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基于红外波段混合等离子体波导调整传播长度的石墨烯电光开关调制器

Graphene Electro-Optical Switch Modulator by Adjusting Propagation Length Based on Hybrid Plasmonic Waveguide in Infrared Band.

作者信息

Cai Ming, Wang Shulong, Liu Zhihong, Wang Yindi, Han Tao, Liu Hongxia

机构信息

Key Laboratory for Wide Band Gap Semiconductor Materials and Devices of Education, School of Microelectronics, Xidian University, Xi'an 710071, China.

出版信息

Sensors (Basel). 2020 May 18;20(10):2864. doi: 10.3390/s20102864.

Abstract

A modulator is the core of many optoelectronic applications such as communication and sensing. However, a traditional modulator can hardly reach high modulation depth. In order to achieve the higher modulation depth, a graphene electro-optical switch modulator is proposed by adjusting propagation length in the near infrared band. The switch modulator is designed based on a hybrid plasmonic waveguide structure, which is comprised of an SiO substrate, graphene-Si-graphene heterostructure, Ag nanowire and SiO cladding. The propagation length of the hybrid plasmonic waveguide varies from 0.14 μm to 20.43 μm by the voltage tunability of graphene in 1550 nm incident light. A modulator with a length of 3 μm is designed based on the hybrid waveguide and it achieves about 100% modulation depth. The lower energy loss (1.71 fJ/bit) and larger 3 dB bandwidth (83.91 GHz) are attractive for its application in a photoelectric integration field. In addition, the excellent robustness (error of modulation effects lower than 8.84%) is practical in the fabrication process. Most importantly, by using the method of adjusting propagation length, other types of graphene modulators can also achieve about 100% modulation depth.

摘要

调制器是通信和传感等许多光电子应用的核心。然而,传统调制器很难达到高调制深度。为了实现更高的调制深度,通过调整近红外波段的传播长度,提出了一种石墨烯电光开关调制器。该开关调制器基于混合等离子体波导结构设计,由SiO衬底、石墨烯-Si-石墨烯异质结构、Ag纳米线和SiO包层组成。在1550nm入射光下,通过石墨烯的电压可调性,混合等离子体波导的传播长度在0.14μm至20.43μm之间变化。基于混合波导设计了一种长度为3μm的调制器,其调制深度达到了约100%。较低的能量损耗(1.71fJ/bit)和较大的3dB带宽(83.91GHz)使其在光电集成领域具有吸引力。此外,出色的稳健性(调制效果误差低于8.84%)在制造过程中具有实用性。最重要的是,通过调整传播长度的方法,其他类型的石墨烯调制器也可以实现约100%的调制深度。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4f1f/7287663/1c85de69e5d5/sensors-20-02864-g001.jpg

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