Lu Wei Bing, Zhu Wei, Xu Hong Ju, Ni Zhen Hua, Dong Zheng Gao, Cui Tie Jun
State Key Laboratory of Millimeter waves, School of Information Science and Engineering, Southeast University, Nanjing 210096, China.
Opt Express. 2013 May 6;21(9):10475-82. doi: 10.1364/OE.21.010475.
The flexible control of surface plasmon polaritons (SPPs) is important and intriguing due to its wide application in novel plasmonic devices. Transformation optics (TO) offers the capability either to confine the SPP propagation on rigid curved/uneven surfaces, or to control the flow of SPPs on planar surfaces. However, TO has not permitted us to confine, manipulate, and control SPP waves on flexible curved surfaces. Here, we propose to confine and freely control flexible SPPs using TO and graphene. We show that SPP waves can be naturally confined and propagate on curved or uneven graphene surfaces with little bending and radiation losses, and the confined SPPs are further manipulated and controlled using TO. Flexible plasmonic devices are presented, including the bending waveguides, wave splitter, and Luneburg lens on curved surfaces. Together with the intrinsic flexibility, graphene can be served as a good platform for flexible transformation plasmonics.
由于表面等离激元极化激元(SPPs)在新型等离子体器件中的广泛应用,对其进行灵活控制具有重要意义且引人关注。变换光学(TO)能够将SPP的传播限制在刚性弯曲/不平坦表面上,或者控制平面上SPP的流动。然而,变换光学尚未使我们能够在柔性弯曲表面上限制、操纵和控制SPP波。在此,我们提出利用变换光学和石墨烯来限制并自由控制柔性SPP。我们表明,SPP波能够自然地被限制并在弯曲或不平坦的石墨烯表面上传播,且几乎没有弯曲和辐射损耗,并且利用变换光学对被限制的SPP进行进一步的操纵和控制。展示了柔性等离子体器件,包括弯曲表面上的弯曲波导、波分路器和伦伯格透镜。结合其固有的柔性,石墨烯可作为柔性变换等离子体学的良好平台。