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NANOMECHANICAL PEELING OF CARBON NANOTUBES AND NANOCOILS STUDIED USING THE ATOMIC FORCE MICROSCOPE

机译:使用原子力显微镜研究碳纳米管和纳米膜的纳米力学剥离

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The physics of adhesion of one-dimensional nanostructures such as nanotubes, nanocoils, and nanowires is of great interest to the functioning and reliability of nanoelectronic devices and the development of high-strength, lightweight nanocomposites. Here, we extend previous work using the Atomic Force Microscope (AFM) to investigate quantitatively the physics ofnanome-chanical peeling of carbon nanotubes (CNTs) and nanocoils on different substrates. We summarize previous modeling results which predict that an initially straight nanotube peeled from a surface may transition suddenly between different geometric configurations with vastly different interfacial energies. In contrast, nanocoils display a sawtooth peeling force curve indicating the sequential release of discrete pinning points. We resolve differences in nanotube peeling energies at attoJoule levels on different materials, thus opening up the possibility of sensitive screening of fiber coatings or material surfaces for improved adhesion in nanocomposites.
机译:一维纳米结构,例如纳米管,纳米卷,和纳米线的粘合性的物理非常感兴趣的运作和纳米电子器件的可靠性和高强度,轻质纳米复合材料的开发。为此,我们需要使用原子力显微镜(AFM)定量调查物理ofnanome,机械碳纳米管(CNT)和纳米线圈在不同衬底剥离之前的工作。我们总结以往的模拟结果,其预测,从表面上剥离最初直的纳米管可能突然不同的几何构型之间有很大的不同界面能过渡。相比之下,纳米线圈显示指示离散的钉扎点的顺序释放的锯齿剥离力曲线。我们解决在碳纳米管剥离在不同材料attoJoule能量水平的差异,从而在纳米复合材料开辟纤维涂层或材料表面敏感的筛选的可能性,以提高粘附性。

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