材料科学
超材料
微波食品加热
透射率
光电子学
光子学
发射率
反射损耗
光子超材料
多光谱图像
电磁辐射
吸收(声学)
光学
红外线的
计算机科学
复合材料
物理
电信
计算机视觉
作者
Lingxi Huang,Yuping Duan,Xuhao Dai,Yuansong Zeng,Guojia Ma,Yi Liu,Shaohua Gao,Weiping Zhang
出处
期刊:Small
[Wiley]
日期:2019-08-12
卷期号:15 (40): e1902730-e1902730
被引量:189
标识
DOI:10.1002/smll.201902730
摘要
Abstract Although various photonic devices inspired by natural materials have been developed, there is no research focusing on multibands adaptability, which is not conducive to the advancement of materials science. Herein, inspired by the moth eye surface model, state‐of‐the‐art hierarchical metamaterials (MMs) used as tunable devices in multispectral electromagnetic‐waves (EMWs) frequency range, from microwave to ultraviolet (UV), are designed and prepared. Experimentally, the robust broad bandwidth of microwave absorption greater than 90% (reflection loss (RL) < −10 dB) covering almost entire X and Ku bands (8.04–17.88 GHz) under a deep sub‐wavelength thickness (1 mm) is demonstrated. The infrared emissivity is reduced and does not affect the microwave absorption simultaneously, further realizing anti‐reflection and camouflage via the strong visible light scattering by the microstructure, and can prevent degradation by reducing the transmittance to less than 10% over the whole near UV band, as well as having hydrophobic abilities. The mechanism explored via simulation model is that topological effects are found in the bio‐structure. This discovery points to a pathway for using natural models to overcome physical limits of MMs and has promising prospect in novel photonic materials.
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