Xia Chao, Lu Zhengang, Zhang Yilei, Tan Jiubin
Ultra-Precision Optical & Electronic Instrument Engineering Center, Harbin Institute of Technology, Harbin 150001, China.
Key Lab of Ultra-precision Intelligent Instrumentation (Harbin Institute of Technology), Ministry of Industry and Information Technology, Harbin 150001, China.
Research (Wash D C). 2024 Mar 11;7:0334. doi: 10.34133/research.0334. eCollection 2024.
Intelligent metasurfaces have garnered widespread attention owing to their properties of sensing electromagnetic (EM) environments and multifunctional adaptive EM wave manipulation. However, intelligent metasurfaces with broadband high optical transparency have not been studied to date, and most of the previous intelligent metasurfaces lack an integrated design for their actuators and sensors, resulting in lower integration levels. This study proposes a novel intelligent metasurface with adaptive EM wave manipulation ability and high optical transparency from visible to infrared bands. This metasurface consists of a transparent and current-controlled reconfigurable metasurface as an actuator by integrating patterned vanadium dioxide (VO) into metal-meshed resonant units, transparent broadband microstrip antenna as a sensor, recognition-and-feedback module, and actuator- and sensor-integrated design on the same substrate. The EM-regulating capability of the designed transparent intelligent metasurface is theoretically analyzed using the coupled mode theory, and a prototype metasurface device is fabricated for experimental verification. Simulation and experimental results demonstrate that the metasurface exhibits over 80% normalized transmittance from 380 to 5,000 nm and adaptive EM wave manipulation (reflective strong shielding function with a shielding efficiency of over 24 dB, high transmittance function with a transmission loss of 1.24 dB, and strong absorption function with an absorption of 97%) according to the EM wave power parameters without manual intervention. This study provides an avenue for transparent intelligent metasurfaces with extensive application prospects in areas such as intelligent optical windows, radar enclosures, and communication.
智能超表面因其感知电磁(EM)环境和多功能自适应电磁波操控的特性而受到广泛关注。然而,具有宽带高光学透明度的智能超表面迄今尚未得到研究,并且大多数先前的智能超表面缺乏对其致动器和传感器的一体化设计,导致集成度较低。本研究提出了一种新型智能超表面,其具有从可见光到红外波段的自适应电磁波操控能力和高光学透明度。这种超表面由一个透明且电流可控的可重构超表面作为致动器(通过将图案化的二氧化钒(VO)集成到金属网格谐振单元中)、透明宽带微带天线作为传感器、识别与反馈模块以及在同一基板上的致动器和传感器一体化设计组成。利用耦合模理论对所设计的透明智能超表面的电磁调控能力进行了理论分析,并制作了一个超表面器件原型进行实验验证。仿真和实验结果表明,该超表面在380至5000 nm范围内呈现超过80%的归一化透过率,并且能够根据电磁波功率参数进行自适应电磁波操控(反射强屏蔽功能,屏蔽效率超过24 dB;高透过率功能,传输损耗为1.24 dB;强吸收功能,吸收率为97%),无需人工干预。本研究为透明智能超表面提供了一条途径,在智能光学窗口、雷达罩和通信等领域具有广泛的应用前景。