Zhou Fei, Liu Ye, Li Zhi-Yuan, Xia Younan
Laboratory of Optical Physics, Institute of Physics, Chinese Academy of Sciences, Beijing, China.
Opt Express. 2010 Jun 21;18(13):13337-44. doi: 10.1364/OE.18.013337.
Optical bistability at nanoscale is a promising way to realize optical switching, a key component of integrated nanophotonic devices. In this work we present an analytical model for optical bistability in a metal nano-antenna involving Kerr nonlinear medium based on detailed analysis of the correlation between the incident and extinction light intensity under surface plasmon resonance (SPR). The model allows one to construct a clear picture on how the threshold, contrast, and other characteristics of optical bistability are influenced by the nonlinear coefficient, incident light intensity, local field enhancement factor, SPR peak width, and other physical parameters of the nano-antenna. It shows that the key towards low threshold power and high contrast optical bistability in the nanosystem is to reduce the SPR peak width. This can be achieved by reducing the absorption of metal materials or introducing gain media into nanosystems.
纳米尺度的光学双稳性是实现光开关的一种很有前景的方法,而光开关是集成纳米光子器件的关键组件。在这项工作中,我们基于对表面等离子体共振(SPR)下入射光强与消光光强之间相关性的详细分析,提出了一种涉及克尔非线性介质的金属纳米天线中光学双稳性的解析模型。该模型使人们能够清晰地了解光学双稳性的阈值、对比度和其他特性是如何受到纳米天线的非线性系数、入射光强、局部场增强因子、SPR峰宽和其他物理参数影响的。结果表明,纳米系统中实现低阈值功率和高对比度光学双稳性的关键在于减小SPR峰宽。这可以通过降低金属材料的吸收或在纳米系统中引入增益介质来实现。