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A highly scalable dielectric metamaterial with superior capacitor performance over a broad temperature
Author(s) -
Tian Zhang,
Xin Chen,
Yash Thakur,
Biao Lu,
Qiyan Zhang,
James Runt,
Qiming Zhang
Publication year - 2020
Publication title -
science advances
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.928
H-Index - 146
ISSN - 2375-2548
DOI - 10.1126/sciadv.aax6622
Subject(s) - materials science , dielectric , glass transition , capacitor , polymer , crystallinity , composite material , polymer nanocomposite , electric field , atmospheric temperature range , volume (thermodynamics) , thermal conduction , optoelectronics , voltage , electrical engineering , physics , quantum mechanics , engineering , meteorology
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.

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