Planck-scale nonthermal correlations in a noncommutative geometry inspired Vaidya black hole
arXiv:1204.0143 · doi:10.1139/p2012-035
Abstract
Using the noncommutative geometry inspired Vaidya metric obtained in terms of coordinate coherent states and also utilizing the generalized uncertainty principle (GUP), we show that the nonthermal nature of the Hawking spectrum leads to Planck-scale nonthermal correlations between emitted modes of evaporation. Our analysis thus exhibits that owing to self-gravitational effects plus noncommutativity and GUP influences, information can emerge in the form of Planck-scale correlated emissions from the black hole.
16 pages, no figure, minor revision
References in corpus (17)
- Relativistic images of Schwarzschild black hole lensing
- Noncommutative geometry inspired charged black holes
- Quantum Tunneling and Back Reaction
- Noncommutative Black Hole Thermodynamics
- Non-commutative geometry inspired higher-dimensional charged, black holes
- Temporal contribution to gravitational WKB-like calculations
- Subtleties in the quasi-classical calculation of Hawking radiation
- Thermal radiation of various gravitational backgrounds
- Noncommutative Inspired Black Holes in Extra Dimensions
- Problems with Tunneling of Thin Shells from Black Holes
- Quantum Gravity and Recovery of Information in Black Hole Evaporation
- Black Hole Thermodynamics and the Factor of 2 Problem
- Parikh-Wilczek Tunneling from Noncommutative Higher Dimensional Black Holes
- Probing the Noncommutative Standard Model at Hadron Colliders
- The decay-time of non-commutative micro-black holes
- Insights and possible resolution to the information loss paradox via the tunneling picture
- Unusual High-Energy Phenomenology of Lorentz-Invariant Noncommutative Field Theories