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Molecular dynamic simulations on tensile mechanical properties of single-walled carbon nanotubes with and without hydrogen storage

机译:具有和不具有储氢功能的单壁碳纳米管拉伸力学性能的分子动力学模拟

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Using a bond order potential, molecular dynamics (MD) simulations have been performed to study the mechanical properties of single-walled carbon nanotubes (SWNTs) under tensile loading with and without hydrogen storage. (10, 10) armchair and (17, 0) zigzag carbon nanotubes have been studied. Up to the necking point of the armchair carbon nanotube, two deformation stages were identified. In the first stage, the elongation of the nanotube was primarily due to the altering of angles between two neighbor carbon bonds. Young's Modulus observed in this stage was comparable with experiments. In the second stage, the lengths of carbon bonds are extended up to the point of fracture. The tensile strength in this stage was higher than that observed in the first stage. Similar results were also found for the zigzag carbon nanotube with a lower tensile strength. Hydrogen molecules stored in the nanotubes reduced the maximum tensile strength of the carbon nanotubes, especially for the armchair type. The effect may be attributed to the competitive formation between the hydrogen-carbon and the carbon-carbon bonds.
机译:使用键序势,已经进行了分子动力学(MD)模拟,以研究单壁碳纳米管(SWNT)在有和没有储氢的拉伸载荷下的机械性能。已经研究了(10,10)扶手椅和(17,0)之字形碳纳米管。直到扶手椅碳纳米管的颈缩点,确定了两个变形阶段。在第一阶段,纳米管的伸长主要是由于两个相邻碳键之间的角度改变。在这一阶段观察到的杨氏模量与实验相当。在第二阶段,碳键的长度一直延伸到断裂点。在该阶段的抗拉强度高于在第一阶段中观察到的抗拉强度。对于具有较低拉伸强度的之字形碳纳米管,也发现了相似的结果。储存在纳米管中的氢分子降低了碳纳米管的最大拉伸强度,特别是对于扶手椅型。该作用可归因于氢-碳键与碳-碳键之间的竞争性形成。

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