On the Curvature Invariants of the Massive Banados-Teitelboim-Zanelli Black Holes and Their Holographic Pictures
arXiv:2003.04412 · doi:10.1142/S0217751X22502025
Abstract
In this paper, the curvature structure of a (2+1)-dimensional black hole in the massive-charged-Born-Infeld gravity is investigated. The metric that we consider is characterized by four degrees of freedom which are the mass and electric charge of the black hole, the mass of the graviton field, and a cosmological constant. For the charged and neutral cases separately, we present various constraints among scalar polynomial curvature invariants which could invariantly characterize our desired spacetimes. Specially, an appropriate scalar polynomial curvature invariant and a Cartan curvature invariant which together could detect the black hole horizon would be explicitly constructed. Using algorithms related to the focusing properties of a bundle of light rays on the horizon which are accounted for by the Raychaudhuri equation, a procedure for isolating the black hole parameters, as the algebraic combinations involving the curvature invariants, would be presented. It will be shown that this technique could specially be applied for black holes with zero electric charge, contrary to the cases of solutions of lower-dimensional non-massive gravity. In addition, for the case of massive (2+1)-dimensional black hole, the irreducible mass, which quantifies the maximum amount of energy which could be extracted from a black hole would be derived. Therefore, we show that the Hawking temperatures of these black holes could be reduced to the pure curvature properties of the spacetimes. Finally, we comment on the relationship between our analysis and the novel roles it could play in numerical quark-gluon plasma simulations and other QCD models and also black hole information paradox where the holographic correspondence could be exploited.
v3; 25 pages; 11 figures; 104 references; matches published version
References in corpus (19)
- Inspiral, merger and ring-down of equal-mass black-hole binaries
- Gravitational wave searches for ultralight bosons with LIGO and LISA
- The Evolution of Black Hole Mass and Spin in Active Galactic Nuclei
- Thermodynamics of Black Holes in Massive Gravity
- Holography without translational symmetry
- T-Witts from the horizon
- Einstein Rings in Holography
- Invariant characterization of the Kerr spacetime: Locating the horizon and measuring the mass and spin of rotating black holes using curvature invariants
- Local Invariants Vanishing on Stationary Horizons: A Diagnostic for Locating Black Holes
- A dynamical mechanism for the Page curve from quantum chaos
- Geometric Horizons
- Identification of black hole horizons using scalar curvature invariants
- Complexity and Emergence of Warped Space-time from Chiral Liouville Action
- Simulation of geodesic trajectory of charged BTZ black holes in massive gravity
- Event Horizon Detecting Invariants
- Karlhede's invariant and the black hole firewall proposal
- Energy decomposition within Einstein-Born-Infeld black holes
- Basis for scalar curvature invariants in three dimensions
- Energy Extraction from the Einstein-Born-Infeld Black Hole
Cited by in corpus (4)
- Entanglement wedge reconstruction and correlation measures in mixed states: modular flows versus quantum recovery channels
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- Chaos, Phase Transitions and Curvature Invariants of (rotating, warped, massive) BTZ Black Holes
- Scalar Curvature Invariants in Classical and Quantum Gravity