Merging binary black holes formed through double-core evolution
arXiv:2301.04918 · doi:10.1051/0004-6361/202244712
Abstract
To date, various formation channels of merging events have been heavily explored with the detection of nearly 100 double black hole (BH) merger events reported by the LIGO-Virgo-KAGRA (LVK) Collaboration. We here systematically investigate an alternative formation scenario, i.e., binary BHs (BBHs) formed through double helium stars (hereafter double-core evolution channel). In this scenario, the two helium stars (He-rich stars) could be the outcome of the classical isolated binary evolution scenario involving with and without common-envelope phase (i.e., CE channel and stable mass transfer channel), or alternatively of massive close binaries evolving chemically homogeneously (i.e., CHE channel). We perform detailed stellar structure and binary evolution calculations that take into account internal differential rotation and mass loss of He-rich stars, as well as tidal interactions in binaries. For double He-rich stars with equal masses in binaries, we find that tides start to be at work on the Zero Age Helium Main Sequence (ZAHeMS: the time when a He-rich star starts to burn helium in the core, which is analogous to ZAMS for core hydrogen burning) for initial orbital periods not longer than 1.0 day, depending on the initial metallicities. Besides the stellar mass loss rate and tidal interactions in binaries, we find that the role of the angular momentum transport efficiency in determining the resulting BH spins, becomes stronger when considering BH progenitors originated from a higher metal-metallicity environment. We highlight that double-core evolution scenario does not always produce fast-spinning BBHs and compare the properties of the BBHs reported from the LVK with our modeling.
16 pages, 14 figures, accepted in A&A
References in corpus (27)
- Modules for Experiments in Stellar Astrophysics (MESA)
- Modules for Experiments in Stellar Astrophysics (MESA): Pulsating Variable Stars, Rotation, Convective Boundaries, and Energy Conservation
- GW190521: A Binary Black Hole Merger with a Total Mass of
- The Evolution of Compact Binary Star Systems
- Double Compact Objects III: Gravitational Wave Detection Rates
- Slowing the Spins of Stellar Cores
- 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
- On magnetic instabilities and dynamo action in stellar radiation zones
- White dwarf spins from low mass stellar evolution models
- Implications of the metallicity dependence of Wolf-Rayet winds
- Exploring the Lower Mass Gap and Unequal Mass Regime in Compact Binary Evolution
- Polluting the pair-instability mass gap for binary black holes through super-Eddington accretion in isolated binaries
- Black Hole Spin Evolution: Implications for Short-hard Gamma Ray Bursts and Gravitational Wave Detection
- An X-ray quiet black hole born with a negligible kick in a massive binary within the Large Magellanic Cloud
- Double-core evolution and the formation of neutron-star binaries with compact companions
- Binary black hole mergers: formation and populations
- Asteroseismology of evolved stars to constrain the internal transport of angular momentum II. Test of a revised prescription for transport by the Tayler instability
- The spins of compact objects born from helium stars in binary systems
- The implications of high BH spins on the origin of BH-BH mergers
- Dependence of Gravitational Wave Transient Rates on Cosmic Star Formation and Metallicity Evolution History
- Formation and merging of Mass Gap Black Holes in Gravitational Wave Merger Events from Wide Hierarchical Quadruple Systems
- Evolution of Wolf-Rayet stars as black hole progenitors
- Asteroseismology of evolved stars to constrain the internal transport of angular momentum. III. Using the rotation rates of intermediate-mass stars to test the Fuller-formalism
- A Channel to Form Fast-spinning Black Hole--Neutron Star Binary Mergers as Multi-messenger Sources
- Stable mass transfer can explain massive binary black hole mergers with a high spin component
- Hypercritical Accretion for Black Hole High Spin in Cygnus X-1