探索铁钴合金微结构对碳微球沉积和增强电磁波吸收的影响

Nanomaterials Pub Date : 2024-07-12 DOI:10.3390/nano14141194
Xiaoshu Jia, Heng Zhang, Fang Liu, Qiaojun Yi, Chaolong Li, Xiao Wang, Mingxing Piao
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引用次数: 0

摘要

合理设计磁性碳复合材料(包括其成分和微观结构)对于实现优异的电磁波吸收材料(EAM)具有巨大潜力。在这项研究中,通过先进的微波等离子体辅助还原化学气相沉积(MPARCVD)技术,有效地制造出了 FeCo@CM 复合材料,具有高效、低成本和节能的优点。通过沉积石墨化碳微球,介电性能显著增强,从而通过优化阻抗匹配和磁损耗协同效应改善了电磁波吸收性能。系统研究表明,层状堆叠结构的铁钴比球形结构的铁钴具有更优越的性能,它提供了更多的暴露边缘,提高了催化活性,这有利于沉积均匀且缺陷少的石墨化碳微球。因此,FeCo@CM 复合材料的介电损耗性能因导电率的提高和丰富的异质界面的形成而得到显著改善。在填充量为 40 wt%、频率为 7.84 GHz 时,FeCo@CM 复合材料的最小反射损耗值为 -58.2 dB,有效吸收带宽 (fE) 为 5.13 GHz。这项研究为开发高性能 EAM 提出了一种有效的策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Exploring the Microstructural Effect of FeCo Alloy on Carbon Microsphere Deposition and Enhanced Electromagnetic Wave Absorption
The rational design of magnetic carbon composites, encompassing both their composition and microstructure, holds significant potential for achieving exceptional electromagnetic wave-absorbing materials (EAMs). In this study, FeCo@CM composites were efficiently fabricated through an advanced microwave plasma-assisted reduction chemical vapor deposition (MPARCVD) technique, offering high efficiency, low cost, and energy-saving benefits. By depositing graphitized carbon microspheres, the dielectric properties were significantly enhanced, resulting in improved electromagnetic wave absorption performances through optimized impedance matching and a synergistic effect with magnetic loss. A systematic investigation revealed that the laminar-stacked structure of FeCo exhibited superior properties compared to its spherical counterpart, supplying a higher number of exposed edges and enhanced catalytic activity, which facilitated the deposition of uniform and low-defect graphitized carbon microspheres. Consequently, the dielectric loss performance of the FeCo@CM composites was dramatically improved due to increased electrical conductivity and the formation of abundant heterogeneous interfaces. At a 40 wt% filling amount and a frequency of 7.84 GHz, the FeCo@CM composites achieved a minimum reflection loss value of −58.2 dB with an effective absorption bandwidth (fE) of 5.13 GHz. This study presents an effective strategy for developing high-performance EAMs.
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