Pathways for producing binary black holes with large misaligned spins in the isolated formation channel
arXiv:2010.00078 · doi:10.1103/PhysRevD.103.063032
Abstract
Binary black holes (BBHs) can form from the collapsed cores of isolated high-mass binary stars. The masses and spins of these BBHs are determined by the complicated interplay of phenomena such as tides, winds, accretion, common-envelope evolution (CEE), supernova natal kicks, and stellar core-envelope coupling. The gravitational waves emitted during the mergers of BBHs depend on their masses and spins and can thus constrain these phenomena. We present a simplified model of binary stellar evolution and identify regions of the parameter space that produce BBHs with large spins misaligned with their orbital angular momentum. In Scenario A (B) of our model, stable mass transfer (SMT) occurs after Roche-lobe overflow (RLOF) of the more (less) massive star, while CEE follows RLOF of the less (more) massive star. Each scenario is further divided into Pathways 1 and 2 depending on whether the core of the more massive star collapses before or after RLOF of the less massive star, respectively. If the stellar cores are coupled weakly to their envelopes, highly spinning BBHs can be produced if natal spins greater than of the breakup value are inherited from the stellar progenitors. BBHs can alternatively acquire large spins by tidal synchronization during the Wolf-Rayet stage in Scenario A or by accretion onto the initially more massive star during SMT in Scenario B. BBH spins can be highly misaligned if the kicks are comparable to the orbital velocity, which is more easily achieved in Pathway A1 where the kick of the more massive star precedes CEE.
30 pages, 19 figures, submitted to PRD
References in corpus (31)
- Binary interaction dominates the evolution of massive stars
- GW190521: A Binary Black Hole Merger with a Total Mass of
- Exploring the Sensitivity of Next Generation Gravitational Wave Detectors
- Physical Properties of Wolf-Rayet Stars
- The R136 star cluster hosts several stars whose individual masses greatly exceed the accepted 150 Msun stellar mass limit
- The Evolution of Compact Binary Star Systems
- Towards models of gravitational waveforms from generic binaries II: Modelling precession effects with a single effective precession parameter
- The Effect of Pair-Instability Mass Loss on Black Hole Mergers
- Illuminating Black Hole Binary Formation Channels with Spins in Advanced LIGO
- Analysis of spin precession in binary black hole systems including quadrupole-monopole interaction
- Distinguishing Spin-Aligned and Isotropic Black Hole Populations With Gravitational Waves
- Investigating stellar-mass black hole kicks
- Tidal dissipation in binary systems
- Constraining stellar binary black hole formation scenarios with eLISA eccentricity measurements
- Effective potentials and morphological transitions for binary black-hole spin precession
- Towards a better understanding of the evolution of Wolf-Rayet stars and Type Ib/Ic supernova progenitors
- Asymmetric Accretion Flows within a Common Envelope
- Black Hole Spin Evolution: Implications for Short-hard Gamma Ray Bursts and Gravitational Wave Detection
- Winds from stripped low-mass Helium stars and Wolf-Rayet stars
- The Turbulent Origin of Outflow and Spin Misalignment in Multiple Star Systems
- Revealing black holes with Gaia
- Relativistic Suppression of Black Hole Recoils
- Spin alignment of stars in old open clusters
- Final spins from the merger of precessing binary black holes
- You Can't Always Get What You Want: The Impact of Prior Assumptions on Interpreting GW190412
- Observational properties of massive black hole binary progenitors
- Machine-learning interpolation of population-synthesis simulations to interpret gravitational-wave observations: a case study
- Core-Envelope Coupling in Intermediate-Mass Core-Helium Burning Stars
- Accretion Feedback from newly-formed black holes and its implications for LIGO Sources
- Rapidly rotating neutron star progenitors
- Are the observed black hole mergers spins consistent with field binary progenitors?
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- GWTC-3: Compact Binary Coalescences Observed by LIGO and Virgo During the Second Part of the Third Observing Run
- Hierarchical mergers of stellar-mass black holes and their gravitational-wave signatures
- The redshift evolution of the binary black hole merger rate: a weighty matter
- General-relativistic precession in a black-hole binary
- Binary Black Hole Mergers from LIGO/Virgo O1 and O2: Population Inference Combining Confident and Marginal Events
- Suspicious Siblings: The Distribution of Mass and Spin Across Component Black Holes in Isolated Binary Evolution
- No evidence that the majority of black holes in binaries have zero spin
- State of the field: Binary black hole natal kicks and prospects for isolated field formation after GWTC-2
- Deep learning and Bayesian inference of gravitational-wave populations: Hierarchical black-hole mergers
- Compact Binary Coalescences: Astrophysical Processes and Lessons Learned
- Flipping spins in mass transferring binaries and origin of spin-orbit misalignment in binary black holes
- Looking for the parents of LIGO's black holes
- Constraints on compact binary merger evolution from spin-orbit misalignment in gravitational-wave observations
- Efficient multi-timescale dynamics of precessing black-hole binaries
- Measurability of precession and eccentricity for heavy binary-black-hole mergers
- Residual eccentricity as a systematic uncertainty on the formation channels of binary black holes
- Gravitational waves carry information beyond effective spin parameters but it is hard to extract
- Spin-eccentricity interplay in merging binary black holes
- Biases in estimates of black hole kicks from the spin distribution of binary black holes
- A taxonomy of black-hole binary spin precession and nutation
- Mapping eccentricity evolutions between numerical relativity and effective-one-body gravitational waveforms
- Exploring field-evolution and dynamical-capture coalescing binary black holes in GWTC-3
- One to many: comparing single gravitational-wave events to astrophysical populations
- Rarity of precession and higher-order multipoles in gravitational waves from merging binary black holes
- Constraining black-hole binary spin precession and nutation with sequential prior conditioning
- GPU-accelerated LISA parameter estimation with full time domain response
- Eccentricity matters: Impact of eccentricity on inferred binary black hole populations
- Distinguishing the Origin of Eccentric Black Hole Mergers with Gravitational-wave Spin Measurements
- Merging Black Holes: Assessing the Performance of Two Analytic Gravitational Waves Models
- Gravitational-wave bursts from spin-precessing black holes in binary systems
- Reducing systematic uncertainties in gravitational-wave population analyses by increasing the detection threshold
- Which black hole formed first? Mass-ratio reversal in massive binary stars from gravitational-wave data
- Signatures of spin precession and nutation in isolated black-hole binaries
- Measuring spin precession from massive black hole binaries with gravitational waves: insights from time-domain signal morphology