Weikai ZhanYijie HuLiangjun LiYonggang JiangJunzong FengJian Feng
The burgeoning electromagnetic pollution from 5G/6G technologies demands lightweight, broadband, and mechanically robust electromagnetic microwave absorbers (EMWAs). Conventional carbon aerogels suffer from structural fragility and inadequate electromagnetic dissipation. Herein, we propose a defect-engineering strategy through precise optimization of the chitosan (CS)/cellulose nanocrystal (CNC) ratio to fabricate elastic boron nitride nanosheet (BNNS)-embedded carbon aerogels. By fixing BNNS content for optimal impedance matching and modulating the CS/CNC ratio of the aerogel, we achieve synergistic control over hierarchical microstructure, defect topology, and electromagnetic response. The aerogel exhibits a wide effective absorption bandwidth (EAB) of 8.3 GHz at a thickness of 3.6 mm and an excellent reflection loss of −52.79 dB (>99.999% attenuation), surpassing most biomass-derived EMWAs. The performance stems from CNC-derived topological defects enabling novel polarization pathways and BNNS-triggered interfacial polarization, while optimal graphitization (ID/IG = 1.08) balances conductive loss. Simultaneously, the optimal CS/CNC ratio facilitates the formation of a stable and flexible framework. The long-range ordered micro-arch lamellar structure endows the aerogel with promising elasticity, which retains 82% height after 1000 cyclic compression at 50% strain. This work paves the way for biomass-derived carbon aerogels as next-generation wearable and conformal EMWAs with broadband absorption.
Qingsong LuoHongzhi ZhengYijie HuHao ZhuoZehong ChenXinwen PengLinxin Zhong
Qingsong Luo (1757347)Hongzhi Zheng (4056427)Yijie Hu (4446541)Hao Zhuo (4446544)Zehong Chen (5080841)Xinwen Peng (1700059)Linxin Zhong (1700065)
Wenshuang ChuKaifeng WangSiyu LiuYujie ChenHua LiHezhou Liu
Panbo LiuSai GaoChen ChenFengtao ZhouZhuoyue MengYing HuangYang Wang