基于独立式单晶反铁电膜/PVDF复合材料的超高储能电容器

IF 18.5 1区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Bohan Chen, Wenxuan Zhu, Tian Wang, Bin Peng, Yiwei Xu, Guohua Dong, Yunting Guo, Haixia Liu, Houbing Huang, Ming Liu
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引用次数: 2

摘要

无机/有机介电复合材料是高能量密度静电电容器的重要材料。为了提高储能性能,通常选择线性介电材料和铁电材料作为无机填料。反铁电(AFE)材料,特别是单晶AFE氧化物,比线性介质或铁电材料具有更高的效率和密度。然而,将单晶AFE氧化物添加到聚合物中以构建具有改进储能性能的复合材料仍然是难以实现的。本研究采用水溶性牺牲层法制备了高质量的独立单晶PbZrO3膜。它们表现出经典的AFE行为,然后构建具有不同PbZrO3膜厚度(0.1-0.4µm)的2D-2D型PbZrO3/PVDF复合材料。与纯PVDF相比,它们的介电性能和极化响应显著提高,并在PbZrO3(0.3µm)/PVDF复合材料中得到优化。因此,在750 MV m−1的大击穿强度下,实现了创纪录的43.3 J cm−3的高能量密度。相场模拟结果表明,插入PbZrO3膜可以有效地减少击穿路径。单晶AFE氧化物膜将成为复合材料基高功率电容器的有用填料。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Ultrahigh Energy Storage Capacitors Based on Freestanding Single-Crystalline Antiferroelectric Membrane/PVDF Composites

Ultrahigh Energy Storage Capacitors Based on Freestanding Single-Crystalline Antiferroelectric Membrane/PVDF Composites

Inorganic/organic dielectric composites are very attractive for high energy density electrostatic capacitors. Usually, linear dielectric and ferroelectric materials are chosen as inorganic fillers to improve energy storage performance. Antiferroelectric (AFE) materials, especially single-crystalline AFE oxides, have relatively high efficiency and higher density than linear dielectrics or ferroelectrics. However, adding single-crystalline AFE oxides into polymers to construct composite with improved energy storage performance remains elusive. In this study, high-quality freestanding single-crystalline PbZrO3 membranes are obtained by a water-soluble sacrificial layer method. They exhibit classic AFE behavior and then 2D–2D type PbZrO3/PVDF composites with the different film thicknesses of PbZrO3 (0.1-0.4 µm) is constructed. Their dielectric properties and polarization response improve significantly as compared to pure PVDF and are optimized in the PbZrO3(0.3 µm)/PVDF composite. Consequently, a record-high energy density of 43.3 J cm−3 is achieved at a large breakdown strength of 750 MV m−1. Phase-field simulation indicates that inserting PbZrO3 membranes effectively reduces the breakdown path. Single-crystalline AFE oxide membranes will be useful fillers for composite-based high-power capacitors.

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来源期刊
Advanced Functional Materials
Advanced Functional Materials 工程技术-材料科学:综合
CiteScore
29.50
自引率
4.20%
发文量
2086
审稿时长
2.1 months
期刊介绍: Firmly established as a top-tier materials science journal, Advanced Functional Materials reports breakthrough research in all aspects of materials science, including nanotechnology, chemistry, physics, and biology every week. Advanced Functional Materials is known for its rapid and fair peer review, quality content, and high impact, making it the first choice of the international materials science community.
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