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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Verein zur Förderung des Open Access Publizierens in den Quantenwissenschaften
2020-12-01
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Online Access: | https://quantum-journal.org/papers/q-2020-12-23-375/pdf/ |
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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/ |
work_keys_str_mv |
AT marcinłobejko thermodynamicsofminimalcouplingquantumheatengines AT pawełmazurek thermodynamicsofminimalcouplingquantumheatengines AT michałhorodecki thermodynamicsofminimalcouplingquantumheatengines |
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