材料科学
储能
电容器
电介质
电热效应
铁电聚合物
复合数
制冷
驻极体
极化(电化学)
光电子学
复合材料
聚合物
铁电性
热能储存
热的
电场
计算机数据存储
热能
电势能
纳米颗粒
电压
作者
Da Zu,Zhanpeng Zhang,Dongliang Shan,Wenjun Cao,YunYa Liu
标识
DOI:10.1002/adfm.202523520
摘要
Abstract The thermal failure bottleneck in high‐power polymer capacitors severely limits their energy storage performance breakthroughs. Composite materials combining excellent thermal management capabilities with high energy storage density represent an effective solution to this problem. This study proposes an integrated energy storage‐thermal management design strategy: using a relaxor ferroelectric polymer P(VDF‐TrFE‐CFE) as the matrix and incorporating Ba 0.6 Sr 0.4 TiO 3 (BST) nanoparticles with varying weight fractions (0–23.08 wt.%) to construct high‐performance polymer‐based nanocomposites. By synergistically regulating the interfacial polarization effect and polarization entropy change, dual breakthroughs in electrocaloric (EC) cooling and energy storage performance are achieved. This study employs infrared thermal imaging technology to directly measure the EC response of composite films. Experimental results show that when the BST weight fraction is 16.67 wt.%, the composite achieves optimal overall performance: under an electric field of 110 MV m −1 , the recoverable energy density W rec reaches 4.26 J cm −3 , which is a 20.34% improvement over the pure polymer, with the η of 70.17%; under an electric field of 100 MV m −1 , the EC temperature change reaches 5 °C, representing a 32.63% enhancement compared to the pure polymer. Therefore, this work achieves a synergistic enhancement of dielectric energy storage and EC cooling performance within a single material system.
科研通智能强力驱动
Strongly Powered by AbleSci AI