Quantum state of the black hole interior
arXiv:1505.07131 · doi:10.1007/JHEP08(2015)082
Abstract
If a black hole (BH) is initially in an approximately pure state and it evaporates by a unitary process, then the emitted radiation will be in a highly quantum state. As the purifier of this radiation, the state of the BH interior must also be in some highly quantum state. So that, within the interior region, the mean-field approximation cannot be valid and the state of the BH cannot be described by some semiclassical metric. On this basis, we model the state of the BH interior as a collection of a large number of excitations that are packed into closely spaced but single-occupancy energy levels; a sort-of "Fermi sea" of all light-enough particles. This highly quantum state is surrounded by a semiclassical region that lies close to the horizon and has a non-vanishing energy density. It is shown that such a state looks like a BH from the outside and decays via gravitational pair production in the near-horizon region at a rate that agrees with the Hawking rate. We also consider the fate of a classical object that has passed through to the BH interior and show that, once it has crossed over the near-horizon threshold, the object meets its demise extremely fast. This result cannot be attributed to a "firewall", as the trauma to the in-falling object only begins after it has passed through the near-horizon region and enters a region where semiclassical spacetime ends but the energy density is still parametrically smaller than Planckian.
28 pages, 2 figures
References in corpus (1)
Cited by in corpus (14)
- Gravitational echoes from macroscopic quantum gravity effects
- Black holes as collapsed polymers
- When black holes collide: Probing the interior composition by the spectrum of ringdown modes and emitted gravitational waves
- Resisting collapse: How matter inside a black hole can withstand gravity
- Non-singular black holes interiors need physics beyond the standard model
- Black holes as frozen stars
- Emergent horizon, Hawking radiation and chaos in the collapsed polymer model of a black hole
- Algebras, Hawking Radiation and Information Retention by Stringy Black Holes
- The state of Hawking radiation is non-classical
- A Maximum Force Perspective on Black Hole Thermodynamics, Quantum Pressure, and Near-Extremality
- Quantum Trans-Planckian Physics inside Black Holes and its Spectrum
- Quantum Jump from Singularity to Outside of Black Hole
- A correspondence between strings in the Hagedorn phase and asymptotically de Sitter space
- Teleporting entanglement during black hole evaporation