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首页> 外文期刊>Polymers for advanced technologies >Improving piezoelectric and pyroelectric properties of electrospun PVDF nanofibers using nanofillers for energy harvesting application
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Improving piezoelectric and pyroelectric properties of electrospun PVDF nanofibers using nanofillers for energy harvesting application

机译:使用纳米填充器改善电纺PVDF纳米纤维的压电和热电性能,以便能量收集应用

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In this study, it was aimed to increase the piezoelectric and pyroelectric properties of electrospun polyvinylidene fluoride (PVDF) nanofibers simultaneously by using specific nanofillers. Graphene oxide (GO), graphene, and halloysite nanotubes with different concentrations (0, 0.05, 0.4, and 1.6% wt/wt) were combined with PVDF solution and were fabricated in the form of nanofibers through electrospinning. Pyroelectric properties of samples were measured by submerging sealed samples in hot water (360 degrees K) and ice (270 degrees K). The piezoelectric properties of the samples were evaluated through bending tests. The microstructural, mechanical, and thermal properties of the electrospun PVDF nanocomposite were investigated using scanning electron microscope, Instron instrument, and thermogravimetric analysis, respectively. To further support the experimental observations for generating electric voltage in the bended nanogenerator, the PVDF nanogenerator (PNG) was also modeled by a finite element analysis based on the theory of linear piezoelectricity using COMSOL Multiphysics simulation software. Experimental results showed that adding nanofillers could improve the piezoelectric and pyroelectric properties of all samples, associated with the increment of beta-phase in the nanofibers. It was concluded that adding nanofillers could increase pyroelectricity about 50% more than piezoelectricity in pristine PVDF nanofiber web. The PNG containing 1.6 wt% GO showed the highest efficiency in terms of piezoelectricity and pyroelectricity. In addition, the results showed that the ratio of piezoelectric to pyroelectric coefficients was constant (similar to 1.5) and it was independent of the nanofiller type and content. The effect of external force and vibration frequency on the output voltage was also investigated. Increasing the compressive force and vibration frequency caused a greater output voltage. Finally, the fabricated nanogenerator was integrated on insole and elbow to investigate its energy harvesting capabilities from body movement.
机译:在本研究中,旨在通过使用特定纳米填充物同时增加Extric纺聚乙烯氟化乙烯(PVDF)纳米纤维的压电和热电性能。将具有不同浓度(0,0.05,0.4和1.6%wt / wt)的石墨烯氧化物(GO),石墨烯和Holloysite纳米管与PVDF溶液合并,并通过静电纺丝以纳米纤维的形式制造。通过将密封的样品浸没在热水(360℃)和冰(270℃)中来测量样品的热电学性质。通过弯曲试验评估样品的压电性能。使用扫描电子显微镜,Instron仪器和热重分析研究了电纺PVDF纳米复合材料的微观结构,机械和热性能。为了进一步支持在弯曲的纳米液中产生电压的实验观察,通过使用COMSOL Multiphysics仿真软件,通过基于线性压电理论的有限元分析来建模PVDF纳米电极(PNG)。实验结果表明,添加纳米填料可以提高所有样品的压电和热电性质,与纳米纤维中β相的增量相关。得出结论,添加纳米填充物可以增加热电量超过原始PVDF纳米纤维网中的压电性大约50%。含有1.6wt%的PNG在压电和热电方面表现出最高效率。此外,结果表明,压电与热电系数的比率恒定(类似于1.5),其与纳米填充物型和含量无关。还研究了外力和振动频率对输出电压的影响。增加压缩力和振动频率导致更大的输出电压。最后,在鞋垫和肘部上集成了制造的纳米汞,以研究其从体内运动的能量收集能力。

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