Symmetry breaking in merging binary black holes from young massive clusters and isolated binaries
arXiv:2302.10851 · doi:10.3847/1538-4357/acdd59
Abstract
Properties of the to-date-observed binary black hole (BBH) merger events suggest a preference towards spin-orbit aligned mergers. Naturally, this has caused widespread interest and speculations regrading implications on various merger formation channels. Here we show that (i) not only the BBH-merger population from isolated binaries, but also (ii) BBH population formed in young massive clusters (YMC) would possess an asymmetry in favour of aligned mergers, in the distribution of the events' effective spin parameter (). In our analysis, we utilize BBH-merger outcomes from state-of-the-art N-body evolutionary models of YMCs and isolated binary population synthesis. We incorporate, for the first time in such an analysis, misalignments due to both natal kicks and dynamical encounters. The YMC distribution has a mean (an anti-aligned merger fraction) of (), which is smaller (larger) than but consistent with the observed asymmetry of () as obtained from the population analysis by the LIGO-Virgo-KAGRA collaboration. In contrast, isolated binaries alone tend to produce a much stronger asymmetry; for the tested physical models, and . Although the YMC distribution is more similar to the observed counterpart, none of the channels correctly reproduce the observed distribution. Our results suggest that further extensive model explorations for both isolated-binary and dynamical channels as well as better observational constraints are necessary to understand the physics of 'the symmetry breaking' of the BBH-merger population.
20 pages including Appendix, 7 figures, 3 tables. Extended results and discussions; main conclusions are unchanged. Accepted for publication in ApJ
References in corpus (16)
- Array Programming with NumPy
- Advanced Virgo: a 2nd generation interferometric gravitational wave detector
- Advanced LIGO
- The Effect of Pair-Instability Mass Loss on Black Hole Mergers
- Rotational mixing in massive binaries: detached short-period systems
- Implementing Few-Body Algorithmic Regularization with Post-Newtonian Terms
- Polluting the pair-instability mass gap for binary black holes through super-Eddington accretion in isolated binaries
- Fingerprints of binary black hole formation channels encoded in the mass and spin of merger remnants
- 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
- Binary formation through gas-assisted capture and the implications for stellar, planetary and compact-object evolution
- Compact Binary Coalescences: Astrophysical Processes and Lessons Learned
- Spin misalignment of black hole binaries from young star clusters: implications for the origin of gravitational waves events
- Stellar-mass black holes in young massive and open stellar clusters V: comparisons with LIGO-Virgo merger rate densities
- On the Neutron Star/Black Hole Mass Gap and Black Hole Searches
- Binary black hole spins: model selection with GWTC-3
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- Evidence for Three Subpopulations of Merging Binary Black Holes at Different Primary Masses