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纳米粒子对环氧树脂介电性能的影响机制。

The influence mechanism of nanoparticles on the dielectric properties of epoxy resin.

作者信息

Wang Rui, Xie Congzhen, Luo Shoukang, Gou Bin, Xu Huasong, Zeng Leilei

机构信息

School of Electric Power, South China University of Technology Guangzhou 510641 China

出版信息

RSC Adv. 2019 Jun 24;9(34):19648-19656. doi: 10.1039/c9ra02889g. eCollection 2019 Jun 19.

Abstract

In order to study the influence mechanism of nanoparticles on the dielectric properties of epoxy resin materials for composite insulators under different nanoparticle filling amounts, the free volume, dielectric relaxation, breakdown strength and trap distribution of the samples were tested by positron annihilation lifetime spectroscopy, breakdown strength, broadband dielectric spectroscopy (BDS) and thermally stimulated current (TSC). The results show that the limiting effect of nanoparticles rapidly reduced the number of traps in the amorphous zone of materials at a low filling amount. As a result, the free path of carriers was increased and the concentration of free volume was decreased, which can limit the injection and transportation of carriers, resulting in the increase of material breakdown strength. At a high filling amount, a large number of interfacial deep traps were introduced into the nanoparticles, and the carrier free volume concentration and size were reduced. The traps inside the material were mainly interfacial deep traps. Under the action of an external electric field, a hetero polar charge was formed on the other end to cause electric field distortion, thus the breakdown field strength of the material was weakened.

摘要

为了研究不同纳米粒子填充量下纳米粒子对复合绝缘子用环氧树脂材料介电性能的影响机制,通过正电子湮没寿命谱、击穿强度、宽带介电谱(BDS)和热刺激电流(TSC)对样品的自由体积、介电弛豫、击穿强度和陷阱分布进行了测试。结果表明,在低填充量下,纳米粒子的限域效应迅速减少了材料非晶区的陷阱数量。结果,载流子的自由程增加,自由体积浓度降低,这可以限制载流子的注入和传输,导致材料击穿强度增加。在高填充量下,大量界面深陷阱被引入到纳米粒子中,载流子自由体积浓度和尺寸减小。材料内部的陷阱主要是界面深陷阱。在外部电场作用下,另一端形成异极性电荷,导致电场畸变,从而削弱了材料的击穿场强。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6bc3/9065294/ee0ec88ecbdf/c9ra02889g-f1.jpg

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