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通过湿法纺丝制备表面修饰银纳米线和热塑性聚氨酯的高性能可拉伸导电复合纤维。

High-Performance Stretchable Conductive Composite Fibers from Surface-Modified Silver Nanowires and Thermoplastic Polyurethane by Wet Spinning.

机构信息

Department of Chemistry, Kongju National University , Chungnam 32588, Korea.

Department of Bio & Nano Chemistry, Kookmin University , Seoul 02707, Korea.

出版信息

ACS Appl Mater Interfaces. 2018 Jan 17;10(2):2093-2104. doi: 10.1021/acsami.7b16022. Epub 2018 Jan 5.

Abstract

Highly stretchable and conductive fibers have attracted great interest as a fundamental building block for the next generation of textile-based electronics. Because of its high conductivity and high aspect ratio, the Ag nanowire (AgNW) has been considered one of the most promising conducting materials for the percolation network-based conductive films and composites. However, the poor dispersibility of AgNWs in hydrophobic polymers has hindered their application to stretchable conductive composite fibers. In this paper, we present a highly stretchable and conductive composite fiber from the co-spinning of surface-modified AgNWs and thermoplastic polyurethane (PU). The surface modification of AgNWs with a polyethylene glycol derivative improved the compatibility of PU and AgNWs, which allowed the NWs to disperse homogeneously in the elastomeric matrix, forming effective percolation networks and causing the composite fiber to show enhanced electrical and mechanical performance. The maximum AgNW mass fraction in the composite fiber was 75.9 wt %, and its initial electrical conductivity was as high as 14 205 S/cm. The composite fibers also exhibited superior stretchability: the maximum rupture strain of the composite fiber with 14.6 wt % AgNW was 786%, and the composite fiber was also conductive even when it was stretched up to 200%. In addition, 2-dimensional (2-D) Ag nanoplates were added to the AgNW/PU composite fibers to increase the stability of the conductive network under repeated stretching and releasing. The Ag nanoplates acted as a bridge to effectively prevent the AgNWs from slippage and greatly improved the stability of the conductive network.

摘要

高拉伸和导电纤维作为下一代基于纺织的电子产品的基本构建块,引起了极大的兴趣。由于其高导电性和高纵横比,银纳米线 (AgNW) 被认为是基于渗流网络的导电薄膜和复合材料中最有前途的导电材料之一。然而,AgNW 在疏水性聚合物中的分散性差阻碍了其在可拉伸导电复合纤维中的应用。在本文中,我们提出了一种由表面修饰的 AgNW 和热塑性聚氨酯 (PU) 共纺而成的高拉伸和导电复合纤维。AgNW 用聚乙二醇衍生物进行表面修饰,提高了 PU 和 AgNW 的相容性,使 NW 均匀分散在弹性体基质中,形成有效的渗流网络,使复合纤维具有增强的电性能和机械性能。复合纤维中最大的 AgNW 质量分数为 75.9wt%,其初始电导率高达 14205 S/cm。复合纤维还表现出优异的拉伸性能:含 14.6wt%AgNW 的复合纤维的最大断裂应变达到 786%,即使在拉伸至 200%时,复合纤维仍具有导电性。此外,将二维 (2-D) 银纳米板添加到 AgNW/PU 复合纤维中,以增加在反复拉伸和释放过程中导电网络的稳定性。Ag 纳米板作为桥梁,有效地防止了 AgNW 的滑动,极大地提高了导电网络的稳定性。

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