Liu Xiaoyong, Feng Yijun, Zhu Bo, Zhao Junming, Jiang Tian
Department of Electronic Engineering, School of Electronic Science and Engineering, Nanjing University, Nanjing, 210093, China.
Sci Rep. 2016 Feb 4;6:20448. doi: 10.1038/srep20448.
Backward wave with anti-parallel phase and group velocities is one of the basic properties associated with negative refraction and sub-diffraction image that have attracted considerable interest in the context of photonic metamaterials. It has been predicted theoretically that some plasmonic structures can also support backward wave propagation of surface plasmon polaritons (SPPs), however direct experimental demonstration has not been reported, to the best of our knowledge. In this paper, a specially designed plasmonic metamaterial of corrugated metallic strip has been proposed that can support backward spoof SPP wave propagation. The dispersion analysis, the full electromagnetic field simulation and the transmission measurement of the plasmonic metamaterial waveguide have clearly validated the backward wave propagation with dispersion relation possessing negative slope and opposite directions of group and phase velocities. As a further verification and application, a contra-directional coupler is designed and tested that can route the microwave signal to opposite terminals at different operating frequencies, indicating new application opportunities of plasmonic metamaterial in integrated functional devices and circuits for microwave and terahertz radiation.
具有反平行相速度和群速度的反向波是与负折射和亚衍射成像相关的基本特性之一,在光子超材料领域引起了广泛关注。从理论上预测,一些等离子体结构也能够支持表面等离子体激元(SPP)的反向波传播,然而据我们所知,尚未有直接的实验证明。在本文中,我们提出了一种特别设计的波纹金属条等离子体超材料,它能够支持类表面等离子体激元(spoof SPP)反向波传播。通过对该等离子体超材料波导的色散分析、全电磁场模拟以及传输测量,清晰地验证了具有负斜率色散关系以及群速度与相速度方向相反的反向波传播。作为进一步的验证和应用,我们设计并测试了一种反向定向耦合器,它能够在不同工作频率下将微波信号路由到相反的终端,这表明等离子体超材料在微波和太赫兹辐射的集成功能器件和电路中具有新的应用机会。