Manipulating plasmonic waves transporting on graphene with graphene nanoribbon

被引:6
作者
Sun, Bin [1 ,2 ]
Wang, Ling-Ling [1 ,2 ]
Zhai, Xiang [1 ,2 ]
Li, Xiao-Fei [1 ,2 ]
Liu, Jian-Qiang [3 ]
Huang, Zhen-Rong [3 ]
Li, Hong-Jun [1 ,2 ]
机构
[1] Hunan Univ, Sch Phys & Microelect, Changsha 410082, Hunan, Peoples R China
[2] Hunan Univ, Key Lab Micronano Phys & Technol Hunan Prov, Changsha 410082, Hunan, Peoples R China
[3] Jiujiang Univ, Coll Sci, Jiujiang 332005, Peoples R China
基金
高等学校博士学科点专项科研基金; 中国国家自然科学基金;
关键词
Waveguides; Surface plasmons; Surface waves;
D O I
10.1016/j.optlastec.2014.04.021
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
In this work, we simulate and analyze the influence of the short graphene nanoribbon on transporting of graphene plasmonic waves (GPWs) on an infinite graphene monolayer by a finite element method (FEM). We find that plasmonic waves transporting along one atomic-thick graphene are sensitive to short nanoribbons which are arranged near the infinite graphene sheet. There are two main different mechanisms for modulating GPWs transport on graphene sheet: One is that Fabry-Perot resonance of plasmonic waves on graphene nanoribbons, which function as the resonant line cavity; another is the formation of standing waves on the infinite graphene sheet based on GPWs reflecting at the end of graphene nanoribbon. Owing to tunability of the chemical potential mu(c) of the doped graphene nanoribbon, we are also able to actively control plasmonic waves by gate voltage or chemical doping. The optical properties are also sensitive to the structural details of the system, namely width and distance modulation. It provides an additional handle to control plasmonic waves transferring and could find its application in designing infrared and THz plasmonic devices. (C) 2014 Elsevier Ltd. All rights reserved.
引用
收藏
页码:101 / 105
页数:5
相关论文
共 20 条
  • [1] Plasmon dispersion in semimetallic armchair graphene nanoribbons
    Andersen, David R.
    Raza, Hassan
    [J]. PHYSICAL REVIEW B, 2012, 85 (07):
  • [2] Ultrahigh electron mobility in suspended graphene
    Bolotin, K. I.
    Sikes, K. J.
    Jiang, Z.
    Klima, M.
    Fudenberg, G.
    Hone, J.
    Kim, P.
    Stormer, H. L.
    [J]. SOLID STATE COMMUNICATIONS, 2008, 146 (9-10) : 351 - 355
  • [3] Chen J, 2012, NATURE, P1
  • [4] Atomically Thin Surface Cloak Using Graphene Monolayers
    Chen, Pai-Yen
    Alu, Andrea
    [J]. ACS NANO, 2011, 5 (07) : 5855 - 5863
  • [5] Graphene Plasmon Waveguiding and Hybridization in Individual and Paired Nanoribbons
    Christensen, Johan
    Manjavacas, Alejandro
    Thongrattanasiri, Sukosin
    Koppens, Frank H. L.
    Javier Garcia de Abajo, F.
    [J]. ACS NANO, 2012, 6 (01) : 431 - 440
  • [6] Optical Excitations and Field Enhancement in Short Graphene Nanoribbons
    Cocchi, Caterina
    Prezzi, Deborah
    Ruini, Alice
    Benassi, Enrico
    Caldas, Marilia J.
    Corni, Stefano
    Molinari, Elisa
    [J]. JOURNAL OF PHYSICAL CHEMISTRY LETTERS, 2012, 3 (07): : 924 - 929
  • [7] Graphene-based tunable terahertz and infrared band-pass filter
    Danaeifar, M.
    Granpayeh, N.
    Mohammadi, A.
    Setayesh, A.
    [J]. APPLIED OPTICS, 2013, 52 (22) : E68 - E72
  • [8] Fei Z, 2012, NATURE, P1
  • [9] Excitation of Plasmonic Waves in Graphene by Guided-Mode Resonances
    Gao, Weilu
    Shu, Jie
    Qiu, Ciyuan
    Xu, Qianfan
    [J]. ACS NANO, 2012, 6 (09) : 7806 - 7813
  • [10] Magneto-optical conductivity in graphene
    Gusynin, V. P.
    Sharapov, S. G.
    Carbotte, J. P.
    [J]. JOURNAL OF PHYSICS-CONDENSED MATTER, 2007, 19 (02)