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Phase transformation as the mechanism of mechanical deformation of vertically aligned carbon nanotube arrays: Insights from mesoscopic modeling

机译:相变作为垂直对准碳纳米管阵列的机械变形机制:介于介观模型见识

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Vertically aligned carbon nanotube (VACNT) arrays or "forests" behave mechanically as foams when compressed, exhibiting a characteristic nonlinear stress - strain response. However, the fiber structure of VACNT forests is unlike that of cellular foams, and the microscopic mechanisms of the deformation are quite different. While numerous studies have addressed the mechanical response of VACNT forests undergoing uniaxial compression, the underlying deformation mechanisms are not yet fully established. In this paper, we report the results of large-scale mesoscopic simulations of the uniaxial compression of a VACNT forest composed of 2-mu m-long carbon nanotubes (CNTs) as well as three structurally distinct forests composed of 0.6-mu m-long CNTs. The simulations reveal that the compressive deformation proceeds as a phase transformation from an original low-density phase composed of vertically aligned CNT bundles to a densified phase with horizontal alignment of CNTs. The two phases are separated by a well-defined interfacial layer, which advances during the compressive deformation through localized bending and folding of nanotubes. For the 2-mu m-tall forest, the folding involves correlated displacements of multiple CNT bundles, hinting on the origin of the collective buckling behavior observed in experiments. The characteristic three-stage stress-strain dependence (an initial "elastic" peak followed by an extended plateau region and a sharp rise of stress in the densification regime), commonly observed in experimental probing of the mechanical properties of VACNT forests, is reproduced in all of the simulations, suggesting that the heterogeneous propagation of densification front may be the general mechanism of the mechanical deformation of VACNT forests. (C) 2018 Elsevier Ltd. All rights reserved.
机译:垂直对齐的碳纳米管(VACNT)阵列或“森林”在压缩时机械地表现为泡沫,表现出特征非线性应力 - 应变反应。然而,Vacnt森林的纤维结构与细胞泡沫的纤维结构不同,并且变形的显微镜机制是完全不同的。虽然众多研究已经解决了染色林的机械响应,但尚未完全建立潜在的无轴压缩。在本文中,我们报告了由2-mu m长碳纳米管(CNT)组成的VACNT林的单轴压缩的大规模介观模拟的结果以及由0.6亩长的三种结构不同的森林组成CNT。仿真揭示了压缩变形作为从由垂直对准的CNT束组成的原始低密度相位的相变,与CNT水平对准的致密相位。两相用明确界定的界面层分开,通过局部弯曲和纳米管的折叠折叠在压缩变形期间前进。对于2-mu m-tall森林,折叠涉及多个CNT束的相关位移,暗示在实验中观察到的集体屈曲行为的来源。特征三阶段应力 - 应变依赖性(初始“弹性”峰,然后延伸高原区域和致密化方案中应力的急剧上升),在VACNT林的力学性能的实验探测中常见地观察到所有模拟,表明致密化前面的异构传播可能是VACNT林的机械变形的一般机制。 (c)2018年elestvier有限公司保留所有权利。

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