Quantum-memory-enhanced dissipative entanglement creation in nonequilibrium steady states

Daniel Heineken, Konstantin Beyer, Kimmo Luoma, and Walter T. Strunz
Phys. Rev. A 104, 052426 – Published 24 November 2021

Abstract

This article investigates dissipative preparation of entangled nonequilibrium steady states (NESS). We construct a collision model where the open system consists of two qubits which are coupled to heat reservoirs with different temperatures. The baths are modeled by sequences of qubits interacting with the open system. The model can be studied in different dynamical regimes: with and without environmental memory effects. We report that only a certain bath temperature range allows for entangled NESS. Furthermore, we obtain minimal and maximal critical values for the heat current through the system. Surprisingly, quantum memory effects play a crucial role in the long-time limit. First, memory effects broaden the parameter region where quantum correlated NESS may be dissipatively prepared and, second, they increase the attainable concurrence. Most remarkably, we find a heat current range that does not only allow, but even guarantees that the NESS is entangled. Thus, the heat current can witness entanglement of nonequilibrium steady states.

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  • Received 20 April 2021
  • Revised 6 October 2021
  • Accepted 20 October 2021

DOI:https://doi.org/10.1103/PhysRevA.104.052426

©2021 American Physical Society

Physics Subject Headings (PhySH)

Quantum Information, Science & TechnologyAtomic, Molecular & OpticalStatistical Physics & Thermodynamics

Authors & Affiliations

Daniel Heineken1,*, Konstantin Beyer1,†, Kimmo Luoma1,2,‡, and Walter T. Strunz1,§

  • 1Institut für Theoretische Physik, Technische Universität Dresden, D-01062 Dresden, Germany
  • 2Department of Physics and Astronomy, Turku Center for Quantum Physics, University of Turku, FI-20014 Turun yliopisto, Finland

  • *daniel.heineken@studium.uni-hamburg.de
  • konstantin.beyer@tu-dresden.de
  • ktluom@utu.fi
  • §walter.strunz@tu-dresden.de

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Issue

Vol. 104, Iss. 5 — November 2021

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