Sun Ya Lun, Zhang Xin Ge, Huang Zhixiang, Tian Han Wei, Cui Tie Jun, Jiang Wei Xiang
State Key Laboratory of Millimeter Waves, School of Information Science and Engineering, Southeast University, Nanjing 210096, China.
Information Materials and Intelligent Sensing Laboratory of Anhui Province, Anhui University, Hefei 230039, China.
Research (Wash D C). 2024 Oct 21;7:0514. doi: 10.34133/research.0514. eCollection 2024.
Transmissive metasurfaces are essentially conducive to stealth, absorbers, and communications. However, most of the current schemes only allow microwave to transmit and generally adopt multilayer structures or thick dielectric substrates to improve the electromagnetic performance, restricting optical transmission and conformal application. In addition, most metasurfaces still require metal wires and external power suppliers for programmability. Here, we propose and design an intelligent transmissive microwave metasurface with optical sensing and transparency, which provides both microwave and optical channels without redundant optical devices and power suppliers, and the 2 transmission channels are associated with each other. The metasurface is realized by validly integrating photosensitive materials into microwave meta-structures. As a demonstration, we fabricate an ultrathin optically transparent transmissive metasurface based on polyethylene terephthalate substrate and photoresistors, whose thickness is only 0.125 mm. We further construct cross-wavelength transmission links based on the metasurface sample and experimentally validate that the microwave transmissions vary with light intensities under full-polarization and large-angle incidences, and this metasurface possesses high optical transparency. The intelligent transmissive microwave metasurface with optical sensing and transparency has potential applications in optical-microwave hybrid transmission devices and stealth technology.
透射型超表面本质上有利于隐身、吸收和通信。然而,目前的大多数方案仅允许微波传输,并且通常采用多层结构或厚介电基板来提高电磁性能,这限制了光传输和共形应用。此外,大多数超表面仍然需要金属线和外部电源来实现可编程性。在此,我们提出并设计了一种具有光学传感和透明性的智能透射型微波超表面,它无需冗余光学器件和电源即可提供微波和光通道,并且这两个传输通道相互关联。该超表面通过将光敏材料有效集成到微波超结构中实现。作为演示,我们基于聚对苯二甲酸乙二酯基板和光敏电阻制造了一种超薄光学透明透射型超表面,其厚度仅为0.125毫米。我们进一步基于该超表面样品构建了跨波长传输链路,并通过实验验证了在全极化和大角度入射下微波传输随光强变化,并且该超表面具有高光学透明度。这种具有光学传感和透明性的智能透射型微波超表面在光-微波混合传输器件和隐身技术中具有潜在应用。