Active Terahertz Modulator and Slow Light Metamaterial Devices with Hybrid Graphene–Superconductor Photonic Integrated Circuits
Authors
Kalhor, Samane
Kindness, Stephen J.
Wallis, Robert
Beere, Harvey E.
Degl′Innocenti, Riccardo
Kelly, Michael J.
Hofmann, Stephan
Ritchie, David A.
Delfanazari, Kaveh
Publication Date
2021-11-08Journal Title
Nanomaterials
Publisher
MDPI
Volume
11
Issue
11
Language
en
Type
Article
This Version
VoR
Metadata
Show full item recordCitation
Kalhor, S., Kindness, S. J., Wallis, R., Beere, H. E., Ghanaatshoar, M., Degl′Innocenti, R., Kelly, M. J., et al. (2021). Active Terahertz Modulator and Slow Light Metamaterial Devices with Hybrid Graphene–Superconductor Photonic Integrated Circuits. Nanomaterials, 11 (11) https://doi.org/10.3390/nano11112999
Abstract
Metamaterial photonic integrated circuits with arrays of hybrid graphene–superconductor coupled split-ring resonators (SRR) capable of modulating and slowing down terahertz (THz) light are introduced and proposed. The hybrid device’s optical responses, such as electromagnetic-induced transparency (EIT) and group delay, can be modulated in several ways. First, it is modulated electrically by changing the conductivity and carrier concentrations in graphene. Alternatively, the optical response can be modified by acting on the device temperature sensitivity by switching Nb from a lossy normal phase to a low-loss quantum mechanical phase below the transition temperature (Tc) of Nb. Maximum modulation depths of 57.3% and 97.61% are achieved for EIT and group delay at the THz transmission window, respectively. A comparison is carried out between the Nb-graphene-Nb coupled SRR-based devices with those of Au-graphene-Au SRRs, and significant enhancements of the THz transmission, group delay, and EIT responses are observed when Nb is in the quantum mechanical phase. Such hybrid devices with their reasonably large and tunable slow light bandwidth pave the way for the realization of active optoelectronic modulators, filters, phase shifters, and slow light devices for applications in chip-scale future communication and computation systems.
Keywords
hybrid photonic integrated circuits, graphene, superconductors, terahertz photonics, terahertz electronics, electromagnetic induced transparency, slow light devices
Identifiers
External DOI: https://doi.org/10.3390/nano11112999
This record's URL: https://www.repository.cam.ac.uk/handle/1810/330597
Rights
Licence:
https://creativecommons.org/licenses/by/4.0/
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