材料科学
纳米线
热稳定性
光电子学
吸收(声学)
电介质
衰减
陶瓷
纳米技术
复合材料
光学
化学工程
物理
工程类
作者
Zhixin Cai,Lei Su,Min Niu,Lei Wang,Zhentao Ni,Hongjie Wang,Kang Peng,Lei Zhuang
标识
DOI:10.1002/admi.202201553
摘要
Abstract Developing tunable and highly efficient electromagnetic wave (EMW) absorbers with low density is crucial for the development of wireless telecommunications devices in extreme conditions. SiC ceramic has received much attention because of its dielectric tenability, low density, and chemical stability. However, the present SiC‐based materials usually show limited EMW absorbing performance than they are expected. Herein, an ultralight and resilient bicontinuous Si 3 N 4 /SiC network (8 mg cm −3 ) composed of EMW‐transparent Si 3 N 4 microbelts and EMW‐absorption SiC nanowires is designed and prepared to achieve improved impedance matching and EMW attenuation capacity. The optimized bicontinuous network exhibits a broad effective absorption bandwidth of 8.62 GHz and a strong RLmin of −52.31 dB. Furthermore, the resulting bicontinuous Si 3 N 4 /SiC network, with thickness of 6 mm, shows a tunable absorption bandwidth ranging from 5.36 to 18 GHz by resilient action. It also exhibits excellent thermal stability (up to 1000 °C), thermal shock resistance (from −196 to 900 °C), and thermal insulation performance (32 Mw m −1 K −1 ), enabling it to be an ideal candidate for EMW absorption in extreme environments.
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