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基于表面等离激元诱导透明提出的一种与金属-电介质-金属波导系统耦合的慢光环形谐振器结构的方法。

Method proposing a slow light ring resonator structure coupled with a metal-dielectric-metal waveguide system based on plasmonic induced transparency.

作者信息

Keleshtery Mehdi Hassani, Kaatuzian Hassan, Mir Ali, Zandi Ashkan

出版信息

Appl Opt. 2017 May 20;56(15):4496-4504. doi: 10.1364/AO.56.004496.

Abstract

We demonstrate the analogue of electromagnetically induced transparency (EIT) in a metal-dielectric-metal (MDM) plasmonic waveguide. Plasmonic induced transparency is a method similar to EIT. In this paper, a plasmonic MDM waveguide is proposed by using an ellipse shaped side-coupled ring resonator and simulated by finite difference time domain. Plasmonics as a new field of chip-scale technology is an interesting substrate, which is used to propose and numerically investigate a novel MDM structure. The aforementioned framework is a 2×2 plasmonic ring resonator, employing gold as a metal and polymethyl methacrylate as a dielectric. Simulations show that a transparent window is located at 1550 nm and signal wavelength is assumed to be 860 nm, which is the phenomenon of plasmonic induced transparency. The velocity of the plasmonic mode can be considerably slowed while propagating along the MDM bends. Our proposed configuration may thus be applied to storing and stopping light in plasmonic waveguide bends. This plasmonic waveguide system may find important applications for multichannel plasmonic filters, nano-scale optical switching, delay time devices, and slow-light devices in highly integrated optical circuits and networks. In comparison with our previous theoretical work based on circular shaped ring resonators, it is shown that ellipse shaped ring resonators demonstrate better specifications with a slow down factor estimated to be more than 30.

摘要

我们展示了金属-介质-金属(MDM)等离子体波导中的电磁诱导透明(EIT)类似物。等离子体诱导透明是一种类似于EIT的方法。本文提出了一种使用椭圆形边耦合环形谐振器的等离子体MDM波导,并通过时域有限差分法进行了模拟。等离子体学作为芯片级技术的一个新领域,是一种有趣的基底,用于提出并数值研究一种新型MDM结构。上述框架是一个2×2等离子体环形谐振器,采用金作为金属,聚甲基丙烯酸甲酯作为介质。模拟结果表明,在1550nm处存在一个透明窗口,信号波长假设为860nm,这就是等离子体诱导透明现象。等离子体模式在沿着MDM弯曲传播时速度会显著减慢。因此,我们提出的结构可应用于在等离子体波导弯曲处存储和停止光。这种等离子体波导系统可能在高度集成的光电路和网络中的多通道等离子体滤波器、纳米级光开关、延迟时间器件和慢光器件方面找到重要应用。与我们之前基于圆形环形谐振器的理论工作相比,结果表明椭圆形环形谐振器具有更好的性能,减速因子估计超过30。

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