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Radial compression of carbon nanotubes: deformation and damage, super-elasticity and super-hardness

机译:碳纳米管的径向压缩:变形和损伤,超弹性和超硬度

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Molecular dynamics (MD) simulations of nanoindentation of multiwalled carbon nanotubes (MWCNTs) are carried out to study the deformation mechanism and the mechanical properties of MWCNTs in the radial direction. The MWCNT is found to be soft in its radial direction, with nanohardness rising slowly from about 6 to 15 GPa. The soft phase persists until all spaces between adjacent layers of the MWCNT are compressed beyond a critical value of about 1.9 angstrom. Beyond the critical stage the formation of new bonds between different layers starts to increase, producing a super-hard amorphous phase with a hardness of up to 94 GPa. Though locally compressed to a large radial strain of about 63%, the amorphous phase with a mixture of sp(3) and sp(2) bonds is completely reversible upon unloading, showing super-elasticity. Further indentation afterwards leads to permanent sp(3) and even sp rehybridization, the MWCNT is badly damaged and the hardness fluctuates with a maximum of about 124 GPa which is comparable to the microhardness of diamond.
机译:进行了多壁碳纳米管(MWCNTs)纳米压痕的分子动力学(MD)模拟,以研究MWCNTs在径向方向上的变形机理和力学性能。发现MWCNT在其径向方向上是软的,纳米硬度从约6GPa缓慢升高至15GPa。软相一直持续到MWCNT的相邻层之间的所有空间都被压缩超过约1.9埃的临界值为止。在关键阶段之后,不同层之间的新键的形成开始增加,从而产生了硬度高达94 GPa的超硬非晶相。尽管局部压缩到大约63%的较大径向应变,但具有sp(3)和sp(2)键混合物的非晶相在卸载后是完全可逆的,显示出超弹性。此后进一步压痕会导致永久性sp(3)甚至sp再杂化,MWCNT受到严重破坏,并且硬度波动最大约为124 GPa,与金刚石的显微硬度相当。

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