Jin Gui, Zhu Ying, Yang Haorui, Tang Bin
Department of Electronic Information and Electronic Engineering, Xiangnan University, Chenzhou 423000, China.
School of Microelectronics, Changzhou University, Changzhou 213164, China.
Nanomaterials (Basel). 2025 May 30;15(11):835. doi: 10.3390/nano15110835.
This work presents a theoretical and numerical investigation of a switchable tri-functional terahertz metamaterial incorporating vanadium dioxide (VO) and photosensitive silicon. The selective absorption, broadband linear-to-linear polarization conversion, and dual-band asymmetric transmission (AT) can be realized by utilizing the phase transition characteristic of VO. When VO behaves as a metal, the proposed metamaterial functions as a selective perfect absorber for -polarized waves at 2.84 THz, while exhibiting near-zero absorption for -polarized waves. When VO is in its insulating state, the proposed metamaterial acts as a linear polarization converter, achieving a polarization conversion ratio exceeding 99% within the frequency range of 1.07 to 4.29 THz. Meanwhile, a dual-band AT effect can be simultaneously realized associated with the broadband near-perfect polarization conversion. Furthermore, the polarization conversion efficiency and AT can be actively modulated by adjusting the conductivity of the photosensitive silicon, offering a novel approach for realizing multifunctional terahertz devices.
这项工作对一种包含二氧化钒(VO)和光敏硅的可切换三功能太赫兹超材料进行了理论和数值研究。利用VO的相变特性,可以实现选择性吸收、宽带线性到线性偏振转换以及双频非对称传输(AT)。当VO表现为金属时,所提出的超材料在2.84太赫兹时作为 - 偏振波的选择性完美吸收体,而对 - 偏振波表现出近零吸收。当VO处于绝缘状态时,所提出的超材料充当线性偏振转换器,在1.07至4.29太赫兹的频率范围内实现超过99%的偏振转换率。同时,与宽带近完美偏振转换相关联,可以同时实现双频AT效应。此外,通过调节光敏硅的电导率,可以主动调制偏振转换效率和AT,为实现多功能太赫兹器件提供了一种新方法。