Yin Lei, Zhao Hang, Wang Yezhou, Zhao Sanni, Ding Xiaoyu, Wang Qian, Wei Xiuping, Miao Zhiying, Yang Fan, Yin Xunqian, Bai Jinbo
International Collaborative Center on Photoelectric Technology and Nano Functional Materials, and Institute of Photonics & Photon-Technology, Northwest University, Xi'an 710069, China.
Functional Polymer Laboratory, School of Materials Science and Engineering, Shandong University of Science and Technology, Qingdao 266590, China.
ACS Appl Mater Interfaces. 2022 Aug 31;14(34):39311-39321. doi: 10.1021/acsami.2c07545. Epub 2022 Aug 17.
In recent years, high-energy-density polymer-based capacitors have received extensive attention because of their potential applications in advanced power systems and electronic equipment. However, their development is severely hampered by the inherent features of polymers such as low polarization and low charge-discharge efficiency (η). In this study, a new strategy for core-shell NaBiTiO(NBT)@TiO(TO) whiskers combined with sandwich-structured poly(vinylidene fluoride) (PVDF)-based dielectric composites is proposed, in which the middle layer is the PVDF-based composites filled with different fractions of NBT@TO whiskers and the outer layers are pristine PVDF. The experimental results show that the loading of NBT@TO whiskers can simultaneously optimize electrical displacement and breakdown strength of the sandwich-structured composite due to the additional interfacial polarization and the contribution of the barrier effect between adjacent layers. Thus, a significantly improved electric displacement of ∼13.99 μC cm, a maximum discharge energy density () of ∼15.42 J cm at a low electric field of 314 MV m, and a high charging-discharging efficiency (η ∼ 66.12%) can be obtained from the composite with the middle layer containing 6 wt % NBT@TO whiskers. This research provides a strategy for the preparation of advanced polymer-based composites with a superior discharge energy density in the future.
近年来,基于聚合物的高能量密度电容器因其在先进电力系统和电子设备中的潜在应用而受到广泛关注。然而,聚合物的固有特性,如低极化和低充放电效率(η),严重阻碍了它们的发展。在本研究中,提出了一种核壳结构的NaBiTiO(NBT)@TiO(TO)晶须与三明治结构的聚偏二氟乙烯(PVDF)基介电复合材料相结合的新策略,其中中间层是填充有不同比例NBT@TO晶须的PVDF基复合材料,外层是原始PVDF。实验结果表明,由于额外的界面极化和相邻层之间的势垒效应,NBT@TO晶须的负载可以同时优化三明治结构复合材料的电位移和击穿强度。因此,对于中间层含有6 wt% NBT@TO晶须的复合材料,可以在314 MV m的低电场下获得显著提高的约13.99 μC/cm的电位移、约15.42 J/cm的最大放电能量密度()以及高充放电效率(η约为66.12%)。本研究为未来制备具有优异放电能量密度的先进聚合物基复合材料提供了一种策略。