The Chirp-Mass Ladder: A New Rung Emerges

We study the binary black hole (BBH) population observed through gravitational waves (GWs) using 256 events from the latest release of GWTC-5.0. The inferred chirp-mass distribution shows prominent peaks at approximately 7.5 M ⊙ , 14 M ⊙ , and 27 M ⊙ , with subsequent peaks spaced by approximately a factor of two. A parsimonious explanation for this structured distribution is a hierarchical merger scenario, in which the first peak arises from mergers of black holes of stellar origin, and higher-mass peaks arise from repeated mergers. Notably, with the addition of new observations, an intermediate peak near 19 M ⊙ emerges. This feature was anticipated in earlier work as a consequence of intergenerational mergers involving second- and third-generation (G) black holes, highlighting the predictive expectations of the hierarchical-merger interpretation. Furthermore, two groups of 1 G + 2 G mergers recently reported in separate studies can be understood as distinct rungs— 1 G + 2 G and 3 G + 4 G —within this hierarchical chirp-mass ladder, a unification that describes both spin transitions with a single mechanism. Although we observe expected correlations between mass ratios and spins in multiple events across the mass range, the lack of clear signatures across all rungs invites investigation into the role of hierarchical mergers in shaping the BBH population.

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Publication Details

Journal
The Open Journal of Astrophysics
Published
2026-09-30
DOI
https://doi.org/10.33232/001c.171978
Primary Topic
Pulsars and Gravitational Waves Research
Type
article
Field-Weighted Citation Impact
0.00

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article

The Chirp-Mass Ladder: A New Rung Emerges

Vaibhav Tiwari
The Open Journal of Astrophysics
Pulsars and Gravitational Waves Research
article

The Chirp-Mass Ladder: A New Rung Emerges

Vaibhav Tiwari
article en

Abstract

We study the binary black hole (BBH) population observed through gravitational waves (GWs) using 256 events from the latest release of GWTC-5.0. The inferred chirp-mass distribution shows prominent peaks at approximately 7.5 M ⊙ , 14 M ⊙ , and 27 M ⊙ , with subsequent peaks spaced by approximately a factor of two. A parsimonious explanation for this structured distribution is a hierarchical merger scenario, in which the first peak arises from mergers of black holes of stellar origin, and higher-mass peaks arise from repeated mergers. Notably, with the addition of new observations, an intermediate peak near 19 M ⊙ emerges. This feature was anticipated in earlier work as a consequence of intergenerational mergers involving second- and third-generation (G) black holes, highlighting the predictive expectations of the hierarchical-merger interpretation. Furthermore, two groups of 1 G + 2 G mergers recently reported in separate studies can be understood as distinct rungs— 1 G + 2 G and 3 G + 4 G —within this hierarchical chirp-mass ladder, a unification that describes both spin transitions with a single mechanism. Although we observe expected correlations between mass ratios and spins in multiple events across the mass range, the lack of clear signatures across all rungs invites investigation into the role of hierarchical mergers in shaping the BBH population.

The Open Journal of AstrophysicsVol. 9
University of Birmingham (GB)
National Science Foundation, Science and Technology Facilities Council
Openalex Percentile: Top 46%
Pulsars and Gravitational Waves Research
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The Chirp-Mass Ladder: A New Rung Emerges — Vaibhav Tiwari · The Open Journal of Astrophysics (2026) | TGRS Research Map | TGRS