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纳米压痕下空碳纳米管和富勒烯C60填充碳纳米管弯曲力学性能的分子动力学研究

Molecular-dynamics studies of bending mechanical properties of empty and C60-filled carbon nanotubes under nanoindentation.

作者信息

Jeng Yeau-Ren, Tsai Ping-Chi, Fang Te-Hua

机构信息

Department of Mechanical Engineering, National Chung Cheng University, Chia-Yi 621, Taiwan.

出版信息

J Chem Phys. 2005 Jun 8;122(22):224713. doi: 10.1063/1.1924694.

Abstract

This paper utilizes molecular-dynamics simulations to investigate the mechanical characteristics of a suspended (10, 10) single-walled carbon nanotube (SWCNT) during atomic force microscopy (AFM) nanoindentation at different temperatures. Spontaneous topological transition of the Stone-Wales (SW) defects is clearly observed in the indentation process. The present results indicate that under AFM-bending deformation, the mechanical properties of the SWCNT, e.g., the bending strength, are dependent on the wrapping angle. In addition, it is also found that the radial dependence of the reduced formation energy of the SW defects is reasonably insensitive only for the small tubes. However, for tube diameters greater than 2.4 nm [corresponding to the (18, 18) CNT], the SW defects tend to be more radius sensitive. The results indicate that the bending strength decreases significantly with increasing temperature. This study also investigates the variation in the mechanical properties of the nanotube with the density of C60 encapsulated within the nanotube at various temperatures. It is found that, at lower temperatures, the bending strength of the C60-filled nanotube increases with C60 density. However, the reverse tendency is observed at higher temperatures. Finally, the "sharpest tip" phenomena between the probe and the tube wall and the elastic recovery of the nanotube during the retraction process are also investigated.

摘要

本文利用分子动力学模拟研究了悬浮的(10, 10)单壁碳纳米管(SWCNT)在不同温度下原子力显微镜(AFM)纳米压痕过程中的力学特性。在压痕过程中清晰地观察到了斯通-威尔士(SW)缺陷的自发拓扑转变。目前的结果表明,在AFM弯曲变形下,SWCNT的力学性能,如弯曲强度,取决于缠绕角。此外,还发现仅对于小管而言,SW缺陷的还原形成能的径向依赖性相当不敏感。然而,对于直径大于2.4 nm [对应于(18, 18)碳纳米管]的管子,SW缺陷对半径更敏感。结果表明,弯曲强度随温度升高而显著降低。本研究还考察了在不同温度下,纳米管力学性能随管内封装的C60密度的变化。发现在较低温度下,填充C60的纳米管的弯曲强度随C60密度的增加而增加。然而,在较高温度下观察到相反的趋势。最后,还研究了探针与管壁之间的“最尖锐尖端”现象以及纳米管在缩回过程中的弹性恢复。

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