consistent with forming through isolated binary evolution.
8 pages, 3 figures, accepted for publication in ApJ Letters
References in corpus (23)
- Advanced Virgo: a 2nd generation interferometric gravitational wave detector
- Advanced LIGO
- GW190814: Gravitational Waves from the Coalescence of a 23 M Black Hole with a 2.6 M Compact Object
- GW190521: A Binary Black Hole Merger with a Total Mass of
- Properties and astrophysical implications of the 150 Msun binary black hole merger GW190521
- Slowing the Spins of Stellar Cores
- Illuminating Black Hole Binary Formation Channels with Spins in Advanced LIGO
- One Channel to Rule Them All? Constraining the Origins of Binary Black Holes using Multiple Formation Pathways
- Distinguishing Spin-Aligned and Isotropic Black Hole Populations With Gravitational Waves
- Investigating stellar-mass black hole kicks
- GWTC-2.1: Deep Extended Catalog of Compact Binary Coalescences Observed by LIGO and Virgo During the First Half of the Third Observing Run
- Neutron star kicks by the gravitational tug-boat mechanism in asymmetric supernova explosions: progenitor and explosion dependence
- Simple recipes for compact remnant masses and natal kicks
- Distribution of Effective Spins and Masses of Binary Black Holes from the LIGO and Virgo O1-O3a Observing Runs
- Black hole formation and fallback during the supernova explosion of a star
- Gamma-Ray Bursts from tidally spun-up Wolf-Rayet stars?
- The Galactic distribution of X-ray binaries and its implications for compact object formation and natal kicks
- Building better spin models for merging binary black holes: Evidence for non-spinning and rapidly spinning nearly aligned sub-populations
- The impact of common envelope development criteria on the formation of LIGO/Virgo sources
- Evolution of accretor stars in massive binaries: broader implications from modeling ζ Ophiuchi
- The implications of high BH spins on the origin of BH-BH mergers
- Wind mass-loss rates of stripped stars inferred from Cygnus X-1
- Machine-learning interpolation of population-synthesis simulations to interpret gravitational-wave observations: a case study
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- No evidence that the majority of black holes in binaries have zero spin
- The population properties of spinning black holes using Gravitational-wave Transient Catalog 3
- The correlation of field binary black hole mergers and how 3G gravitational-wave detectors can constrain it
- Constraints on the contributions to the observed binary black hole population from individual evolutionary pathways in isolated binary evolution
- Stable mass transfer can explain massive binary black hole mergers with a high spin component
- Which black hole is spinning? Probing the origin of black-hole spin with gravitational waves
- Classifying binary black holes from Population III stars with the Einstein Telescope: A machine-learning approach
- Impact of tides on non-coplanar orbits of progenitors of high-mass X-ray binaries
- Constraining Black Hole Natal Kicks with Astrometric Microlensing
- Signatures of spin precession and nutation in isolated black-hole binaries