Dateo Christopher E, Gökçen Tahir, Meyyappan M
Eloret Corporation, MS 230-3, NASA Ames Research Center, Moffett Field, California 94035, USA.
J Nanosci Nanotechnol. 2002 Oct;2(5):523-34. doi: 10.1166/153348802760394115.
A chemical kinetic model is developed to help understand and optimize the production of single-walled carbon nanotubes via the high-pressure carbon monoxide (HiPco) process, which employs iron pentacarbonyl as the catalyst precursor and carbon monoxide as the carbon feedstock. The model separates the HiPco process into three steps, precursor decomposition, catalyst growth and evaporation, and carbon nanotube production resulting from the catalyst-enhanced disproportionation of carbon monoxide, known as the Boudouard reaction: 2 CO(g)-->C(s) + CO2(g). The resulting detailed model contains 971 species and 1948 chemical reactions. A second model with a reduced reaction set containing 14 species and 22 chemical reactions is developed on the basis of the detailed model and reproduces the chemistry of the major species. Results showing the parametric dependence of temperature, total pressure, and initial precursor partial pressures are presented, with comparison between the two models. The reduced model is more amenable to coupled reacting flow-field simulations, presented in the following article.
建立了一个化学动力学模型,以帮助理解和优化通过高压一氧化碳(HiPco)工艺生产单壁碳纳米管的过程,该工艺采用五羰基铁作为催化剂前体,一氧化碳作为碳原料。该模型将HiPco工艺分为三个步骤:前体分解、催化剂生长和蒸发,以及由一氧化碳的催化剂增强歧化反应(即布多阿尔反应:2CO(g)-->C(s)+CO2(g))产生的碳纳米管生产。由此产生的详细模型包含971种物质和1948个化学反应。在详细模型的基础上,开发了第二个反应集简化的模型,该模型包含14种物质和22个化学反应,并再现了主要物质的化学性质。给出了温度、总压力和初始前体分压的参数依赖性结果,并对两个模型进行了比较。简化模型更适合于耦合反应流场模拟,将在下一篇文章中介绍。