Hu Hai, Guo Xiangdong, Hu Debo, Sun Zhipei, Yang Xiaoxia, Dai Qing
Division of Nanophotonics CAS Center for Excellence in Nanoscience National Center for Nanoscience and Technology Beijing 100190 P. R. China.
University of Chinese Academy of Sciences Beijing 100049 P. R. China.
Adv Sci (Weinh). 2018 Jun 16;5(8):1800175. doi: 10.1002/advs.201800175. eCollection 2018 Aug.
Flexible plasmonic devices with electrical tunability are of great interest for diverse applications, such as flexible metamaterials, waveguide transformation optics, and wearable sensors. However, the traditional flexible metal-polymer plasmonic structures suffer from a lack of electrical tunability. Here the first flexible, electrically tunable, and strain-independent plasmons based on graphene-mica heterostructures are experimentally demonstrated. The resonance frequency, strength, quality factor, electrical tunability, and lifetime of graphene plasmons exhibit no visible change at bending radius down to 1 mm and after 1000 bending cycles at a radius of 3 mm. The plasmon-enhanced infrared spectroscopy detection of chemicals is also demonstrated to be unaffected in the flexible graphene-mica heterostructures. The results provide the basis for the design of flexible active nanophotonic devices such as plasmonic waveguides, resonators, sensors, and modulators.
具有电可调性的柔性等离子体器件在诸如柔性超材料、波导变换光学和可穿戴传感器等多种应用中备受关注。然而,传统的柔性金属 - 聚合物等离子体结构缺乏电可调性。在此,首次通过实验证明了基于石墨烯 - 云母异质结构的柔性、电可调且与应变无关的等离子体。在弯曲半径低至1毫米时以及在半径为3毫米的情况下进行1000次弯曲循环后,石墨烯等离子体的共振频率、强度、品质因数、电可调性和寿命均未出现明显变化。还证明了在柔性石墨烯 - 云母异质结构中,等离子体增强红外光谱对化学物质的检测不受影响。这些结果为设计诸如等离子体波导、谐振器、传感器和调制器等柔性有源纳米光子器件提供了基础。