Graphene surface plasmons at the near-infrared optical regime

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作者
Qiming Zhang
Xiangping Li
Md Muntasir Hossain
Yunzhou Xue
Jie Zhang
Jingchao Song
Jingying Liu
Mark D. Turner
Shanhui Fan
Qiaoliang Bao
Min Gu
机构
[1] Centre for Micro-Photonics,Department of Materials Engineering
[2] Faculty of Science,Department of Electrical Engineering
[3] Engineering and Technology,undefined
[4] Swinburne University of Technology,undefined
[5] Centre for Micro-Photonics and CUDOS,undefined
[6] Faculty of Science,undefined
[7] Engineering and Technology,undefined
[8] Swinburne University of Technology,undefined
[9] Institute of Functional Nano and Soft Materials (FUNSOM) and Collaborative Innovation Center of Suzhou Nano Science and Technology,undefined
[10] Soochow University,undefined
[11] Faculty of Engineering,undefined
[12] Monash University,undefined
[13] Stanford University,undefined
来源
Scientific Reports | / 4卷
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摘要
Graphene has been identified as an emerging horizon for a nanoscale photonic platform because the Fermi level of intrinsic graphene can be engineered to support surface plasmons (SPs). The current solid back electrical gating and chemical doping methods cannot facilitate the demonstration of graphene SPs at the near-infrared (NIR) window because of the limited shift of the Fermi level. Here, we present the evidence for the existence of graphene SPs on a tapered graphene-silicon waveguide tip at a NIR wavelength, employing a surface carrier transfer method with molybdenum trioxides. The coupling between the graphene surface plasmons and the guiding mode in silicon waveguides allows for the observation of the concentrated field of the SPs in the tip by near-field scanning optical microscopy. Thus the hot spot from the concentrated SPs in the graphene layer can be used as a key experimental signature of graphene SPs. The NIR graphene SPs opens a new perspective for optical communications, optical sensing and imaging and optical data storage with extreme spatial confinement, broad bandwidth and high tunability.
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