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基于功能化石墨烯超表面的电可切换和可调谐红外光调制器。

Electrically switchable and tunable infrared light modulator based on functional graphene metasurface.

作者信息

Luo Wei, Abbasi Syeda Aimen, Zhu Shaodi, Li Xuejin, Ho Ho-Pui, Yuan Wu

机构信息

Department of Biomedical Engineering, The Chinese University of Hong Kong, Hong Kong, 999077, China.

School of Science and Engineering, The Chinese University of Hong Kong, Shenzhen, Guangdong, 518172, China.

出版信息

Nanophotonics. 2023 Mar 22;12(9):1797-1807. doi: 10.1515/nanoph-2023-0048. eCollection 2023 Apr.

Abstract

Graphene is emerging as an ideal material for new-generation optoelectronic devices. In this paper, a novel graphene metasurface-based electrically switchable and tunable infrared light modulator has been proposed and theoretically studied. The functional modulator comprises a monolayer graphene sheet sandwiched in a Fabry-Perot (FP) like nanostructure consisting of a metal reflector, a dielectric spacer, and an ellipse patterned anisotropy antenna layer. As a result of the photon localization effect of the guided-mode resonance (GMR) in the FP structure, the graphene electroabsorption can be significantly enhanced to enable a high-performance light modulator. By fine-tuning the Fermi energy ( ) of graphene via controlling its bias-gate voltage, the proposed modulator can switch between a perfect absorber and a reflective polarization converter of high conversion efficiency (i.e., >90%) at 1550 nm. The conversion mechanism and the geometric dependences of the infrared light modulator have been investigated. We further demonstrated the tunability of the highly-efficient polarization converter over a broad spectrum by adjusting the real dispersion of . Our design concept provides an effective strategy for customizing novel optoelectronic devices by combining an electrically-tunable 2D material with a functional metasurface.

摘要

石墨烯正成为新一代光电器件的理想材料。本文提出并从理论上研究了一种基于新型石墨烯超表面的电可切换和可调谐红外光调制器。该功能调制器包括夹在由金属反射器、电介质间隔层和椭圆图案化各向异性天线层组成的类似法布里 - 珀罗(FP)纳米结构中的单层石墨烯片。由于FP结构中导模共振(GMR)的光子局域化效应,石墨烯的电吸收可显著增强,从而实现高性能光调制器。通过控制偏置栅极电压微调石墨烯的费米能级( ),所提出的调制器可在1550 nm波长下在完美吸收体和高转换效率(即>90%)的反射偏振转换器之间切换。研究了红外光调制器的转换机制和几何依赖性。通过调整 的实色散,我们进一步证明了高效偏振转换器在宽光谱范围内的可调谐性。我们的设计理念为通过将电可调二维材料与功能超表面相结合来定制新型光电器件提供了一种有效策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9f6f/11501403/5bbf12fba333/j_nanoph-2023-0048_fig_001.jpg

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