Zheng Laifang, Feng Rui, Shi Huanting, Li Xuanjing
Department of Electrical Engineering, Taiyuan Institute of Technology, Taiyuan 030008, China.
China Key Laboratory of Micro/Nano Devices and Systems, Ministry of Education, North University of China, Taiyuan 030051, China.
Micromachines (Basel). 2023 Aug 31;14(9):1715. doi: 10.3390/mi14091715.
We propose a dynamically tunable ultra-broadband terahertz metamaterial absorber, which was based on graphene and vanadium oxide (VO) and numerically demonstrated. The excellent absorption bandwidth almost entirely greater than 90% was as wide as 6.35 THz from 2.30 to 8.65 THz under normal incidence. By changing the conductivity of VO from 20 S/m to 3 × 10 S/m, the absorption intensity could be dynamically tuned from 6% to 99%. The physical mechanism of the ultra-wideband absorption is discussed based on the interference cancelation, impedance matching theory, and field distributions, and the influences of the structural parameters on absorption are also discussed. According to the symmetric configuration, the absorption spectra of the considered polarizations were very close to each other, resulting in a polarization-insensitive structure. Such a tunable ultra-broadband absorber may have promising potential in the applications of modulating, cloaking, switching, and imaging technology.
我们提出了一种基于石墨烯和氧化钒(VO)的动态可调谐超宽带太赫兹超材料吸收器,并进行了数值验证。在垂直入射条件下,该吸收器具有出色的吸收带宽,几乎在整个2.30至8.65太赫兹范围内大于90%,带宽宽达6.35太赫兹。通过将VO的电导率从20 S/m改变到3×10 S/m,吸收强度可从6%动态调谐到99%。基于干涉抵消、阻抗匹配理论和场分布讨论了超宽带吸收的物理机制,并讨论了结构参数对吸收的影响。根据对称结构,所考虑的极化方向的吸收光谱彼此非常接近,形成了一种对极化不敏感的结构。这种可调谐超宽带吸收器在调制、隐身、开关和成像技术应用中可能具有广阔的潜力。