Wei Hu, Cheng Li, Shchukin Dmitry
College of Materials Science & Technology, Nanjing University of Aeronautics and Astronautics, Nanjing 210016, China.
Stephenson Institute for Renewable Energy, Department of Chemistry, University of Liverpool, Chadwick Building, Peach Street, Liverpool L69 7ZF, UK.
Materials (Basel). 2020 Apr 9;13(7):1764. doi: 10.3390/ma13071764.
Microwave radar absorbing materials have been the focus of the radar stealth research field. In this study, ceramic structured porous honeycomb-like AlO film was prepared by anodic oxidation, and an Ni layer was deposited on the AlO film via electrodeposition in a neutral environment to form a flower- and grain-like structure in a three-dimensional (3D) network Ni/AlO/Ni film. The films both have a through-hole internal structure, soft magnetic properties, and absorb microwaves. The dielectric loss values of two films were little changed, and the maximum microwave absorption values of flower- and grain-like Ni/AlO/Ni film were -45.3 and -31.05 dB with relatively wide effective bandwidths, respectively. The porous ceramic structure AlO interlayer prevented the reunion of Ni and isolated the eddy current to improve the microwave absorption properties. The material presented in our paper has good microwave absorption performance with a thin thickness, which indicates the potential for lightweight and efficient microwave absorption applications.
微波雷达吸波材料一直是雷达隐身研究领域的重点。在本研究中,通过阳极氧化制备了陶瓷结构的多孔蜂窝状AlO薄膜,并在中性环境中通过电沉积在AlO薄膜上沉积Ni层,以在三维(3D)网络Ni/AlO/Ni薄膜中形成花状和颗粒状结构。这些薄膜均具有通孔内部结构、软磁特性且能吸收微波。两种薄膜的介电损耗值变化不大,花状和颗粒状Ni/AlO/Ni薄膜的最大微波吸收值分别为-45.3和-31.05 dB,有效带宽相对较宽。多孔陶瓷结构的AlO中间层阻止了Ni的团聚并隔离了涡电流,从而提高了微波吸收性能。本文所呈现的材料具有良好的微波吸收性能且厚度较薄,这表明其在轻质高效微波吸收应用方面具有潜力。