材料科学
宽带
微波食品加热
气凝胶
层状结构
带宽(计算)
碳纤维
阻抗匹配
光电子学
氮化硼
吸收(声学)
电导率
电介质
雷达截面
超高频
太赫兹辐射
电阻抗
多孔性
细菌纤维素
纳米技术
电容
作者
Weikai Zhan,Yijie Hu,Zhimeng Zhao,Yuan Peng,Junjie Chen,Liangjun Li,Yonggang Jiang,Minglong Yang,Junzong Feng,Junzong Feng,Jian Feng,Jian Feng
标识
DOI:10.1002/adfm.202519285
摘要
Abstract To address the demand for dynamically tunable microwave absorbers, an elastic carbon aerogel is developed by integrating hexagonal boron nitride nanosheets (h‐BNNS) and cellulose nanocrystals into chitosan‐derived lamellar architectures. The unique “pit/protrusion” structure formed by h‐BNNS optimizes dielectric properties and mechanical compliance of the aerogel, enabling strain‐driven broadband frequency shifting over S‐Ku bands (2–18 GHz). Crucially, the aerogel achieves an ultrawide adjustable effective absorption bandwidth (EAB) of 15.2 GHz under 0–75% compressive strains–the broadest reported tunable range–while maintaining >8 GHz EAB even at 75% strain. This performance stems from h‐BNNS that suppresses excessive conductivity enhancement and ensures optimal impedance matching under high deformation. The work pioneers a strategy for high‐performance, strain‐adaptive microwave absorbers with applications in smart wearable devices and radar stealth.
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