Enhancing electromagnetic wave absorption performance of one-dimensional C@Co/N-doped C@PPy composite fibers

反射损耗 复合数 材料科学 复合材料 吸收(声学) 兴奋剂 静电纺丝 各向异性 制作 聚合物 光电子学 光学 医学 物理 病理 替代医学
作者
Yuxin Bi,Mingliang Ma,Zhengguo Jiao,Yong Ma,Dongshuai Hou,Guoying Geng,Wenxuan Feng,Aijie Ma,Mingtao Qiao,Yanyan Liu
出处
期刊:Carbon [Elsevier BV]
卷期号:197: 152-162 被引量:57
标识
DOI:10.1016/j.carbon.2022.05.061
摘要

Electrospinning is one of the attractive technologies for fabrication carbon-based fibers due to its high efficiency, component controllability and functionalities. Here, a multi-step strategy was used for the efficient synthesis of one-dimensional (1D) MOF-derived [email protected]/N-doped [email protected] ([email protected]/[email protected]) composite fibers. The composite fibers synthesized by introducing the electrospinning method possessed unique structural anisotropy and multiple absorption mechanisms. The electromagnetic parameters, the absorption performance and the internal mechanisms of samples were thoroughly illustrated. By adjusting the filler loadings of samples, the electromagnetic wave (EMW) absorption could be optimized. The [email protected]/[email protected] with 35 wt% filler loading showed the optimal performance. Impressively, with a thickness of merely 1.65 mm, the [email protected]/[email protected] composite fibers delivered high performance with the minimum reflection loss (RLmin) of -72.14 dB. Correspondingly, the maximum effective absorption bandwidth (EABmax) could reach 5.6 GHz with the thickness of 1.88 mm. Furthermore, the 35 wt% loading [email protected]/[email protected] composite fibers could reach 14.28 GHz (89.25% of 2–18 GHz) effective absorption, showing the ultrawide absorption. Those positive results forcefully verified that the 1D MOF-derived [email protected]/[email protected] composites showed great potential and superiority as EMW absorption material.

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