000835930 001__ 835930 000835930 005__ 20230426083150.0 000835930 0247_ $$2doi$$a10.1103/PhysRevB.95.174302 000835930 0247_ $$2ISSN$$a0163-1829 000835930 0247_ $$2ISSN$$a0556-2805 000835930 0247_ $$2ISSN$$a1094-1622 000835930 0247_ $$2ISSN$$a1095-3795 000835930 0247_ $$2ISSN$$a1098-0121 000835930 0247_ $$2ISSN$$a1550-235X 000835930 0247_ $$2ISSN$$a2469-9950 000835930 0247_ $$2ISSN$$a2469-9969 000835930 0247_ $$2Handle$$a2128/14940 000835930 0247_ $$2WOS$$aWOS:000405207400002 000835930 0247_ $$2altmetric$$aaltmetric:4906790 000835930 037__ $$aFZJ-2017-05062 000835930 041__ $$aEnglish 000835930 082__ $$a530 000835930 1001_ $$0P:(DE-Juel1)171686$$aAnsari, Mohammad$$b0$$eCorresponding author$$ufzj 000835930 245__ $$aEntropy production in a photovoltaic cell 000835930 260__ $$aWoodbury, NY$$bInst.$$c2017 000835930 3367_ $$2DRIVER$$aarticle 000835930 3367_ $$2DataCite$$aOutput Types/Journal article 000835930 3367_ $$0PUB:(DE-HGF)16$$2PUB:(DE-HGF)$$aJournal Article$$bjournal$$mjournal$$s1500893656_6036 000835930 3367_ $$2BibTeX$$aARTICLE 000835930 3367_ $$2ORCID$$aJOURNAL_ARTICLE 000835930 3367_ $$00$$2EndNote$$aJournal Article 000835930 520__ $$aWe evaluate entropy production in a photovoltaic cell that is modeled by four electronic levels resonantly coupled to thermally populated field modes at different temperatures. We use a formalism recently proposed, the so-called multiple parallel worlds, to consistently address the nonlinearity of entropy in terms of density matrix. Our result shows that entropy production is the difference between two flows: a semiclassical flow that linearly depends on occupational probabilities, and another flow that depends nonlinearly on quantum coherence and has no semiclassical analog. We show that entropy production in the cells depends on environmentally induced decoherence time and energy detuning. We characterize regimes where reversal flow of information takes place from a cold to hot bath. Interestingly, we identify a lower bound on entropy production, which sets limitations on the statistics of dissipated heat in the cells. 000835930 536__ $$0G:(DE-HGF)POF3-144$$a144 - Controlling Collective States (POF3-144)$$cPOF3-144$$fPOF III$$x0 000835930 542__ $$2Crossref$$i2017-05-18$$uhttp://link.aps.org/licenses/aps-default-license 000835930 588__ $$aDataset connected to CrossRef 000835930 77318 $$2Crossref$$3journal-article$$a10.1103/physrevb.95.174302$$bAmerican Physical Society (APS)$$d2017-05-18$$n17$$p174302$$tPhysical Review B$$v95$$x2469-9950$$y2017 000835930 773__ $$0PERI:(DE-600)2844160-6$$a10.1103/PhysRevB.95.174302$$gVol. 95, no. 17, p. 174302$$n17$$p174302$$tPhysical review / B$$v95$$x2469-9950$$y2017 000835930 8564_ $$uhttps://juser.fz-juelich.de/record/835930/files/PhysRevB.95.174302.pdf$$yOpenAccess 000835930 909CO $$ooai:juser.fz-juelich.de:835930$$pdnbdelivery$$pVDB$$pdriver$$popen_access$$popenaire 000835930 9101_ $$0I:(DE-588b)5008462-8$$6P:(DE-Juel1)171686$$aForschungszentrum Jülich$$b0$$kFZJ 000835930 9131_ $$0G:(DE-HGF)POF3-144$$1G:(DE-HGF)POF3-140$$2G:(DE-HGF)POF3-100$$3G:(DE-HGF)POF3$$4G:(DE-HGF)POF$$aDE-HGF$$bEnergie$$lFuture Information Technology - Fundamentals, Novel Concepts and Energy Efficiency (FIT)$$vControlling Collective States$$x0 000835930 9141_ $$y2017 000835930 915__ $$0StatID:(DE-HGF)0200$$2StatID$$aDBCoverage$$bSCOPUS 000835930 915__ $$0StatID:(DE-HGF)0600$$2StatID$$aDBCoverage$$bEbsco Academic Search 000835930 915__ $$0StatID:(DE-HGF)0100$$2StatID$$aJCR$$bPHYS REV B : 2015 000835930 915__ $$0StatID:(DE-HGF)0150$$2StatID$$aDBCoverage$$bWeb of Science Core Collection 000835930 915__ $$0StatID:(DE-HGF)0110$$2StatID$$aWoS$$bScience Citation Index 000835930 915__ $$0StatID:(DE-HGF)0111$$2StatID$$aWoS$$bScience Citation Index Expanded 000835930 915__ $$0StatID:(DE-HGF)9900$$2StatID$$aIF < 5 000835930 915__ $$0StatID:(DE-HGF)0510$$2StatID$$aOpenAccess 000835930 915__ $$0StatID:(DE-HGF)0030$$2StatID$$aPeer Review$$bASC 000835930 915__ $$0StatID:(DE-HGF)1150$$2StatID$$aDBCoverage$$bCurrent Contents - Physical, Chemical and Earth Sciences 000835930 915__ $$0StatID:(DE-HGF)0300$$2StatID$$aDBCoverage$$bMedline 000835930 915__ $$0StatID:(DE-HGF)0199$$2StatID$$aDBCoverage$$bThomson Reuters Master Journal List 000835930 920__ $$lyes 000835930 9201_ $$0I:(DE-Juel1)PGI-2-20110106$$kPGI-2$$lTheoretische Nanoelektronik$$x0 000835930 980__ $$ajournal 000835930 980__ $$aVDB 000835930 980__ $$aUNRESTRICTED 000835930 980__ $$aI:(DE-Juel1)PGI-2-20110106 000835930 9801_ $$aFullTexts 000835930 999C5 $$2Crossref$$9-- missing cx lookup --$$a10.1103/RevModPhys.81.865 000835930 999C5 $$2Crossref$$9-- missing cx lookup --$$a10.1103/PhysRevLett.90.227902 000835930 999C5 $$2Crossref$$9-- missing cx lookup --$$a10.1103/PhysRevLett.94.097203 000835930 999C5 $$2Crossref$$9-- missing cx lookup --$$a10.1038/nature07128 000835930 999C5 $$1G. 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