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An Investigation into the Mechanical Behavior of Single-Walled Carbon Nanotubes under Uniaxial Tension Using Molecular Statics and Molecular Dynamics Simulations

机译:分子静力学和分子动力学模拟研究单壁碳纳米管在单轴拉伸下的力学行为

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This study performs a series of Molecular Dynamics (MD) and Molecular Statics (MS) simulations to investigate the mechanical properties of single-walled carbon nanotubes (SWCNTs) under a uniaxial tensile strain. The simulations focus specifically on the effects of the nanotube helicity, the nanotube diameter and the percentage of vacancy defects on the bond length, bond angle and tensile strength of zigzag and armchair SWCNTs. In this study, a good agreement is observed between the MD and MS simulation results for the stress-strain response of the SWCNTs in both the elastic and the plastic deformation regimes. The MS simulations reveal that in the plastic deformation regime, the tensile strength of the armchair and zigzag SWCNTs increases with an increasing wrapping angle. In addition, it is shown that the tensile strength reduces significantly at larger values of the nanotube diameter. Moreover, it is observed that the tensile strength of both SWCNTs reduces as the percentage of defects within the nanotube structure increases. Finally, it is found that the results obtained from the molecular statics method are relatively insensitive to instabilities in the atomic structure, particularly in the absence of thermal fluctuations, and are in good agreement with the predictions obtained from the molecular dynamics method.
机译:这项研究进行了一系列的分子动力学(MD)和分子静态(MS)模拟,以研究单壁碳纳米管(SWCNT)在单轴拉伸应变下的力学性能。模拟特别关注纳米管螺旋度,纳米管直径和空位缺陷百分比对之字形和扶手椅形SWCNT的键长,键角和拉伸强度的影响。在这项研究中,在弹性变形和塑性变形状态下,SWCNTs的应力-应变响应在MD和MS模拟结果之间均观察到良好的一致性。质谱模拟表明,在塑性变形状态下,扶手椅和之字形SWCNT的拉伸强度随包裹角的增加而增加。另外,表明在较大的纳米管直径值下,拉伸强度显着降低。此外,观察到,随着纳米管结构内缺陷的百分比增加,两种SWCNT的拉伸强度降低。最后,发现从分子静态方法获得的结果对原子结构的不稳定性相对不敏感,特别是在没有热波动的情况下,并且与从分子动力学方法获得的预测非常吻合。

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