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Nano-imaging of an edge-excited plasmon mode in graphene

机译:Nano-imaging edge-excited等离子体模式石墨烯

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The idea of squeezing optical field intensity into nanoscopic dimensions can be achieved through plasmon polaritons, where the prerequisite is to bridge the unmatched momentum of plasmons and free-space photons. Conventionally, complicated subwavelength structures or artificial dipole nanostructures are adopted to impart the necessary momentum for the plasmon excitation. In this work, we show that by using the near-field imaging technique, the plasmon can be launched directly from the edge of graphene lying on the high- oxide substrates when illuminated by an infrared light. In addition, we show that such an edge-excited mode can be remarkably tailored by changing the angle between the graphene edge and the incident light field. Further theoretical analysis reveals the strength of the edge-excited mode and its superposition with a tip-excited mode and an edge localized mode. We attribute our findings to the reduced Coulomb scattering and phonon scattering in graphene, allowing the edge-excited mode to be identified. The conceptual edge antenna is found to be a very convenient approach to initiate plasmons in two-dimensional systems, which opens up a compelling route for realising nanophotonic applications.
机译:压缩光场强度的概念可以通过纳米尺寸等离子体极化声子,先决条件是桥的无与伦比的等离子体和势头空间光子。亚波长结构或人工偶极子纳米结构是用来传授的必要的等离子体激发的动力。这个工作,我们表明,利用近场成像技术,等离子体可以启动直接从石墨烯躺在的边缘当被一个高氧化底物红外线。edge-excited模式可以显著的定制改变石墨烯之间的角和边缘入射光场。分析揭示了edge-excited的强度tip-excited模式及其叠加模式和优势本地化模式。减少库仑散射和发现声子散射在石墨烯,允许edge-excited模式。概念发现天线是一个很边缘方便的方法来启动等离子体二维系统,打开了一个引人注目的途径实现纳米光子应用程序。

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