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Nature·4 min read·hard

GW250114 reveals signatures of post-merger black-hole horizon

GW250114 reveals signatures of post-merger black-hole horizon
AI Summary

Researchers have identified a 'direct wave' in gravitational signals from the binary black hole merger GW250114. This observation confirms theoretical predictions regarding the frame-dragging effects and horizon physics of Kerr black holes.

Why it matters

It provides the first observational evidence of near-horizon black hole physics, validating complex general relativity models in extreme gravity environments.

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The horizon of a black hole, the ‘surface of no return’, is characterized by its rotation frequency Ω H and surface gravity κ . A striking signature is that any infalling object appears to orbit at Ω H owing to frame dragging, while its emitted signals decay exponentially at a rate set by κ as a consequence of gravitational redshift. Recent theoretical work 1 predicts that gravitational waves from binary black-hole mergers carry direct imprints of the properties of the merger remnant in the form of a ‘direct wave’. This gravitational-wave component oscillates near 2 Ω H , reflecting the horizon’s frame dragging, and decays at an increasing rate characterized by κ , with additional screening from the black hole’s spacetime. Here we report observational evidence of a direct wave in GW250114 2 , with a 90% credible matched-filter signal-to-noise ratio of \({15.8}_{-0.5}^{+0.1}\) ( \({17.1}_{-0.4}^{+0.1}\) ) in the LIGO Hanford (Livingston) detector. The measured properties are in full agreement with theoretical predictions for a Kerr black hole. These findings establish an observational channel to directly measure frame-dragging effects in black-hole ergospheres and explore (near-)horizon physics in dynamical, strong-gravity regimes.

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