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Tunable plasmon induced transparency in a graphene-based waveguide structure and it's applications in sensing

机译:可调谐等离子体激元在石墨烯基波导结构中的透明性及其在传感中的应用

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In this paper, we propose dynamically tunable plasmon induced transparency (PIT) in a graphene-based nanoribbon waveguide structure by changing the chemical potential of graphene. It is the direct destructive interference between the propagating plasmonic edge mode in the graphene nanoribbon waveguide and the rectangular resonators gives rise to the PIT effect. Our numerical results reveal that high tunability in the PIT transparency window can be obtained by altering the chemical potential of the graphene rectangular resonators. Moreover, a novel plasmonic refractive index sensor (RIS) has been proposed and investigated numerically based on the PIT effect in the mid-IR range. Our calculated results exhibit that large wavelength sensitivity as high as 2500 nm/RIU and a high figure of merit (FOM) of 10.50 can be achieved in this ultra-compact structure (< 0.05 μm~2). This work not only paves a new way towards the realization of graphene-based integrated nanophotonic devices, but also has important applications in multi-channel-selective filters, sensors, and slow light.
机译:在本文中,我们通过改变石墨烯的化学势,提出了基于石墨烯的纳米带波导结构中的动态可调等离子体激元诱导的透明性(PIT)。这是石墨烯纳米带波导中传播的等离激元边缘模式与矩形谐振器之间的直接破坏性干涉,产生了PIT效应。我们的数值结果表明,可以通过更改石墨烯矩形谐振器的化学势来获得PIT透明窗口中的高可调性。此外,基于中红外范围内的PIT效应,提出了一种新型等离子体激元折射率传感器(RIS)并进行了数值研究。我们的计算结果表明,在这种超紧凑结构中(<0.05μm〜2),可以实现高达2500 nm / RIU的大波长灵敏度和10.50的高品质因数(FOM)。这项工作不仅为实现基于石墨烯的集成纳米光子器件铺平了新途径,而且在多通道选择性滤光片,传感器和慢光中也具有重要的应用。

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