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电纺聚偏氟乙烯纳米纤维作为人工毛细胞结构在耳蜗中连接尖端的压电特性。

Piezoelectric Property of Electrospun PVDF Nanofibers as Linking Tips of Artificial-Hair-Cell Structures in Cochlea.

作者信息

Sabouni Tabari Rana, Chen Yu, Thummavichai Kunyapat, Zhang Yan, Saadi Zakaria, Neves Ana I S, Xia Yongde, Zhu Yanqiu

机构信息

Department of Engineering, University of Exeter, Exeter EX4 4SB, UK.

State Key Laboratory of Powder Metallurgy, Central South University, Changsha 410083, China.

出版信息

Nanomaterials (Basel). 2022 Apr 26;12(9):1466. doi: 10.3390/nano12091466.

Abstract

The death of hair cells and damage of natural tip links is one of the main causes of hearing-loss disability, and the development of an advanced artificial hearing aid holds the key to assisting those suffering from hearing loss. This study demonstrates the potential of using electrospun polyvinylidene fluoride (PVDF) fibers to serve as the artificial tip links, for long-term hearing-aid-device development based on their piezoelectric properties. We have shown that the electrospun PVDF-fiber web, consisting of fibers ranging from 30-220 nm in diameter with high β-phase content, possesses the high piezoresponse of 170 mV. Analyses based on combined characterization methods including SEM, TEM, XRD, FTIR, Raman, DSC, XPS, PFM and piezoelectricity have confirmed that an optimized value of 15 wt.% PVDF could act as an effective candidate for a tip-link connector in a vibration-frequency prototype. Based on this easily reproducible electrospinning technique and the multifunctionalities of the resulting PVDF fibers, this fundamental study may shed light on the bio-inspired design of artificial, self-powered, high performance, hair-cell-like sensors in cochlea to tackle the hearing loss issue.

摘要

毛细胞死亡和天然纤毛尖端连接受损是听力丧失致残的主要原因之一,而开发先进的人工助听器是帮助听力损失患者的关键。本研究展示了利用静电纺丝聚偏二氟乙烯(PVDF)纤维作为人工纤毛尖端连接的潜力,基于其压电特性用于长期助听器设备的开发。我们已经表明,由直径为30 - 220 nm且具有高β相含量的纤维组成的静电纺PVDF纤维网具有170 mV的高压电响应。基于包括SEM、TEM、XRD、FTIR、拉曼、DSC、XPS、PFM和压电性在内的组合表征方法进行的分析证实,15 wt.% 的PVDF优化值可作为振动频率原型中纤毛尖端连接连接器的有效候选材料。基于这种易于重现的静电纺丝技术以及所得PVDF纤维的多功能性,这项基础研究可能为耳蜗中人工、自供电、高性能、毛细胞样传感器的仿生设计提供启示,以解决听力损失问题。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0c9d/9104576/b61f63b383ad/nanomaterials-12-01466-g001.jpg

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