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Mechanism of the initial stages of nitrogen-doped single-walled carbon nanotube growth

机译:氮掺杂单壁碳纳米管生长初期的机理

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摘要

We have studied the mechanism of the initial stages of nitrogen-doped single-walled carbon nanotube growth illustrated for the case of a floating catalyst chemical vapor deposition system, which uses carbon monoxide (CO) and ammonia (NH3) as precursors and iron as a catalyst. We performed first-principles electronic-structure calculations, fully incorporating the effects of spin polarization and magnetic moments, to investigate the bonding and chemistry of CO, NH3, and their fragments on a model Fe_(55) icosahedral cluster. A possible dissociation path for NH3 to atomic nitrogen and hydrogen was identified, with a reaction barrier consistent with an experimentally determined value we measured by tandem infrared and mass spectrometry. Both C-C and C-N bond formation reactions were found to be barrierless and exothermic, while a parasitic reaction of HCN formation had a barrier of over 1 eV.
机译:我们已经研究了以浮动催化剂化学气相沉积系统为例说明的氮掺杂单壁碳纳米管生长初始阶段的机理,该系统使用一氧化碳(CO)和氨(NH3)作为前体,而铁作为碳纳米管。催化剂。我们进行了第一性原理的电子结构计算,充分结合了自旋极化和磁矩的影响,以研究CO_,NH3及其碎片在Fe_(55)二十面体簇上的键合和化学性质。确定了NH3分解为原子氮和氢的可能解离路径,其反应势垒与我们通过串联红外和质谱法测得的实验确定值一致。发现C-C和C-N键形成反应均无障碍且放热,而HCN形成的寄生反应的势垒超过1 eV。

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