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Electrical Control of Electromagnetically Induced Transparency by Terahertz Metamaterial Funneling

Authors
Jung, H.Jo, H.Lee, W.Kim, B.Choi, H.Kang, M.S.Lee, H.
Issue Date
Mar-2019
Publisher
John Wiley and Sons Inc.
Keywords
active metamaterials; field enhancement; graphene; ion-gel; terahertz
Citation
Advanced Optical Materials, v.7, no.2
Journal Title
Advanced Optical Materials
Volume
7
Number
2
URI
http://scholarworks.bwise.kr/ssu/handle/2018.sw.ssu/30962
DOI
10.1002/adom.201801205
ISSN
2195-1071
Abstract
Electromagnetically induced transparency (EIT) analogs using metamaterials have diverse applications, including nonlinear optics, telecommunications, and biochemical sensors. These EIT analogs can be actively controlled by embedding semiconducting materials into metamaterial structures, but most active EIT metamaterials require complex optical setups and complicated fabrication processes. Graphene-based EIT metamaterials are some of the most promising active EIT systems because of their simple controllability by electrical bias, but related researches have so far been limited to theoretical or numerical studies. Here, experimentally verified graphene EIT metamaterials are provided by controlling the terahertz funneling of the unique metaatom structures. The proposed active EIT metamaterials are fabricated on flexible and ultrathin polyimide films to acquire the lowest substrate insertion losses and achieve a 1 ps group delay change at the transmission peak of the EIT analog. Moreover, because the proposed metamaterials exhibit resonance properties that vary depending on the polarization direction, the phase delay can be controlled up to 80° from the proposed metamaterials by rotating the incident polarization to the orthogonal direction. Overall, by controlling the group and phase delay of incident waves in a single metamaterial device simultaneously, a multifunctional active tuning system can be realized in the terahertz range. © 2018 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim
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