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      Photonic crystals for nano-light in moir\'e graphene superlattices

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          Abstract

          Graphene is an atomically thin plasmonic medium that supports highly confined plasmon polaritons, or nano-light, with very low loss. Electronic properties of graphene can be drastically altered when it is laid upon another graphene layer, resulting in a moir\'e superlattice. The relative twist angle between the two layers is a key tuning parameter of the interlayer coupling in thus obtained twisted bilayer graphene (TBG). We studied propagation of plasmon polaritons in TBG by infrared nano-imaging. We discovered that the atomic reconstruction occurring at small twist angles transforms the TBG into a natural plasmon photonic crystal for propagating nano-light. This discovery points to a pathway towards controlling nano-light by exploiting quantum properties of graphene and other atomically layered van der Waals materials eliminating need for arduous top-down nanofabrication.

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          Author and article information

          Journal
          24 January 2019
          Article
          10.1126/science.aau5144
          1901.08378
          17872d87-c0f4-4030-9893-74eb8ceb1806

          http://arxiv.org/licenses/nonexclusive-distrib/1.0/

          History
          Custom metadata
          Science 362, 1153-1156 (2018)
          cond-mat.mes-hall

          Nanophysics
          Nanophysics

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