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大口径碳纳米管/介孔碳/FeC纳米颗粒杂化纳米复合材料的分级工程用于超轻电磁微波吸收体

Hierarchical engineering of Large-caliber carbon Nanotube/Mesoporous Carbon/FeC nanoparticle hybrid nanocomposite towards Ultra-lightweight electromagnetic microwave absorber.

作者信息

Ban Qingfu, Li Yan, Qin Yusheng, Zheng Yaochen, Xie Xiubo, Yu Zhen, Kong Jie

机构信息

College of Chemistry and Chemical Engineering, Yantai University, 30 Qingquan Road, Yantai 264005, PR China.

College of Chemistry and Chemical Engineering, Yantai University, 30 Qingquan Road, Yantai 264005, PR China.

出版信息

J Colloid Interface Sci. 2022 Jun 15;616:618-630. doi: 10.1016/j.jcis.2022.02.104. Epub 2022 Feb 24.

Abstract

The rational regulation of the magnetic-dielectric composition and microstructures of the absorber is considered an important approach to optimize both the impedance matching and the electromagnetic microwave attenuation ability. Along these lines, a novel architecture-controlled large-caliber carbon nanotube/mesoporous carbon/FeC nanoparticle-based hybrid nanocomposites (CNT/C/FeC), which were derived from the CNT/polyimide (PI) assemblies anchoring ferric oxide hydrate nanoprecipitates, are presented in this work. The proposed configurations were prepared by applying a cooperative co-assembly strategy and high-temperature pyrolysis procedure for the development of an ultra-lightweight electromagnetic microwave absorber. The employed hierarchically tubular heterogeneous architecture is composed of a highly graphited CNT supporting skeleton, polyimide assemblies-converted carbon interlayer with mesopores, and uniformly distributed magnetic FeC nanoparticles. This unique hierarchical structure can not only induce multiple reflection and scattering effects of the incident electromagnetic microwave but also trigger dipole/interfacial polarization, ferromagnetic resonance and eddy current loss that are beneficial for the synergistic dielectric and magnetic loss. Moreover, the large-caliber CNT and mesoporous carbon interlayer can endow the as-prepared absorber with lightweight characteristics. Hence, the proposed CNT/C-EDA/FeC-900 hybrid nanocomposite exhibits a minimum reflection loss (RL) of -48.4 dB at a matching thickness of 3.2 mm, and the effective absorption bandwidth (RL ≤ -10 dB) almost covers the whole X-band only with a 5 wt% filler loading. Undoubtedly, these encouraging outcomes will promote the development of hierarchical engineering techniques of novel magnetic-dielectric nanocomposite absorbers.

摘要

对吸收体的磁电介质组成和微观结构进行合理调控被认为是优化阻抗匹配和电磁微波衰减能力的重要途径。基于此,本文提出了一种新型的基于大口径碳纳米管/介孔碳/FeC纳米颗粒的杂化纳米复合材料(CNT/C/FeC),其由锚定氢氧化铁纳米沉淀物的CNT/聚酰亚胺(PI)组件衍生而来。通过应用协同共组装策略和高温热解程序来制备所提出的结构,以开发一种超轻型电磁微波吸收体。所采用的分级管状异质结构由高度石墨化的CNT支撑骨架、具有介孔的聚酰亚胺组件转化的碳中间层以及均匀分布的磁性FeC纳米颗粒组成。这种独特的分级结构不仅可以引起入射电磁微波的多次反射和散射效应,还可以触发偶极/界面极化、铁磁共振和涡流损耗,这些都有利于协同介电和磁损耗。此外,大口径CNT和介孔碳中间层可以赋予所制备的吸收体轻质特性。因此,所提出的CNT/C-EDA/FeC-900杂化纳米复合材料在匹配厚度为3.2 mm时表现出-48.4 dB的最小反射损耗(RL),并且有效吸收带宽(RL≤-10 dB)仅在5 wt%的填料负载下几乎覆盖整个X波段。毫无疑问,这些令人鼓舞的结果将推动新型磁电介质纳米复合吸收体分级工程技术的发展。

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