位阻效应
材料科学
有机半导体
聚合物
电容器
分子内力
分子间力
化学物理
带隙
分子
化学工程
纳米技术
半导体
有机电子学
分子工程
导电聚合物
载流子
储能
电荷(物理)
兴奋剂
密度泛函理论
有机化学
高分子化学
计算化学
超级电容器
光电子学
电活性聚合物
作者
Z. Z. Li,Xuefei Bi,He Gao,Qianyi Fan,Yikun Dong,Ruyi Li,Yu Feng,Ji Liu
标识
DOI:10.1002/adfm.202524852
摘要
ABSTRACT Polymer capacitors with superior discharged energy storage density ( U d ) and charging‐discharging efficiency ( η ) are necessary for modern electronic and electric devices. Molecular engineering is a crucial trend for designing polymers, but the individual and synergetic effects of segment bandgap ( E g ) and steric hindrance, both governed by molecular structure on charge transport and U d are unclear. Herein, a molecular strategy that combines the advantages of large segment E g , steric hindrance, and organic semiconductor fillers is proposed for aromatic polymer. Through screening 53 aromatic polymers via DFT simulation and optimizing mass contents of PCBM, the 0.3%PCBM fillers are doped into the designed aromatic polymer with large E g and steric hindrance structure, which achieves an ultra‐high U d of 7.93 J/cm 3 under 775 MV/m at 150°C when η >85%, which is superior to most investigations previously. The large segment E g , steric hindrance and PCBM particles, respectively, inhibit intermolecular and intramolecular charge transfer, alongmolecular charge transfer, and charge migration and injection, attributing to the depression of charge transport multi‐processes and superior U d . The effective molecular engineering indicates that the depression of charge transport multi‐processes greatly enhances U d , offering a strategy to enhance U d for high‐temperature capacitor films in advanced applications.
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