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首页> 外文期刊>ACS applied materials & interfaces >Polypyrrole-Doped Conductive Supramolecular Elastomer with Stretchability, Rapid Self-Healing, and Adhesive Property for Flexible Electronic Sensors
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Polypyrrole-Doped Conductive Supramolecular Elastomer with Stretchability, Rapid Self-Healing, and Adhesive Property for Flexible Electronic Sensors

机译:具有可拉伸性,快速的自愈性和粘合性的滤萘硼 - 掺杂的导电超分子弹性体,以及柔性电子传感器的粘合性

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摘要

Although recent years have witnessed intense efforts and innovations in the design of flexible conductive materials for the development of next-generation electronic devices, it remains a great challenge to integrate multifunctionalities such as stretchability, self healing, adhesiveness, and sensing capability into one conductive system for practical applications. In this work, for the first time, we have prepared a new electrically conductive elastomer composite that combines all these functionalities by triggering in situ polymerization of pyrrole in a supramolecular polymer matrix cross-linked by multiple hydrogen-bonding 2-ureido-4[1H]-pyrimidinone (UPy) groups. The polypyrrole (PPy) particles were uniformly dispersed and imparted to the composite desirable conductive properties, while the reversible nature of the dynamic multiple hydrogen bonds in the polymer matrix allowed excellent stretchability, fast self-healing ability, and adhesiveness under ambient condition. The elastomer composite with the incorporation of 7.5 wt % PPy displayed a mechanical strength of 0.72 MPa with an elongation over 300%, where the rapid self-healing of the mechanical and electrical properties was achieved within 5 min. The elastic material also exhibited strong adhesiveness to a broad range of inorganic and organic substrates, and it was further fabricated as a strain sensor for the detection of both large and subtle human motions (i.e., finger bending, pulse beating). The novel PPy-doped conductive elastomer has demonstrated great potential as functional sensors for wearable electronics, which provides a facile and promising approach to the development of various flexible electronic materials with multifunctionalities by combining conductive components with supramolecular polymers.
机译:虽然近年来目睹了激烈的努力和创新在设计下一代电子设备的柔性导电材料方面,但仍然是将多功能性,自我愈合,粘合性和传感能力集成到一个导电系统中的多功能性实际应用。在这项工作中,我们首次制备了一种新的导电弹性体复合材料,通过在通过多个氢键2-Ureido-4的超分子聚合物基质中触发吡咯的原位聚合来结合所有这些功能。[1H ] - 嘧啶醌(UPY)组。聚吡咯(PPY)颗粒均匀地分散并赋予复合所需的导电性能,而聚合物基质中动态多氢键的可逆性允许在环境条件下优异的拉伸性,快速的自我愈合能力和粘合性。掺入7.5wt%ppy的弹性体复合材料显示出0.72mPa的机械强度,伸长率超过300%,其中在5分钟内实现了机械和电性能的快速自愈。弹性材料还表现出具有宽范围的无机和有机基材的强粘合性,并且进一步制造为菌株传感器,用于检测大而微妙的人类运动(即,手指弯曲,脉冲跳动)。新型的PPY掺杂的导电弹性体已经证明了可穿戴电子设备的功能传感器的巨大潜力,其通过将导电部件与共分子聚合物组合,提供了一种容易和有希望的方法,其具有多功能性的多功能性。

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