Quantum amplitudes in black-hole evaporation: coherent and squeezed states
A.N.St.J.Farley, P.D.D'Eath

TL;DR
This paper calculates quantum amplitudes for black-hole formation and evaporation using a complex-time approach, revealing that the resulting pure states can be described as coherent and squeezed states, similar to cosmological relic radiation.
Contribution
It introduces a novel complex-time method to compute quantum amplitudes for black-hole processes and shows these states can be represented as coherent and squeezed states.
Findings
Quantum amplitudes relate to pure states after gravitational collapse.
Pure states can be described as coherent and squeezed states.
The approach parallels cosmological squeezed states in inflationary models.
Abstract
The quantum amplitude for processes involving the formation and evaporation of black holes was previously calculated by means of a complex-time approach. In that treatment, we followed Feynman's approach in quantum field theory. The Lorentzian time interval , measured at spatial infinity between a pair of asymptotically flat spacelike hypersurfaces and carrying initial and final boundary data for the gravitational and other fields, is rotated: , where . Classically and quantum mechanically, this procedure is expected to lead to a well-posed boundary-value problem. Thus, we have found quantum amplitudes (not just probability densities) relating to a pure state at late times following gravitational collapse of matter to a black hole. Such pure states, arising from gravitational collapse, admit a…
Peer Reviews
No public reviews on file for this paper yet. If you reviewed it on a platform where reviews are public (OpenReview, ICLR, NeurIPS, ICML), you can paste yours below so the community can read it here.
Videos
No videos yet. Explain this paper in a talk, walkthrough, or lecture? Add one.
