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Controllable viscoelastic behavior of vertically aligned carbon nanotube arrays

机译:垂直排列的碳纳米管阵列的可控粘弹性行为

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We have characterized the mechanical behavior of aligned carbon nanotube (CNT) arrays that serve as foam-like energy absorbing materials, by using atomic force microscope indentation. It is shown that the mechanical properties (e.g. elastic modulus, adhesion force, and energy dissipation) of aligned CNT arrays are dependent on the length of CNTs as well as chemical environment that surrounds CNT arrays. More remarkably, it is found that CNT array made of CNTs with their length of 10 nm exhibits the excellent damping property (i.e. energy dissipation) higher than that of a conventional composite such as Kev-lar. It is also shown that the energy dissipation of CNT arrays during loading-unloading process can be reduced by the solution surrounding CNT array, and that the decrease of energy dissipation for CNT array due to solution depends on the solution type, which medi-ates the interaction between individual nanotubes. Our study sheds light on the design principles for CNT array-based foam-like materials.
机译:通过使用原子力显微镜压痕,我们表征了用作泡沫状能量吸收材料的对齐碳纳米管(CNT)阵列的机械性能。已经表明,对齐的CNT阵列的机械性能(例如弹性模量,粘附力和能量耗散)取决于CNT的长度以及围绕CNT阵列的化学环境。更显着地,发现由长度为10nm的CNT制成的CNT阵列表现出比常规复合材料例如Kev-lar更高的优异的阻尼特性(即,能量耗散)。还表明,CNT阵列周围的溶液可以减少CNT阵列在加载和卸载过程中的能量耗散,并且由于溶液导致的CNT阵列能量耗散的减少取决于溶液类型,这可以解决问题。各个纳米管之间的相互作用。我们的研究阐明了基于CNT阵列的类泡沫材料的设计原理。

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