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具有氧化石墨烯的柔性PVDF-TrFE双层膜增强的压电能量收集性能

Enhanced Piezoelectric Energy Harvesting Performance of Flexible PVDF-TrFE Bilayer Films with Graphene Oxide.

作者信息

Bhavanasi Venkateswarlu, Kumar Vipin, Parida Kaushik, Wang Jiangxin, Lee Pooi See

机构信息

School of Materials Science and Engineering, Nanyang Technological University , 50 Nanyang Avenue, Singapore 639798.

出版信息

ACS Appl Mater Interfaces. 2016 Jan 13;8(1):521-9. doi: 10.1021/acsami.5b09502. Epub 2015 Dec 22.

Abstract

Ferroelectric materials have attracted interest in recent years due to their application in energy harvesting owing to its piezoelectric nature. Ferroelectric polymers are flexible and can sustain larger strains compared to inorganic counterparts, making them attractive for harvesting energy from mechanical vibrations. Herein, we report, for the first time, the enhanced piezoelectric energy harvesting performance of the bilayer films of poled poly(vinylidene fluoride-trifluoroethylene) [PVDF-TrFE] and graphene oxide (GO). The bilayer film exhibits superior energy harvesting performance with a voltage output of 4 V and power output of 4.41 μWcm(-2) compared to poled PVDF-TrFE films alone (voltage output of 1.9 V and power output of 1.77 μWcm(-2)). The enhanced voltage and power output in the presence of GO film is due to the combined effect of electrostatic contribution from graphene oxide, residual tensile stress, enhanced Young's modulus of the bilayer films, and the presence of space charge at the interface of the PVDF-TrFE and GO films, arising from the uncompensated polarization of PVDF-TrFE. Higher Young's modulus and dielectric constant of GO led to the efficient transfer of mechanical and electrical energy.

摘要

近年来,铁电材料因其压电特性在能量收集方面的应用而备受关注。铁电聚合物具有柔韧性,与无机材料相比能承受更大的应变,这使其在从机械振动中收集能量方面具有吸引力。在此,我们首次报道了极化聚(偏二氟乙烯 - 三氟乙烯)[PVDF-TrFE]与氧化石墨烯(GO)双层膜增强的压电能量收集性能。与单独的极化PVDF-TrFE膜(电压输出为1.9 V,功率输出为1.77 μWcm(-2))相比,该双层膜展现出卓越的能量收集性能,电压输出为4 V,功率输出为4.41 μWcm(-2)。GO膜存在时电压和功率输出的增强归因于氧化石墨烯的静电贡献、残余拉伸应力、双层膜杨氏模量的增强以及PVDF-TrFE与GO膜界面处由于PVDF-TrFE未补偿极化而产生的空间电荷的综合作用。GO较高的杨氏模量和介电常数导致了机械能和电能的高效传输。

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