GW250114 reveals black hole horizon signatures
Abstract
The horizon of a black hole, the "surface of no return", is characterized by its rotation frequency and surface gravity . A striking signature is that any infalling object appears to orbit at due to frame dragging, while its emitted signals decay exponentially at a rate set by as a consequence of gravitational redshift. Recent theoretical work predicts that the merger phase of gravitational waves from binary black hole coalescences carries direct imprints of the remnant horizon's properties, via a "direct wave" component that (i) oscillates near , reflecting the horizon's frame dragging and the dominant quadrupole nature of the gravitational radiation, and (ii) decays at an increasing rate characterized by , with additional screening from the black hole's potential barrier. In this paper, we report observational evidence for the direct wave in GW250114, with a 90\% credible matched-filter signal-to-noise ratio of () in the LIGO Hanford (Livingston) detector. The measured properties are in full agreement with theoretical predictions. These findings establish a new observational channel to directly measure frame-dragging effects in black hole ergospheres and explore (near-)horizon physics in dynamical, strong-gravity regimes.
Keywords
Cite
@article{arxiv.2510.01001,
title = {GW250114 reveals black hole horizon signatures},
author = {Neil Lu and Sizheng Ma and Ornella J. Piccinni and Yanbei Chen and Ling Sun},
journal= {arXiv preprint arXiv:2510.01001},
year = {2026}
}