Yan Xicheng, Wang Tao, Xiao Shuyuan, Liu Tingting, Hou Haowen, Cheng Le, Jiang Xiaoyun
Wuhan National Laboratory for Optoelectronics, Huazhong University of Science and Technology, Wuhan, 430074, China.
School of Electronic Information and Communications, Huazhong University of Science and Technology, Wuhan, 430074, China.
Sci Rep. 2017 Oct 24;7(1):13917. doi: 10.1038/s41598-017-14328-6.
Novel hybrid metal-graphene metamaterials featuring dynamically controllable single, double and multiple plasmon induced transparency (PIT) windows are numerically explored in the terahertz (THz) regime. The designed plasmonic metamaterials composed of a strip and a ring with graphene integration generate a novel PIT window. Once the ring is divided into pairs of asymmetrical arcs, double PIT windows both with the spectral contrast ratio 100% are obtained, where one originates from the destructive interference between bright-dark modes, and the other is based on the interaction of bright-bright modes. Just because the double PIT windows are induced by two different mechanisms, the continuously controllable conductivity and damping of graphene are employed to appropriately interpret the high tunability in double transparency peaks at the resonant frequency, respectively. Moreover, multiple PIT windows can be achieved by introducing an additional bright mode to form the other bright-bright modes coupling. At the PIT transparent windows, the dispersions undergo tremendous modifications and the group delays reach up to 43 ps, 22 ps, and 25 ps, correspondingly. Our results suggest the existence of strong interaction between the monolayer graphene layer and metal-based resonant plasmonic metamaterials, which may hold widely applications in filters, modulators, switching, sensors and optical buffers.
本文对新型混合金属-石墨烯超材料进行了数值研究,该超材料在太赫兹(THz)波段具有动态可控的单、双和多个表面等离激元诱导透明(PIT)窗口。所设计的由带有石墨烯集成的条形和环形组成的表面等离激元超材料产生了一个新型的PIT窗口。一旦将环分成不对称的弧形对,就会获得两个光谱对比度均为100%的双PIT窗口,其中一个源于明暗模式之间的相消干涉,另一个基于明明模式的相互作用。正是由于双PIT窗口由两种不同机制诱导产生,因此分别采用石墨烯的连续可控电导率和阻尼来适当解释共振频率下双透明峰的高可调性。此外,通过引入额外的明模式以形成其他明明模式耦合,可以实现多个PIT窗口。在PIT透明窗口处,色散经历了巨大的变化,群延迟分别达到43 ps、22 ps和25 ps。我们的结果表明单层石墨烯层与金属基共振表面等离激元超材料之间存在强相互作用,这可能在滤波器、调制器、开关、传感器和光缓冲器中具有广泛应用。