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Multifunctional Conductive Paths Obtained by Laser Processing of Non-Conductive Carbon Nanotube/Polypropylene Composites

机译:通过激光加工通过非导电碳纳米管/聚丙烯复合材料获得的多功能导电路径

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摘要

Functional materials are promising candidates for application in structural health monitoring/self-healing composites, wearable systems (smart textiles), robotics, and next-generation electronics. Any improvement in these topics would be of great relevance to industry, environment, and global needs for energy sustainability. Taking into consideration all these aspects, low-cost fabrication of electrical functionalities on the outer surface of carbon-nanotube/polypropylene composites is presented in this paper. Electrical-responsive regions and conductive tracks, made of an accumulation layer of carbon nanotubes without the use of metals, have been obtained by the laser irradiation process, leading to confined polymer melting/vaporization with consequent local increase of the nanotube concentration over the electrical percolation threshold. Interestingly, by combining different investigation methods, including thermogravimetric analyses (TGA), X-ray diffraction (XRD) measurements, scanning electron and atomic force microscopies (SEM, AFM), and Raman spectroscopy, the electrical properties of multi-walled carbon nanotube/polypropylene (MWCNT/PP) composites have been elucidated to unfold their potentials under static and dynamic conditions. More interestingly, prototypes made of simple components and electronic circuits (resistor, touch-sensitive devices), where conventional components have been substituted by the carbon nanotube networks, are shown. The results contribute to enabling the direct integration of carbon conductive paths in conventional electronics and next-generation platforms for low-power electronics, sensors, and devices.
机译:功能材料是在结构健康监测/自我愈合复合材料,可穿戴系统(智能纺织品),机器人和下一代电子产品中应用的候选者。这些主题的任何改进都与产业,环境和全球能源可持续性需求具有很大的相关性。考虑到所有这些方面,本文提出了碳 - 纳米管/聚丙烯复合材料外表面上的电功能的低成本制造。通过激光照射过程获得由不使用金属的碳纳米管的累积层制成的电响应区域和导电轨道,导致狭窄的聚合物熔化/蒸发,随后通过电渗滤通过纳米管浓度的局部增加临界点。有趣的是,通过组合不同的研究方法,包括热重分析(TGA),X射线衍射(XRD)测量,扫描电子和原子力显微镜(SEM,AFM)和拉曼光谱,所述多壁碳纳米管的电性能/已经阐明了聚丙烯(MWCNT / PP)复合材料以在静态和动态条件下展开其潜力。更有趣的是,示出了由简单的组件和电子电路(电阻,触敏装置)制成的原型,其中传统组件被碳纳米管网络代替。结果有助于使碳导电路径直接集成在传统的电子设备和低功耗电子,传感器和设备的下一代平台中。

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