Liu Xiaohua, Zhang Minghai, Jiang Baolin, Zhang Qihao, Chen Hao, Shen Yan, Wang Ziyan, Yin Xiaohong
College of Urban Transportation and Logistics, Shenzhen Technology University, Shenzhen 518118, China.
Guangdong Rail Transit Intelligent Operation and Maintenance Technology Development Center, Shenzhen 518118, China.
Polymers (Basel). 2024 Mar 14;16(6):816. doi: 10.3390/polym16060816.
Polyvinylidene fluoride (PVDF) nanofiber mats have played a significant role in wearable electronic devices that have been in great demand in recent decades. Although manifold PVDFbased freely stacked or well-aligned nanofiber mats created via the electrospinning process have been demonstrated to achieve multisensory capabilities with high sensitivity and long detection range, rarely have any of them proved their ability with a stable process and accurate processing parameters. In this work, we successfully developed freely stacked and well-aligned PVDF nanofiber mats with diameters ranging from micrometers to nanometers, providing stable performance for wearable electronic devices. Through in-depth investigations into material preparation, electrospinning, and fiber collection processes, we revealed the relationship between the nanofiber morphology, β-phase fraction, and piezoelectric output with various process parameters. Characterized by analytical methods, we have established a mature, reliable nanofiber mat fabrication system capable of mass-producing PVDF nanofibers with the required diameter and consistent properties. At 18 kV voltage and 60% RH humidity, the uniformity of the fiber diameter and β-phase content was maintained in a favorable range. When the drum speed increased to 2000 r/s, the fiber orientation and β-phase content increased. We assembled aligned PVDF nanofiber mats with conductive fabric in a flexible piezoelectric sensor that successfully monitored different body movements and produced an output voltage of 0.1 V. This study provides the necessary process parameters for the large-scale production of high-quality PVDF nanofiber mats and provides clear guidance for beginners in the field of nanofiber mat manufacturing.
聚偏氟乙烯(PVDF)纳米纤维垫在近几十年来需求旺盛的可穿戴电子设备中发挥了重要作用。尽管通过静电纺丝工艺制备的多种基于PVDF的自由堆叠或排列良好的纳米纤维垫已被证明能够实现具有高灵敏度和长检测范围的多感官功能,但很少有能在稳定工艺和精确加工参数下证明其能力的。在这项工作中,我们成功开发了直径从微米到纳米不等的自由堆叠且排列良好的PVDF纳米纤维垫,为可穿戴电子设备提供了稳定的性能。通过对材料制备、静电纺丝和纤维收集过程的深入研究,我们揭示了纳米纤维形态、β相分数和压电输出与各种工艺参数之间的关系。通过分析方法进行表征,我们建立了一个成熟、可靠的纳米纤维垫制造系统,能够批量生产具有所需直径和一致性能的PVDF纳米纤维。在18 kV电压和60%相对湿度下,纤维直径和β相含量的均匀性保持在良好范围内。当滚筒速度增加到2000 r/s时,纤维取向和β相含量增加。我们将排列好的PVDF纳米纤维垫与导电织物组装在一个柔性压电传感器中,该传感器成功监测了不同的身体运动,并产生了0.1 V的输出电压。这项研究为大规模生产高质量PVDF纳米纤维垫提供了必要的工艺参数,并为纳米纤维垫制造领域的初学者提供了明确的指导。