Evidence of the pair instability gap from black hole masses
arXiv:2509.04151 · doi:10.1038/s41586-026-10359-0
Abstract
Stellar theory predicts a forbidden range of black-hole masses between -- due to pair-instability supernovae, but evidence for such a gap in the mass distribution from gravitational-wave astronomy has proved elusive. Early hints of a cutoff in black-hole masses at disappeared with the subsequent discovery of more massive binary black holes. Here, we report evidence of the pair-instability gap in LIGO--Virgo--KAGRA's fourth gravitational wave transient catalog (GWTC-4), with a lower boundary of (90\% credibility). While the gap is not present in the distribution of \textit{primary} masses (the bigger of the two black holes in a binary system), it appears unambiguously in the distribution of \textit{secondary} masses , where . The location of the gap lines up well with a previously identified transition in the binary black-hole spin distribution; binaries with primary components in the gap tend to spin more rapidly than those below the gap. We interpret these findings as evidence for a subpopulation of hierarchical mergers: binaries where the primary component is the product of a previous black-hole merger and thus populates the gap. Our measurement of the location of the pair-instability gap constrains the -factor for at 300keV to keV barns.
Nature (2026)
References in corpus (33)
- Advanced Virgo: a 2nd generation interferometric gravitational wave detector
- Advanced LIGO
- GW190521: A Binary Black Hole Merger with a Total Mass of
- Pulsational Pair-Instability Supernovae
- Pulsational pair instability as an explanation for the most luminous supernovae
- Properties and astrophysical implications of the 150 Msun binary black hole merger GW190521
- Sensitivity and Performance of the Advanced LIGO Detectors in the Third Observing Run
- 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
- Merging black holes in young star clusters
- Hierarchical mergers of stellar-mass black holes and their gravitational-wave signatures
- The 12C(a,g)16O reaction and its implications for stellar helium burning
- The Evolution of Massive Helium Stars Including Mass Loss
- The Pair-Instability Mass Gap for Black Holes
- Evidence for hierarchical black hole mergers in the second LIGO--Virgo gravitational-wave catalog
- GW231123: a Binary Black Hole Merger with Total Mass 190-265
- Minding the gap: GW190521 as a straddling binary
- Accuracy Requirements for Empirically-Measured Selection Functions
- Advanced LIGO detector performance in the fourth observing run
- Squeezing the quantum noise of a gravitational-wave detector below the standard quantum limit
- Inferring the properties of a population of compact binaries in presence of selection effects
- Does Matter Matter? Using the mass distribution to distinguish neutron stars and black holes
- The Stellar Merger Scenario for Black Holes in the Pair-instability Gap
- Resolving the Stellar-Collapse and Hierarchical-Merger origins of the Coalescing Black Holes
- LIGO Detector Characterization in the first half of the fourth Observing run
- Deep learning and Bayesian inference of gravitational-wave populations: Hierarchical black-hole mergers
- Potential Subpopulations and Assembling Tendency of the Merging Black Holes
- "Super-Kilonovae" from Massive Collapsars as Signatures of Black-Hole Birth in the Pair-instability Mass Gap
- Poking Holes: Looking for Gaps in LIGO/Virgo's Black Hole Population
- When models fail: an introduction to posterior predictive checks and model misspecification in gravitational-wave astronomy
- Model exploration in gravitational-wave astronomy with the maximum population likelihood
- Gravitational waves carry information beyond effective spin parameters but it is hard to extract
- Physical Models for the Astrophysical Population of Black Holes: Application to the Bump in the Mass Distribution of Gravitational Wave Sources
Cited by in corpus (4)
- Signatures of a subpopulation of hierarchical mergers in the GWTC-4 gravitational-wave dataset
- On the Astrophysical Origin of Binary Black Hole Subpopulations: A Tale of Three Channels?
- Evidence for Three Subpopulations of Merging Binary Black Holes at Different Primary Masses
- Characterizing Binary Black Hole Subpopulations in GWTC-4 with Binned Gaussian Processes: On the Origins of the Peak