Wu Jiale, Zhang Yiran, Gong Yangzhi, Wang Kun, Chen Yun, Song Xupeng, Lin Jun, Shen Boyang, He Shaojian, Bian Xingming
State Key Laboratory of Alternate Electrical Power System with Renewable Energy Sources, North China Electric Power University, Beijing 102206, China.
State Grid Maintenance Company Yichang Operation Maintenance Branch, Yichang 443000, China.
Polymers (Basel). 2021 Sep 7;13(18):3028. doi: 10.3390/polym13183028.
Orderly arranged Silicon carbide (SiC)/epoxy (EP) composites were fabricated. SiC was made magnetically responsive by decorating the surface with iron oxide (FeO) nanoparticles. Three treatment methods, including without magnetization, pre-magnetization and curing magnetization, were used to prepare SiC/EP composites with different filler distributions. Compared with unmodified SiC, magnetic SiC with core-shell structure was conducive to improve the breakdown strength of SiC/EP composites and the maximum enhancement rate was 20.86%. Among the three treatment methods, SiC/EP composites prepared in the curing-magnetization case had better comprehensive properties. Under the action of magnetic field, magnetic SiC were orderly oriented along the direction of an external field, thereby forming SiC chains. The magnetic alignment of SiC restricted the movement of EP macromolecules or polar groups to some extent, resulting in the decrease in the dielectric constant and dielectric loss. The SiC chains are equivalent to heat flow channels, which can improve the heat transfer efficiency, and the maximum improvement rate was 23.6%. The results prove that the orderly arrangement of SiC had a favorable effect on dielectric properties and thermal conductivity of SiC/EP composites. For future applications, the orderly arranged SiC/EP composites have potential for fabricating insulation materials in the power electronic device packaging field.
制备了有序排列的碳化硅(SiC)/环氧树脂(EP)复合材料。通过用氧化铁(FeO)纳米颗粒修饰碳化硅表面使其具有磁响应性。采用未磁化、预磁化和固化磁化三种处理方法制备了具有不同填料分布的SiC/EP复合材料。与未改性的SiC相比,具有核壳结构的磁性SiC有利于提高SiC/EP复合材料的击穿强度,最大增强率为20.86%。在三种处理方法中,固化磁化情况下制备的SiC/EP复合材料具有更好的综合性能。在磁场作用下,磁性SiC沿外场方向有序排列,从而形成SiC链。SiC的磁取向在一定程度上限制了EP大分子或极性基团的运动,导致介电常数和介电损耗降低。SiC链相当于热流通道,可以提高热传递效率,最大提高率为23.6%。结果表明,SiC的有序排列对SiC/EP复合材料的介电性能和热导率有良好的影响。对于未来的应用,有序排列的SiC/EP复合材料在电力电子器件封装领域制造绝缘材料方面具有潜力。