English

Gravitational radiation close to a black hole horizon: Waveform regularization and the out-going echo

General Relativity and Quantum Cosmology 2021-12-28 v2 Cosmology and Nongalactic Astrophysics

Abstract

Black hole perturbation theory for Kerr black holes is best studied in the Newman Penrose Formalism, in which gravitational waves are described as perturbations in the Weyl scalars ψ0\psi_0 and ψ4\psi_4, with the governing equation being the well-known Teukolsky equation. Near infinity and near horizon, ψ4\psi_4 is dominated by the component that corresponds to waves propagating towards the positive radial direction, while ψ0\psi_0 is dominated by the component that corresponds to waves that propagate towards the negative radial direction. Since gravitational-wave detectors measure out-going waves at infinity, research has been mainly focused on ψ4\psi_4, leaving ψ0\psi_0 less studied. But the scenario is reversed in the near horizon region where the in-going-wave boundary condition needs to be imposed. Thus, the near horizon phenomena, e.g., tidal heating and gravitational-wave echoes from Extremely Compact Objects (ECOs), require computing ψ0\psi_0. In this work, we explicitly calculate the source term for the ψ0\psi_0 Teukolsky equation due to a point particle plunging into a Kerr black hole. We highlight the need to regularize the solution of the ψ0\psi_0 Teukolsky equation obtained using Green's function techniques. We suggest a regularization scheme for this purpose and go on to compute the ψ0\psi_0 waveform close to a Schwarzschild horizon for two types of trajectories of the in-falling particle. We compare the ψ0\psi_0 waveform calculated directly from the Teukolsky equation with the ψ0\psi_0 waveform obtained by using the Starobinsky-Teukolsky identity on ψ4\psi_4. We also compute the out-going echo waveform near infinity, using the near-horizon ψ0\psi_0 computed directly from the Teukolsky equation and the Boltzmann boundary condition on the ECO surface. We show that this echo is quantitatively different (stronger) than the echo obtained using previous prescriptions. (abridged)

Keywords

Cite

@article{arxiv.2108.01329,
  title  = {Gravitational radiation close to a black hole horizon: Waveform regularization and the out-going echo},
  author = {Manu Srivastava and Yanbei Chen},
  journal= {arXiv preprint arXiv:2108.01329},
  year   = {2021}
}

Comments

20 pages, 7 figures, version published in PRD