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Defect induced plasticity and failure mechanism of boron nitride nanotubes under tension

机译:拉伸作用下氮化硼纳米管的缺陷诱发塑性和破坏机理

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摘要

The effects of Stone-Wales (SW) and vacancy defects on the failure behavior of boron nitride nanotubes (BNNTs) under tension are investigated using molecular dynamics simulations. The Tersoff-Brenner potential is used to model the atomic interaction and the temperature is maintained close to 300 K. The effect of a SW defect is studied by determining the failure strength and failure mechanism of nanotubes with different radii. In the case of a vacancy defect, the effect of an N-vacancy and a B-vacancy is studied separately. Nanotubes with different chiralities but similar diameter is considered first to evaluate the chirality dependence. The variation of failure strength with the radius is then studied by considering nanotubes of different diameters but same chirality. It is observed that the armchair BNNTs are extremely sensitive to defects, whereas the zigzag configurations are the least sensitive. In the case of pristine BNNTs, both armchair and zigzag nanotubes undergo brittle failure, whereas in the case of defective BNNTs, only the zigzag ones undergo brittle failure. An interesting defect induced plastic behavior is observed in defective armchair BNNTs. For this nanotube, the presence of a defect triggers mechanical relaxation by bond breaking along the closest zigzag helical path, with the defect as the nucleus. This mechanism results in a plastic failure.
机译:使用分子动力学模拟研究了石-威尔(SW)和空位缺陷对氮化硼纳米管(BNNTs)在拉伸下的失效行为的影响。用Tersoff-Brenner势来模拟原子相互作用,温度保持在300 K附近。通过确定不同半径的纳米管的破坏强度和破坏机理,研究了SW缺陷的影响。在空缺的情况下,分别研究N空位和B空位的影响。首先考虑具有不同手性但直径相似的纳米管,以评估其手性依赖性。然后通过考虑不同直径但相同手性的纳米管研究破坏强度随半径的变化。可以看出,扶手椅型BNNT对缺陷非常敏感,而之字形配置对缺陷的敏感度最低。对于原始的BNNT,扶手椅状和曲折的纳米管都会发生脆性破坏,而对于有缺陷的BNNT,只有之字形的纳米管会发生脆性破坏。在有缺陷的扶手椅型BNNT中观察到一个有趣的缺陷诱发的塑性行为。对于这种纳米管,缺陷的存在通过沿着最接近的之字形螺旋路径的键断裂(以缺陷为核)触发机械弛豫。该机制导致塑性破坏。

著录项

  • 来源
    《Journal of Applied Physics 》 |2014年第4期| 044313.1-044313.6| 共6页
  • 作者单位

    Indian Institute of Science, Bangalore 560012, India;

    Indian Institute of Science, Bangalore 560012, India;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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