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      Broadband graphene terahertz modulators enabled by intraband transitions.

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          Abstract

          Terahertz technology promises myriad applications including imaging, spectroscopy and communications. However, one major bottleneck at present for advancing this field is the lack of efficient devices to manipulate the terahertz electromagnetic waves. Here we demonstrate that exceptionally efficient broadband modulation of terahertz waves at room temperature can be realized using graphene with extremely low intrinsic signal attenuation. We experimentally achieved more than 2.5 times superior modulation than prior broadband intensity modulators, which is also the first demonstrated graphene-based device enabled solely by intraband transitions. The unique advantages of graphene in comparison to conventional semiconductors are the ease of integration and the extraordinary transport properties of holes, which are as good as those of electrons owing to the symmetric conical band structure of graphene. Given recent progress in graphene-based terahertz emitters and detectors, graphene may offer some interesting solutions for terahertz technologies.

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          Author and article information

          Journal
          Nat Commun
          Nature communications
          Springer Science and Business Media LLC
          2041-1723
          2041-1723
          Apr 17 2012
          : 3
          Affiliations
          [1 ] Department of Electrical Engineering, University of Notre Dame, Notre Dame, Indiana 46556, USA.
          Article
          ncomms1787
          10.1038/ncomms1787
          22510685
          4a7d72df-650b-41fe-9bbc-4c713b57c8cd
          History

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