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利用表面等离激元波导中的场增强实现亚波长光导、偏振控制、加热及光学传感

Utilization of Field Enhancement in Plasmonic Waveguides for Subwavelength Light-Guiding, Polarization Handling, Heating, and Optical Sensing.

作者信息

Dai Daoxin, Wu Hao, Zhang Wei

机构信息

Centre for Optical and Electromagnetic Research, State Key Laboratory for Modern Optical Instrumentation, East Building No. 5, Zijingang Campus, Zhejiang University, Hangzhou 310058, China.

Chongqing Institute of Green and Intelligent Technology, Chinese Academy of Sciences, Chongqing 400714, China.

出版信息

Materials (Basel). 2015 Oct 9;8(10):6772-6791. doi: 10.3390/ma8105341.

Abstract

Plasmonic nanostructures have attracted intensive attention for many applications in recent years because of the field enhancement at the metal/dielectric interface. First, this strong field enhancement makes it possible to break the diffraction limit and enable subwavelength optical waveguiding, which is desired for nanophotonic integrated circuits with ultra-high integration density. Second, the field enhancement in plasmonic nanostructures occurs only for the polarization mode whose electric field is perpendicular to the metal/dielectric interface, and thus the strong birefringence is beneficial for realizing ultra-small polarization-sensitive/selective devices, including polarization beam splitters, and polarizers. Third, plasmonic nanostructures provide an excellent platform of merging electronics and photonics for some applications, e.g., thermal tuning, photo-thermal detection, Finally, the field enhancement at the metal/dielectric interface helps a lot to realize optical sensors with high sensitivity when introducing plasmonic nanostrutures. In this paper, we give a review for recent progresses on the utilization of field enhancement in plasmonic nanostructures for these applications, e.g., waveguiding, polarization handling, heating, as well as optical sensing.

摘要

近年来,由于金属/电介质界面处的场增强效应,等离子体纳米结构在许多应用中引起了广泛关注。首先,这种强烈的场增强使得突破衍射极限并实现亚波长光波导成为可能,这对于具有超高集成密度的纳米光子集成电路来说是非常理想的。其次,等离子体纳米结构中的场增强仅发生在电场垂直于金属/电介质界面的偏振模式下,因此这种强双折射有利于实现超小型偏振敏感/选择性器件,包括偏振分束器和偏振器。第三,等离子体纳米结构为一些应用提供了一个融合电子学和光子学的优秀平台,例如热调谐、光热检测。最后,当引入等离子体纳米结构时,金属/电介质界面处的场增强对实现高灵敏度的光学传感器有很大帮助。在本文中,我们综述了等离子体纳米结构中场增强在这些应用(如波导、偏振处理、加热以及光学传感)方面的最新进展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/22c4/5455389/7942b2cbccb1/materials-08-05341-g001.jpg

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