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通过超材料波导中的机械实现来捕获和释放光。

Trapping and releasing light by mechanical implementation in metamaterial waveguides.

作者信息

Chen Yongyao, Gu Jianqiang, Xie X C, Zhang Weili

机构信息

School of Electrical and Computer Engineering, Oklahoma State University, Stillwater, Oklahoma 74078, USA.

出版信息

J Opt Soc Am A Opt Image Sci Vis. 2011 Feb 1;28(2):272-7. doi: 10.1364/JOSAA.28.000272.

Abstract

We show that light trapping and releasing can be switched by a mechanic tuning effect in metamaterial waveguides. The transition mechanism between the trapping and releasing states relies on the synergetic effect of the local Bragg reflection and cavity resonance in the waveguides. As a proof-of-concept demonstration, a heterostructured metamaterial waveguide comprised of dielectric claddings and a tapered metamaterial core formed by arrays of metal slats is analytically and numerically investigated. The spatial separation of the trapped light with various frequencies and the transition between the trapping and releasing states can be predicted by a "rainbow equation." The proposed light trapping and releasing scheme based on the mechanical implementation of waveguide geometrical parameters can be exploited to develop opto-mechanical devices for slow light technology.

摘要

我们表明,在超材料波导中,光的捕获和释放可通过机械调谐效应来切换。捕获态和释放态之间的转变机制依赖于波导中局部布拉格反射和腔共振的协同效应。作为概念验证演示,对一种由介质包层和由金属板条阵列形成的锥形超材料芯组成的异质结构超材料波导进行了分析和数值研究。通过一个“彩虹方程”可以预测不同频率捕获光的空间分离以及捕获态和释放态之间的转变。基于波导几何参数的机械实现所提出的光捕获和释放方案可用于开发用于慢光技术的光机械装置。

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