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Tunable broadband plasmonic field enhancement on a graphene surface using a normal-incidence plane wave at mid-infrared frequencies

机译:在中红外频率使用法向入射平面波增强石墨烯表面的可调谐宽带等离子体场

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摘要

We investigate optical field enhancement for a wide mid-infrared range, originating from the excitation of graphene plasmons, by introducing a graded dielectric grating of varying period underneath a graphene monolayer. Excitation of the plasmonic mode can be achieved by illuminating a normal-incidence plane wave on the gratings due to guided-mode resonance. The gratings of varying period enable the excitation of the plasmonic mode with a very high field enhancement factor (to the order of magnitude of 1000) within a wide spectral band, which leads to the frequency-dependent spatially separated localization of the infrared spectrum modes. We also demonstrate that the excitation position of the plasmonic mode can be freely tuned by varying the thickness of the interlayer as well as the chemical potential of the graphene monolayer. This structure enables the design of two-dimensional plasmonic photonic circuits and metamaterials targeted towards numerous potential applications including optoelectronic detectors, light-harvest devices, on-chip optical interconnects, biosensors, and light-matter interactions.
机译:我们通过在石墨烯单层下面引入变化周期的渐变介电光栅,研究了源自石墨烯等离子体激元激发的宽中红外范围的光场增强。等离子激元模式的激发可以通过照射由于导模共振引起的光栅上的法向入射平面波来实现。变化周期的光栅使得能够在宽光谱带内以非常高的场增强因子(至1000的数量级)激发等离子体模式,这导致了红外光谱模式的频率相关的空间分离定位。我们还证明,通过改变中间层的厚度以及石墨烯单层的化学势,可以自由地调节等离激元模式的激发位置。这种结构使二维等离子光子电路和超材料的设计面向许多潜在的应用,包括光电探测器,光收集设备,芯片上的光学互连,生物传感器和光物质相互作用。

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