Xu Hui, Li Hongjian, He Zhihui, Chen Zhiquan, Zheng Mingfei, Zhao Mingzhuo
Opt Express. 2017 Aug 21;25(17):20780-20790. doi: 10.1364/OE.25.020780.
A graphene plasmonic structure consists of three graphene layers mingled with a silicon-air grating is proposed. We theoretically predict and numerically simulate the plasmon-induced transparency effect in this system at terahertz wavelengths, and a dual plasmon-induced transparency peaks can be successfully tuned by virtually shifting the desired Fermi energy on graphene layers. We investigate the surface plasmon dispersion relation by means of analytic calculations, and we can achieve the numerical solution of propagation constant got by the dispersion relation. A suitable theoretical model is established to study spectral features in the plasmonic graphene system, and the theoretical results agree well with the simulations. The proposed model and findings may provide guidance for fundamental research of highly tunable optoelectronic devices.
提出了一种由三层石墨烯与硅 - 空气光栅混合而成的石墨烯等离子体结构。我们从理论上预测并通过数值模拟了该系统在太赫兹波长下的等离子体诱导透明效应,并且通过虚拟地改变石墨烯层上所需的费米能量,可以成功地调谐双等离子体诱导透明峰。我们通过解析计算研究了表面等离子体色散关系,并且能够得到由色散关系得出的传播常数的数值解。建立了一个合适的理论模型来研究等离子体石墨烯系统中的光谱特性,理论结果与模拟结果吻合良好。所提出的模型和研究结果可为高度可调谐光电器件的基础研究提供指导。