论文标题
可重新配置的蜂窝超材料吸收器具有入射角稳定性
Reconfigurable honeycomb metamaterial absorber having incident angular stability
论文作者
论文摘要
在许多不同的应用(例如传感和隐形技术)中,需要具有出色的机械性能的超级角度电磁波吸收器。在这里,提出了一种由蜂窝和Vo2膜组成的新型3D可重新配置的超材料吸收器(MMA)。所提出的MMA在最大的入射角上表现出高于90 \%以上的强吸收性,最高$ 87^\ Circ $,用于TM-和TE极化的倾斜发病率,用于在YOZ平面中传播的Thz波。根据模拟结果,在正常发病率下,当Vo2膜处于绝缘状态时,提出的吸收器在1-4 THz的频带中表现出很高的吸收性。通过升高整个结构的温度,VO2的结构转化发生并转化为金属相。我们已经表明,在倾斜的发生率下,VO2膜的欧姆损失,尤其是与入射电场方向平行的损失是所提出的MMA的最重要的吸收原理。此外,为了了解吸收的物理机制,研究了诱导的电场以及所提出的结构的功率损耗密度。此外,结果表明,所提出的基于VO2的蜂窝吸收器保留了其全覆盖的入射角特征,用于在XOZ平面中传播的TM偏振率。由于超广角的吸收(角度稳定性)和机械性能,预计提出的MMA可能会发现潜在的应用,例如伪装技术,电磁干扰,成像和感应。鉴于作者的最佳知识,提出的MMA构型在有史以来最宽的入射角中表现出吸收性。
Ultrawide-angle electromagnetic wave absorbers with excellent mechanical properties are required in many diverse applications such as sensing, and stealth technologies. Here, a novel 3D reconfigurable metamaterial absorber (MMA) consisting of honeycomb and VO2 films is proposed. The proposed MMA exhibits a strong absorptivity above 90\% in the widest incident angle up to $87^\circ$ for TM- and TE- polarized oblique incidences for THz wave propagating in yoz-plane. According to simulation results, under normal incidence, when VO2 films are in the insulating state, the proposed absorber exhibits high absorptivity in the frequency band of 1-4 THz. By increasing the temperature of the whole structure, the structural transformation of VO2 occurs and turns into the metallic phase. We have shown that under oblique incidence, the ohmic losses of VO2 films especially those parallel to the direction of the incident electric field are the most important absorption principles of the proposed MMA. Furthermore, to understand the physical mechanism of absorption, the induced electric field as well as the power loss density of the proposed structure are investigated. In addition, it is shown that the presented VO2 based honeycomb absorber retains its full-coverage incident angle characteristics for TM-polarized incidences propagating in the xoz-plane. Due to the ultra wide-angle absorption (angular stability) and mechanical performance, it is expected that the presented MMA may find potential applications, such as camouflage technologies, electromagnetic interference, imaging, and sensing. To the best knowledge of authors, the proposed MMA configuration exhibits the absorptivity in the widest incident angle ever reported.