反射损耗
材料科学
微波食品加热
电磁辐射
复合数
吸收(声学)
衰减
光电子学
介电损耗
电介质
复合材料
纳米技术
光学
计算机科学
电信
物理
作者
Zurong Zhu,Lu Zhang,Pinan Liu,Chengli Liu,Jialuo Ai,Youzhun Fan,Senwei Liu,Jinxia Zhai,Guanghui Bai,Chengyun Ning,Zhengao Wang
出处
期刊:Carbon
[Elsevier]
日期:2023-09-28
卷期号:215: 118477-118477
被引量:17
标识
DOI:10.1016/j.carbon.2023.118477
摘要
Excessive artificial electromagnetic radiation poses significant health risks and disrupts military equipment. To address this, high-performance microwave absorption materials are urgently required. While ferromagnetic materials have excellent absorption but suffer from high density, limited bandwidth, and perishable properties. Carbon materials, especially metal-organic frameworks (MOFs), offer promise due to low density, chemical stability, and high conductivity. In this study, we synthesized a novel multicore-shell Fe3O4@Fe@C composite via solvothermal and in-situ pyrolysis methods. This composite integrated Zn-MOF-derived porous carbon with core-shell Fe3O4@Fe@C, enabling multiple electromagnetic wave routes, strong interfacial polarization, and magnetic-dielectric synergy. It exhibited exceptional electromagnetic wave absorption, with a −59.1 dB reflection loss at 13.36 GHz and a 5.36 GHz effective absorption bandwidth. Our innovative MOF-core-shell approach holds great promise for highly efficient microwave absorbers to mitigate artificial electromagnetic radiation's adverse effects on health and military equipment.
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