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Optimizing electric field distributionviatuning cross-linked point size for improving the dielectric properties of polymer nanocomposites

机译:优化电场distributionviatuning为改善交联程度大小聚合物纳米复合材料的介电性能

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Polymer nanocomposites containing high K ceramics have been developed for boosting the energy density of dielectric capacitors. However, there are numerous challenges in the research about how to optimize the electric field distribution and improve the interfacial structure of nanocomposites for overcoming dielectric mismatches between high K nanofillers and low K polymers. Herein, all-chemical bonding cross-linked nanocomposites were designed and nano-BT with different sizes were regarded as cross-linked points rather than a free dispersed phase in polymers. In addition, the cross-linking degree could be controlled by changing the nano-BT sizes. 60 nm BT-BCB@DPAES nanocomposites possess the most excellent mechanical and thermal properties as well as the highest theoretical breakdown strength. In fact, 100 nm BT-BCB@DPAES nanocomposites have the most perfect dielectric performance combined with the experimental data and finite element simulation, particularly at 150 degrees C, the highest breakdown strength of 442 MV m(-1)and greatest discharged energy density of 3.1 J cm(-3)were obtained. This is attributed to the proper cross-linking degree and uniform electric field distribution. Overall, this kind of cross-linked structure can effectively enhance dielectric performance, particularly at elevated temperatures. This provides an idea for developing high temperature polymer nanocomposites for dielectric energy storage applications.
机译:聚合物纳米复合材料含有高K陶瓷为提高能源开发呢密度介质电容器。有很多挑战研究如何优化和电场分布改进的界面结构为克服纳米复合材料介电不匹配高K nanofillers和低K聚合物。交联纳米复合材料设计nano-BT视为了不同尺寸交联点而不是一个自由分散阶段聚合物。通过改变控制程度nano-BT大小。拥有最优秀的机械和热属性以及最高的理论击穿强度。纳米复合材料有最完美的介质性能与实验数据相结合和有限元模拟,特别是在150摄氏度,最高的击穿强度442 MV米(1)和最大放电能量密度3.1 J厘米(3)。适当的交联度和均匀电场分布。这种交联结构有效地提高介电性能,特别是在温度升高。为开发高温提供了一个想法聚合物纳米复合材料对介质的能量存储应用程序。

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