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具有独立可调幅度和频率的双光谱表面等离激元诱导透明太赫兹超材料

Dual-Spectral Plasmon-Induced Transparent Terahertz Metamaterial with Independently Tunable Amplitude and Frequency.

作者信息

Wu Tong, Wang Guan, Jia Yang, Shao Yabin, Chen Chen, Han Jing, Gao Yang, Gao Yachen

机构信息

Electronic Engineering College, Heilongjiang University, Harbin 150080, China.

Department of Computer & Electrical Engineering, East University of Heilongjiang, Harbin 150086, China.

出版信息

Nanomaterials (Basel). 2021 Oct 28;11(11):2876. doi: 10.3390/nano11112876.

Abstract

A bifunctional tunable metamaterial composed of pattern metal structure, graphene, and strontium titanate (STO) film is proposed and studied numerically and theoretically. The dual plasmon-induced transparency (PIT) window is obtained by coupling the bright state cut wire (CW) and two pairs of dark state dual symmetric semiring resonators (DSSRs) with different parameters. Correspondingly, slow light effect can also be realized. When shifting independently, the Fermi level of the graphene strips, the amplitudes of the two PIT transparency windows and slow light effect can be tuned, respectively. In addition, when independently tuning the temperature of the metamaterial, the frequency of the dual PIT windows and slow light effect can be tuned. The physical mechanism of the dual-PIT was analyzed theoretically by using a three-harmonic oscillator model. The results show that the regulation function of the PIT peak results from the change of the oscillation damping at the dark state DSSRs by tuning conductivity of graphene. Our design presents a new structure to realize the bifunctional optical switch and slow light.

摘要

提出了一种由图案化金属结构、石墨烯和钛酸锶(STO)薄膜组成的双功能可调超材料,并进行了数值和理论研究。通过将亮态切割线(CW)与两对具有不同参数的暗态双对称半环谐振器(DSSR)耦合,获得了双等离激元诱导透明(PIT)窗口。相应地,也可以实现慢光效应。当独立改变石墨烯条带的费米能级时,两个PIT透明窗口的幅度和慢光效应可以分别被调谐。此外,当独立调节超材料的温度时,双PIT窗口的频率和慢光效应也可以被调谐。利用三谐波振荡器模型从理论上分析了双PIT的物理机制。结果表明,PIT峰值的调节功能源于通过调节石墨烯的电导率来改变暗态DSSR处的振荡阻尼。我们的设计提出了一种实现双功能光开关和慢光的新结构。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6595/8618654/772343e22fcc/nanomaterials-11-02876-g001.jpg

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