Dai Bo, Dong Feng, Wang Hangyu, Qu Yumei, Ding Jianxu, Ma Yong, Ma Mingliang, Li Tingxi
School of Material Science and Engineering, Shandong University of Science and Technology, Qingdao 266590, PR China.
School of Material Science and Engineering, Shandong University of Science and Technology, Qingdao 266590, PR China.
J Colloid Interface Sci. 2023 Mar 15;634:481-494. doi: 10.1016/j.jcis.2022.12.029. Epub 2022 Dec 9.
Recently, electromagnetic radiation is a serious threat to equipment accuracy, military safety and human health. The combination with different materials to fabricate absorber composites with well-designed morphology is expected to ameliorate this issue. In here, CuS/FeO@polypyrrole (CuS/FeO@PPy) flower-like composites are constructed by the combination of hydrothermal method, solvothermal method and in-situ polymerization. CuS with flower-like structure consisting of nanosheets can provide a conductive backbone and large specific surface area. Hollow FeO microspheres play a key role in deciding magnetic loss, and electromagnetic waves can penetrate their hollow structure, result in multiple reflection and refraction. PPy coating can enhance the combined strength of composite, and effectively consume microwaves by scattering and multiple refraction in the intercalated structure. As expected, the minimum reflection loss (RL) of CuS/FeO@PPy composites is -74.12 dB at 8.16 GHz with a thickness of 2.96 mm, and the effective absorption bandwidth (EAB) is 4.6 GHz (13.4-18.0 GHz) at 1.68 mm. The excellent electromagnetic wave absorption performances are attributed to the synergy effect of different components. This work provides a unique strategy for the structural design of flower-like microspheres in the field of electromagnetic wave absorption.
近年来,电磁辐射对设备精度、军事安全和人类健康构成了严重威胁。通过与不同材料结合制备具有精心设计形态的吸收剂复合材料有望改善这一问题。在此,采用水热法、溶剂热法和原位聚合法相结合构建了CuS/FeO@聚吡咯(CuS/FeO@PPy)花状复合材料。具有由纳米片组成的花状结构的CuS可以提供导电骨架和大比表面积。空心FeO微球在决定磁损耗方面起关键作用,电磁波可以穿透其空心结构,导致多次反射和折射。PPy涂层可以增强复合材料的结合强度,并通过在插层结构中的散射和多次折射有效地消耗微波。正如预期的那样,CuS/FeO@PPy复合材料在厚度为2.96 mm时,在8.16 GHz处的最小反射损耗(RL)为-74.12 dB,在1.68 mm时的有效吸收带宽(EAB)为4.6 GHz(13.4 - 18.0 GHz)。优异的电磁波吸收性能归因于不同组分的协同效应。这项工作为电磁波吸收领域中花状微球的结构设计提供了独特的策略。