Qi Yunping, Zhou Zihao, Shi Qiang, Wen Yujiao, Wang Li, Zhao Shiyu, Zhang Shu, Wang Xiangxian
College of Physics and Electronic Engineering, Northwest Normal University, Lanzhou 730070, People's Republic of China.
School of Science, Lanzhou University of Technology, Lanzhou 730050, People's Republic of China.
Nanotechnology. 2023 Oct 19;35(1). doi: 10.1088/1361-6528/acfdb0.
In this paper, we propose a dual-operating mode metasurface based on graphene and vanadium dioxide (VO), which can switch operating modes by changing the temperature. At room temperature (25 °C), the metasurface can generates a polarization-insensitive electromagnetically induced transparency (EIT)-like effect that can be modulated by changing the Fermi energy level () of graphene (through adding external voltage). In addition, the theoretical results derived from the two-particle model are in good agreement with the simulation results based on the finite element method. At high temperature (68 °C), the metasurface mode of operation can be changed to a dual-band absorber, providing absorption of 78.6% and 99.9% at 1.13 THz and 2.16 THz, respectively. Both absorption peaks can be dynamically tuned by changing theof graphene. The metasurface is also simultaneously polarization insensitive and has a wide incidence angle. The proposed metasurface can be used as a slow light device with a maximum group delay of 0.5 ps at room temperature and as a refractive index sensor with a maximum sensitivity of 0.5 THz/RIU at high temperature. The designed metasurface offers a new way for designing multifunctional terahertz devices, slow light devices, and refractive index sensors.
在本文中,我们提出了一种基于石墨烯和二氧化钒(VO₂)的双工作模式超表面,其可通过改变温度来切换工作模式。在室温(25°C)下,该超表面可产生一种对偏振不敏感的电磁诱导透明(EIT)类效应,该效应可通过改变石墨烯的费米能级(通过施加外部电压)进行调制。此外,从双粒子模型得出的理论结果与基于有限元方法的模拟结果吻合良好。在高温(68°C)下,超表面的工作模式可转变为双频吸收器,在1.13太赫兹和2.16太赫兹处的吸收率分别为78.6%和99.9%。两个吸收峰均可通过改变石墨烯的[此处原文缺失相关参数]进行动态调谐。该超表面同时还对偏振不敏感且具有宽入射角。所提出的超表面可在室温下用作具有最大群延迟0.5皮秒的慢光器件,并在高温下用作具有最大灵敏度0.5太赫兹/折射率单位(THz/RIU)的折射率传感器。所设计的超表面为设计多功能太赫兹器件、慢光器件和折射率传感器提供了一种新方法。