Electrical Engineering Department, University of North Texas, 3940 N. Elm St., Denton, TX 76207.
Department of Electrical and Computer Engineering, Iowa State University, Ames, IA 50011.
Sci Rep. 2014 Aug 22;4:6128. doi: 10.1038/srep06128.
Novel graphene-based tunable plasmonic metamaterials featuring single and multiple transparency windows are numerically studied in this paper. The designed structures consist of a graphene layer perforated with quadrupole slot structures and dolmen-like slot structures printed on a substrate. Specifically, the graphene-based quadrupole slot structure can realize a single transparency window, which is achieved without breaking the structure symmetry. Further investigations have shown that the single transparency window in the proposed quadrupole slot structure is more likely originated from the quantum effect of Autler-Townes splitting. Then, by introducing a dipole slot to the quadrupole slot structure to form the dolmen-like slot structure, an additional transmission dip could occur in the transmission spectrum, thus, a multiple-transparency-window system can be achieved (for the first time for graphene-based devices). More importantly, the transparency windows for both the quadrupole slot and the dolmen-like slot structures can be dynamically controlled over a broad frequency range by varying the Fermi energy levels of the graphene layer (through electrostatic gating). The proposed slot metamaterial structures with tunable single and multiple transparency windows could find potential applications in many areas such as multiple-wavelength slow-light devices, active plasmonic switching, and optical sensing.
本文数值研究了具有单个和多个透明窗口的新型基于石墨烯的可调谐等离子体超材料。所设计的结构由在基底上印刷的具有四极槽结构和石门状槽结构的石墨烯层组成。具体来说,基于石墨烯的四极槽结构可以实现单个透明窗口,而无需破坏结构的对称性。进一步的研究表明,所提出的四极槽结构中的单个透明窗口更可能源于 Autler-Townes 分裂的量子效应。然后,通过在四极槽结构中引入偶极槽来形成石门状槽结构,可以在传输光谱中发生另外的传输谷,从而可以实现多透明窗口系统(这是基于石墨烯器件的首次实现)。更重要的是,通过改变石墨烯层的费米能级(通过静电门控),可以在很宽的频率范围内动态控制四极槽和石门状槽结构的透明窗口。具有可调谐单个和多个透明窗口的建议槽超材料结构可以在多个波长慢光器件、有源等离子体开关和光学传感等领域找到潜在应用。