Bethe ansatz approach for dissipation: exact solutions of quantum many-body dynamics under loss

We develop a Bethe ansatz based approach to study dissipative systems experiencing loss. The method allows us to exactly calculate the spectra of interacting, many-body Liouvillians. We discuss how the dissipative Bethe ansatz opens the possibility of analytically calculating the dynamics of a wide...

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Huvudupphovsmän: Buca, B, Booker, C, Medenjak, M, Jaksch, D
Materialtyp: Journal article
Språk:English
Publicerad: IOP Publishing 2020
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author Buca, B
Booker, C
Medenjak, M
Jaksch, D
author_facet Buca, B
Booker, C
Medenjak, M
Jaksch, D
author_sort Buca, B
collection OXFORD
description We develop a Bethe ansatz based approach to study dissipative systems experiencing loss. The method allows us to exactly calculate the spectra of interacting, many-body Liouvillians. We discuss how the dissipative Bethe ansatz opens the possibility of analytically calculating the dynamics of a wide range of experimentally relevant models including cold atoms subjected to one and two body losses, coupled cavity arrays with bosons escaping the cavity, and cavity quantum electrodynamics. As an example of our approach we study the relaxation properties in a boundary driven XXZ spin chain. We exactly calculate the Liouvillian gap and find different relaxation rates with a novel type of dynamical dissipative phase transition. This physically translates into the formation of a stable domain wall in the easy-axis regime despite the presence of loss. Such analytic results have previously been inaccessible for systems of this type.
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spelling oxford-uuid:653c28e8-e520-4bb5-aee7-2bad6f9cd3a32022-03-26T18:24:14ZBethe ansatz approach for dissipation: exact solutions of quantum many-body dynamics under lossJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:653c28e8-e520-4bb5-aee7-2bad6f9cd3a3EnglishSymplectic ElementsIOP Publishing2020Buca, BBooker, CMedenjak, MJaksch, DWe develop a Bethe ansatz based approach to study dissipative systems experiencing loss. The method allows us to exactly calculate the spectra of interacting, many-body Liouvillians. We discuss how the dissipative Bethe ansatz opens the possibility of analytically calculating the dynamics of a wide range of experimentally relevant models including cold atoms subjected to one and two body losses, coupled cavity arrays with bosons escaping the cavity, and cavity quantum electrodynamics. As an example of our approach we study the relaxation properties in a boundary driven XXZ spin chain. We exactly calculate the Liouvillian gap and find different relaxation rates with a novel type of dynamical dissipative phase transition. This physically translates into the formation of a stable domain wall in the easy-axis regime despite the presence of loss. Such analytic results have previously been inaccessible for systems of this type.
spellingShingle Buca, B
Booker, C
Medenjak, M
Jaksch, D
Bethe ansatz approach for dissipation: exact solutions of quantum many-body dynamics under loss
title Bethe ansatz approach for dissipation: exact solutions of quantum many-body dynamics under loss
title_full Bethe ansatz approach for dissipation: exact solutions of quantum many-body dynamics under loss
title_fullStr Bethe ansatz approach for dissipation: exact solutions of quantum many-body dynamics under loss
title_full_unstemmed Bethe ansatz approach for dissipation: exact solutions of quantum many-body dynamics under loss
title_short Bethe ansatz approach for dissipation: exact solutions of quantum many-body dynamics under loss
title_sort bethe ansatz approach for dissipation exact solutions of quantum many body dynamics under loss
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AT bookerc betheansatzapproachfordissipationexactsolutionsofquantummanybodydynamicsunderloss
AT medenjakm betheansatzapproachfordissipationexactsolutionsofquantummanybodydynamicsunderloss
AT jakschd betheansatzapproachfordissipationexactsolutionsofquantummanybodydynamicsunderloss