Unraveling the topology of dissipative quantum systems

We discuss topology in dissipative quantum systems from the perspective of quantum trajectories. The latter emerge in the unraveling of Markovian quantum master equations and/or in continuous quantum measurements. Ensemble-averaging quantum trajectories at the occurrence of quantum jumps, i.e., the...

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Published in:Physical Review Research
Main Authors: Clemens Gneiting, Akshay Koottandavida, A. V. Rozhkov, Franco Nori
Format: Article
Language:English
Published: American Physical Society 2022-04-01
Online Access:http://doi.org/10.1103/PhysRevResearch.4.023036
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author Clemens Gneiting
Akshay Koottandavida
A. V. Rozhkov
Franco Nori
author_facet Clemens Gneiting
Akshay Koottandavida
A. V. Rozhkov
Franco Nori
author_sort Clemens Gneiting
collection DOAJ
container_title Physical Review Research
description We discuss topology in dissipative quantum systems from the perspective of quantum trajectories. The latter emerge in the unraveling of Markovian quantum master equations and/or in continuous quantum measurements. Ensemble-averaging quantum trajectories at the occurrence of quantum jumps, i.e., the jump times, gives rise to a discrete, deterministic evolution which is highly sensitive to the presence of dark states [Gneiting et al., Phys. Rev. A 104, 062212 (2021)10.1103/PhysRevA.104.062212]. We show for a broad family of translation-invariant collapse models that the set of dark-state-inducing Hamiltonians imposes a nontrivial topological structure on the space of Hamiltonians, which is also reflected by the corresponding jump-time dynamics. The topological character of the latter can then be observed, for instance, in the transport behavior, exposing an infinite hierarchy of topological phase transitions. We develop our theory for one- and two-dimensional two-band Hamiltonians and show that the topological behavior is directly manifest for chiral, PT, or time-reversal-symmetric Hamiltonians.
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spelling doaj-art-3794c84e6144416ab7239feaeb4e2d0d2025-08-20T00:14:09ZengAmerican Physical SocietyPhysical Review Research2643-15642022-04-014202303610.1103/PhysRevResearch.4.023036Unraveling the topology of dissipative quantum systemsClemens GneitingAkshay KoottandavidaA. V. RozhkovFranco NoriWe discuss topology in dissipative quantum systems from the perspective of quantum trajectories. The latter emerge in the unraveling of Markovian quantum master equations and/or in continuous quantum measurements. Ensemble-averaging quantum trajectories at the occurrence of quantum jumps, i.e., the jump times, gives rise to a discrete, deterministic evolution which is highly sensitive to the presence of dark states [Gneiting et al., Phys. Rev. A 104, 062212 (2021)10.1103/PhysRevA.104.062212]. We show for a broad family of translation-invariant collapse models that the set of dark-state-inducing Hamiltonians imposes a nontrivial topological structure on the space of Hamiltonians, which is also reflected by the corresponding jump-time dynamics. The topological character of the latter can then be observed, for instance, in the transport behavior, exposing an infinite hierarchy of topological phase transitions. We develop our theory for one- and two-dimensional two-band Hamiltonians and show that the topological behavior is directly manifest for chiral, PT, or time-reversal-symmetric Hamiltonians.http://doi.org/10.1103/PhysRevResearch.4.023036
spellingShingle Clemens Gneiting
Akshay Koottandavida
A. V. Rozhkov
Franco Nori
Unraveling the topology of dissipative quantum systems
title Unraveling the topology of dissipative quantum systems
title_full Unraveling the topology of dissipative quantum systems
title_fullStr Unraveling the topology of dissipative quantum systems
title_full_unstemmed Unraveling the topology of dissipative quantum systems
title_short Unraveling the topology of dissipative quantum systems
title_sort unraveling the topology of dissipative quantum systems
url http://doi.org/10.1103/PhysRevResearch.4.023036
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AT franconori unravelingthetopologyofdissipativequantumsystems