4.8 Article

Implementation of selective controlling electromagnetically induced transparency in terahertz graphene metamaterial

期刊

CARBON
卷 123, 期 -, 页码 668-675

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.carbon.2017.08.016

关键词

Terahertz graphene metamaterials; EIT peak; Selectively electrostatic doping; Active controlling

资金

  1. National Natural Science Foundation of China [51672062, 51575149, 51402075]
  2. Heilongjiang Province Natural Science Foundation of China [F201309]
  3. Postdoctoral Science-Research Developmental Foundation of Heilongjiang Province [LBH-Q11082]
  4. Youth Academic Backbone Support Plan of Heilongjiang Province Ordinary College [1253G026]
  5. Special Funds of Harbin Innovation Talents in Science and Technology Research [2014RFQXJ031]
  6. Science Funds for the Young Innovative Talents of HUST [2011F04]

向作者/读者索取更多资源

A terahertz electromagnetically induced transparency (EIT) metamaterial, consisting of single-layer graphene cut wire resonator arrays with closely placed graphene closed ring resonator arrays, was designed and numerically investigated in this paper. A distinct transparency window resulting from the near field coupling between two resonators can be obtained in the transmission spectrum. More importantly, since two resonator elements of all unit cells connect respectively with the corresponding metallic pads (Pad 1 and Pad 2) by the separated graphene wires, the location and amplitude of the transparency window, and the associated group delay and delay bandwidth product can be actively controlled by the selective doping graphene. Moreover, compared with other separated graphene patterns, a more convenient and fast modulation can be realized by applying gate bias voltage. In addition, a two-particle model was employed to theoretically study EIT behaviors of the graphene metamaterial with different doping states, and the analytic results agree excellently with our numerical results. Therefore, the work could offer a new platform for exploring actively tunable slow light terahertz devices such as modulators, buffers, and optical delays. (C) 2017 Elsevier Ltd. All rights reserved.

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