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首页> 外文期刊>ACS applied materials & interfaces >Core-Shell CoNi@Graphitic Carbon Decorated on B,N-Codoped Hollow Carbon Polyhedrons toward Lightweight and High-Efficiency Microwave Attenuation
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Core-Shell CoNi@Graphitic Carbon Decorated on B,N-Codoped Hollow Carbon Polyhedrons toward Lightweight and High-Efficiency Microwave Attenuation

机译:核心壳Coni @石墨碳装饰在B,N编码中空碳多面体朝重轻,高效微波衰减

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摘要

Lightweight and high-efficiency microwave attenuation are two major challenges in the exploration of carbon-based absorbers, which can be achieved simultaneously by manipulating their chemical composition, microstructure, or impedance matching. In this work, core-shell CoNi@graphitic carbon decorated on B,N-codoped hollow carbon polyhedrons has been constructed by a facile pyrolysis process using metal-organic frameworks as precursors. The B,N-codoped hollow carbon polyhedrons, originated from the calcination of Co-Ni-ZIF-67, are composed of carbon nanocages and BN domains, and CoNi alloy is encapsulated by graphitic carbon layers. With a filling loading of 30 wt %, the absorber exhibits a maximum RL of -62.8 dB at 7.2 GHz with 3 mm and the effective absorption bandwidth below -10 dB remarkably reaches as strong as 8 GHz when the thickness is only 2 mm. The outstanding microwave absorption performance stems from the hollow carbon polyhedrons and carbon nanocages with interior cavities, the synergistic coupling effect between the abundant B-C-N heteroatoms, the strong dipolar/interfacial polarizations, the multiple scatterings, and the improved impedance matching. This study demonstrates that the codoped strategy provides a new way for the rational design of carbon-based absorbers with lightweight and superior microwave attenuation.
机译:轻质和高效微波衰减是碳基吸收剂探索的两个主要挑战,其可以通过操纵其化学成分,微观结构或阻抗匹配来同时实现。在这项工作中,在B,N层中空碳多叠上装饰的核心 - 壳Coni @石墨碳是通过使用金属 - 有机框架作为前体的容易的热解过程构成。源自Co-Ni-ZIF-67的煅烧的B,N-划分的中空碳多叠氮由碳纳米瘤和BN结构域组成,并且Coni合金通过石墨碳层包封。填充载荷量为30wt%,吸收剂在7.2GHz时显示出最大RL,在7.2GHz,3mm,低于-10dB以下的有效吸收带宽,当厚度仅为2mm时,高于8GHz。优异的微波吸收性能源于中空碳多合体和碳纳米饼,具有内腔,丰富的B-C-N杂原子,强偶极/界面偏振,多散射和改进阻抗匹配之间的协同偶联效果。本研究表明,该编排策略为具有轻质和优异的微波衰减提供了一种新的碳吸收剂结构的新方法。

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