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基于二氧化钒-石墨烯混合集成结构的可调谐且可切换的多功能太赫兹超材料。

Tunable and switchable multi-functional terahertz metamaterials based on a hybrid vanadium dioxide-graphene integrated configuration.

作者信息

Tang Bin, Ren Yi

机构信息

School of Microelectronics and Control Engineering, Changzhou University, Changzhou 213164, China.

State Key Laboratory of Advanced Optical Communication Systems and Networks, Shanghai Jiao Tong University, Shanghai 200240, China.

出版信息

Phys Chem Chem Phys. 2022 Apr 6;24(14):8408-8414. doi: 10.1039/d1cp05594a.

Abstract

In this paper, an actively tunable and switchable multi-functional terahertz metamaterial device based on a hybrid vanadium dioxide (VO)-graphene integrated configuration is proposed. By transiting the phase of VO, the functions of the proposed device can be reversibly switched between asymmetric transmission (AT) and two different polarization conversions in the terahertz region. When VO operates at the isolating state, the AT effect can be achieved with a maximum value of 0.34 for linearly polarized lights due to the excitation of enantiomerically sensitive plasmons in patterned graphene nanostructures. Furthermore, when VO is transited from the isolating state to the conducting state, the metamaterial does not only exhibit a linear dichroism response but also perform linear-to-linear and linear-to-circular polarization conversions simultaneously. Specifically, the designed device behaves like a half-wave plate, where a linear polarization conversion ratio exceeds 96.5% at a frequency of 9.17 THz. Meanwhile, it acts as a quarter-wave plate which can convert the linear polarization light into left-handed and right-handed circularly polarized lights with high efficiencies at frequencies of 9.04 and 9.3 THz, respectively. Moreover, the performance of the designed structure can be actively controlled by adjusting the geometrical parameters and Fermi energy of graphene. This work provides a new avenue in developing multi-functional terahertz metamaterial devices.

摘要

本文提出了一种基于二氧化钒(VO)-石墨烯混合集成结构的主动可调谐且可切换的多功能太赫兹超材料器件。通过转变VO的相态,该器件的功能可以在太赫兹频段在非对称传输(AT)和两种不同的偏振转换之间可逆地切换。当VO处于隔离状态时,由于图案化石墨烯纳米结构中对映体敏感等离激元的激发,对于线偏振光可实现高达0.34的最大AT效应。此外,当VO从隔离状态转变为导电状态时,该超材料不仅表现出线二向色性响应,还能同时实现线偏振到线偏振以及线偏振到圆偏振的转换。具体而言,所设计的器件表现得像一个半波片,在9.17太赫兹频率下,线偏振转换率超过96.5%。同时,它还充当一个四分之一波片,分别在9.04和9.3太赫兹频率下能够高效地将线偏振光转换为左旋和右旋圆偏振光。此外,通过调整石墨烯的几何参数和费米能,可以主动控制所设计结构的性能。这项工作为开发多功能太赫兹超材料器件提供了一条新途径。

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