Horizon Quantum Mechanics: a hitchhiker's guide to quantum black holes
arXiv:1512.04071 · doi:10.1142/S0218271816300068
Abstract
It is congruous with the quantum nature of the world to view the space-time geometry as an emergent structure that shows classical features only at some observational level. One can thus conceive the space-time manifold as a purely theoretical arena, where quantum states are defined, with the additional freedom of changing coordinates like any other symmetry. Observables, including positions and distances, should then be described by suitable operators acting on such quantum states. In principle, the top-down (canonical) quantisation of Einstein-Hilbert gravity falls right into this picture, but is notoriously very involved. The complication stems from allowing all the classical canonical variables that appear in the (presumably) fundamental action to become quantum observables acting on the "superspace" of all metrics, regardless of whether they play any role in the description of a specific physical system. On can instead revisit the more humble "minisuperspace" approach and choose the gravitational observables not simply by imposing some symmetry, but motivated by their proven relevance in the (classical) description of a given system. In particular, this review focuses on compact, spherically symmetric, quantum mechanical sources, in order to determine the probability they are black holes rather than regular particles. The gravitational radius is therefore lifted to the status of a quantum mechanical operator acting on the "horizon wave-function", the latter being determined by the quantum state of the source. This formalism is then applied to several sources with a mass around the fundamental scale, which are viewed as natural candidates of quantum black holes.
45 pages, 26 figures. Review paper to appear in IJMPD
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- Effective metric outside bootstrapped Newtonian sources
- Horizon quantum fuzziness for non-singular black holes
- Which quantum theory must be reconciled with gravity? (And what does it mean for black holes?)
- Quantum Formation of Primordial Black holes
- Orbits in a stochastic Schwarzschild geometry
- Horizon Quantum Mechanics of collapsing shells
- Horizon Quantum Mechanics: spherically symmetric and rotating sources
- Black Hole Production in the Presence of a Maximal Momentum in Horizon Wave Function Formalism
- Quantum post-Newtonian theory for corpuscular Black Holes
- Horizon Quantum mechanics: spherically symmetric and rotating sources
- Quantum Hairy Black Hole Formation and Horizon Quantum Mechanics
- Effective models of non-singular quantum black holes
- Planckian charged black holes and their cosmological ramifications
- Horizon Quantum Mechanics of Generalized Uncertainty Principle Black Holes