Holographic quantum circuits from splitting/joining local quenches

Abstract We study three different types of local quenches (local operator, splitting and joining) in both the free fermion and holographic CFTs in two dimensions. We show that the computation of a quantity called entanglement density, provides a systematic method to capture essential properties of l...

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Main Authors: Teppei Shimaji, Tadashi Takayanagi, Zixia Wei
Format: Article
Language:English
Published: SpringerOpen 2019-03-01
Series:Journal of High Energy Physics
Subjects:
Online Access:http://link.springer.com/article/10.1007/JHEP03(2019)165
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spelling doaj-b56e10152303431496130bb40aefd4442020-11-25T01:38:07ZengSpringerOpenJournal of High Energy Physics1029-84792019-03-012019315310.1007/JHEP03(2019)165Holographic quantum circuits from splitting/joining local quenchesTeppei Shimaji0Tadashi Takayanagi1Zixia Wei2Center for Gravitational Physics, Yukawa Institute for Theoretical Physics, Kyoto UniversityCenter for Gravitational Physics, Yukawa Institute for Theoretical Physics, Kyoto UniversityCenter for Gravitational Physics, Yukawa Institute for Theoretical Physics, Kyoto UniversityAbstract We study three different types of local quenches (local operator, splitting and joining) in both the free fermion and holographic CFTs in two dimensions. We show that the computation of a quantity called entanglement density, provides a systematic method to capture essential properties of local quenches. This allows us to clearly understand the differences between the free and holographic CFTs as well as the distinctions between three local quenches. We also analyze holographic geometries of splitting/joining local quenches using the AdS/BCFT prescription. We show that they are essentially described by time evolutions of boundary surfaces in the bulk AdS. We find that the logarithmic time evolution of entanglement entropy arises from the region behind the Poincaré horizon as well as the evolutions of boundary surfaces. In the CFT side, our analysis of entanglement density suggests such a logarithmic growth is due to initial non-local quantum entanglement just after the quench. Finally, by combining our results, we propose a new class of gravity duals, which are analogous to quantum circuits or tensor networks such as MERA, based on the AdS/BCFT construction.http://link.springer.com/article/10.1007/JHEP03(2019)165AdS-CFT CorrespondenceConformal Field TheoryHolography and condensed matter physics (AdS/CMT)
collection DOAJ
language English
format Article
sources DOAJ
author Teppei Shimaji
Tadashi Takayanagi
Zixia Wei
spellingShingle Teppei Shimaji
Tadashi Takayanagi
Zixia Wei
Holographic quantum circuits from splitting/joining local quenches
Journal of High Energy Physics
AdS-CFT Correspondence
Conformal Field Theory
Holography and condensed matter physics (AdS/CMT)
author_facet Teppei Shimaji
Tadashi Takayanagi
Zixia Wei
author_sort Teppei Shimaji
title Holographic quantum circuits from splitting/joining local quenches
title_short Holographic quantum circuits from splitting/joining local quenches
title_full Holographic quantum circuits from splitting/joining local quenches
title_fullStr Holographic quantum circuits from splitting/joining local quenches
title_full_unstemmed Holographic quantum circuits from splitting/joining local quenches
title_sort holographic quantum circuits from splitting/joining local quenches
publisher SpringerOpen
series Journal of High Energy Physics
issn 1029-8479
publishDate 2019-03-01
description Abstract We study three different types of local quenches (local operator, splitting and joining) in both the free fermion and holographic CFTs in two dimensions. We show that the computation of a quantity called entanglement density, provides a systematic method to capture essential properties of local quenches. This allows us to clearly understand the differences between the free and holographic CFTs as well as the distinctions between three local quenches. We also analyze holographic geometries of splitting/joining local quenches using the AdS/BCFT prescription. We show that they are essentially described by time evolutions of boundary surfaces in the bulk AdS. We find that the logarithmic time evolution of entanglement entropy arises from the region behind the Poincaré horizon as well as the evolutions of boundary surfaces. In the CFT side, our analysis of entanglement density suggests such a logarithmic growth is due to initial non-local quantum entanglement just after the quench. Finally, by combining our results, we propose a new class of gravity duals, which are analogous to quantum circuits or tensor networks such as MERA, based on the AdS/BCFT construction.
topic AdS-CFT Correspondence
Conformal Field Theory
Holography and condensed matter physics (AdS/CMT)
url http://link.springer.com/article/10.1007/JHEP03(2019)165
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AT tadashitakayanagi holographicquantumcircuitsfromsplittingjoininglocalquenches
AT zixiawei holographicquantumcircuitsfromsplittingjoininglocalquenches
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