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通过嵌入氧化石墨烯纳米片提高聚偏氟乙烯纳米纤维的压电性能。

Boosting piezoelectric properties of PVDF nanofibers via embedded graphene oxide nanosheets.

作者信息

Salama Mahmoud, Hamed Aya, Noman Sara, Magdy Germein, Shehata Nader, Kandas Ishac

机构信息

Center of Smart Materials, Nanotechnology, and Photonics (CSMNP), Smart CI Research Center, Alexandria University, Alexandria, 21544, Egypt.

Department of Engineering Mathematics and Physics, Faculty of Engineering, Alexandria University, Alexandria, 21544, Egypt.

出版信息

Sci Rep. 2024 Jul 17;14(1):16484. doi: 10.1038/s41598-024-66258-9.

Abstract

Tremendous research efforts have been directed toward developing polymer-based piezoelectric nanogenerators (PENG) in a promising step to investigate self-charging powered systems (SCPSs) and consequently, support the need for flexible, intelligent, and ultra-compact wearable electronic devices. In our work, electrospun polyvinylidene fluoride (PVDF) nanofiber mats were investigated while graphene oxide (GO) was added with different concentrations (from 0 to 3 wt.%). Sonication treatment was introduced for 5 min to GO nanosheets before combined PVDF solution. A comprehensive study was conducted to examine the GO incremental effect. Microstructural and mechanical properties were examined using a scanning electron microscope (SEM) and a texture analyzer. Moreover, piezoelectric properties were assessed via various tests including impulse response, frequency effect, d coefficient, charging and discharging analysis, and sawyer tower circuit. Experimental results indicate that incorporation of GO nanosheets enhances piezoelectric properties for all concentrations, which was linked to the increase in β phase inside the nanofibers, which has a significant potential of enhancing nanogenerator performance. PVDF-GO 1.5 wt.% shows a notably higher enhancing effect where the electroactive β-phase and γ-phase are recorded to be boosted to ~ 68.13%, as well as piezoelectric coefficient (d ~ 55.57 pC/N). Furthermore, increasing impact force encouraged the output voltage. Also noted that the delivered open circuit voltage is ~ 3671 V/g and the power density is ~ 150 µw/cm. It was observed that GO of concentration 1.5 wt.% recorded a conversion efficiency of ~ 74.73%. All results are in line, showing better performance for PVDF-GO 1.5 wt.% for almost all concentrations.

摘要

人们付出了巨大的研究努力来开发基于聚合物的压电纳米发电机(PENG),这是朝着研究自充电供电系统(SCPSs)迈出的充满希望的一步,从而满足了对灵活、智能和超紧凑可穿戴电子设备的需求。在我们的工作中,研究了电纺聚偏氟乙烯(PVDF)纳米纤维垫,同时添加了不同浓度(从0到3 wt.%)的氧化石墨烯(GO)。在将GO纳米片与PVDF溶液混合之前,对其进行了5分钟的超声处理。进行了一项全面的研究来考察GO的增量效应。使用扫描电子显微镜(SEM)和纹理分析仪检查微观结构和机械性能。此外,通过各种测试评估压电性能,包括脉冲响应、频率效应、d系数、充放电分析和索耶塔电路。实验结果表明,加入GO纳米片提高了所有浓度下的压电性能,这与纳米纤维内部β相的增加有关,β相具有提高纳米发电机性能的巨大潜力。PVDF-GO 1.5 wt.%显示出明显更高的增强效果,其中记录到电活性β相和γ相提高到约68.13%,以及压电系数(d约为55.57 pC/N)。此外,增加冲击力会提高输出电压。还注意到,输出的开路电压约为3671 V/g,功率密度约为150 μw/cm。观察到浓度为1.5 wt.%的GO记录的转换效率约为74.73%。所有结果一致,表明PVDF-GO 1.5 wt.%在几乎所有浓度下都具有更好的性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6080/11254930/63f5492d5fb2/41598_2024_66258_Fig1_HTML.jpg

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