Measurement Based Quantum Heat Engine with Coupled Working Medium

We consider measurement based single temperature quantum heat engine without feedback control, introduced recently by Yi, Talkner and Kim [<i>Phys. Rev. E</i> <b>96</b>, 022108 (2017)]. Taking the working medium of the engine to be a one-dimensional Heisenberg model of two sp...

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Main Authors: Arpan Das, Sibasish Ghosh
Format: Article
Language:English
Published: MDPI AG 2019-11-01
Series:Entropy
Subjects:
Online Access:https://www.mdpi.com/1099-4300/21/11/1131
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spelling doaj-48a40cf815b041b3bbb86b9d90d623db2020-11-25T01:49:52ZengMDPI AGEntropy1099-43002019-11-012111113110.3390/e21111131e21111131Measurement Based Quantum Heat Engine with Coupled Working MediumArpan Das0Sibasish Ghosh1Institute of Physics, Sachivalaya Marg, Bhubaneswar 751005, Odisha, IndiaHomi Bhabha National Institute, Training School Complex, Anushakti Nagar, Mumbai 400085, IndiaWe consider measurement based single temperature quantum heat engine without feedback control, introduced recently by Yi, Talkner and Kim [<i>Phys. Rev. E</i> <b>96</b>, 022108 (2017)]. Taking the working medium of the engine to be a one-dimensional Heisenberg model of two spins, we calculate the efficiency of the engine undergoing a cyclic process. Starting with two spin-1/2 particles, we investigate the scenario of higher spins also. We show that, for this model of coupled working medium, efficiency can be higher than that of an uncoupled one. However, the relationship between the coupling constant and the efficiency of the engine is rather involved. We find that in the higher spin scenario efficiency can sometimes be negative (this means work has to be done to run the engine cycle) for certain range of coupling constants, in contrast to the aforesaid work of Yi, Talkner and Kim, where they showed that the extracted work is always positive in the absence of coupling. We provide arguments for this negative efficiency in higher spin scenarios. Interestingly, this happens only in the asymmetric scenarios, where the two spins are different. Given these facts, for judiciously chosen conditions, an engine with coupled working medium gives advantage for the efficiency over the uncoupled one.https://www.mdpi.com/1099-4300/21/11/1131quantum heat enginemeasurement driven engine
collection DOAJ
language English
format Article
sources DOAJ
author Arpan Das
Sibasish Ghosh
spellingShingle Arpan Das
Sibasish Ghosh
Measurement Based Quantum Heat Engine with Coupled Working Medium
Entropy
quantum heat engine
measurement driven engine
author_facet Arpan Das
Sibasish Ghosh
author_sort Arpan Das
title Measurement Based Quantum Heat Engine with Coupled Working Medium
title_short Measurement Based Quantum Heat Engine with Coupled Working Medium
title_full Measurement Based Quantum Heat Engine with Coupled Working Medium
title_fullStr Measurement Based Quantum Heat Engine with Coupled Working Medium
title_full_unstemmed Measurement Based Quantum Heat Engine with Coupled Working Medium
title_sort measurement based quantum heat engine with coupled working medium
publisher MDPI AG
series Entropy
issn 1099-4300
publishDate 2019-11-01
description We consider measurement based single temperature quantum heat engine without feedback control, introduced recently by Yi, Talkner and Kim [<i>Phys. Rev. E</i> <b>96</b>, 022108 (2017)]. Taking the working medium of the engine to be a one-dimensional Heisenberg model of two spins, we calculate the efficiency of the engine undergoing a cyclic process. Starting with two spin-1/2 particles, we investigate the scenario of higher spins also. We show that, for this model of coupled working medium, efficiency can be higher than that of an uncoupled one. However, the relationship between the coupling constant and the efficiency of the engine is rather involved. We find that in the higher spin scenario efficiency can sometimes be negative (this means work has to be done to run the engine cycle) for certain range of coupling constants, in contrast to the aforesaid work of Yi, Talkner and Kim, where they showed that the extracted work is always positive in the absence of coupling. We provide arguments for this negative efficiency in higher spin scenarios. Interestingly, this happens only in the asymmetric scenarios, where the two spins are different. Given these facts, for judiciously chosen conditions, an engine with coupled working medium gives advantage for the efficiency over the uncoupled one.
topic quantum heat engine
measurement driven engine
url https://www.mdpi.com/1099-4300/21/11/1131
work_keys_str_mv AT arpandas measurementbasedquantumheatenginewithcoupledworkingmedium
AT sibasishghosh measurementbasedquantumheatenginewithcoupledworkingmedium
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