English

Black hole evaporation in a spherically symmetric non-commutative space-time

General Relativity and Quantum Cosmology 2008-11-26 v1

Abstract

Recent work in the literature has studied the quantum-mechanical decay of a Schwarzschild-like black hole, formed by gravitational collapse, into almost-flat space-time and weak radiation at a very late time. The relevant quantum amplitudes have been evaluated for bosonic and fermionic fields, showing that no information is lost in collapse to a black hole. On the other hand, recent developments in noncommutative geometry have shown that, in general relativity, the effects of non-commutativity can be taken into account by keeping the standard form of the Einstein tensor on the left-hand side of the field equations and introducing a modified energy-momentum tensor as a source on the right-hand side. Relying on the recently obtained non-commutativity effect on a static, spherically symmetric metric, we have considered from a new perspective the quantum amplitudes in black hole evaporation. The general relativity analysis of spin-2 amplitudes has been shown to be modified by a multiplicative factor F depending on a constant non-commutativity parameter and on the upper limit R of the radial coordinate. Limiting forms of F have been derived which are compatible with the adiabatic approximation.

Keywords

Cite

@article{arxiv.0707.3318,
  title  = {Black hole evaporation in a spherically symmetric non-commutative space-time},
  author = {Elisabetta Di Grezia and Giampiero Esposito and Gennaro Miele},
  journal= {arXiv preprint arXiv:0707.3318},
  year   = {2008}
}

Comments

8 pages, Latex file with IOP macros, prepared for the QFEXT07 Conference, Leipzig, September 2007

R2 v1 2026-06-21T09:00:41.642Z