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在聚合物电介质中构建超薄库仑阻塞层的金纳米粒子,实现显著的储能增强。

Achieving remarkable energy storage enhancement in polymer dielectrics constructing an ultrathin Coulomb blockade layer of gold nanoparticles.

机构信息

School of Materials Science and Engineering, Ocean University of China, Qingdao 266100, China.

College of Ocean Science and Engineering, Shanghai Maritime University, Shanghai 201306, P. R. China.

出版信息

Mater Horiz. 2023 Jul 3;10(7):2476-2486. doi: 10.1039/d3mh00084b.

Abstract

High-energy density polymer dielectrics play a crucial role in various pulsed energy storage and conversion systems. So far, many strategies have been demonstrated to be able to effectively improve the energy density of polymer dielectrics, but sophisticated fabrication processes are usually needed which result in high cost and poor repeatability. Herein, an easy-operated sputtering and hot-pressing process is developed to significantly enhance the energy density of polymer dielectrics. Surprisingly, for the poly(vinylidene fluoride-hexafluoropropylene) films sputtered with merely 0.0064 vol% gold nanoparticles, the energy density is remarkably improved by 84.3% because of the concurrent enhancements in breakdown strength (by 37.5%) and dielectric permittivity (by 25.5%), which is demonstrated to have originated from the unique Coulomb blockade and micro-capacitor effect of the gold nanoparticles. It is further confirmed that this design strategy is also applicable for commercial biaxially oriented polypropylene and poly(methyl methacrylate). This work offers a novel, easy-operated and universally applicable route to improve the energy density of polymeric dielectrics, which paves the way for their application in modern electronics and power modules.

摘要

高能量密度聚合物电介质在各种脉冲储能和转换系统中起着至关重要的作用。到目前为止,已经有许多策略被证明能够有效地提高聚合物电介质的能量密度,但通常需要复杂的制造工艺,这导致成本高和重复性差。在此,开发了一种易于操作的溅射和热压工艺,可显著提高聚合物电介质的能量密度。令人惊讶的是,对于溅射了仅 0.0064 体积%金纳米粒子的聚(偏二氟乙烯-六氟丙烯)薄膜,由于击穿强度(提高了 37.5%)和介电常数(提高了 25.5%)的同时提高,能量密度显著提高了 84.3%,这归因于金纳米粒子的独特库仑阻塞和微电容器效应。进一步证实,这种设计策略也适用于商业双轴取向聚丙烯和聚(甲基丙烯酸甲酯)。这项工作为提高聚合物电介质的能量密度提供了一种新颖、易于操作和通用的方法,为它们在现代电子和电力模块中的应用铺平了道路。

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