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Graphene plasmonically induced analogue of tunable electromagnetically induced transparency without structurally or spatially asymmetry

机译:石墨烯相位相形的可调谐电磁诱导的透明性类似物而不在结构上或空间上不对称

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Electromagnetically induced transparency (EIT) arises from the coherent coupling and interference between a superradiant (bright) mode in one resonator and a subradiant (dark) mode in an adjacent resonator. Generally, the two adjacent resonators are structurally or spatially asymmetric. Here, by numerical simulation, we demonstrate that tunable EIT can be induced by graphene ribbon pairs without structurally or spatially asymmetry. The mechanism originates from the fact that the resonate frequencies of the bright mode and the dark mode supported by the symmetrical graphene ribbon pairs can be respectively tuned by electrical doping levels, and when they are tuned to be equal the graphene plasmon coupling and interference occurs. The EIT in symmetrical nanostructure which avoids deliberately breaking the element symmetry in shape as well as in size facilitates the design and fabrication of the structure. In addition, the work regarding to EIT in the structurally symmetric could provide a fresh contribution to a more comprehensive physical understanding of Fano resonance.
机译:电磁诱导的透明度(EIT)由一个谐振器中的超辐射(明亮)模式和相邻谐振器中的亚辐射(暗)模式之间的相干耦合和干扰。通常,两个相邻的谐振器在结构上或空间上不对称。这里,通过数值模拟,我们证明可调谐EIT可以通过石墨烯色带对而没有在结构上或空间上不对称地诱导。该机制源自:由电掺杂水平分别调谐光亮模式和由对称石墨烯带对支撑的暗模式的谐振频率,并且当它们被调谐为等于石墨烯等离子体耦合和干扰时。对称纳米结构中的EIT,其避免了故意破坏形状的元件对称性以及尺寸,便于结构的设计和制造。此外,关于在结构上对称的eit的工作可以为更全面的对Fano共振的理解提供新的贡献。

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