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碳纳米管@氧化石墨烯@氧化亚铁/聚氨酯多层复合泡沫的电磁波吸收与力学性能

Electromagnetic Wave Absorption and Mechanical Properties of CNTs@GN@FeO/PU Multilayer Composite Foam.

作者信息

Gao Chunfu, He Xinsheng, Ye Fengchao, Wang Shuxin, Zhang Guang

机构信息

Key Laboratory of Urban Rail Transit Intelligent Operation and Maintenance Technology, Equipment of Zhejiang Province, College of Engineering, Zhejiang Normal University, Jinhua 321004, China.

School of Intelligent Manufacturing and Electronic Engineering, Wenzhou University of Technology, Wenzhou 325035, China.

出版信息

Materials (Basel). 2021 Nov 27;14(23):7244. doi: 10.3390/ma14237244.

Abstract

With the development of intelligent communications and stealth technology in the military field, electromagnetic wave pollution cannot be ignored, and absorbing materials have entered people's field of vision and gradually become a research hotspot. The ideal absorbing material should have the characteristics of "strong, wide, thin, and light", but a single absorbing material often cannot meet the above conditions. At present, absorbing metal powder combined with two-dimensional carbon nanomaterials (such as carbon nanotubes, graphene, etc.) has became a trend. This article focus on a three-layer composite of FeO, Carbon nanotubes@ FeO, Carbon nanotubes@Graphene nano-platelets@ FeO, which was synthesized by solvothermal method. The results show that the electromagnetic wave absorption performance of the three-layer foam at a thickness of 3.0 mm is more excellent. The minimum of RL can reach -67.0 dB, and the effective bandwidth is above 5.0 GHz. All this is due to the synergy of dielectric and magnetic loss between FeO, CNTs, and GN, the increase of interface polarization and the path of electromagnetic wave reflection and scattering by three-layer foam.

摘要

随着军事领域智能通信和隐身技术的发展,电磁波污染不容忽视,吸波材料进入人们的视野并逐渐成为研究热点。理想的吸波材料应具备“强、宽、薄、轻”的特点,但单一的吸波材料往往无法满足上述条件。目前,将吸波金属粉末与二维碳纳米材料(如碳纳米管、石墨烯等)相结合已成为一种趋势。本文重点研究了通过溶剂热法合成的FeO、碳纳米管@FeO、碳纳米管@石墨烯纳米片@FeO三层复合材料。结果表明,厚度为3.0 mm的三层泡沫的电磁波吸收性能更优异。反射损耗最小值可达-67.0 dB,有效带宽在5.0 GHz以上。这一切都归因于FeO、碳纳米管和石墨烯纳米片之间介电损耗和磁损耗的协同作用、界面极化的增加以及三层泡沫对电磁波反射和散射路径的影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/037a/8658525/76d34708b3e5/materials-14-07244-g001.jpg

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