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Mechanical Energy Harvesting Performance of Ferroelectric Polymer Nanowires Grown via Template-Wetting

机译:铁电聚合物纳米线通过模板润湿生长的机械能量采集性能

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摘要

Nanowires of the ferroelectric co-polymer poly(vinylidenefluoride-co-triufloroethylene) [P(VDF-TrFE)] are fabricated from solution within nanoporous templates of both "hard" anodic aluminium oxide (AAO) and "soft" polyimide (PI) through a facile and scalable template-wetting process. The confined geometry afforded by the pores of the templates leads directly to highly crystalline P(VDF-TrFE) nanowires in a macroscopic "poled" state that precludes the need for external electrical poling procedure typically required for piezoelectric performance. The energy-harvesting performance of nanogenerators based on these template-grown nanowires are extensively studied and analyzed in combination with finite element modelling. Both experimental results and computational models probing the role of the templates in determining overall nanogenerator performance, including both materials and device efficiencies, are presented. It is found that although P(VDF-TrFE) nanowires grown in PI templates exhibit a lower material efficiency due to lower crystallinity as compared to nanowires grown in AAO templates, the overall device efficiency was higher for the PI-template-based nanogenerator because of the lower stiffness of the PI template as compared to the AAO template. This work provides a clear framework to assess the energy conversion efficiency of template-grown piezoelectric nanowires and paves the way towards optimization of template-based nanogenerator devices.
机译:铁电共聚物聚(偏二氟乙烯 - CO-三氟乙烯)[P(VDF-TRFE)]的纳米线由“硬”阳极氧化铝(AAO)和“软”聚酰亚胺(PI)的纳米多孔模板内的溶液制成容易和可扩展的模板润湿过程。由模板的孔提供的狭窄的几何形状直接导致高度结晶的P(VDF-TRFE)纳米线在宏观的“极化”状态下,该状态排除了通常需要压电性能所需的外部电动抛光过程的需求。基于这些模板生长的纳米线的纳米液的能量收集性能被广泛地研究和分析有限元模拟。提出了实验结果和计算模型探测模板在确定整体纳米能器性能方面的作用,包括材料和器件效率。发现与AAO模板生长的纳米线相比,PI模板中生长在PI模板中的P(VDF-TRFE)纳米线具有较低的材料效率,因此基于PI-模板的纳米液体的整体装置效率较高与AAO模板相比,PI模板的较低刚度。这项工作提供了一个明确的框架,以评估模板生长的压电纳米线的能量转换效率,并为基于模板的纳米电气器装置提供优化的方式。

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