Distinguishing binary black hole precessional morphologies with gravitational wave observations
arXiv:2301.10125 · doi:10.1103/PhysRevD.108.103003 10.1103/PhysRevD.109.129903
Abstract
The precessional motion of binary black holes can be classified into one of three morphologies, based on the evolution of the angle between the components of the spins in the orbital plane: Circulating, librating around 0, and librating around . These different morphologies can be related to the binary's formation channel and are imprinted in the binary's gravitational wave signal. In this paper, we develop a Bayesian model selection method to determine the preferred spin morphology of a detected binary black hole. The method involves a fast calculation of the morphology which allows us to restrict to a specific morphology in the Bayesian stochastic sampling. We investigate the prospects for distinguishing between the different morphologies using gravitational waves in the Advanced LIGO/Advanced Virgo network with their plus-era sensitivities. For this, we consider fiducial high- and low-mass binaries having different spin magnitudes and signal-to-noise ratios (SNRs). We find that in the cases with high spin and high SNR, the true morphology is strongly favored with Bayes factors compared to both alternative morphologies when the binary's parameters are not close to the boundary between morphologies. However, when the binary parameters are close to the boundary between morphologies, only one alternative morphology is strongly disfavored. In the low-spin, high-SNR cases, the true morphology is still favored with a Bayes factor compared to one alternative morphology. We also consider the gravitational wave signal from GW200129_065458 that has some evidence for precession (modulo data quality issues) and find that there is no preference for a specific morphology. Our method for restricting the prior to a given morphology is publicly available through an easy-to-use Python package called bbh_spin_morphology_prior. (Abridged)
14 pages, 5 figures, version accepted by PRD, including the correction from the erratum
References in corpus (41)
- Array Programming with NumPy
- Advanced Virgo: a 2nd generation interferometric gravitational wave detector
- Advanced LIGO
- GWTC-2: Compact Binary Coalescences Observed by LIGO and Virgo During the First Half of the Third Observing Run
- GW170608: Observation of a 19-solar-mass Binary Black Hole Coalescence
- Robust parameter estimation for compact binaries with ground-based gravitational-wave observations using the LALInference software library
- GW190412: Observation of a Binary-Black-Hole Coalescence with Asymmetric Masses
- Computationally efficient models for the dominant and sub-dominant harmonic modes of precessing binary black holes
- Bayesian inference for compact binary coalescences with BILBY: Validation and application to the first LIGO--Virgo gravitational-wave transient catalogue
- Illuminating Black Hole Binary Formation Channels with Spins in Advanced LIGO
- Open data from the third observing run of LIGO, Virgo, KAGRA and GEO
- Multipolar Effective-One-Body Waveforms for Precessing Binary Black Holes: Construction and Validation
- Analysis of spin precession in binary black hole systems including quadrupole-monopole interaction
- 4-OGC: Catalog of gravitational waves from compact-binary mergers
- New binary black hole mergers in the LIGO--Virgo O3a data
- Next-to-next-to-leading order spin-orbit effects in the near-zone metric and precession equations of compact binaries
- Gravitational-Wave Astronomy with Inspiral Signals of Spinning Compact-Object Binaries
- Effective potentials and morphological transitions for binary black-hole spin precession
- Parameter estimation of spinning binary inspirals using Markov-chain Monte Carlo
- General-relativistic precession in a black-hole binary
- PESummary: the code agnostic Parameter Estimation Summary page builder
- Relativistic Suppression of Black Hole Recoils
- The curious case of GW200129: interplay between spin-precession inference and data-quality issues
- Formation channels of single and binary stellar-mass black holes
- Final spins from the merger of precessing binary black holes
- Subtracting glitches from gravitational-wave detector data during the third observing run
- A Bayesian approach to the follow-up of candidate gravitational wave signals
- Effects of post-Newtonian Spin Alignment on the Distribution of Black-Hole Recoils
- Measuring precession in asymmetric compact binaries
- Measuring the spins of heavy binary black holes
- Measuring binary black hole orbital-plane spin orientations
- A more effective coordinate system for parameter estimation of precessing compact binaries from gravitational waves
- Interplay of spin-precession and higher harmonics in the parameter estimation of binary black holes
- Efficient multi-timescale dynamics of precessing black-hole binaries
- Population inference of spin-induced quadrupole moments as a probe for non-black hole compact binaries
- Inferring spin tilts at formation from gravitational wave observations of binary black holes: Interfacing precession-averaged and orbit-averaged spin evolution
- On the equal-mass limit of precessing black-hole binaries
- Hints of spin-orbit resonances in the binary black hole population
- Constraining black-hole binary spin precession and nutation with sequential prior conditioning
- Prospects for measuring off-axis spins of binary black holes with Plus-era gravitational-wave detectors
- Evidence of large recoil velocity from a black hole merger signal
Cited by in corpus (4)
- Systematic Biases in Estimating the Properties of Black Holes Due to Inaccurate Gravitational-Wave Models
- Can we discern millilensed gravitational-wave signals from signals produced by precessing binary black holes with ground-based detectors?
- Inferring spin tilts of binary black holes at formation with plus-era gravitational wave detectors
- Probing Spin-Orbit Resonances with the Binary Black Hole Population