The Formation and Gravitational-Wave Detection of Massive Stellar Black-Hole Binaries
arXiv:1403.0677 · doi:10.1088/0004-637X/789/2/120
Abstract
If binaries consisting of two 100 Msun black holes exist they would serve as extraordinarily powerful gravitational-wave sources, detectable to redshifts of z=2 with the advanced LIGO/Virgo ground-based detectors. Large uncertainties about the evolution of massive stars preclude definitive rate predictions for mergers of these massive black holes. We show that rates as high as hundreds of detections per year, or as low as no detections whatsoever, are both possible. It was thought that the only way to produce these massive binaries was via dynamical interactions in dense stellar systems. This view has been challenged by the recent discovery of several stars with mass above 150 Msun in the R136 region of the Large Magellanic Cloud. Current models predict that when stars of this mass leave the main sequence, their expansion is insufficient to allow common envelope evolution to efficiently reduce the orbital separation. The resulting black-hole--black-hole binary remains too wide to be able to coalesce within a Hubble time. If this assessment is correct, isolated very massive binaries do not evolve to be gravitational-wave sources. However, other formation channels exist. For example, the high multiplicity of massive stars, and their common formation in relatively dense stellar associations, opens up dynamical channels for massive black hole mergers (e.g., via Kozai cycles or repeated binary-single interactions). We identify key physical factors that shape the population of very massive black-hole--black-hole binaries. Advanced gravitational-wave detectors will provide important constraints on the formation and evolution of very massive stars.
ApJ accepted, extended description of modeling
References in corpus (15)
- Theory of Star Formation
- Binary interaction dominates the evolution of massive stars
- LIGO: The Laser Interferometer Gravitational-Wave Observatory
- Pulsational pair instability as an explanation for the most luminous supernovae
- Intermediate and Extreme Mass-Ratio Inspirals -- Astrophysics, Science Applications and Detection using LISA
- The R136 star cluster hosts several stars whose individual masses greatly exceed the accepted 150 Msun stellar mass limit
- The evolution of runaway stellar collision products
- Host Galaxies Catalog Used in LIGO Searches for Compact Binary Coalescence Events
- The Cosmic Evolution of Metallicity from the SDSS Fossil Record
- Super-luminous supernovae at redshifts of 2.05 and 3.90
- Gravitational-Wave Astronomy with Inspiral Signals of Spinning Compact-Object Binaries
- Observing IMBH-IMBH Binary Coalescences via Gravitational Radiation
- The BANANA project. V. Misaligned and precessing stellar rotation axes in CV Velorum
- R144 revealed as a double-lined spectroscopic binary
- The central density of R136 in 30 Doradus
Cited by in corpus (29)
- Double Compact Objects III: Gravitational Wave Detection Rates
- The Effect of Pair-Instability Mass Loss on Black Hole Mergers
- Gravitational wave searches for ultralight bosons with LIGO and LISA
- A Highly Spinning and Aligned Binary Black Hole Merger in the Advanced LIGO First Observing Run
- Where are LIGO's Big Black Holes?
- Upper limits on the rates of binary neutron star and neutron-star--black-hole mergers from Advanced LIGO's first observing run
- Effective-one-body multipolar waveforms for eccentric binary black holes with non-precessing spins
- Exploring the Lower Mass Gap and Unequal Mass Regime in Compact Binary Evolution
- The impact of stellar rotation on the black hole mass-gap from pair-instability supernovae
- Dynamical Formation of Low-Mass Merging Black Hole Binaries like GW151226
- Constraints on Core Collapse from the Black Hole Mass Function
- Localization of short duration gravitational-wave transients with the early advanced LIGO and Virgo detectors
- Accurate waveforms for eccentric, aligned-spin binary black holes: The multipolar effective-one-body model SEOBNRv5EHM
- The Detection Rates of Merging Binary Black Holes Originating from Star Clusters and Their Mass Function
- Was GW190412 born from a hierarchical 3+1 quadruple configuration?
- X-ray emission from BH+O star binaries expected to descend from the observed galactic WR+O binaries
- Third post-Newtonian dynamics for eccentric orbits and aligned spins in the effective-one-body waveform model SEOBNRv5EHM
- Observational implications of cosmologically coupled black holes
- An upper limit on the spins of merging binary black holes formed through binary evolution
- Rarity of precession and higher-order multipoles in gravitational waves from merging binary black holes
- Host galaxy identification for binary black hole mergers with long baseline gravitational wave detectors
- Gravitational wave cosmology and astrophysics with large spectroscopic galaxy surveys
- Gravitational wave spectral synthesis
- Prospects for intermediate mass black hole binary searches with advanced gravitational-wave detectors
- Astrophysics with the Laser Interferometer Space Antenna
- Waging a Campaign: Results from an Injection-Recovery Study involving 35 numerical Relativity Simulations and three Waveform Models
- DULAG: A DUal and Lensed AGN candidate catalog with GMP method
- Inferring the spin distribution of binary black holes using deep learning
- Search for Precessing Binary Black Holes in Advanced LIGO's Third Observing Run using Harmonic Decomposition