电磁屏蔽
微波食品加热
材料科学
复合材料
复合数
电磁干扰
电磁场
联轴节(管道)
吸收(声学)
干扰(通信)
电磁辐射
光学
物理
电子工程
电气工程
工程类
电信
频道(广播)
量子力学
作者
Hang Xiao,Jiangbo Lv,Maoyu Yi,Menghao Chen,Xian He,Wei Tan,Wenjie Yang,Ke Zeng,Jianghuai Hu,Gang Yang
标识
DOI:10.1002/admt.202401078
摘要
Abstract Inspired by physical field freezing technology from frozen food engineering, the ultrasonic field and static magnetic field are integrated simultaneously into the freeze‐drying process to prepare aerogel for the first time. Taking polyimide(PI)‐derived carbon composite aerogels as an example, it is demonstrated that the ultrasonic field and magnetic field are capable of regulating the ice crystal size by affecting the liquid cooling phase and the phase transition phase, respectively. The aerogel structure with small pore size and narrow pore size distribution is obtained. Thus leading to the formation of an abundant conductive network and heterogeneous interface, so as to realize the regulation of the porous structure of aerogels. Secondly, the coupling of ultrasound and magnetic fields addresses the agglomeration and realizes the orientation alignment of nanofillers. The charge storage capacity and conductivity of the system are improved. Therefore, the electrical conductivity, conductive loss, polarization loss, and multiple reflections of the composite aerogel are enhanced to obtain improved electromagnetic shielding performance microwave absorption property. The present work provides a scalable reactive processing pathway for the structural modulation of aerogels.
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