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首页> 外文期刊>Carbon: An International Journal Sponsored by the American Carbon Society >Quantum chemical simulations reveal acetylene-based growth mechanisms in the chemical vapor deposition synthesis of carbon nanotubes
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Quantum chemical simulations reveal acetylene-based growth mechanisms in the chemical vapor deposition synthesis of carbon nanotubes

机译:量子化学模拟揭示了碳纳米管化学气相沉积合成中基于乙炔的生长机理

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摘要

Nonequilibrium quantum chemical molecular dynamics (QM/MDs) simulation of early stages in the nucleation process of carbon nanotubes from acetylene feedstock on an Fe_(38) cluster was performed based on the density-functional tight-binding (DFTB) potential. Representative chemical reactions were studied by complimentary static DFTB and density functional theory (DFT) calculations. Oligomerization and cross-linking reactions between carbon chains were found as the main reaction pathways similar to that suggested in previous experimental work. The calculations highlight the inhibiting effect of hydrogen for the condensation of carbon ring networks, and a propensity for hydrogen disproportion-ation, thus enriching the hydrogen content in already hydrogen-rich species and abstracting hydrogen content in already hydrogen-deficient clusters. The ethynyl radical C2H was found as a reactive, yet continually regenerated species, facilitating hydrogen transfer reactions across the hydrocarbon clusters. The nonequilibrium QM/MD simulations show the prevalence of a pentagon-first nucleation mechanism where hydrogen may take the role of one "arm" of an sp2 carbon Y-junction. The results challenge the importance of the metal carbide formation for SWCNT cap nucleation in the VLS model and suggest possible alternative routes following hydrogen-abstraction acetylene addition (HACA)-like mechanisms commonly discussed in combustion synthesis.
机译:基于密度泛函紧密结合(DFTB)电位,进行了乙炔原料在Fe_(38)团簇上碳纳米管成核过程的早期非平衡量子化学分子动力学(QM / MDs)模拟。通过互补的静态DFTB和密度泛函理论(DFT)计算研究了代表性的化学反应。发现碳链之间的低聚和交联反应是与先前实验工作相似的主要反应途径。计算结果突出了氢对碳环网络缩合的抑制作用,以及氢歧化的倾向,从而丰富了已经富氢物种中的氢含量,并提取了已经缺乏氢的团簇中的氢含量。乙炔基C2H被发现是一种反应性但不断再生的物质,促进了氢在烃类簇之间的转移反应。非平衡QM / MD模拟显示了五边形先成核机制的普遍性,其中氢可能充当sp2碳Y结的一个“臂”。该结果挑战了在VLS模型中形成SWCNT帽形核的金属碳化物的重要性,并提出了在燃烧合成中普遍讨论的类似氢吸收乙炔加成(HACA)的机理之后的可能替代路线。

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