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负载 0.5(BaCa)TiO-0.5Ba(ZrTi)O 一维纳米纤维的聚合物纳米复合材料的超快速放电和增强能量密度。

Ultrafast Discharge and Enhanced Energy Density of Polymer Nanocomposites Loaded with 0.5(BaCa)TiO-0.5Ba(ZrTi)O One-Dimensional Nanofibers.

机构信息

School of Materials Science & Engineering, Tongji University , 4800 Caoan Road, Shanghai 201804, China.

School of Physics and Electronic Engineering, Guangzhou University , Guangzhou, 510006, China.

出版信息

ACS Appl Mater Interfaces. 2017 Apr 26;9(16):14337-14346. doi: 10.1021/acsami.7b01381. Epub 2017 Apr 11.

Abstract

One-dimensional (1D) materials as fillers introduced into polymer matrixes have shown great potential in achieving high energy storage capacity because of their large dipole moments. In this article, 1D lead-free 0.5(BaCa)TiO-0.5Ba(ZrTi)O nanofibers (BCZT NFs) were prepared via electrospinning, and their formation mechanism was systematically studied. Polypropylene acyl tetraethylene pentamine (PATP) grafted into the surface of BCZT NFs was embedded in the polymer matrixes, which effectively improved the distribution and compatibility of the fillers via chemical bonding and confined the movement of the charge carriers in the interface filler-matrix. The energy density at a relatively low electric field 380 MV m was increased to 8.23 J cm by small loading of fillers, far more than that of biaxially oriented polypropylene (BOPP) (≈ 1.2 J cm at 640 MV m). Moreover, the nanocomposite loaded with 2.1 vol % BCZT@PATP NFs exhibits a superior discharge speed of ≈0.189 μs, which indicates the potential application in practice. The finite element simulation of electric potential and electric current density distribution revealed that the PATP grafted into the BCZT NFs surface could significantly improve the dielectric performances. This work could provide a new design strategy for high-performance dielectric polymer nanocomposite capacitors.

摘要

一维(1D)材料作为填充物引入聚合物基体中,由于其具有较大的偶极矩,在实现高储能能力方面显示出巨大的潜力。本文通过静电纺丝制备了一维无铅 0.5(BaCa)TiO-0.5Ba(ZrTi)O 纳米纤维(BCZT NFs),并系统研究了其形成机制。聚丙烯酰四乙烯五胺(PATP)接枝到 BCZT NFs 的表面,嵌入聚合物基体中,通过化学键合有效改善了填充物的分布和相容性,并限制了界面填充物-基体中电荷载流子的运动。通过小量填充,在相对较低的电场 380 MV m 下,能量密度提高到 8.23 J cm,远远超过双轴取向聚丙烯(BOPP)(在 640 MV m 下约为 1.2 J cm)。此外,负载 2.1 体积%BCZT@PATP NFs 的纳米复合材料表现出优异的放电速度≈0.189 μs,表明其在实际应用中的潜力。电势能和电流密度分布的有限元模拟表明,接枝到 BCZT NFs 表面的 PATP 可以显著提高介电性能。这项工作为高性能介电聚合物纳米复合材料电容器提供了一种新的设计策略。

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