Yang Minzheng, Ren Weibin, Guo Mengfan, Shen Yang
School of Materials Science and Engineering, State Key Lab of New Ceramics and Fine Processing, Tsinghua University, Beijing, 100084, China.
Small. 2022 Dec;18(50):e2205247. doi: 10.1002/smll.202205247. Epub 2022 Oct 20.
Polymer dielectrics are key components for electrostatic capacitors in energy, transportation, military, and aerospace fields, where their operation temperature can be boosted beyond 125 °C. While most polymers bear poor thermal stability and severe dielectric loss at elevated temperatures, numerous linear polymers with linear D-E loops and low dielectric permittivity exhibit low loss and high thermal stability. Therefore, the broad prospect of electrostatic capacitors under extreme conditions is anticipated for linear polymers, along with intensive efforts to enhance their energy density with high efficiency in recent years. In this article, an overview of recent progress in linear polymers and their composites for high-energy-density electrostatic capacitors at elevated temperatures is presented. Three key factors determining energy storage performance, including polarization, breakdown strength, and thermal stability, and their couplings are discussed. Strategies including chain modulation, filler selection, and design of topological structure are summarized. Key parameters for electrical and thermal evaluations of polymer dielectrics are also introduced. At the end of this review, research challenges and future opportunities for better performance and industrialization of dielectrics based on linear polymers are concluded.
聚合物电介质是能源、交通、军事和航空航天领域中静电电容器的关键组件,在这些领域其工作温度可超过125°C。虽然大多数聚合物在高温下热稳定性差且介电损耗严重,但许多具有线性D-E回线和低介电常数的线性聚合物表现出低损耗和高热稳定性。因此,线性聚合物有望在极端条件下为静电电容器带来广阔前景,并且近年来人们一直在大力致力于高效提高其能量密度。本文综述了用于高温下高能量密度静电电容器的线性聚合物及其复合材料的最新进展。讨论了决定储能性能的三个关键因素,包括极化、击穿强度和热稳定性及其耦合关系。总结了包括链调制、填料选择和拓扑结构设计在内的策略。还介绍了聚合物电介质电气和热评估的关键参数。在本综述结尾,总结了基于线性聚合物的电介质在实现更好性能和工业化方面的研究挑战与未来机遇。