4.6 Article

Efficient Excitation of Multiple Plasmonic Modes on Three-Dimensional Graphene: An Unexplored Dimension

期刊

ACS PHOTONICS
卷 3, 期 10, 页码 1986-1992

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsphotonics.6b00566

关键词

graphene pillars; sidewall thickness; high-order modes; plasmon; THz

资金

  1. Youth 973 Program [2015CB932700]
  2. National Natural Science Foundation of China [91433107, 51222208, 51290273]
  3. ARC [DE120101569, DP140101501, FT150100450]
  4. Collaborative Innovation Center of Suzhou Nano Science Technology
  5. Priority Academic Program Development of Jiangsu Higher Education Institutions
  6. China Postdoctoral Science Foundation [2014M550303]
  7. A*STAR Pharos Programme [152 70 00014, R-263-000-B91-305]
  8. National Research Foundation, Prime Minister's Office, Singapore, under its Competitive Research Programme (CRP) [NRF-CRP15-2015-03]
  9. Australian Research Council [DE120101569] Funding Source: Australian Research Council

向作者/读者索取更多资源

Graphene is a typical two-dimensional (2D) allotrope form of carbon. Excellent optical and electric properties of graphene, such as broadband absorption and high mobility of carriers, promise prosperous applications in optic and optoelectronic devices. However, flat graphene structures (either graphene film on a structural substrate or structural graphene) hardly support efficient excitation of high order plasmonic modes, which results in a serious deficiency in realizing efficient light matter interaction in graphene-based devices. Here, by configuring the flat graphene into complex three-dimensional (3D) pillars, strong high-order plasmonic modes were observed and verified numerically and experimentally. It is found that, despite the influence of geometry and material parameters on resonance, the excitation efficiency of high-order modes is highly dependent on the graphene on the sidewall of pillars. Therefore, the proposed 3D graphene structures not only retain the merits of 2D materials but also introduce a new dimension to control the light matter interaction. In addition, the fabrication technique in this work can be readily applied to other 2D materials with various geometric shapes. It is believed that the proposed 3D form of 2D materials will ignite a plethora of unprecedented designs and applications in THz communication such as THz pulse generators, modulators, detectors, and spectrometers.

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