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羰基键、金属簇解离和蒸发速率对高压一氧化碳中纳米管生成预测的影响。

Effects of carbonyl bond, metal cluster dissociation, and evaporation rates on predictions of nanotube production in high-pressure carbon monoxide.

作者信息

Scott Carl D, Smalley Richard E

机构信息

ES4, NASA Johnson Space Center, Houston, Texas, USA.

出版信息

J Nanosci Nanotechnol. 2003 Feb-Apr;3(1-2):75-9. doi: 10.1166/jnn.2003.165.

Abstract

The high-pressure carbon monoxide (HiPco) process for producing single-wall carbon nanotubes (SWNTs) uses iron pentacarbonyl as the source of iron for catalyzing the Boudouard reaction. Attempts using nickel tetracarbonyl led to no production of SWNTs. This paper discusses simulations at a constant condition of 1300 K and 30 atm in which the chemical rate equations are solved for different reaction schemes. A lumped cluster model is developed to limit the number of species in the models, yet it includes fairly large clusters. Reaction rate coefficients in these schemes are based on bond energies of iron and nickel species and on estimates of chemical rates for formation of SWNTs. SWNT growth is measured by the conformation of CO2. It is shown that the production of CO2 is significantly greater for FeCO because of its lower bond energy as compared with that of NiCO. It is also shown that the dissociation and evaporation rates of atoms from small metal clusters have a significant effect on CO2 production. A high rate of evaporation leads to a smaller number of metal clusters available to catalyze the Boudouard reaction. This suggests that if CO reacts with metal clusters and removes atoms from them by forming MeCO, this has the effect of enhancing the evaporation rate and reducing SWNT production. The study also investigates some other reactions in the model that have a less dramatic influence.

摘要

用于生产单壁碳纳米管(SWNTs)的高压一氧化碳(HiPco)工艺使用五羰基铁作为铁源来催化布多尔反应。尝试使用四羰基镍却未成功制得单壁碳纳米管。本文讨论了在1300 K和30 atm的恒定条件下进行的模拟,其中针对不同的反应方案求解化学速率方程。开发了一种集总簇模型以限制模型中的物种数量,但该模型包含相当大的簇。这些方案中的反应速率系数基于铁和镍物种的键能以及单壁碳纳米管形成的化学速率估计值。单壁碳纳米管的生长通过二氧化碳的形态来衡量。结果表明,与NiCO相比,FeCO的键能较低,因此其二氧化碳的生成量显著更大。还表明,小金属簇中原子的解离和蒸发速率对二氧化碳的生成有显著影响。高蒸发速率导致可用于催化布多尔反应的金属簇数量减少。这表明,如果CO与金属簇反应并通过形成MeCO从其中去除原子,这会提高蒸发速率并减少单壁碳纳米管的产量。该研究还研究了模型中其他一些影响较小的反应。

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