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通过引入凹凸不平的金/聚甲基倍半硅氧烷颗粒阻挡层实现聚合物薄膜介电能量密度的显著提高。

Achieving Significantly Boosted Dielectric Energy Density of Polymer Film via Introducing a Bumpy Gold/Polymethylsilsesquioxane Granular Blocking Layer.

作者信息

Chang Zelong, Shi Zhicheng, Liu Yao, Lei Li, Sun Liang, Tang Qingyang, Fan Runhua, Cui Hongzhi, Wang Hong

机构信息

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

School of Materials Science and Engineering, Shandong University, Jinan, 250061, P. R. China.

出版信息

Small. 2024 Dec;20(49):e2407299. doi: 10.1002/smll.202407299. Epub 2024 Sep 18.

DOI:10.1002/smll.202407299
PMID:39291893
Abstract

Polymer dielectrics are the key materials for pulsed energy storage systems, but their low energy densities greatly restrict the applications in integrated electronic devices. Herein, a unique bumpy granular interlayer consisting of gold nanoparticles (Au NPs) and polymethyksesquioxane (PMSQ) microspheres is introduced into a poly(vinylidene fluoride) (PVDF) film, forming trilayered PVDF-Au/PMSQ-PVDF films. Interestingly, the Au/PMSQ interlayer arouses a dielectric enhancement of 47% and an ultrahigh breakdown strength of 704 MV m, which reaches 153% of pure PVDF. It is revealed that the greatly enhanced breakdown strength originated from the Coulomb-blockade effect of Au NPs and the excellent insulating properties of PMSQ microspheres with a special molecular-scale organic-inorganic hybrid structure. Benefiting from the concurrently enhanced dielectric and breakdown performances, an outstanding energy density of 22.42 J cm with an efficiency of 67.1%, which reaches 249% of that of the pure PVDF, is achieved. It is further confirmed that this design strategy is also applicable to linear dielectric polymer polyethyleneimine. The composites exhibit an energy density of 8.91 J cm with a high efficiency of ≈95%. This work offers a novel and efficient strategy for concurrently enhancing the dielectric and breakdown performances of polymers toward pulsed power applications.

摘要

聚合物电介质是脉冲储能系统的关键材料,但其低能量密度极大地限制了在集成电子设备中的应用。在此,一种由金纳米颗粒(Au NPs)和聚甲基倍半硅氧烷(PMSQ)微球组成的独特凹凸颗粒中间层被引入到聚偏氟乙烯(PVDF)薄膜中,形成了三层PVDF-Au/PMSQ-PVDF薄膜。有趣的是,Au/PMSQ中间层引起了47%的介电增强和704 MV m的超高击穿强度,这达到了纯PVDF的153%。结果表明,击穿强度的大幅提高源于Au NPs的库仑阻塞效应以及具有特殊分子尺度有机-无机杂化结构的PMSQ微球的优异绝缘性能。受益于同时增强的介电和击穿性能,实现了22.42 J cm的出色能量密度和67.1%的效率,这达到了纯PVDF的249%。进一步证实,这种设计策略也适用于线性介电聚合物聚乙烯亚胺。该复合材料表现出8.91 J cm的能量密度和≈95%的高效率。这项工作为同时提高聚合物在脉冲功率应用中的介电和击穿性能提供了一种新颖而有效的策略。

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