Inferring the pair-instability mass gap from gravitational wave data
Abstract
We use hierarchical Bayesian inference with non-parametric Gaussian process models to investigate the effective inspiral spin parameter, , as a function of primary black hole mass in the third gravitational-wave transient catalog (GWTC-3). Our analysis reveals a transition in the population at a primary mass of . Beyond this mass, the distribution broadens, becomes consistent with being symmetric around zero, and has a median of (90\% credibility). These results are consistent with the presence of a pair-instability mass gap that is repopulated by black holes that are the remnant of a previous merger, formed in dense star clusters. However, asymmetric distributions skewed toward positive are not excluded by current data. Below the inferred transition mass, we constrain the fraction of second-generation black holes to be . These results provide model-independent support for a high-mass and high-spin population of black holes in the data, consistent with earlier work using parametric models. Imminent gravitational-wave data releases will be essential to sharpen constraints on spin symmetry and clarify the origin of the black holes.
Keywords
Cite
@article{arxiv.2506.09154,
title = {Inferring the pair-instability mass gap from gravitational wave data},
author = {Fabio Antonini and Thomas Callister and Fani Dosopoulou and Isobel Romero-Shaw and Debatri Chattopadhyay},
journal= {arXiv preprint arXiv:2506.09154},
year = {2025}
}
Comments
Accepted by PRD