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用于消除通信中电磁干扰的铁碳磁性纳米材料中大量缺陷的产生

Generation of Abundant Defects in Ferrite Carbon Magnetic Nanomaterials for Eliminating Electromagnetic Interference in Communication.

作者信息

Yang Peng, Hao Qian, Zhang Junsheng, Liang Fang, Bo Xiaoning, Wang Peifen

机构信息

Department of Electrical Engineering, Taiyuan Institute of Technology, Taiyuan 030008, China.

School of Information and Communication Engineering, North University of China, Taiyuan 030051, China.

出版信息

Materials (Basel). 2022 Sep 25;15(19):6650. doi: 10.3390/ma15196650.

Abstract

A series of novel ferrite carbon nanomaterials are considered to obtain the potential advantages in elimination of the electromagnetic interference effects. Herein, the iron nanoparticles coated on amorphous carbon were prepared by facile agar-gel synthesis. Meanwhile, the synergy between carbon supporting and ferrite nanomaterials could be proved to promote the absorption properties. Among all samples, the iron nanoparticles coated on amorphous carbon show the highest microwave absorption properties, achieving the maximum reflection loss (RL) of -14.3 dB at 6 GHz (5.5-milimeter thickness), and the bandwidths over -10 dB (90% absorption) was 2.5 GHz. Combining analysis results, it is confirmed that the as-prepared iron nanoparticles have the highest surface area, homogeneous distribution, abundant defect, and well-defined pore structure, which could significantly affect the absorption properties at 6 GHz. Furthermore, the abundant defects derived from the interface were the essential reason for the improved absorption properties. Overall, it provided a new strategy to design an effective method to absorb nanomaterials for the elimination of electromagnetic interference, especially the coordination of metal species and carbon supporting.

摘要

一系列新型铁氧体碳纳米材料被认为在消除电磁干扰效应方面具有潜在优势。在此,通过简便的琼脂 - 凝胶合成法制备了包覆在无定形碳上的铁纳米颗粒。同时,可以证明碳载体与铁氧体纳米材料之间的协同作用能够促进吸收性能。在所有样品中,包覆在无定形碳上的铁纳米颗粒表现出最高的微波吸收性能,在6 GHz(5.5毫米厚度)时实现了-14.3 dB的最大反射损耗(RL),并且超过-10 dB(90%吸收)的带宽为2.5 GHz。结合分析结果,证实所制备的铁纳米颗粒具有最高的表面积、均匀分布、丰富的缺陷和明确的孔结构,这在6 GHz时会显著影响吸收性能。此外,源自界面的丰富缺陷是吸收性能提高的根本原因。总体而言,它为设计一种有效的吸收纳米材料以消除电磁干扰的方法提供了新策略,特别是金属物种与碳载体的协同作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2b24/9572398/394349cbe158/materials-15-06650-g001.jpg

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