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Tactile-Sensing Based on Flexible PVDF Nanofibers via Electrospinning: A Review

机译:基于静电纺丝的柔性PVDF纳米纤维的触感研究进展

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摘要

The flexible tactile sensor has attracted widespread attention because of its great flexibility, high sensitivity, and large workable range. It can be integrated into clothing, electronic skin, or mounted on to human skin. Various nanostructured materials and nanocomposites with high flexibility and electrical performance have been widely utilized as functional materials in flexible tactile sensors. Polymer nanomaterials, representing the most promising materials, especially polyvinylidene fluoride (PVDF), PVDF co-polymer and their nanocomposites with ultra-sensitivity, high deformability, outstanding chemical resistance, high thermal stability and low permittivity, can meet the flexibility requirements for dynamic tactile sensing in wearable electronics. Electrospinning has been recognized as an excellent straightforward and versatile technique for preparing nanofiber materials. This review will present a brief overview of the recent advances in PVDF nanofibers by electrospinning for flexible tactile sensor applications. PVDF, PVDF co-polymers and their nanocomposites have been successfully formed as ultrafine nanofibers, even as randomly oriented PVDF nanofibers by electrospinning. These nanofibers used as the functional layers in flexible tactile sensors have been reviewed briefly in this paper. The β-phase content, which is the strongest polar moment contributing to piezoelectric properties among all the crystalline phases of PVDF, can be improved by adjusting the technical parameters in electrospun PVDF process. The piezoelectric properties and the sensibility for the pressure sensor are improved greatly when the PVDF fibers become more oriented. The tactile performance of PVDF composite nanofibers can be further promoted by doping with nanofillers and nanoclay. Electrospun P(VDF-TrFE) nanofiber mats used for the 3D pressure sensor achieved excellent sensitivity, even at 0.1 Pa. The most significant enhancement is that the aligned electrospun core-shell P(VDF-TrFE) nanofibers exhibited almost 40 times higher sensitivity than that of pressure sensor based on thin-film PVDF.
机译:柔性触觉传感器以其巨大的灵活性,高灵敏度和较大的工作范围而引起了广泛的关注。它可以集成到衣服,电子皮肤中或安装在人体皮肤上。具有高柔性和电性能的各种纳米结构材料和纳米复合材料已被广泛用作柔性触觉传感器中的功能材料。代表最有前途的材料的聚合物纳米材料,特别是聚偏二氟乙烯(PVDF),PVDF共聚物及其纳米复合材料,具有超高灵敏度,高可变形性,出色的耐化学性,高热稳定性和低介电常数,可以满足动态触觉的柔韧性要求。可穿戴电子设备中的感应。电纺丝被认为是制备纳米纤维材料的一种出色的简单而通用的技术。这篇综述将简要概述通过静电纺丝技术在柔性触觉传感器应用中PVDF纳米纤维的最新进展。 PVDF,PVDF共聚物及其纳米复合材料已成功形成超细纳米纤维,甚至通过静电纺丝制成了随机取向的PVDF纳米纤维。本文简要回顾了用作柔性触觉传感器功能层的这些纳米纤维。通过调整电纺PVDF工艺中的技术参数,可以提高β相含量,该β相含量是PVDF所有结晶相中对压电性能贡献最大的极矩。当PVDF纤维变得更加定向时,压力传感器的压电特性和灵敏度会大大提高。通过掺入纳米填料和纳米粘土,可以进一步提高PVDF复合纳米纤维的触觉性能。用于3D压力传感器的电纺P(VDF-TrFE)纳米纤维垫即使在0.1 Pa的情况下也具有出色的灵敏度。最显着的改进是,对齐的电纺核-壳P(VDF-TrFE)纳米纤维的灵敏度比其高近40倍。基于薄膜PVDF的压力传感器。

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