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首页> 外文期刊>Carbon: An International Journal Sponsored by the American Carbon Society >A theoretical quantification of the possible improvement in the mechanical properties of carbon nanotube bundles by carbon ion irradiation
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A theoretical quantification of the possible improvement in the mechanical properties of carbon nanotube bundles by carbon ion irradiation

机译:通过碳离子辐照可能改善碳纳米管束机械性能的理论量化

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摘要

Improvement of single wall carbon nanotube (CNT) bundle mechanical properties through carbon ion irradiation is investigated using molecular dynamics. Increased inter-tube shear and toughness properties through formation of inter-tube cross-links is balanced against decreased tensile strength from induced defects. Bundles irradiated with carbon ions with energy 50-300 eV/ion, and fluence between 4 × 10~(13) cm~(-2) and 2 × 10~(14) cm~(-2), are mechanically tested. We find that with careful control of irradiation parameters, shear and toughness parameters increase by an order of magnitude, while tensile properties reduce by only 30-40%; in real CNT fibres with discontinuous CNT filaments the reduction would be much less. The nano-scale interface response resembles that of micro-scale composites, in which interstitial C atoms play a key role. This makes C ion deposition an attractive option over irradiation by electrons or other types of ions, since the extra C atoms can provide the required interstitial atoms. Within a certain cross-link density range, the interface shear modulus, shear stress at bonding onset, and frictional sliding stress after debonding are all linearly related to cross-link density making controlled design of fibre shear properties feasible. A possible post-treatment with very low energy irradiation is proposed for healing holes and partially restoring tensile strength.
机译:使用分子动力学研究了通过碳离子辐照改善单壁碳纳米管(CNT)束的机械性能。通过形成管间交联而增加的管间剪切和韧性性能与由诱导缺陷引起的拉伸强度降低之间取得了平衡。机械测试了能量为50-300 eV / ion的碳离子辐照且能量密度在4×10〜(13)cm〜(-2)和2×10〜(14)cm〜(-2)之间的束。我们发现,通过仔细控制辐照参数,剪切和韧性参数将增加一个数量级,而拉伸性能仅降低30-40%;在具有不连续的CNT细丝的真实CNT纤维中,减少的幅度会小得多。纳米级界面响应类似于微型复合材料,其中间隙C原子起关键作用。这使得C离子沉积成为电子或其他类型离子辐照的诱人选择,因为多余的C原子可提供所需的间隙原子。在一定的交联密度范围内,界面剪切模量,粘结开始时的剪切应力和脱胶后的摩擦滑动应力均与交联密度线性相关,从而使纤维剪切性能的受控设计成为可能。建议使用非常低的能量辐射进行后处理,以修复孔洞并部分恢复拉伸强度。

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