CFT/gravity correspondence on the isolated horizon

A quantum isolated horizon can be modelled by an SU(2) Chern–Simons theory on a punctured 2-sphere. We show how a local 2-dimensional conformal symmetry arises at each puncture inducing an infinite set of new observables localised at the horizon which satisfy a Kac–Moody algebra. By means of the iso...

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Main Authors: Amit Ghosh, Daniele Pranzetti
Format: Article
Language:English
Published: Elsevier 2014-12-01
Series:Nuclear Physics B
Online Access:http://www.sciencedirect.com/science/article/pii/S0550321314003009
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spelling doaj-9bcea462a9ea4f568a016bd3082cedcd2020-11-24T20:58:42ZengElsevierNuclear Physics B0550-32131873-15622014-12-01889C12410.1016/j.nuclphysb.2014.10.002CFT/gravity correspondence on the isolated horizonAmit Ghosh0Daniele Pranzetti1Saha Institute of Nuclear Physics, 1/AF Bidhan Nagar, 700064 Kolkata, IndiaInstitute for Quantum Gravity, University of Erlangen-Nürnberg (FAU), Staudtstrasse 7/B2, 91058 Erlangen, GermanyA quantum isolated horizon can be modelled by an SU(2) Chern–Simons theory on a punctured 2-sphere. We show how a local 2-dimensional conformal symmetry arises at each puncture inducing an infinite set of new observables localised at the horizon which satisfy a Kac–Moody algebra. By means of the isolated horizon boundary conditions, we represent the gravitational flux degrees of freedom in terms of the zero modes of the Kac–Moody algebra defined on the boundary of a punctured disk. In this way, our construction encodes a precise notion of CFT/gravity correspondence. The higher modes in the algebra represent new nongeometric charges which can be represented in terms of free matter field degrees of freedom. When computing the CFT partition function of the system, these new states induce an extra degeneracy factor, representing the density of horizon states at a given energy level, which reproduces the Bekenstein's holographic bound for an imaginary Immirzi parameter. This allows us to recover the Bekenstein–Hawking entropy formula without the large quantum gravity corrections associated with the number of punctures.http://www.sciencedirect.com/science/article/pii/S0550321314003009
collection DOAJ
language English
format Article
sources DOAJ
author Amit Ghosh
Daniele Pranzetti
spellingShingle Amit Ghosh
Daniele Pranzetti
CFT/gravity correspondence on the isolated horizon
Nuclear Physics B
author_facet Amit Ghosh
Daniele Pranzetti
author_sort Amit Ghosh
title CFT/gravity correspondence on the isolated horizon
title_short CFT/gravity correspondence on the isolated horizon
title_full CFT/gravity correspondence on the isolated horizon
title_fullStr CFT/gravity correspondence on the isolated horizon
title_full_unstemmed CFT/gravity correspondence on the isolated horizon
title_sort cft/gravity correspondence on the isolated horizon
publisher Elsevier
series Nuclear Physics B
issn 0550-3213
1873-1562
publishDate 2014-12-01
description A quantum isolated horizon can be modelled by an SU(2) Chern–Simons theory on a punctured 2-sphere. We show how a local 2-dimensional conformal symmetry arises at each puncture inducing an infinite set of new observables localised at the horizon which satisfy a Kac–Moody algebra. By means of the isolated horizon boundary conditions, we represent the gravitational flux degrees of freedom in terms of the zero modes of the Kac–Moody algebra defined on the boundary of a punctured disk. In this way, our construction encodes a precise notion of CFT/gravity correspondence. The higher modes in the algebra represent new nongeometric charges which can be represented in terms of free matter field degrees of freedom. When computing the CFT partition function of the system, these new states induce an extra degeneracy factor, representing the density of horizon states at a given energy level, which reproduces the Bekenstein's holographic bound for an imaginary Immirzi parameter. This allows us to recover the Bekenstein–Hawking entropy formula without the large quantum gravity corrections associated with the number of punctures.
url http://www.sciencedirect.com/science/article/pii/S0550321314003009
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AT danielepranzetti cftgravitycorrespondenceontheisolatedhorizon
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