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Induced transparency by coupling of Tamm and defect states in tunable terahertz plasmonic crystals

机译:在可调太赫兹等离子体晶体中通过Tamm和缺陷态的耦合引起的透明性

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摘要

Photonic crystals and metamaterials have emerged as two classes of tailorable materials that enable the precise control of light. Plasmonic crystals, which can be thought of as photonic crystals fabricated from plasmonic materials, Bragg scatter incident electromagnetic waves from a repeated unit cell. However, plasmonic crystals, like metamaterials, are composed of subwavelength unit cells. Here, we study terahertz plasmonic crystals of several periods in a two-dimensional electron gas. This plasmonic medium is both extremely subwavelength (~λ/100) and reconfigurable through the application of voltages to metal electrodes. Weakly localized crystal surface states known as Tamm states are observed. By introducing an independently controlled plasmonic defect that interacts with the Tamm states, we demonstrate a frequency-agile electromagnetically induced transparency phenomenon. The observed 50% in situ tuning of the plasmonic crystal band edges should be realizable in materials such as graphene to actively control plasmonic crystal dispersion in the infrared.
机译:光子晶体和超材料已经成为可精确控制光的两类可定制材料。等离子晶体,可以认为是由等离激元材料制成的光子晶体,布拉格将来自重复单元的入射电磁波散射。但是,等离子晶体像超材料一样,由亚波长晶胞组成。在这里,我们研究二维电子气中几个周期的太赫兹等离子体晶体。这种等离子体介质的波长非常短(〜λ/ 100),并且可以通过在金属电极上施加电压来重新配置。观察到微弱的局部晶体表面状态,称为Tamm状态。通过引入与Tamm态相互作用的独立控制的等离子体缺陷,我们证明了频率捷变的电磁感应透明现象。在诸如石墨烯的材料中应该可以实现观察到的等离子晶体能带边缘的50%原位调谐,以主动控制红外中的等离子晶体分散。

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