Yang Jun, Wang Peng, Shi Tian, Gao Sheng, Lu Hongbo, Yin Zhiping, Lai Weien, Deng Guangsheng
Opt Express. 2019 Sep 16;27(19):27039-27045. doi: 10.1364/OE.27.027039.
In this paper, a nematic liquid crystal (NLC)-based tunable terahertz (THz) plasmonic metamaterials (MMs) with large modulation depth (MD) and low insertion loss (IL) is designed and experimentally verified at THz frequencies. The proposed structure includes two-layered MM that is immersed in LC. The metal MM is used directly as electrode. The tunable device with a 46×46 array of sub-wavelength circular air loops was fabricated on a quartz glass substrate, with 2×2 cm area and 220 µm thickness. The obtained results show that the amplitude MD and IL for normally incident electromagnetic (EM) waves are about 96% and 1.19 dB at 421.2 GHz, respectively, when the bias voltage applied to the NLC layer varies from 0 to 16 V. Meanwhile, the transmission peak frequency gradually decreases from 421.2 to 381.8 GHz, and the frequency tunability (FT) of the proposed structure is greater than 9.35%. This study provides a potential solution for THz modulators, filters, and switches.
本文设计了一种基于向列型液晶(NLC)的可调谐太赫兹(THz)等离子体超材料(MMs),其具有大调制深度(MD)和低插入损耗(IL),并在太赫兹频率下进行了实验验证。所提出的结构包括浸入液晶中的两层超材料。金属超材料直接用作电极。在石英玻璃衬底上制备了具有46×46亚波长圆形空气环阵列的可调谐器件,面积为2×2 cm,厚度为220 µm。所得结果表明,当施加到NLC层的偏置电压从0变化到16 V时,对于垂直入射的电磁(EM)波,在421.2 GHz处的幅度调制深度和插入损耗分别约为96%和1.19 dB。同时,传输峰值频率从421.2 GHz逐渐降低到381.8 GHz,所提出结构的频率可调性(FT)大于9.35%。本研究为太赫兹调制器、滤波器和开关提供了一种潜在的解决方案。