通过连续石墨烯表面等离子体增强金线栅阵列的红外传输(演示记录)

Zizhuo Liu, Serkan Bütün, E. Palacios, Koray Aydin
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摘要

增强光通过纳米结构的传输一直是等离子体和纳米光子学领域的研究热点。利用近场效应,可以增强或抑制电磁波的传播。许多关于增强传输的工作已被证明是频率选择性的。然而,通过使用石墨烯,可以在更大的频率范围内增加传输,石墨烯在许多应用中显示出宽带特性。在这里,我们提出了利用连续石墨烯片增强钢丝网金结构的传输。我们使用时域有限差分模拟研究了这种石墨烯-金属杂化结构在中红外波长下的光学特性。金属栅格金的光栅结构为单层石墨烯表面等离子激元(SPPs)的动量匹配和激发提供了理想的平台。我们的数值计算表明,由于表面等离子体,石墨烯周围的局部电磁场大大增强。此外,由于高度受限的spp与入射光耦合,在中红外区域,整个结构的透射率可以得到广泛增强。我们还分析了不同周期和金纳米线宽度对光谱的影响,以评估石墨烯中等离子体激元的尺寸效应。此外,通过调整费米能级,人们可以控制传输增强的波长范围。增强的机理将在计算的电场分布中解释。我们还将重点介绍石墨烯在可调谐传输和有源光子调制器等应用方面的机会。
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Enhanced infrared transmission from gold wire-grid arrays via surface plasmons in continuous graphene (Presentation Recording)
Enhanced transmission of light through nanostructures has always been of great interest in the field of plasmonics and nanophotonics. With the aid of near-field effects, the transmission of the electromagnetic waves can be enhanced or suppressed. Much of the work on enhanced transmission has been shown to be frequency-selective. However it is possible to increase the transmission over a large frequency range by using graphene, which has shown broadband properties in many applications. Here, we propose enhanced transmission in wire grid gold structure making use of continuous graphene sheets. We use finite-difference time-domain simulations to study the optical properties of this graphene-metal hybrid structure at mid infrared (mid-IR) wavelengths. The grating structure in wire grid gold provides an ideal platform to match the momentum and excite the surface plasmon polaritons (SPPs) in monolayer graphene. Our numerical calculations show that the local electromagnetic field around the graphene is largely enhanced due to surface plasmons. Moreover, with the highly confined SPPs coupling with the incident light, the transmission through the whole structure can be broadly enhanced in the mid infrared region. We also analyze the effect of the spectrum with different periods and gold nanowire widths to evaluate the size effects of the plasmons in graphene. In addition, by tuning the Fermi level, one can control the wavelength range at which the transmission is enhanced. The mechanism of the enhancement will be explained in the calculated electric field distribution. And we will also highlight the opportunities of graphene for applications such as tunable transmission and active photonic modulator.
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