Microstrata

Abstract Microstrata are the non-extremal analogues of superstrata: they are smooth, non-extremal (non-BPS) solitonic solutions to IIB supergravity whose deep-throat limits approximate black holes. Using perturbation theory and numerical methods, we construct families of solutions using a consistent...

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Main Authors: Bogdan Ganchev, Stefano Giusto, Anthony Houppe, Rodolfo Russo, Nicholas P. Warner
Format: Article
Language:English
Published: SpringerOpen 2023-10-01
Series:Journal of High Energy Physics
Subjects:
Online Access:https://doi.org/10.1007/JHEP10(2023)163
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author Bogdan Ganchev
Stefano Giusto
Anthony Houppe
Rodolfo Russo
Nicholas P. Warner
author_facet Bogdan Ganchev
Stefano Giusto
Anthony Houppe
Rodolfo Russo
Nicholas P. Warner
author_sort Bogdan Ganchev
collection DOAJ
description Abstract Microstrata are the non-extremal analogues of superstrata: they are smooth, non-extremal (non-BPS) solitonic solutions to IIB supergravity whose deep-throat limits approximate black holes. Using perturbation theory and numerical methods, we construct families of solutions using a consistent truncation to three-dimensional supergravity. The most general families presented here involve two continuous parameters, or amplitudes, and four quantized parameters that set the angular momenta and energy levels. Our solutions are asymptotic to the vacuum of the D1-D5 system: AdS3 × S 3 × 𝕋4. Using holography, we show that the they are dual to multi-particle states in the D1-D5 CFT involving a large number of mutually non-BPS supergravitons and we determine the anomalous dimensions of these states from the binding energies in supergravity. These binding energies are uniformly negative and depend non-linearly on the amplitudes of the states. In one family of solutions, smoothness restricts some of the fields to lie on a special locus of the parameter space. Using precision holography we show that this special locus can be identified with the multi-particle states constructed via the standard OPE of the single-particle constituents. Our numerical analysis shows that microstrata are robust at large amplitudes and the solutions can be obtained to very high precision.
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spelling doaj.art-9eea6db1d5ca4256a21b4dc33d316f772024-01-28T12:19:43ZengSpringerOpenJournal of High Energy Physics1029-84792023-10-0120231018410.1007/JHEP10(2023)163MicrostrataBogdan Ganchev0Stefano Giusto1Anthony Houppe2Rodolfo Russo3Nicholas P. Warner4Université Paris-Saclay, CNRS, CEA, Institut de physique théoriqueDipartimento di Fisica, Università di GenovaUniversité Paris-Saclay, CNRS, CEA, Institut de physique théoriqueCentre for Theoretical Physics, Department of Physics and Astronomy, Queen Mary University of LondonUniversité Paris-Saclay, CNRS, CEA, Institut de physique théoriqueAbstract Microstrata are the non-extremal analogues of superstrata: they are smooth, non-extremal (non-BPS) solitonic solutions to IIB supergravity whose deep-throat limits approximate black holes. Using perturbation theory and numerical methods, we construct families of solutions using a consistent truncation to three-dimensional supergravity. The most general families presented here involve two continuous parameters, or amplitudes, and four quantized parameters that set the angular momenta and energy levels. Our solutions are asymptotic to the vacuum of the D1-D5 system: AdS3 × S 3 × 𝕋4. Using holography, we show that the they are dual to multi-particle states in the D1-D5 CFT involving a large number of mutually non-BPS supergravitons and we determine the anomalous dimensions of these states from the binding energies in supergravity. These binding energies are uniformly negative and depend non-linearly on the amplitudes of the states. In one family of solutions, smoothness restricts some of the fields to lie on a special locus of the parameter space. Using precision holography we show that this special locus can be identified with the multi-particle states constructed via the standard OPE of the single-particle constituents. Our numerical analysis shows that microstrata are robust at large amplitudes and the solutions can be obtained to very high precision.https://doi.org/10.1007/JHEP10(2023)163Black Holes in String TheoryAdS-CFT Correspondence
spellingShingle Bogdan Ganchev
Stefano Giusto
Anthony Houppe
Rodolfo Russo
Nicholas P. Warner
Microstrata
Journal of High Energy Physics
Black Holes in String Theory
AdS-CFT Correspondence
title Microstrata
title_full Microstrata
title_fullStr Microstrata
title_full_unstemmed Microstrata
title_short Microstrata
title_sort microstrata
topic Black Holes in String Theory
AdS-CFT Correspondence
url https://doi.org/10.1007/JHEP10(2023)163
work_keys_str_mv AT bogdanganchev microstrata
AT stefanogiusto microstrata
AT anthonyhouppe microstrata
AT rodolforusso microstrata
AT nicholaspwarner microstrata