Spectroscopy of the Schwarzschild Black Hole at Arbitrary Frequencies
arXiv:1205.6592 · doi:10.1103/PhysRevLett.109.111101
Abstract
Linear field perturbations of a black hole are described by the Green function of the wave equation that they obey. After Fourier decomposing the Green function, its two natural contributions are given by poles (quasinormal modes) and a largely unexplored branch cut in the complex-frequency plane. We present new analytic methods for calculating the branch cut on a Schwarzschild black hole for arbitrary values of the frequency. The branch cut yields a power-law tail decay for late times in the response of a black hole to an initial perturbation. We determine explicitly the first three orders in the power-law and show that the branch cut also yields a new logarithmic behaviour for late times. Before the tail sets in, the quasinormal modes dominate the black hole response. For electromagnetic perturbations, the quasinormal mode frequencies approach the branch cut at large overtone index . We determine these frequencies up to and, formally, to arbitrary order. Highly-damped quasinormal modes are of particular interest in that they have been linked to quantum properties of black holes.
5 pages, 3 figures. Improved text and figures, corrected typos, added acknowledgements. Matches version published in Phys. Rev. Lett
References in corpus (9)
- The physical interpretation of the spectrum of black hole quasinormal modes
- Twisting of light around rotating black holes
- WKB analysis of the Regge-Wheeler equation down in the frequency plane
- Electromagnetic Counterparts to Black Hole Mergers
- Asymptotic Spectroscopy of Rotating Black Holes
- How pure is the tail of gravitational collapse ?
- The Branch Cut and Quasi-normal Modes at Large Imaginary Frequency in Schwarzschild Space-time
- Highly Damped Quasinormal Modes and the Small Scale Structure of Quantum Corrected Black Hole Exteriors
- Perturbative calculation of quasi-normal modes of arbitrary spin in Schwarzschild spacetime
Cited by in corpus (15)
- Self-Force and Green Function in Schwarzschild spacetime via Quasinormal Modes and Branch Cut
- Transient Instability of Rapidly Rotating Black Holes
- Self-force via Green functions and worldline integration
- High-order Tail in Schwarzschild Space-time
- Quasinormal modes of dS and AdS Black Holes: Feedforward neural network method
- Spectroscopy of Extremal (and Near-Extremal) Kerr Black Holes
- The scalar Green function of the Kerr spacetime
- New perspectives on neutron star and black hole spectroscopy and dynamic tides
- Analytic Investigation of the Branch Cut of the Green Function in Schwarzschild Space-time
- High-order tail in Kerr spacetime
- Dirac dynamical resonance states around Schwarzschild black holes
- Wavefront twisting by rotating black holes: orbital angular momentum generation and phase coherent detection
- Global Hadamard form for the Green Function in Schwarzschild space-time
- Spin-1 Quasi-normal Frequencies in Schwarzschild space-time for Large Overtone Number
- Analysis of late-time tails in spin-aligned eccentric binary black hole mergers