4.5 Article

Tunable terahertz absorption in graphene-based metamaterial

Journal

OPTICS COMMUNICATIONS
Volume 353, Issue -, Pages 70-75

Publisher

ELSEVIER
DOI: 10.1016/j.optcom.2015.05.017

Keywords

Terahertz metamaterial; Grapheme; Dynamically tunable; Absorption

Categories

Funding

  1. National Natural Science Foundation of China [51005001, 51402075]
  2. Heilongjiang Province Natural Science Foundation of China [F201309]
  3. Postdoctoral 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

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One of the most important advantages of graphene is the capability of dynamically tuning its conductivity by means of chemical doping or gate voltage. Based on this property, we proposed a tunable graphene-based terahertz absorber composed of a periodically patterned graphene structure and a metal ground plane spaced by a thin SiO2 dielectric layer. Our calculated results show that a perfect absorption can be achieved by using a single layer of graphene-based metamaterial structure at a fixed Fermi energy level. Moreover, the calculated electric field and power loss distributions enable us to reveal the absorption mechanism of the designed absorber. More importantly, we found that the absorption peak can be dynamically controlled over a broadband frequency range by adjusting the gate voltage without reoptimizing or re-fabricating the physical structure. This work may provide a further step in the development of compact tunable devices, such as tunable sensors and absorbers, switches, and slow light devices. (C) 2015 Elsevier B.V. All rights reserved.

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