State of the art and prospects of Fe3O4/carbon microwave absorbing composites from the dimension and structure perspective

微波食品加热 材料科学 吸收(声学) 磁铁矿 工艺工程 碳纤维 电介质 机械工程 工程物理 计算机科学 纳米技术 复合材料 光电子学 复合数 电信 工程类 冶金
作者
Xiangyu Wang,Xiaofei Xing,Hongsong Zhu,Jing Li,Tong Liu
出处
期刊:Advances in Colloid and Interface Science [Elsevier BV]
卷期号:318: 102960-102960 被引量:113
标识
DOI:10.1016/j.cis.2023.102960
摘要

At present, to solve the threat of electromagnetic wave (EMW) radiation pollution to human health, intelligent control and information security, tremendous efforts have been made to manufacture EMW absorbing materials. For ideal microwave absorption materials (MAMs), it is generally necessary not only to pursue strong microwave absorption (MA) over wide effective absorption bandwidth (EAB), but also to take into account the requirements of light weight, thin matching thickness and chemical stability characteristics. It has been found that magnetite (Fe3O4) is the most promising MAM to absorb and dissipate EMW among various absorbers, because of its good mechanical and chemical stability, controllable morphology, high Curie temperature, easy preparation, economy and excellent magnetic properties. However, the application performance of Fe3O4 absorber with single composition is limited by its easy agglomeration, eddy current, high density, and impedance mismatch. In addition, achieving efficient MA metrics with low absorber loading remains a huge challenge. To overcome these limitations, conjugation with dielectric carbon-based materials and special structural designs have been extensively explored as viable solutions to optimize the microwave absorption performance (MAP) of Fe3O4. This paper reviews the recent research progress of Fe3O4/carbon MAMs, and then the influence of dimensions and structures regulations on the MAPs are introduced in detail. Finally, the current existing problems and future development direction of Fe3O4/carbon composites in the field of MA are also presented.
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