Construction of 0D/1D/2D MXene nanoribbons-NiCo@NC hierarchical network and their coupling effect on electromagnetic wave absorption

材料科学 杂原子 反射损耗 吸收(声学) 自旋电子学 兴奋剂 纳米技术 光电子学 凝聚态物理 复合材料 铁磁性 复合数 戒指(化学) 化学 物理 有机化学
作者
Xiaojun Zeng,Chao Zhao,Tingting Nie,Zhongxiang Shen,Ronghai Yu,Galen D. Stucky
出处
期刊:Materials Today Physics [Elsevier BV]
卷期号:28: 100888-100888 被引量:57
标识
DOI:10.1016/j.mtphys.2022.100888
摘要

The construction of MXene-based composites with rational hierarchical structures and networks has emerged as a promising candidate for high-performance electromagnetic wave (EMW) absorption, stemming from the unpredictable formation of multiple components and multiple interfaces. Herein, a stable and porous 0D/1D/2D MXene nanoribbons (NRs)[email protected] hierarchical network consisting of 0D NiCo alloy embedded in nitrogen (N)-doped carbon ([email protected]), 1D Ti3C2Tx MXene nanoribbons, and 2D N-doped carbon nanosheets is rationally constructed for EMW absorption. The “shearing effect” of alkaline KOH can induce the formation of 1D MXene nanoribbons with staggered-connected nanoribbon network and macroporosity, which greatly increases the attenuation of multiple reflections of EMW. Meanwhile, MXene nanoribbons can serve as a structural network for the subsequent growth of 2D NiCo layered double hydroxide (LDH) ultrathin nanosheets as well as a conductive network for conduction loss. The 0D [email protected] derived from NiCo LDH nanosheets inherit excellent eddy current losses that contribute to magnetic loss and abundant N heteroatoms that contribute to dipole polarization. Furthermore, thanks to the coupling effect, 0D/1D/2D hierarchical network provides numerous interfaces that contribute to interfacial polarization and considerable exchange resonances that contribute to magnetic loss. As a result, 0D/1D/2D MXene [email protected] hierarchical network exhibits robust EMW absorption performance with a reflection loss (RL) value of −57.1 dB at a thickness of 4.82 mm and a RL value of −33.19 dB at a thickness of only 1.4 mm. This study provides new inspiration for the future construction of EMW absorbers with hierarchical networks.
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