材料科学
宽带
微波食品加热
信号(编程语言)
光电子学
光学
热的
发射率
调制(音乐)
辐射传输
高效能源利用
能量(信号处理)
辐射冷却
红外线的
热辐射
低发射率
能量转换效率
辐射
相(物质)
无线
航程(航空)
窗口(计算)
不透明度
电子工程
辐射能
作者
Hongyi Zhu,Jun Luo,Jianming Liao,Jing‐Kai Huang,Xiaoliang Ma,Cheng Huang,Mingbo Pu,Xiangang Luo
标识
DOI:10.1021/acsami.5c17024
摘要
Windows account for a significant portion of the building energy loss. Conventional low-emissivity (low-E) glass, despite its efficacy in reducing infrared radiation for thermal insulation, fails to dissipate solar heat, resulting in a deteriorated cooling performance during summer. Besides, modern architectural environments demand not only efficient thermal regulation but also enhanced wireless communication performance across multiple frequency bands. In this paper, we propose a multifunctional metasurface window (meta-window) that simultaneously achieves dual-frequency microwave signal enhancement, passive radiative cooling, and high visible transparency. By utilizing multiresonance gridded meta-atoms and multilayer films, the meta-window effectively combines low-frequency microwave hybrid phase modulation with broadband high-frequency spectrum regulation. Experimental results show that for the dual-band microwave signal, the transparent metasurface effectively steers incident waves to designated signal blind zones while simultaneously achieving significant signal enhancement. For the purpose of thermal regulation, the meta-window demonstrates substantial indoor temperature reductions when compared to normal and low-E glazing, featuring high reflectivity in the near-infrared range and broadband high emissivity for mid-infrared waves. This strategy highlights promising applications for next-generation multifunctional windows by offering significant improvements in energy efficiency and signal reliability.
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