Nanoclay Reinforced Polymer Composite Dielectrics for Ultra‐Balanced Electrostatic Energy Storage

IF 18.5 1区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY Advanced Functional Materials Pub Date : 2024-07-06 DOI:10.1002/adfm.202408719
Xiaozheng Liang, Quan Li, Yangjun Ren, Weimin Xie, Aidong Tang, Huaming Yang
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Abstract

The vast energy storage potential of polymer composite dielectrics in high pulse power sources stands in stark contrast to the unbalanced improvements in discharge energy density (Ud), charge–discharge efficiency (η), and dielectric strength (Eb) as reported currently. Herein, a multistage coupled interface engineering design is proposed: a novel gradient alternating dielectric buffer layer (G‐A‐DBL) is constructed, which consists of inorganic low‐k nanoclay aluminosilicate layer and high‐k ferroelectric layer assembled in a highly oriented alternation as a basic unit and gradient distribution in polymer matrix. This design achieves electric field confinement from the nanoscale to the macroscopic level and achieves an ultra‐balanced enhancement effect, resulting in a Ud of 28.5 J cm−3, an η of 80%, and an Eb of 676 kV mm−1. The universal charge retention ability of charge traps from aluminosilicate heterogeneous skeletons is demonstrated by combining density functional theory calculations and scanning probe measurements. The G‐A‐DBL design integrates traditional charge trapping, heterostructure formation, and gradient modulation, effectively suppressing the entire process of carrier excitation, transport, and before capture. This work advances the basic understanding of charge confinement within inorganic interface charge traps, demonstrating the most well‐balanced enhancement effect and potential for broad application across dielectric polymer nanocomposites.
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用于超平衡静电储能的纳米粘土增强聚合物复合电介质
聚合物复合电介质在高脉冲电源中具有巨大的储能潜力,但与之形成鲜明对比的是,目前所报道的放电能量密度(Ud)、充放电效率(η)和介电强度(Eb)的提高并不平衡。本文提出了一种多级耦合界面工程设计:构建了一种新型梯度交变介电缓冲层(G-A-DBL),该缓冲层由无机低 K 纳米钙钛矿铝硅酸盐层和高 K 铁电层以高度取向交替的方式组装而成,作为基本单元并梯度分布于聚合物基体中。这种设计实现了从纳米级到宏观级的电场限制,达到了超平衡增强效应,使 Ud 达到 28.5 J cm-3,η 达到 80%,Eb 达到 676 kV mm-1。通过结合密度泛函理论计算和扫描探针测量,证明了铝硅酸盐异质骨架电荷阱具有普遍的电荷保持能力。G-A-DBL 设计集成了传统的电荷捕获、异质结构形成和梯度调制,有效抑制了载流子激发、传输和捕获前的整个过程。这项工作推进了对无机界面电荷陷阱内电荷禁锢的基本理解,展示了最均衡的增强效应,并具有在介电聚合物纳米复合材料中广泛应用的潜力。
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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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