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PVDF energy-harvesting devices: Film preparation, electric poling, energy-harvesting efficiency

机译:PVDF能量收集装置:薄膜制备,电动抛光,能量收获效率

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Poly(vinylidene fluoride) (PVDF) has been recently recognized as an attractive candidate for energy-conversion applications that are fabricated on its piezo- and pyroelectric activities. In this work, Commercial poly(vinylidene fluoride) (PVDF) films are uniaxially stretched with varying rates at 110 °C in order to endow PVDF piezo- and pyroelectric mainly via crystalline-phase transition from nonpolar α to polar β that are identified by infrared (IR) spectroscopy and X-ray diffraction (XRD). The fast stretching promotes the α-to-β phase transition and the quite high β-phase fraction in films resultantly. Additionally, fast stretching benefits to producing a slightly increase of γ phase. Sufficient high electric field applied during poling results in α-to-β phase transition according to the XRD observations. The quantified evaluation on XRD data illustrates that the poling accounts for size-increase and better chain-packing of the β-phase crystallites. The energy-conversion performance of the stretched films that were impacted by water drops as well its relation to the piezoelectric-voltage activity was evaluated by measuring the peak-voltage outputs.
机译:最近将聚(偏二氟乙烯)(PVDF)(PVDF)被认为是在其压电和热电活动上制造的能量转换应用的有吸引力的候选者。在这项工作中,商业聚(偏二氟乙烯)(PVDF)膜在110℃下具有不同速率的单轴拉伸,以赋予PVDF压电和热电主要通过非极性α至极性β的晶相转变,其由红外线识别(IR)光谱学和X射线衍射(XRD)。快速拉伸促进α-β相转变和薄膜中相当高的β相级分。另外,快速拉伸益处,以产生γ相略微增加。根据XRD观察,在极化期间施加足够的高电场,导致α-to-β相转变。 XRD数据的量化评估说明了极尺寸和β相结晶的尺寸增加和更好的链包装。通过测量峰值电压输出,评估由水滴撞击的拉伸薄膜的能量转换性能,其与压电电压活性相比。

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