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Quantum geometry and the Schwarzschild singularity

Classical and Quantum Gravity · 2005 · Vol. 23(2) · pp. 391–411
Abhay AshtekarMartin Bojowald

Abstract

In homogeneous cosmologies, quantum geometry effects lead to a resolution of the classical singularity without having to invoke special boundary conditions at the singularity or introduce ad-hoc elements such as unphysical matter. The same effects are shown to lead to a resolution of the Schwarzschild singularity. The resulting quantum extension of space-time is likely to have significant implications to the black hole evaporation process. Similarities and differences with the situation in quantum geometrodynamics are pointed out.

Noncommutative and Quantum Gravity TheoriesBlack Holes and Theoretical PhysicsAlgebraic and Geometric AnalysisPhysicsSchwarzschild radiusSingularityQuantum geometrySchwarzschild metricQuantumClassical mechanicsMathematical physicsDeriving the Schwarzschild solutionGeometry
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References
Background independent quantum gravity: a status report
Classical and Quantum Gravity · 2004 · 1,820 citations
Quantum spin dynamics (QSD)
Classical and Quantum Gravity · 1998 · 670 citations
Wave function of the Universe
Physical review. D. Particles, fields, gravitation, and cosmology/Physical review. D. Particles and fields · 1983 · 2,874 citations
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