Low loss CCTO@Fe3O4/epoxy composites with matched permeability and permittivity for high frequency applications

Ming Wang, Wenhu Yang, Shuhui Yu, R. Sun, W. Liao
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Abstract

With the rapid development of science and technology progress, the study and preparation of polymer composite materials with multiple properties has become a hot research topic. In this paper, nano-sized CCTO (CaCu3Ti4O12) and CCTO@Fe3O4 core-shell nanoparticles were prepared using wet chemical method. The CCTO@Fe3O4 nanoparticles were characterized by XRD and SEM. The results suggested that the diameter of CCTO is about 500 nm and a Fe3O4 shell layer was deposited on the surface of CCTO particles. The epoxy composites consisting of CCTO and CCTO@Fe3O4 fillers were prepared, respectively. The dielectric and magnetic properties of the composites were discussed and analyzed at 108-109 Hz. The results show that the permittivity of the composites decreases with the increasing weight ratio of Fe3O4/CCTO, while the permeability was enhanced. The dielectric and magnetic loss tangent were increased because of Fe3O4 magnetic shell. All these results suggest that the CCTO@Fe3O4/epoxy composite films may be used as an new electromagnetic shielding material.
低损耗CCTO@Fe3O4/环氧复合材料具有匹配的磁导率和介电常数,适用于高频应用
随着科学技术的飞速发展和进步,研究和制备具有多种性能的高分子复合材料已成为一个研究热点。本文采用湿化学法制备了纳米CCTO (ccu3ti4o12)和CCTO@Fe3O4核壳纳米颗粒。采用XRD和SEM对CCTO@Fe3O4纳米颗粒进行了表征。结果表明,CCTO颗粒的直径约为500 nm,表面沉积了Fe3O4壳层。分别制备了由CCTO和CCTO@Fe3O4填料组成的环氧复合材料。讨论和分析了复合材料在108 ~ 109 Hz的介电性能和磁性能。结果表明:随着Fe3O4/CCTO重量比的增加,复合材料的介电常数降低,而磁导率提高;Fe3O4磁壳增加了材料的介电损耗和磁损耗正切。这些结果表明,CCTO@Fe3O4/环氧复合薄膜可以作为一种新型的电磁屏蔽材料。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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