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When black holes collide: Probing the interior composition by the spectrum of ringdown modes and emitted gravitational waves

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arxiv 1704.05789 v2 pith:R33HM5MC submitted 2017-04-19 gr-qc hep-th

classification gr-qchep-th
keywords modesinteriorparametricallystringblackcollapsed-polymercouplinggravitational
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The merger of colliding black holes (BHs) should lead to the production of ringdown or quasinormal modes (QNMs), which may very well be sensitive to the state of the interior. We put this idea to the test with a recent proposal that the interior of a BH consists of a bound state of highly excited, long, closed, interacting strings; figuratively, a collapsed polymer. We show that such BHs do indeed have a distinct signature in their QNM spectrum: A new class of modes whose frequencies are parametrically lower than the lowest-frequency mode of a classical BH and whose damping times are parametrically longer. The reason for the appearance of the new modes is that our model contains another scale, the string length, which is parametrically larger than the Planck length. This distinction between the collapsed-polymer model and general-relativistic BHs could be made with gravitational-wave observations and offers a means for potentially measuring the strength of the coupling in string theory. For example, GW150914 already allows us to probe the strength of the string coupling near the regime which is predicted by the unification of the gravitational and gauge-theory couplings. We also derive bounds on the amplitude of the collapsed-polymer QNMs that can be placed by current and future gravitational-wave observations.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Defrosting the Born-Infeld dyonic frozen star with tachyon matter: spectrum of oscillations

    gr-qc 2026-07 conditional novelty 5.0 of 10

    A Born-Infeld Lagrangian with electric, magnetic, and tachyon charges reproduces the slow, long-lived oscillation spectrum of the defrosted frozen star.

  2. Formation of Frozen Stars from collapsing matter by tunneling

    gr-qc 2025-08 reject novelty 5.0 of 10

    By Euclidean path-integral methods, the authors claim the tunneling probability from a collapsing shell into a frozen star is unity, making the transition inevitable.

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