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A Star Cluster Population of High Mass Black Hole Mergers in Gravitational Wave Data

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arxiv 2406.19044 v2 pith:EBV4L2HA submitted 2024-06-27 astro-ph.HE astro-ph.SR

classification astro-ph.HEastro-ph.SR
keywords blackmassholeholesdistributiongravitationalpopulationstar
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abstract

Stellar evolution theories predict a gap in the black hole birth mass spectrum as the result of pair instability processes in the cores of massive stars.This gap, however, is not seen in the binary black hole masses inferred from gravitational wave data. One explanation is that black holes form dynamically in dense star clusters where smaller black holes merge to form more massive black holes, populating the mass gap. We show that this model predicts a distribution of the effective and precessing spin parameters, $\chi_{\rm eff}$ and $\chi_{\rm p}$, within the mass gap that is insensitive to assumptions about black hole natal spins and other astrophysical parameters. We analyze the distribution of $\chi_{\rm eff}$ as a function of primary mass for the black hole binaries in the third gravitational wave transient catalog. We infer the presence of a high-mass and isotropically spinning population of black holes that is consistent with hierarchical formation in dense star clusters and a pair-instability mass gap with a lower edge at $44^{+6}_{-4} M_\odot$. We compute a Bayes factor $\mathcal{B}>10^4$ relative to models that do not allow for a high-mass population with a distinct $\chi_{\rm eff}$ distribution.

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Cited by 12 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

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    astro-ph.HE 2026-07 conditional novelty 7.0 of 10

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    Using a joint effective-spin and precession-spin model on 155 gravitational-wave events, the authors infer that the hierarchical (second-generation) merger fraction rises sharply above ~46 M_sun and peaks again near 1...

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    GWTC-4 reveals a high-spin, high-mass black hole subpopulation with spin-orbit alignment, interpreted as evidence for hierarchical mergers in AGN disks.

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    Modeling all significant correlations with the nonparametric model PixelPop recovers the true black-hole merger rate in a simulated 400-event gravitational-wave catalog, while simpler models introduce bias.

  8. Population of Binary Black Holes Inferred from One Hundred and Fifty Gravitational Wave Signals

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    A population analysis of 153 LIGO-Virgo-KAGRA black-hole mergers reports chirp-mass peaks near 8, 14, and 27 solar masses, spaced by ~1.9, which the author interprets as possible hierarchical mergers.

  9. The Hierarchical Merger Scenario for GW231123

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    GW231123 is claimed to be a 2G+2G hierarchical merger, but only under the NRSur7dq4 waveform; the conclusion flips with IMRPhenomXO4a.

  10. Inferring the pair-instability mass gap from gravitational wave data

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    Non-parametric analysis of GWTC-3 finds a transition at roughly 46 solar masses above which the effective spin distribution broadens and becomes consistent with symmetry around zero, consistent with second-generation ...

  11. Binary Black Hole Phase Space Discovers the Signature of Pair Instability Supernovae Mass Gap

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    Applying a phase-space overlap method to GWTC-4, the paper claims first-generation black holes are truncated near 45.5 solar masses, but the cutoff follows from the assumed exponential mass prior rather than from the data.

  12. The first decade of gravitational-wave measurements of black hole spins

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    A review summarizing formation-channel predictions, waveform effects, and population-level constraints on stellar-mass black hole spins from the first decade of gravitational-wave observations.

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