Graphene-based active slow surface plasmon polaritons

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作者
Hua Lu
Chao Zeng
Qiming Zhang
Xueming Liu
Md Muntasir Hossain
Philipp Reineck
Min Gu
机构
[1] Centre for Micro-Photonics and CUDOS,State Key Laboratory of Transient Optics and Photonics, Xi'an Institute of Optics and Precision Mechanics
[2] Faculty of Science,undefined
[3] Engineering and Technology,undefined
[4] Swinburne University of Technology,undefined
[5] Centre for Micro-Photonics,undefined
[6] Faculty of Science,undefined
[7] Engineering and Technology,undefined
[8] Swinburne University of Technology,undefined
[9] Chinese Academy of Sciences,undefined
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摘要
Finding new ways to control and slow down the group velocity of light in media remains a major challenge in the field of optics. For the design of plasmonic slow light structures, graphene represents an attractive alternative to metals due to its strong field confinement, comparably low ohmic loss and versatile tunability. Here we propose a novel nanostructure consisting of a monolayer graphene on a silicon based graded grating structure. An external gate voltage is applied to graphene and silicon, which are separated by a spacer layer of silica. Theoretical and numerical results demonstrate that the structure exhibits an ultra-high slowdown factor above 450 for the propagation of surface plasmon polaritons (SPPs) excited in graphene, which also enables the spatially resolved trapping of light. Slowdown and trapping occur in the mid-infrared wavelength region within a bandwidth of ~2.1 μm and on a length scale less than 1/6 of the operating wavelength. The slowdown factor can be precisely tuned simply by adjusting the external gate voltage, offering a dynamic pathway for the release of trapped SPPs at room temperature. The presented results will enable the development of highly tunable optoelectronic devices such as plasmonic switches and buffers.
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