Thermodynamics of Minimal Coupling Quantum Heat Engines

The minimal-coupling quantum heat engine is a thermal machine consisting of an explicit energy storage system, heat baths, and a working body, which alternatively couples to subsystems through discrete strokes --- energy-conserving two-body quantum operations. Within this paradigm, we present a gene...

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Main Authors: Marcin Łobejko, Paweł Mazurek, Michał Horodecki
Format: Article
Language:English
Published: Verein zur Förderung des Open Access Publizierens in den Quantenwissenschaften 2020-12-01
Series:Quantum
Online Access:https://quantum-journal.org/papers/q-2020-12-23-375/pdf/
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spelling doaj-ddd35ad40e314f5dae786a1ceb5f0d622020-12-30T09:00:27ZengVerein zur Förderung des Open Access Publizierens in den QuantenwissenschaftenQuantum2521-327X2020-12-01437510.22331/q-2020-12-23-37510.22331/q-2020-12-23-375Thermodynamics of Minimal Coupling Quantum Heat EnginesMarcin ŁobejkoPaweł MazurekMichał HorodeckiThe minimal-coupling quantum heat engine is a thermal machine consisting of an explicit energy storage system, heat baths, and a working body, which alternatively couples to subsystems through discrete strokes --- energy-conserving two-body quantum operations. Within this paradigm, we present a general framework of quantum thermodynamics, where a work extraction process is fundamentally limited by a flow of non-passive energy (ergotropy), while energy dissipation is expressed through a flow of passive energy. It turns out that small dimensionality of the working body and a restriction only to two-body operations make the engine fundamentally irreversible. Our main result is finding the optimal efficiency and work production per cycle within the whole class of irreversible minimal-coupling engines composed of three strokes and with the two-level working body, where we take into account all possible quantum correlations between the working body and the battery. One of the key new tools is the introduced ``control-marginal state" --- one which acts only on a working body Hilbert space, but encapsulates all features regarding work extraction of the total working body-battery system. In addition, we propose a generalization of the many-stroke engine, and we analyze efficiency vs extracted work trade-offs, as well as work fluctuations after many cycles of the running of the engine.https://quantum-journal.org/papers/q-2020-12-23-375/pdf/
collection DOAJ
language English
format Article
sources DOAJ
author Marcin Łobejko
Paweł Mazurek
Michał Horodecki
spellingShingle Marcin Łobejko
Paweł Mazurek
Michał Horodecki
Thermodynamics of Minimal Coupling Quantum Heat Engines
Quantum
author_facet Marcin Łobejko
Paweł Mazurek
Michał Horodecki
author_sort Marcin Łobejko
title Thermodynamics of Minimal Coupling Quantum Heat Engines
title_short Thermodynamics of Minimal Coupling Quantum Heat Engines
title_full Thermodynamics of Minimal Coupling Quantum Heat Engines
title_fullStr Thermodynamics of Minimal Coupling Quantum Heat Engines
title_full_unstemmed Thermodynamics of Minimal Coupling Quantum Heat Engines
title_sort thermodynamics of minimal coupling quantum heat engines
publisher Verein zur Förderung des Open Access Publizierens in den Quantenwissenschaften
series Quantum
issn 2521-327X
publishDate 2020-12-01
description The minimal-coupling quantum heat engine is a thermal machine consisting of an explicit energy storage system, heat baths, and a working body, which alternatively couples to subsystems through discrete strokes --- energy-conserving two-body quantum operations. Within this paradigm, we present a general framework of quantum thermodynamics, where a work extraction process is fundamentally limited by a flow of non-passive energy (ergotropy), while energy dissipation is expressed through a flow of passive energy. It turns out that small dimensionality of the working body and a restriction only to two-body operations make the engine fundamentally irreversible. Our main result is finding the optimal efficiency and work production per cycle within the whole class of irreversible minimal-coupling engines composed of three strokes and with the two-level working body, where we take into account all possible quantum correlations between the working body and the battery. One of the key new tools is the introduced ``control-marginal state" --- one which acts only on a working body Hilbert space, but encapsulates all features regarding work extraction of the total working body-battery system. In addition, we propose a generalization of the many-stroke engine, and we analyze efficiency vs extracted work trade-offs, as well as work fluctuations after many cycles of the running of the engine.
url https://quantum-journal.org/papers/q-2020-12-23-375/pdf/
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AT pawełmazurek thermodynamicsofminimalcouplingquantumheatengines
AT michałhorodecki thermodynamicsofminimalcouplingquantumheatengines
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