光探测
材料科学
微波食品加热
吸收(声学)
光电子学
多模光纤
光化学
电磁辐射
光学
光电探测器
化学
物理
光纤
复合材料
量子力学
作者
Kai Cui,Changjian He,Jian Wu,Xing Gao,Yong Li,Pei Han,Ning‐Ning Sun,Yufei Wang,Xihong Hao,Lin Li,Mao‐Sheng Cao
标识
DOI:10.1002/adma.202510507
摘要
Abstract Multispectrum response technology is the key to developing multifunctional electromagnetic devices in cross‐field applications. Traditional methods rely on integrating complex multi‐material systems, leading to bulkier and costlier devices. Here, a hierarchical heterodimensional structure composed of FeNiHo alloy and carbon matrix achieves autonomous multispectrum‐coupling electromagnetic response between microwave and ultraviolet through polar interface engineering. In the microwave band, the heterodimensional structure exhibits outstanding microwave absorption performance with high reflection loss of −46.87 dB and ultra‐wide absorption bandwidth of 8.96 GHz. Furthermore, the antenna arrays based on the heterodimensional structure demonstrate in situ microwave frequency‐agile property by a coupled ultraviolet stimulation, where the largest frequency modulation range reaches 5.05 GHz in Ku‐band. In the ultraviolet band, multimode photodetectors constructed by the heterodimensional structure possess excellent responsivity and accurate decoding ability for anti‐interference ultraviolet communication. Particularly, the metamaterial detector achieves analog signal communication for the first time by microwave‐ultraviolet coupling response. This work pioneers a novel approach to developing multifunctional electromagnetic materials for multispectrum applications.
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