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首页> 外文期刊>ACS applied materials & interfaces >Towards Tunable Sensitivity of Electrical Property to Strain for Conductive Polymer Composites Based on Thermoplastic Elastomer
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Towards Tunable Sensitivity of Electrical Property to Strain for Conductive Polymer Composites Based on Thermoplastic Elastomer

机译:基于热塑性弹性体的导电聚合物复合材料对应变的电性能可调灵敏度

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The use of conductive polymer composites (CPCs) as strain sensors has been widely investigated and various resistivity-strain sensitivities are desirable for different applications. In this study, the use of mixed carbon fillers and functionalized carbon nanotubes was demonstrated to be vital for preparing thermoplastic polyurethane (TPU)-based strain sensors with tunable sensitivity. To understand the strain sensing behavior, we carried out scanning electron microscopy (SEM), Raman spectroscopy, wide-angle X-ray diffraction (WAXD), mechanical test, and rheology-electrical measurement. Hybrid fillers of multi-walled carbon nanotubes (MWNTs) and carbon black (CB) could reduce the entanglement in conductive network structure, thus increase the resistivity-strain sensitivity. Furthermore, incorporation of additional functionalized MWNTs in the CPCs could enhance the interfacial interaction between nanofillers and TPU, leading to further increase in sensitivity. Through such a simple method, strain sensors could be efficiently fabricated with large strain-sensing capability (strain as large as 200%) and a wide range of strain sensitivity (gauge factor ranging from S to 140238). Finally, the exponential revolution of resistive response to strain was fitted with a model based on tunneling theory by Simmons. It was observed that the change in tunneling distance and the number of conductive pathways could be accelerated significantly by adjusting conductive network structure and interfacial interaction. This study provides a guideline for the preparation of high-performance CPC strain sensors with a large range of resistivity-strain sensitivity.
机译:导电聚合物复合材料(CPC)作为应变传感器的用途已得到广泛研究,各种电阻率-应变敏感度对于不同的应用是理想的。在这项研究中,混合碳填料和功能化碳纳米管的使用被证明对于制备具有可调灵敏度的基于热塑性聚氨酯(TPU)的应变传感器至关重要。为了了解应变感应行为,我们进行了扫描电子显微镜(SEM),拉曼光谱,广角X射线衍射(WAXD),机械测试和流变电学测量。多壁碳纳米管(MWNTs)和炭黑(CB)的混合填料可以减少导电网络结构的纠缠,从而提高电阻率-应变敏感性。此外,在CPC中加入其他功能化的MWNT可以增强纳米填料和TPU之间的界面相互作用,从而进一步提高灵敏度。通过这种简单的方法,可以高效地制造应变传感器,具有大的应变传感能力(高达200%的应变)和宽范围的应变灵敏度(应变系数范围从S到140238)。最后,采用基于Simmons隧道理论的模型拟合了电阻应变响应的指数旋转。观察到,通过调节导电网络结构和界面相互作用,可以显着加速隧穿距离和导电路径数量的变化。该研究为制备具有大范围电阻率-应变敏感性的高性能CPC应变传感器提供了指导。

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