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dc.contributor.authorKalhor, Sen_US
dc.contributor.authorKindness, SJen_US
dc.contributor.authorWallis, Ren_US
dc.contributor.authorBeere, HEen_US
dc.contributor.authorGhanaatshoar, Men_US
dc.contributor.authorDegl'innocenti, Ren_US
dc.contributor.authorKelly, MJen_US
dc.contributor.authorHofmann, Sen_US
dc.contributor.authorJoyce, HJen_US
dc.contributor.authorRitchie, DAen_US
dc.contributor.authorDelfanazari, Ken_US
dc.date.accessioned2024-05-31T13:30:24Z
dc.date.issued2022-01-01en_US
dc.identifier.issn1559-9450en_US
dc.identifier.urihttps://qmro.qmul.ac.uk/xmlui/handle/123456789/97157
dc.description.abstractThe dynamically tunable terahertz (THz) waves and electromagnetically induced transparency (EIT) in coupled hybrid superconducting niobium-graphene split-ring resonator arrays are investigated. Active modulation of THz waves is studied through two different approaches. Thermal tuning of THz amplitude and group delay is observed due to the temperature sensitivity of the niobium superconductor. Stronger photoresponses are observed when niobium is superconducting. The electrical tuning of the integrated hybrid device is accomplished through the integration of graphene patches with the superconducting circuit. The modulation of resonance strength and group delay is observed due to damping of the dark mode resonance in coupled split-ring resonator arrays. The proposed chip-scale device provides a route toward the implementation of active cryogenic THz devices.en_US
dc.format.extent967 - 971en_US
dc.titleActive Terahertz Modulator and Slow Light Metamaterial Devices with Hybrid Graphene-superconductor Coupled Split-ring Resonator Arraysen_US
dc.typeConference Proceeding
dc.rights.holder© 2023, published by IEEE
dc.identifier.doi10.1109/PIERS55526.2022.9792980en_US
pubs.notesNot knownen_US
pubs.publication-statusPublisheden_US
pubs.volume2022-Aprilen_US
rioxxterms.funderDefault funderen_US
rioxxterms.identifier.projectDefault projecten_US


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