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High performance triboelectric nanogenerators based on phase-inversion piezoelectric membranes of poly(vinylidene fluoride)-zinc stannate (PVDF-ZnSnO3) and polyamide-6 (PA6)

机译:基于聚偏二氟乙烯 - 锡酸锌(pVDF-ZnsnO3)和聚酰胺-6(pa6)的相转化压电膜的高性能摩擦纳米发电机

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摘要

Vertical contact-separation mode triboelectric generator (TEG) based on lead-free perovskite, zinc stannate (ZnSnO3)-polyvinylidene fluoride (PVDF) composite and polyamide-6 (PA6) membrane is demonstrated. For the 5 wt% PVDF-ZnSnO3 nanocomposites, the facile phase-inversion method provides a simple route to achieve high crystallinity and β-phase with a piezoelectric coefficient d33 of −65 pm V−1, as compared to −44 pm V−1 for pristine PVDF membranes. Consequently, at a cyclic excitation impact of 490 N/3 Hz, the PVDF-ZnSnO3/PA6 based TEGs provide a significantly higher voltage of 520 V and a current density of 2.7 mA m−2 (corresponding charge density of 62.0 µC m−2), as compared to the pristine PVDF-PA6 TEG which provides up to 300 V with a current density of 0.91 mA m−2 (corresponding to a charge density of 55.0 µC m−2). This increase in the electrical output can be attributed to not only the enhanced polarisation of PVDF by ZnSnO3 leading to an increase in the β-phase content, but also to the surface charge density increase by stress induced polarisation of ZnSnO3, leading to the generation of stronger piezoelectric potential. The work thus introduces a novel method of enhancing the surface charge density via the addition of suitable high polarisation piezoelectric materials thus eliminating the need for prior charge injection for fluoropolymer membranes.
机译:对基于无铅钙钛矿,锡酸锌(ZnSnO3)-聚偏二氟乙烯(PVDF)复合材料和聚酰胺-6(PA6)膜的垂直接触-分离模式摩擦发电机(TEG)进行了演示。对于5 wt%的PVDF-ZnSnO3纳米复合材料,便捷的相转化方法提供了一种简单的途径,可实现高结晶度和β相,压电系数d33为-65 pm V-1,相比于-44 pm V-1用于原始PVDF膜。因此,在490 N / 3 Hz的周期性激发冲击下,基于PVDF-ZnSnO3 / PA6的TEG可提供更高的520 V电压和2.7 mA m-2的电流密度(对应的电荷密度为62.0 µC m-2 ),与原始PVDF-PA6 TEG相比,原始PVDF-PA6 TEG可提供高达300 V的电流密度,为0.91 mA m-2(对应于55.0 µC m-2的电荷密度)。电输出的增加不仅可以归因于ZnSnO3增强了PVDF的极化,导致β相含量的增加,而且还归因于ZnSnO3的应力诱导的极化导致了表面电荷密度的增加,从而导致了更强的压电势。因此,这项工作引入了一种通过添加合适的高极化压电材料来提高表面电荷密度的新颖方法,从而消除了对含氟聚合物膜进行事先电荷注入的需要。

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