Convenient folding-hot-pressing fabrication and enhanced piezoelectric properties of high β-phase-content poly(vinylidene fluoride) films

IF 24.5 Q1 CHEMISTRY, PHYSICAL
Jie Shen, Yicheng Zeng, Qiangzhi Li, Jing Zhou, Wen Chen
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Abstract

Poly(vinylidene fluoride) (PVDF) is the most attractive piezoelectric polymer for application in flexible sensors. To attain excellent piezoelectric properties, a substantial amount of spontaneous polar β-phase content is highly desired. Nevertheless, the current reported manufacturing methods to increase β-phase contents are inconvenient and complex, hindering progress in PVDF's application. This work proposes a folding-hot-pressing method to fabricate high β-phase-content PVDF films. Structural characterization indicates that the films have α and β phases and the folding-hot-pressing process transforms the α phase into the β phase. Due to the 97.5% β-phase content and aligned structure, a piezoelectric constant of 20 pC/N is achieved in the three-times folded film. Furthermore, the process method enhances the tensile strength (126.2 MPa) of the films, with a low Young's modulus (0.87 GPa) remaining, making the films applicable for flexible piezoelectric sensors. Additionally, sensors based on the achieved films were assembled and applied for human physiological activity monitoring. This work offers a scalable new melt-processing strategy for developing high-performance PVDF-based piezoelectric composite films for wearable electronic devices.

Abstract Image

方便折叠-热压制备高 β 相含量聚偏氟乙烯薄膜并增强其压电特性
聚偏二氟乙烯(PVDF)是应用于柔性传感器中最具吸引力的压电聚合物。要获得优异的压电特性,需要大量的自发极性 β 相含量。然而,目前报道的增加 β 相含量的制造方法既不方便又复杂,阻碍了 PVDF 的应用进展。本研究提出了一种折叠-热压方法来制造高 β 相含量的 PVDF 薄膜。结构表征表明,薄膜具有 α 和 β 两相,折叠-热压工艺将 α 相转化为 β 相。由于 β 相含量高达 97.5%,且结构排列整齐,三次折叠薄膜的压电常数达到了 20 pC/N。此外,该工艺方法还提高了薄膜的拉伸强度(126.2 兆帕),同时保持了较低的杨氏模量(0.87 GPa),使薄膜适用于柔性压电传感器。此外,基于已实现的薄膜组装的传感器还被应用于人体生理活动监测。这项工作为开发用于可穿戴电子设备的高性能 PVDF 基压电复合薄膜提供了一种可扩展的新型熔融加工策略。
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