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Black Holes as Critical Point of Quantum Phase Transition

We reformulate the quantum black hole portrait in the language of modern condensed matter physics. We show that black holes can be understood as a graviton Bose-Einstein condensate at the critical point of a quantum phase transition, identical to what has been observed in systems of cold atoms. The...

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Autores principales: Dvali, Gia, Gomez, Cesar
Lenguaje:eng
Publicado: 2012
Materias:
Acceso en línea:https://dx.doi.org/10.1140/epjc/s10052-014-2752-3
http://cds.cern.ch/record/1462684
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author Dvali, Gia
Gomez, Cesar
author_facet Dvali, Gia
Gomez, Cesar
author_sort Dvali, Gia
collection CERN
description We reformulate the quantum black hole portrait in the language of modern condensed matter physics. We show that black holes can be understood as a graviton Bose-Einstein condensate at the critical point of a quantum phase transition, identical to what has been observed in systems of cold atoms. The Bogoliubov modes that become degenerate and nearly gapless at this point are the holographic quantum degrees of freedom responsible for the black hole entropy and the information storage. They have no (semi)classical counterparts and become inaccessible in this limit. These findings indicate a deep connection between the seemingly remote systems and suggest a new quantum foundation of holography. They also open an intriguing possibility of simulating black hole information processing in table-top labs.
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institution Organización Europea para la Investigación Nuclear
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spelling cern-14626842022-08-10T20:46:10Zdoi:10.1140/epjc/s10052-014-2752-3http://cds.cern.ch/record/1462684engDvali, GiaGomez, CesarBlack Holes as Critical Point of Quantum Phase TransitionParticle Physics - TheoryWe reformulate the quantum black hole portrait in the language of modern condensed matter physics. We show that black holes can be understood as a graviton Bose-Einstein condensate at the critical point of a quantum phase transition, identical to what has been observed in systems of cold atoms. The Bogoliubov modes that become degenerate and nearly gapless at this point are the holographic quantum degrees of freedom responsible for the black hole entropy and the information storage. They have no (semi)classical counterparts and become inaccessible in this limit. These findings indicate a deep connection between the seemingly remote systems and suggest a new quantum foundation of holography. They also open an intriguing possibility of simulating black hole information processing in table-top labs.We reformulate the quantum black hole portrait in the language of modern condensed matter physics. We show that black holes can be understood as a graviton Bose-Einstein condensate at the critical point of a quantum phase transition, identical to what has been observed in systems of cold atoms. The Bogoliubov modes that become degenerate and nearly gapless at this point are the holographic quantum degrees of freedom responsible for the black hole entropy and the information storage. They have no (semi)classical counterparts and become inaccessible in this limit. These findings indicate a deep connection between the seemingly remote systems and suggest a new quantum foundation of holography. They also open an intriguing possibility of simulating black hole information processing in table-top labs.arXiv:1207.4059oai:cds.cern.ch:14626842012-07-18
spellingShingle Particle Physics - Theory
Dvali, Gia
Gomez, Cesar
Black Holes as Critical Point of Quantum Phase Transition
title Black Holes as Critical Point of Quantum Phase Transition
title_full Black Holes as Critical Point of Quantum Phase Transition
title_fullStr Black Holes as Critical Point of Quantum Phase Transition
title_full_unstemmed Black Holes as Critical Point of Quantum Phase Transition
title_short Black Holes as Critical Point of Quantum Phase Transition
title_sort black holes as critical point of quantum phase transition
topic Particle Physics - Theory
url https://dx.doi.org/10.1140/epjc/s10052-014-2752-3
http://cds.cern.ch/record/1462684
work_keys_str_mv AT dvaligia blackholesascriticalpointofquantumphasetransition
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