Opt Lett. 2018 Oct 15;43(20):4891-4894. doi: 10.1364/OL.43.004891.
We theoretically investigate dynamical control of light slowing within the induced transparent window, e.g., in near-infrared frequencies, in electromagnetically induced transparent (EIT) metamaterials loaded by low-lossy graphene. Coupling with graphene enables distinctive optical responses of the "bright" and "dark" resonators in EIT metamaterials, rendering a switching of the transparent window and a modulation on light dispersion. Optical performance of the transparent window manifests continuous tuning as the graphene doping level changes. We show that the active modulation on optical properties of the transparent window enabled by low-lossy graphene is distinctive either by passively adjusting the interspacing between the building blocks of EIT metamaterials, or active tuning by high-lossy graphene. Furthermore, we report that the group refractive index can be in situ tuned dynamically over a broad range, e.g., ∼2 orders for near-infrared frequencies, together with absorption maintained at a level similar to that of the unloaded structure. Our study offers new possibilities towards chip-scale devices, such as active optical switching, filtering, and data storing.
我们从理论上研究了在电磁感应透明(EIT)超材料中诱导透明窗口内的光减速的动力学控制,例如在近红外频率下,EIT 超材料由低损耗的石墨烯加载。与石墨烯的耦合使 EIT 超材料中的“亮”和“暗”谐振器具有独特的光学响应,从而实现透明窗口的切换和光色散的调制。透明窗口的光学性能随着石墨烯掺杂水平的变化而表现出连续调谐。我们表明,通过低损耗石墨烯实现的透明窗口光学性能的主动调制,无论是通过被动调节 EIT 超材料的构建块之间的间隔,还是通过高损耗石墨烯进行主动调谐,都具有独特性。此外,我们报告说,群折射率可以在很宽的范围内动态地进行原位调谐,例如,对于近红外频率,调谐范围约为 2 个数量级,同时保持与未加载结构相似的吸收水平。我们的研究为芯片级器件提供了新的可能性,例如主动光开关、滤波和数据存储。