Manifestation of the Purcell Effect in Current Transport through a Dot–Cavity–QED System

dc.contributorHáskóli Íslandsen_US
dc.contributorUniversity of Icelanden_US
dc.contributorHáskólinn í Reykjavíken_US
dc.contributorReykjavik Universityen_US
dc.contributor.authorAbdullah, Nzar
dc.contributor.authorTang, Chi-Shung
dc.contributor.authorManolescu, Andrei
dc.contributor.authorGudmundsson, Vidar
dc.contributor.departmentRaunvísindastofnun (HÍ)en_US
dc.contributor.departmentScience Institute (UI)en_US
dc.contributor.schoolVerkfræði- og náttúruvísindasvið (HÍ)en_US
dc.contributor.schoolSchool of Engineering and Natural Sciences (UI)en_US
dc.contributor.schoolSchool of Science and Engineering (RU)en_US
dc.contributor.schoolTækni- og verkfræðideild (HR)en_US
dc.date.accessioned2020-03-31T15:08:51Z
dc.date.available2020-03-31T15:08:51Z
dc.date.issued2019-07-17
dc.descriptionPublisher's version (útgefin grein)en_US
dc.description.abstractWe study the transport properties of a wire-dot system coupled to a cavity and a photon reservoir. The system is considered to be microstructured from a two-dimensional electron gas in a GaAs heterostructure. The 3D photon cavity is active in the far-infrared or the terahertz regime. Tuning the photon energy, Rabi-resonant states emerge and in turn resonant current peaks are observed. We demonstrate the effects of the cavity–photon reservoir coupling, the mean photon number in the reservoir, the electron–photon coupling and the photon polarization on the intraband transitions occurring between the Rabi-resonant states, and on the corresponding resonant current peaks. The Rabi-splitting can be controlled by the photon polarization and the electron–photon coupling strength. In the selected range of the parameters, the electron–photon coupling and the cavity-environment coupling strengths, we observe the results of the Purcell effect enhancing the current peaks through the cavity by increasing the cavity–reservoir coupling, while they decrease with increasing electron–photon coupling. In addition, the resonant current peaks are also sensitive to the mean number of photons in the reservoir.en_US
dc.description.sponsorshipThis work was financially supported by the Research Fund of the University of Iceland, the Icelandic Research Fund, grant No. 163082-051, and the Icelandic Infrastructure Fund.en_US
dc.description.versionPeer Revieweden_US
dc.format.extent1023en_US
dc.identifier.citationAbdullah, N.R.; Tang, C.-S.; Manolescu, A.; Gudmundsson, V. Manifestation of the Purcell Effect in Current Transport through a Dot–Cavity–QED System. Nanomaterials 2019, 9, 1023.en_US
dc.identifier.doi10.3390/nano9071023
dc.identifier.issn2079-4991
dc.identifier.journalNanomaterialsen_US
dc.identifier.urihttps://hdl.handle.net/20.500.11815/1683
dc.language.isoenen_US
dc.publisherMDPI AGen_US
dc.relation.ispartofseriesNanomaterials;9(7)
dc.relation.urlhttps://www.mdpi.com/2079-4991/9/7/1023/pdfen_US
dc.rightsinfo:eu-repo/semantics/openAccessen_US
dc.subjectCavity-quantum electrodynamicsen_US
dc.subjectElectro-optical effectsen_US
dc.subjectQuantum doten_US
dc.subjectQuantum master equationen_US
dc.subjectQuantum transporten_US
dc.subjectSkammtafræðien_US
dc.subjectRafsegulfræðien_US
dc.titleManifestation of the Purcell Effect in Current Transport through a Dot–Cavity–QED Systemen_US
dc.typeinfo:eu-repo/semantics/articleen_US
dcterms.licenseThis is an open access article distributed under the Creative Commons Attribution License which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly citeden_US

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