School of Engineering and Applied Sciences, Harvard University , Cambridge, Massachusetts, 02138, United States.
Nano Lett. 2014 Jan 8;14(1):214-9. doi: 10.1021/nl403751p. Epub 2013 Dec 6.
Graphene is emerging as a broadband optical material which can be dynamically tuned by electrostatic doping. However, the direct application of graphene sheets in optoelectronic devices is challenging due to graphene's small thickness and the resultant weak interaction with light. By combining metal and graphene in a hybrid plasmonic structure, it is possible to enhance graphene-light interaction and thus achieve in situ control of the optical response. We show that the effective mode index of the bonding plasmonic mode in metal-insulator-metal (MIM) waveguides is particularly sensitive to the change in the optical conductivity of a graphene layer in the gap. By incorporating such MIM structures in optic antenna designs, we demonstrate an electrically tunable coupled antenna array on graphene with a large tuning range (1100 nm, i.e., 250 cm(-1), nearly 20% of the resonance frequency) of the antenna resonance wavelength at the mid-infrared (MIR) region. Our device exhibits a 3 dB cutoff frequency of 30 MHz, which can be further increased into the gigahertz range. This study confirms that hybrid metal-graphene structures are promising elements for high-speed electrically controllable optical and optoelectronic devices.
石墨烯作为一种宽带光学材料正在崭露头角,其可以通过静电掺杂进行动态调控。然而,由于石墨烯的厚度较小,与光的相互作用较弱,因此直接将石墨烯片应用于光电器件具有一定的挑战性。通过将金属和石墨烯结合在混合等离子体结构中,可以增强石墨烯与光的相互作用,从而实现对光学响应的原位控制。我们表明,金属-绝缘体-金属(MIM)波导中键合等离子体模式的有效模式指数对间隙中石墨烯层的光学电导率变化特别敏感。通过在光天线设计中采用这种 MIM 结构,我们在石墨烯上演示了一种具有大调谐范围(1100nm,即 250cm(-1),接近共振频率的 20%)的可调谐耦合天线阵列,该天线在中红外(MIR)区域的天线共振波长。我们的器件具有 3dB 截止频率为 30MHz,可以进一步提高到千兆赫范围。这项研究证实了混合金属-石墨烯结构是高速电可控光学和光电器件的有前途的元件。