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Creation of a black hole bomb instability in an electromagnetic system

Creation of a black hole bomb instability in an electromagnetic system
Creation of a black hole bomb instability in an electromagnetic system
The amplification and generation of electromagnetic radiation by a rotating metallic or lossy cylinder, first proposed by Zel’dovich in the 1970s, is closely linked to quantum friction, energy extraction from rotating black holes, and runaway mechanisms such as black hole bombs. Although advances such as acoustic analogs of the Zel’dovich effect and the observation of negative resistance in low-frequency electromagnetic models have been reported, genuine positive signal gain, spontaneous emission of electromagnetic waves, and runaway amplification have not previously been verified. Here, we provide the first experimental demonstration that a mechanically rotating metallic cylinder acts as an amplifier of a rotating electromagnetic field mode. Moreover, when combined with a low-loss resonator, the system becomes unstable and operates as a generator seeded only by noise. The exponential runaway amplification of spontaneously generated electromagnetic modes is observed, establishing the electromagnetic analog of the Press-Teukolsky black hole bomb and paving the way to experimental tests of quantum friction from vacuum fluctuations.
2375-2548
Cromb, M.
55df29bb-0f14-43a4-8507-68850b236bda
Braidotti, M.C.
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Vinante, A.
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Faccio, D.
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Ulbricht, H.
5060dd43-2dc1-47f8-9339-c1a26719527d
Cromb, M.
55df29bb-0f14-43a4-8507-68850b236bda
Braidotti, M.C.
6b3ddc8d-7584-423b-ad71-4a9f6712a440
Vinante, A.
c05416dc-57b9-47cc-a14b-d57e8b4a8bd6
Faccio, D.
4bc95171-0d90-4392-8333-528cbcb80e84
Ulbricht, H.
5060dd43-2dc1-47f8-9339-c1a26719527d

Cromb, M., Braidotti, M.C., Vinante, A., Faccio, D. and Ulbricht, H. (2025) Creation of a black hole bomb instability in an electromagnetic system. Science Advances, 11 (45). (doi:10.1126/sciadv.adz459).

Record type: Article

Abstract

The amplification and generation of electromagnetic radiation by a rotating metallic or lossy cylinder, first proposed by Zel’dovich in the 1970s, is closely linked to quantum friction, energy extraction from rotating black holes, and runaway mechanisms such as black hole bombs. Although advances such as acoustic analogs of the Zel’dovich effect and the observation of negative resistance in low-frequency electromagnetic models have been reported, genuine positive signal gain, spontaneous emission of electromagnetic waves, and runaway amplification have not previously been verified. Here, we provide the first experimental demonstration that a mechanically rotating metallic cylinder acts as an amplifier of a rotating electromagnetic field mode. Moreover, when combined with a low-loss resonator, the system becomes unstable and operates as a generator seeded only by noise. The exponential runaway amplification of spontaneously generated electromagnetic modes is observed, establishing the electromagnetic analog of the Press-Teukolsky black hole bomb and paving the way to experimental tests of quantum friction from vacuum fluctuations.

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Accepted/In Press date: 21 September 2025
e-pub ahead of print date: 5 November 2025

Identifiers

Local EPrints ID: 506505
URI: http://eprints.soton.ac.uk/id/eprint/506505
ISSN: 2375-2548
PURE UUID: ee64c65c-67ff-4988-b62d-3a0fcf1b4d17
ORCID for H. Ulbricht: ORCID iD orcid.org/0000-0003-0356-0065

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Date deposited: 10 Nov 2025 17:57
Last modified: 11 Nov 2025 02:42

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Contributors

Author: M. Cromb
Author: M.C. Braidotti
Author: A. Vinante
Author: D. Faccio
Author: H. Ulbricht ORCID iD

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