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基于图案化石墨烯太赫兹超材料中四等离子体诱导透明的偏振敏感多频开关和高性能慢光。

Polarization-sensitive multi-frequency switches and high-performance slow light based on quadruple plasmon-induced transparency in a patterned graphene-based terahertz metamaterial.

机构信息

School of Physics and Optoelectronic Engineering, Yangtze University, Jingzhou 434023, China.

Joint Laboratory for Extreme Conditions Matter Properties, Southwest University of Science and Technology, Mianyang 621010, China.

出版信息

Phys Chem Chem Phys. 2023 Feb 1;25(5):3820-3833. doi: 10.1039/d2cp05368c.

Abstract

A periodic patterned graphene-based terahertz metamaterial comprising three transverse graphene strips and one longitudinal continuous graphene ribbon is proposed to achieve a dynamically tunable quadruple plasmon-induced transparency (PIT) effect. Further analysis of the magnetic field distribution along the -direction shows that the quadruple-PIT window can be produced by the strong destructive interference between the bright mode and the dark mode. The spectral response characteristics of the quadruple-PIT effect are numerically and theoretically investigated, and the results obtained by the finite-difference time-domain (FDTD) simulation fit well with that by the coupled mode theory (CMT) calculation. In addition, two hepta-frequency asynchronous switches are achieved by tuning the Fermi energy of the graphene, and their maximum modulation depths are 98.9% and 99.7%, corresponding to the insertion losses of 0.173 dB and 0.334 dB, respectively. Further studies show that polarization light has a significant impact on the quadruple-PIT, resulting in a polarization-sensitive switch being realized with a maximum modulation depth of 99.7% and a minimum insertion loss of 0.048 dB. In addition, when the Fermi energy is equal to 1.2 eV, the maximum time delay and group refractive index of the quadruple-PIT can be respectively as high as 1.065 ps and 3194, and the maximum delay-bandwidth product reaches 1.098, which means that excellent optical storage is achieved. Thus, our proposed quadruple-PIT system can be used to design a terahertz multi-channel switch and optical storage.

摘要

提出了一种周期性图案化的基于石墨烯的太赫兹超材料,由三个横向石墨烯条和一个纵向连续石墨烯带组成,旨在实现动态可调的四重等离子体诱导透明(PIT)效应。进一步分析沿 - 方向的磁场分布表明,四重-PIT 窗口可以通过亮模和暗模之间的强破坏性干涉产生。数值和理论研究了四重-PIT 效应的光谱响应特性,有限差分时间域(FDTD)模拟的结果与耦合模式理论(CMT)计算吻合良好。此外,通过调整石墨烯的费米能实现了两个七频异步开关,其最大调制深度分别为 98.9%和 99.7%,对应的插入损耗分别为 0.173 dB 和 0.334 dB。进一步的研究表明,偏振光对四重-PIT 有显著影响,实现了偏振敏感开关,最大调制深度为 99.7%,插入损耗最小为 0.048 dB。此外,当费米能等于 1.2 eV 时,四重-PIT 的最大时间延迟和群折射率分别高达 1.065 ps 和 3194,最大延迟带宽积达到 1.098,这意味着实现了优异的光存储。因此,我们提出的四重-PIT 系统可用于设计太赫兹多通道开关和光存储。

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