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首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >A theoretical indicator of transition-metal nanoclusters applied in the carbon nanotube nucleation process: a DFT study
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A theoretical indicator of transition-metal nanoclusters applied in the carbon nanotube nucleation process: a DFT study

机译:碳纳米管成核法中施用的过渡金属纳米团簇的理论指示剂:DFT研究

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Knowledge about the appropriate indicators to point out the best components in a catalytic process is a basic prerequisite for obtaining insights into optimized reactions as, for example, in the chemical vapour deposition method, which enables the growth of carbon nanotubes. In this work, we report a density functional theory study of 13-atom transition-metal nanoclusters interacting with (5,0) zigzag and (3,3) armchair carbon nanotube fragments, considering all transition-metal species from the periodic table as possible candidates for the chemical vapour deposition method. The icosahedral configuration was found to be a good model to simulate the seed of nucleation in the case of the short carbon nanotube fragments that are initially formed during the growth process. From full geometric optimizations, without any constraints, we found that the energetic and structural nanocluster properties change as a function of the occupation of the bonding and anti-bonding d-states. The center of gravity of the occupied d-states for nanoclusters is found to be a good indicator to reveal the best candidates for the interaction with the carbon nanotubes, namely, Sc-Cu, Y-Nb, Pd, Lu, Hf, and Pt. The interaction between all transition-metal nanoclusters with both armchair and zigzag segments is favorable in terms of the adhesion energy, where the adhesion is larger for systems with smaller occupation of the d-states. The bond strength is more pronounced for systems with zigzag fragments than those with armchair fragments, which is confirmed by the smaller average bond length between the metal atoms of the nanocluster and the C atoms of the zigzag segment. Our prediction about the best 13-atom transition-metal candidates is reinforced by the linear relationship between the adhesion energy and the center of gravity of the occupied d-states. Thus, the adhesion energy presents increased intensity for the interaction between carbon nanotube fragments and nanoclusters in relation to the smaller occupation of the d-states. Consequently, our model is able to provide a good descriptor for indicating the best 13-atom transition-metal candidates in the chemical vapour deposition process.
机译:关于适当指标指出催化过程中最佳组分的知识是获得优化反应中的洞察的基本先决条件,例如,在化学气相沉积方法中,这使得碳纳米管的生长能够生长。在这项工作中,我们报告了与(5,0)Zigzag和(3,3)扶手碳纳米管片相互作用的13原子过渡 - 金属纳米能器的密度泛函理论研究,尽可能考虑所有过渡金属种类候选化学气相沉积法。发现icosaheDral型构型是在初始在生长过程中最初形成的短碳纳米管片段的情况下模拟成核的种子的良好模型。从完全的几何优化,没有任何约束,我们发现能量和结构纳米光幕属性随着占用和抗粘合D-态的职位而变化。发现纳米能器的占用D-态的重心是一个良好的指标,用于揭示与碳纳米管相互作用,即SC-Cu,Y-Nb,Pd,Lu,Hf和Pt的最佳候选者。在粘合能量方面,所有过渡 - 金属纳米单元之间的相互作用与扶手和锯齿形段有利,在粘合能力方面是较小的D态占据的系统的粘合力。对于具有曲线碎片的系统比具有扶手椅片段的系统更为明显的粘合强度,其通过纳米光栅的金属原子与锯齿形段的C原子之间的较小平均键长度来证实。我们对最佳的13原子过渡金属候选物的预测通过粘附能量与占用D态的重心之间的线性关系增强。因此,粘合能量呈现出碳纳米管片段和纳米能器之间的相互作用的增加的强度与D态的较小占用相对于较小的占用。因此,我们的模型能够提供一种良好的描述符,用于表示化学气相沉积过程中最好的13原子过渡金属候选。

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