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首页> 外文期刊>ACS applied materials & interfaces >Strong Adhesion and Friction Coupling in Hierarchical Carbon Nanotube Arrays for Dry Adhesive Applications
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Strong Adhesion and Friction Coupling in Hierarchical Carbon Nanotube Arrays for Dry Adhesive Applications

机译:用于干胶应用的分层碳纳米管阵列中的强粘合力和摩擦力耦合

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摘要

The adhesion and friction coupling of hierarchical carbon nanotube arrays was investigated with a hierarchical multiscale modeling approach. At device level, vertically aligned carbon nanotube (VA-CNT) arrays with laterally distributed segments on top were analyzed via finite element methods to determine the macroscopic adhesion and friction force coupling. At the nanoscale, molecular dynamics simulation was performed to explore the origin of the adhesion enhancement due to the existence of the laterally distributed CNTs. The results show interfacial adhesion force is drastically promoted by interfacial friction force when a single lateral CNT is being peeled from an amorphous carbon substrate. By fitting with experiments, we find that under shearing loadings the maximum interfacial adhesion force is increased by a factor of ~5, compared to that under normal loadings. Pre-existing surface asperities of the substrate have proven to be the source of generating large interfacial friction, which in turn results in an enhanced adhesion. The critical peeling angles derived from the continuum and nano- levels are comparable to those of geckos and other synthetic adhesives. Our analysis indicates that the adhesion enhancement factor of the hierarchically structured VA-CNT arrays could be further increased by uniformly orienting the laterally distributed CNTs on top. Most importantly, a significant buckling of the lateral CNT at peeling front is captured on the molecular level, which provides a basis for the fundamental understanding of local deformation, and failure mechanisms of nanofibrillar structures. This work gives an insight into the durability issues that prevent the success of artificial dry adhesives.
机译:使用分层多尺度建模方法研究了分层碳纳米管阵列的附着力和摩擦耦合。在设备级别,通过有限元方法分析了顶部具有横向分布段的垂直排列的碳纳米管(VA-CNT)阵列,以确定宏观的粘附力和摩擦力耦合。在纳米尺度上,进行了分子动力学模拟以探索由于存在横向分布的CNT而引起的粘合增强的起源。结果表明,当从无定形碳基材上剥离单个侧向CNT时,界面摩擦力会极大地促进界面粘合力。通过与实验的拟合,我们发现在剪切载荷下,与正常载荷下相比,最大界面粘附力增加了约5倍。事实证明,基材的预先存在的表面凹凸是产生较大界面摩擦的根源,而界面摩擦又会导致粘合力增强。源自连续体和纳米级的临界剥离角与壁虎和其他合成粘合剂的剥离角相当。我们的分析表明,通过将横向分布的CNT均匀定向在顶部,可以进一步提高分层结构的VA-CNT阵列的附着力。最重要的是,在分子水平上捕获了在剥离前沿的横向CNT的明显屈曲,这为基本了解局部变形和纳米原纤结构的破坏机理提供了基础。这项工作深入了解了阻碍人造干胶成功的耐久性问题。

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