Tang Bin, Dai Lei, Jiang Chun
State Key Laboratory of Advanced Optical Communication Systems and Networks, Shanghai Jiao Tong University, Shanghai, China.
Opt Express. 2011 Jan 17;19(2):628-37. doi: 10.1364/OE.19.000628.
We present theoretical and numerical analysis of a plasmonic-dielectric hybrid system for symmetric and asymmetric coupling between silver cut-wire pairs and silicon grating waveguide with periodic grooves. The results show that both couplings can induce electromagnetically-induced transparency (EIT) analogous to the quantum optical phenomenon. The transmission spectrum shows a single transparency window for the symmetric coupling. The strong normal phase dispersion in the vicinity of this transparent window results in the slow light effect. However, the transmission spectrum appears an additional transparency window for asymmetry coupling due to the double EIT effect, which stems from an asymmetrically coupled resonance (ACR) between the dark and bright modes. More importantly, the excitation of ACR is further associated with remarkable improvement of the group index from less than 40 to more than 2500 corresponding to a high transparent efficiency by comparing with the symmetry coupling. This scheme provides an alternative way to develop the building block of systems for plasmonic sensing, all optical switching and slow light applications.
我们对一种用于银切割线对与具有周期性凹槽的硅光栅波导之间对称和非对称耦合的等离子体 - 电介质混合系统进行了理论和数值分析。结果表明,这两种耦合都可以诱导类似于量子光学现象的电磁诱导透明(EIT)。对于对称耦合,透射光谱显示出单个透明窗口。在该透明窗口附近的强正常相位色散导致了慢光效应。然而,由于暗模式和亮模式之间的非对称耦合共振(ACR)产生的双EIT效应,非对称耦合的透射光谱出现了一个额外的透明窗口。更重要的是,与对称耦合相比,ACR的激发还与群折射率从小于40显著提高到大于2500相关联,这对应于高透明效率。该方案为开发用于等离子体传感、全光开关和慢光应用的系统构建模块提供了一种替代方法。