Cavendish Laboratory, University of Cambridge , J. J. Thomson Avenue, Cambridge CB3 0HE, United Kingdom.
ACS Nano. 2014 Mar 25;8(3):2548-54. doi: 10.1021/nn406136c. Epub 2014 Feb 21.
Split-ring resonators represent the ideal route to achieve optical control of the incident light at THz frequencies. These subwavelength metamaterial elements exhibit broad resonances that can be easily tuned lithographically. We have realized a design based on the interplay between the resonances of metallic split rings and the electronic properties of monolayer graphene integrated in a single device. By varying the major carrier concentration of graphene, an active modulation of the optical intensity was achieved in the frequency range between 2.2 and 3.1 THz, achieving a maximum modulation depth of 18%, with a bias as low as 0.5 V.
环形谐振器是在太赫兹频率实现对入射光光学控制的理想途径。这些亚波长超材料元件具有可以通过光刻轻松调谐的宽带共振。我们已经实现了一种基于金属环形谐振器的共振与单层石墨烯的电子特性相互作用的设计,该石墨烯集成在单个器件中。通过改变石墨烯的主要载流子浓度,可以在 2.2 到 3.1 太赫兹的频率范围内实现光强度的主动调制,最大调制深度为 18%,偏置电压低至 0.5 V。