Spin-2 Amplitudes in Black-Hole Evaporation
A.N.St.J.Farley, P.D.D'Eath

TL;DR
This paper analyzes quantum amplitudes for spin-2 gravitational perturbations during black hole formation, using boundary data and complexified classical boundary-value problems to understand semi-classical contributions.
Contribution
It introduces a method to compute quantum amplitudes for spin-2 perturbations in black-hole evaporation by analogy with spin-1 fields, employing gauge transformations and boundary data analysis.
Findings
Boundary data for spin-2 perturbations are related to Weyl tensor components.
The complexified classical boundary-value problem is expected to be well-posed.
Semi-classical amplitudes are obtained via the second-variation classical action.
Abstract
Quantum amplitudes for gravitational-wave perturbations of Einstein/scalar collapse to a black hole are treated by analogy with Maxwell perturbations. The spin-2 perturbations split into parts with odd and even parity. We use the Regge-Wheeler gauge; at a certain point we make a gauge transformation to an asymptotically-flat gauge, such that the metric perturbations have the expected falloff behaviour at large radii. By analogy with , for natural 'coordinate' variables are given by the magnetic part of the Weyl tensor, which can be taken as boundary data on a final space-like hypersurface . For simplicity, we take the data on the initial surface to be exactly spherically-symmetric. The (large) Lorentzian proper-time interval between and , measured at spatial infinity, is denoted by . We follow…
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