Coherent and squeezed states in black-hole evaporation
A.N.St.J. Farley, P.D.D'Eath

TL;DR
This paper explores quantum states in black-hole evaporation using Feynman's $+i\epsilon$ prescription, showing that the final states can be described as coherent and squeezed states, similar to cosmological relic radiation.
Contribution
It introduces a novel Feynman approach to quantum amplitudes in black-hole evaporation, linking pure states to coherent and squeezed state descriptions.
Findings
Quantum amplitudes relate to pure states after black-hole evaporation.
Final states can be described as coherent and squeezed states.
The approach parallels cosmological relic radiation states.
Abstract
In earlier Letters, we adopted a complex approach to quantum processes in the formation and evaporation of black holes. Taking Feynman's prescription, rather than than one of the more usual approaches, we calculated the quantum amplitude (not just the probability density) for final weak-field configurations following gravitational collapse to a black hole with subsequent evaporation. What we have done is to find quantum amplitudes relating to a pure state at late times following black-hole matter collapse. Such pure states are then shown to be susceptible to a description in terms of coherent and squeezed states - in practice, this description is not very different from that for the well-known highly-squeezed final state of the relic radiation background in inflationary cosmology. The simplest such collapse model involves Einstein gravity with a massless scalar field. The…
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