Raza Mohsin, Li Xiaoman, Mao Chenlu, Liu Fenghua, He Hongbo, Wu Weiping
Laboratory of Thin Film Optics, Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, 390 Qinghe Road, Jiading District, Shanghai 201800, China.
State Key Laboratory of High Field Laser Physics, Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, 390 Qinghe Road, Jiading District, Shanghai 201800, China.
Materials (Basel). 2024 Apr 11;17(8):1757. doi: 10.3390/ma17081757.
A tunable multiband terahertz metamaterial absorber, based on vanadium dioxide (VO), is demonstrated. The absorber comprises a three-layer metal-insulator-metal (MIM) configuration with a split ring and slots of VO on the uppermost layer, a middle dielectric substrate based on silicon dioxide (SiO), and a gold reflector on the back. The simulation results indicate that, when VO is in the metallic state, the proposed metamaterial exhibits nearly perfect absorption at six distinct frequencies. The design achieves an average absorption of 98.2%. The absorptivity of the metamaterial can be dynamically tuned from 4% to 100% by varying the temperature-controlled conductivity of VO. The proposed metamaterial absorber exhibits the advantages of polarization insensitivity and maintains its absorption over 80% under different incident angle conditions. The underlying physical mechanism of absorption is explained through impedance matching theory, interference theory, and the distribution of electric fields. The ability to achieve multiband absorption with tunable characteristics makes the proposed absorber a promising candidate for applications in terahertz sensing, imaging, communication, and detection. The polarization insensitivity further enhances its practicality in various scenarios, allowing for versatile and reliable performance in terahertz systems.
展示了一种基于二氧化钒(VO₂)的可调谐多波段太赫兹超材料吸收器。该吸收器包括一种三层金属-绝缘体-金属(MIM)结构,最上层有一个带分裂环和VO₂狭缝的结构,中间是基于二氧化硅(SiO₂)的介电基板,背面是金反射器。模拟结果表明,当VO₂处于金属态时,所提出的超材料在六个不同频率处表现出近乎完美的吸收。该设计实现了98.2%的平均吸收率。通过改变VO₂的温度控制电导率,超材料的吸收率可从4%动态调谐到100%。所提出的超材料吸收器具有偏振不敏感的优点,并且在不同入射角条件下保持其吸收率超过80%。通过阻抗匹配理论、干涉理论和电场分布解释了吸收的潜在物理机制。实现具有可调谐特性的多波段吸收的能力使得所提出的吸收器成为太赫兹传感、成像、通信和检测应用的有前途的候选者。偏振不敏感性进一步提高了其在各种场景中的实用性,使其在太赫兹系统中具有通用且可靠的性能。