A submicron plasmonic dichroic splitter

被引:0
|
作者
John S.Q. Liu
Ragip A. Pala
Farzaneh Afshinmanesh
Wenshan Cai
Mark L. Brongersma
机构
[1] Geballe Laboratory for Advanced Materials,
[2] Stanford University,undefined
[3] 476 Lomita Mall,undefined
[4] Stanford,undefined
[5] California 94305,undefined
[6] USA.,undefined
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Spectral imaging and sensing techniques, new solar cell designs and wavelength-division multiplexing in optical communication rely on structures that collect and sort photons by wavelength. The strong push for chip-scale integration of such optical components has necessitated ultracompact, planar structures, and fomented great interest in identifying the smallest possible devices. Consequently, novel micro-ring, photonic crystal and plasmonic solutions have emerged. Meanwhile, the optical coupling of subwavelength plasmonic structures supporting a very limited number of modes has also enabled new functionalities, including Fano resonances and structural electromagnetically-induced transparency. Here we show how two similarly sized subwavelength metal grooves can form an ultracompact submicron plasmonic dichroic splitter. Each groove supports just two electromagnetic modes of opposite symmetry that allows independent control of how a groove collects free-space photons and directs surface plasmon polaritons. These results show how the symmetry of electromagnetic modes can be exploited to build compact optical components.
引用
收藏
相关论文
共 50 条
  • [1] A submicron plasmonic dichroic splitter
    Liu, John S. Q.
    Pala, Ragip A.
    Afshinmanesh, Farzaneh
    Cai, Wenshan
    Brongersma, Mark L.
    NATURE COMMUNICATIONS, 2011, 2
  • [2] Submicron-integrated plasmonic power splitter
    Ayad', Marina
    Swillam, Mohamed A.
    INTEGRATED OPTICS: DEVICES, MATERIALS, AND TECHNOLOGIES XVIII, 2014, 8988
  • [3] An efficient hybrid plasmonic dichroic splitter based on subwavelength periodic metallic nanoslits
    Ho, Chih-Chun
    Lu, Fan
    Li, Kun
    Liu, Dalin
    Xu, Anshi
    OPTICS COMMUNICATIONS, 2015, 355 : 591 - 595
  • [4] A submicron surface-plasmon-polariton dichroic splitter based on a composite cavity structure
    Zhang, Xiang
    Li, Zhi
    Chen, Jianjun
    Liao, Huimin
    Yue, Song
    Gong, Qihuang
    APPLIED PHYSICS LETTERS, 2013, 102 (09)
  • [5] A dichroic beam splitter for convergent beams
    Woche, M
    Laux, U
    Papamastorakis, J
    OPTICAL AND IR TELESCOPE INSTRUMENTATION AND DETECTORS, PTS 1 AND 2, 2000, 4008 : 930 - 933
  • [6] A compact and high-efficiency dichroic plasmonic splitter based on asymmetric T-shape waveguide
    Wen, Kunhua
    Hu, Yihua
    Chen, Li
    Zhou, Jinyun
    Lei, Liang
    Guo, Zhen
    PHOTONICS AND NANOSTRUCTURES-FUNDAMENTALS AND APPLICATIONS, 2015, 13 : 120 - 126
  • [7] Design and fabrication of infrared dichroic beam splitter
    Wang, Yijian
    Wu, Xiaoming
    Li, Xin
    Liu, Fengyu
    Tao, Getao
    Zhongguo Jiguang/Chinese Journal of Lasers, 2014, 41
  • [8] Dichroic splitter made with periodic |ABCBA| multilayer films
    Liu, JH
    Li, MW
    Zhao, HF
    Zhang, WH
    CURRENT DEVELOPMENTS IN OPTICAL ELEMENTS AND MANUFACTURING, 1998, 3557 : 117 - 121
  • [9] Cryogenic measurements of the dichroic beam splitter for the NIRCam instrument
    Mao, Yalan
    Huff, Lynn W.
    Hendricks, Warren
    Kennernore, Charles
    CRYOGENIC OPTICAL SYSTEMS AND INSTRUMENTS XII, 2007, 6692
  • [10] Switchable surface plasmon dichroic splitter modulated by optical polarization
    Lee, Seung-Yeol
    Yun, Hansik
    Lee, Yohan
    Lee, Byoungho
    LASER & PHOTONICS REVIEWS, 2014, 8 (05) : 777 - 784