Zhang Tian, Chen Xin, Thakur Yash, Lu Biao, Zhang Qiyan, Runt J, Zhang Q M
School of Electrical Engineering and Computer Science, Materials Research Institute, The Pennsylvania State University, University Park, PA, USA.
Department of Materials Science and Engineering, The Pennsylvania State University, University Park, PA, USA.
Sci Adv. 2020 Jan 24;6(4):eaax6622. doi: 10.1126/sciadv.aax6622. eCollection 2020 Jan.
Although many polymers exhibit excellent dielectric performance including high energy density with high efficiency at room temperature, their electric and dielectric performance deteriorates at high temperatures (~150°C). Here, we show that nanofillers at very low volume content in a high-temperature (high-glass transition temperature) semicrystalline dipolar polymer, poly(arylene ether urea), can generate local structural changes, leading to a marked increase in both dielectric constant and breakdown field, and substantially reduce conduction losses at high electric fields and over a broad temperature range. Consequently, the polymer with a low nanofiller loading (0.2 volume %) generates a high discharged energy density of ca. 5 J/cm with high efficiency at 150°C. The experimental data reveal microstructure changes in the nanocomposites, which, at 0.2 volume % nanofiller loading, reduce constraints on dipole motions locally in the glassy state of the polymer, reduce the mean free path for the mobile charges, and enhance the deep trap level.
尽管许多聚合物表现出优异的介电性能,包括在室温下具有高能量密度和高效率,但它们的电学和介电性能在高温(约150°C)下会恶化。在此,我们表明,在高温(高玻璃化转变温度)半结晶偶极聚合物聚(亚芳基醚脲)中,极低体积含量的纳米填料可产生局部结构变化,导致介电常数和击穿场强显著增加,并在高电场和宽温度范围内大幅降低传导损耗。因此,低纳米填料负载量(0.2体积%)的聚合物在150°C时能高效产生约5 J/cm³ 的高放电能量密度。实验数据揭示了纳米复合材料的微观结构变化,在0.2体积%的纳米填料负载量下,这些变化局部减少了聚合物玻璃态中偶极运动的限制,减小了移动电荷的平均自由程,并提高了深陷阱能级。