Moshiri Seyyed Mohammad Mehdi, Khodadadi Maryam, Nozhat Najmeh
Appl Opt. 2020 Jul 10;59(20):6030-6040. doi: 10.1364/AO.397403.
In this paper, an all-optical plasmonic multi-wavelength switch based on Kerr nonlinear material is proposed. It consists of circular waveguides wrapped around three side-coupled nano-ring resonators. Fundamentally, introducing the circular waveguide increases the coupling coefficient and switching modulation depth. The transmission response of the proposed multi-switching structure is studied theoretically based on coupled mode and transfer matrix theories. The validity of the derived transmission formula is confirmed by the numerical result obtained by the finite element method. Also, based on the self-phase modulation and cross-phase modulation (XPM) nonlinear effects, the resonance wavelengths are effortlessly tuned by changing the intensity of the incident lightwave without changing the dimensions of the structure. As a result, by utilizing the XPM effect, the required input signal intensity is significantly decreased to 6.5/. The obtained modulation depths are 18.08, 31.83, and 28.40 dB at wavelengths of 850, 1310, and 1550 nm, respectively. Finally, to show the application of the proposed switch, the simultaneous AND and NOR logic gates are designed with intensity contrast ratios of 78.81 and 85.49 dB, respectively. The proposed plasmonic switch has many advantages such as being multi-wavelength and having low required switching intensity, ultra-fast switching time of 23 fs, and optical bistability. These features are promising for future integrated plasmonic devices for applications such as communications, signal processing, and sensing.
本文提出了一种基于克尔非线性材料的全光等离子体多波长开关。它由环绕三个侧面耦合纳米环谐振器的圆形波导组成。从根本上讲,引入圆形波导会增加耦合系数和开关调制深度。基于耦合模理论和传输矩阵理论,对所提出的多开关结构的传输响应进行了理论研究。通过有限元方法获得的数值结果证实了所推导传输公式的有效性。此外,基于自相位调制和交叉相位调制(XPM)非线性效应,在不改变结构尺寸的情况下,通过改变入射光波的强度可以轻松调谐谐振波长。结果,通过利用XPM效应,所需的输入信号强度显著降低至6.5/。在850、1310和1550nm波长处获得的调制深度分别为18.08、31.83和28.40dB。最后,为了展示所提出开关的应用,同时设计了与门和或非门,强度对比度分别为78.81和85.49dB。所提出的等离子体开关具有许多优点,如多波长、所需开关强度低、超快的23fs开关时间和光学双稳性。这些特性对于未来用于通信、信号处理和传感等应用的集成等离子体器件具有广阔前景。