材料科学
微波食品加热
吸收(声学)
反射损耗
光电子学
带宽(计算)
无线电频率
碳纳米泡沫
复合材料
电信
多孔性
计算机科学
复合数
作者
Lihong Wu,Shaohua Shi,Guizhen Wang,Pengpeng Mou,Xiao Liu,Jun Liu,Liang Li,Changlong Du
标识
DOI:10.1002/adfm.202209898
摘要
Abstract The absorption frequency of conventional microwave absorbing materials (MAMs) is hardly tuned in operando, while such dynamic frequency regulation of MAMs is of great significance to meet the high demands of modern radars and intelligent electron devices. Here, an ingenious frequency‐tuning strategy by means of the pressure variations is developed by fabricating highly compressible carbon nanocoils/carbon foam (CNCs/CF) as a dynamically frequency‐tunable microwave absorber. Through adjusting the compression strain, the absorption bandwidth of CNCs/CF can be precisely tuned from S‐band (2−4 GHz) to Ku‐band (12−18 GHz). The adjustable effective absorption bandwidth is as wide as 15.4 GHz, which covers 96% of the entire microwave frequency. Under 10% compression strain, CNCs/CF shows an attractive bandwidth of 9.0 GHz and a strong reflection loss of −64.6 dB. Furthermore, the CNCs/CF also exhibit a good thermal insulation, strong hydrophobicity, and strain‐sensitive conductivity, endowing them with fascinating functions of heat insulation and self‐cleaning. The method of utilizing an external pressure to dynamically adjust the absorption frequencies of CNCs/CF is demonstrated for the first time, which opens an avenue for the applications of dynamically frequency‐tunable MAMs with an ultrawide adjusting range and absorption bandwidth.
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