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Conversion of electromagnetic and gravitational waves by a charged black hole
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abstract
In a strong electromagnetic field, gravitational waves are converted into electromagnetic waves of the same frequency, and vice versa. Here we calculate the scattering and conversion cross sections for a planar wave impinging upon a Reissner-Nordstr\"om black hole in vacuum, using the partial-wave expansion and numerical methods. We show that, at long wavelengths, the conversion cross section matches that computed by Feynman-diagram techniques. At short wavelengths, the essential features are captured by a geometric-optics approximation. We demonstrate that the converted flux can exceed the scattered flux at large scattering angles, for highly-charged black holes. In the short-wavelength regime, the conversion effect may be understood in terms of a phase that accumulates along a ray. We compute the scattering angle for which the converted and scattered fluxes are equal, as a function of charge-to-mass ratio. We show that this scattering angle approaches $90$ degrees in the extremal limit.
Forward citations
Cited by 2 Pith papers
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On-Shell Amplitudes and Black-Hole Perturbations: Exact Reissner-Nordstr\"om Mixing
Flat-space photon and graviton scattering off a heavy charged source reproduces the exact Moncrief mixing matrix that decouples Reissner-Nordstrom perturbations for every multipole ell >= 2.
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Black hole absorption cross sections: Spin and Regge poles
A unified oscillatory formula for Schwarzschild black hole absorption of massless scalar, electromagnetic, and gravitational fields, with spin-dependent phase corrections and a generalized sinc approximation.
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