Impact of Massive Binary Star and Cosmic Evolution on Gravitational Wave Observations II: Double Compact Object Rates and Properties
arXiv:2112.05763 · doi:10.1093/mnras/stac1677
Abstract
Making the most of the rapidly increasing population of gravitational-wave detections of black hole (BH) and neutron star (NS) mergers requires comparing observations with population synthesis predictions. In this work we investigate the combined impact from the key uncertainties in population synthesis modelling of the isolated binary evolution channel: the physical processes in massive binary-star evolution and the star formation history as a function of metallicity, , and redshift . Considering these uncertainties we create 560 different publicly available model realizations and calculate the rate and distribution characteristics of detectable BHBH, BHNS, and NSNS mergers. We find that our stellar evolution and variations can impact the predicted intrinsic and detectable merger rates by factors -. We find that BHBH rates are dominantly impacted by variations, NSNS rates by stellar evolution variations and BHNS rates by both. We then consider the combined impact from all uncertainties considered in this work on the detectable mass distribution shapes (chirp mass, individual masses and mass ratio). We find that the BHNS mass distributions are predominantly impacted by massive binary-star evolution changes. For BHBH and NSNS we find that both uncertainties are important. We also find that the shape of the delay time and birth metallicity distributions are typically dominated by the choice of for BHBH, BHNS and NSNS. We identify several examples of robust features in the mass distributions predicted by all 560 models, such that we expect more than 95% of BHBH detections to contain a BH and have mass ratios . Our work demonstrates that it is essential to consider a wide range of allowed models to study double compact object merger rates and properties.
25 pages of which 12 are (rainbow) figures. Main results: Fig 2, 4, 5 and 6. Code/results publicly available at https://github.com/FloorBroekgaarden/Double-Compact-Object-Mergers. Comments welcome
References in corpus (58)
- Array Programming with NumPy
- GW170817: Observation of Gravitational Waves from a Binary Neutron Star Inspiral
- Advanced Virgo: a 2nd generation interferometric gravitational wave detector
- Cosmic Star Formation History
- Advanced LIGO
- GW190814: Gravitational Waves from the Coalescence of a 23 M Black Hole with a 2.6 M Compact Object
- Observation of gravitational waves from two neutron star-black hole coalescences
- Pulsational Pair-Instability Supernovae
- Formation of Double Neutron Star Systems
- Properties and astrophysical implications of the 150 Msun binary black hole merger GW190521
- Double Compact Objects III: Gravitational Wave Detection Rates
- Mind the gap: The location of the lower edge of the pair instability supernovae black hole mass gap
- Very massive stars, pair-instability supernovae and intermediate-mass black holes with the SEVN code
- One Channel to Rule Them All? Constraining the Origins of Binary Black Holes using Multiple Formation Pathways
- Merging black hole binaries: the effects of progenitor's metallicity, mass-loss rate and Eddington factor
- Double neutron stars: merger rates revisited
- The Pair-Instability Mass Gap for Black Holes
- The cosmic merger rate of stellar black hole binaries from the Illustris simulation
- The cosmic merger rate density of compact objects: impact of star formation, metallicity, initial mass function and binary evolution
- The role of mass transfer and common envelope evolution in the formation of merging binary black holes
- Searching for a subpopulation of primordial black holes in LIGO/Virgo gravitational-wave data
- On the nature of massive helium star winds and Wolf-Rayet-type mass loss
- Formation of GW190521 from stellar evolution: the impact of the hydrogen-rich envelope, dredge-up and C(, )O rate on the pair-instability black hole mass gap
- Impact of Massive Binary Star and Cosmic Evolution on Gravitational Wave Observations I: Black Hole-Neutron Star Mergers
- The impact of mass-transfer physics on the observable properties of field binary black hole populations
- Evidence for hierarchical black hole mergers in the second LIGO--Virgo gravitational-wave catalog
- The redshift evolution of the binary black hole merger rate: a weighty matter
- Exploring the Lower Mass Gap and Unequal Mass Regime in Compact Binary Evolution
- Constraining mixing in massive stars in the Small Magellanic Cloud
- The Galactic WN stars revisited. Impact of Gaia distances on fundamental stellar parameters
- Binary Population Synthesis
- Evolution of Mass Functions of Coeval Stars through Wind Mass Loss and Binary Interactions
- Winds from stripped low-mass Helium stars and Wolf-Rayet stars
- Ultra-luminous X-ray sources and neutron-star-black-hole mergers from very massive close binaries at low metallicity
- Probing multiple populations of compact binaries with third-generation gravitational-wave detectors
- Observing intermediate-mass black holes and the upper--stellar-mass gap with LIGO and Virgo
- Massive Stellar Triples Leading to Sequential Binary Black-Hole Mergers in the Field
- The impact of common envelope development criteria on the formation of LIGO/Virgo sources
- Formation channels of single and binary stellar-mass black holes
- Common envelopes in massive stars: Towards the role of radiation pressure and recombination energy in ejecting red supergiant envelopes
- On the formation of GW190814
- The Uncertain Future of Massive Binaries Obscures the Origin of LIGO/Virgo Sources
- Modelling Neutron Star-Black Hole Binaries: Future Pulsar Surveys and Gravitational Wave Detectors
- Distance and properties of NGC 4993 as the host galaxy of a gravitational wave source, GW170817
- Merger rate density of binary black holes through isolated Population I, II, III and extremely metal-poor binary star evolution
- Dependence of Gravitational Wave Transient Rates on Cosmic Star Formation and Metallicity Evolution History
- Black hole-neutron star mergers are unlikely multi-messenger sources
- The time delay distribution and formation metallicity of LIGO-Virgo's binary black holes
- Formation and Evolution of Binary Neutron Stars: Mergers and Their Host Galaxies
- The fates of massive stars: exploring uncertainties in stellar evolution with METISSE
- Evolution of Galaxy Star Formation and Metallicity: Impact on Double Compact Objects Mergers
- Flexible and Fast Estimation of Binary Merger Population Distributions with Adaptive KDE
- Measuring the delay time distribution of binary neutron stars. II. Using the redshift distribution from third-generation gravitational wave detectors network
- The role of core-collapse physics in the observability of black-hole neutron-star mergers as multi-messenger sources
- Exploring compact binary merger host galaxies and environments with
- The impact of the FMR and starburst galaxies on the (low-metallicity) cosmic star formation history
- Dynamical formation of the GW190814 merger
- Formation of the First Two Black Hole-Neutron Star Mergers (GW200115 and GW200105) from Isolated Binary Evolution