Zheng Guishan, Irle Stephan, Morokuma Keiji
Cherry L. Emerson Center for Scientific Computation and Department of Chemistry, Emory University, Atlanta, GA 30322, USA.
J Nanosci Nanotechnol. 2006 May;6(5):1259-70. doi: 10.1166/jnn.2006.142.
We are presenting the first quantum chemical molecular dynamics (QM/MD) model simulations for iron catalyzed single-walled carbon nanotube (SWNT) growth based on the density functional tight binding (DFTB) quantum chemical potential. As model systems, open-ended (10,10) armchair tube fragments were selected with 0, 10, and 20 Fe atoms attached in 1,4-positions on the open rims, and ensembles of randomly oriented C2 molecules were included to simulate carbon plasma feedstock molecules. Isokinetic trajectories at 1500 K to 3000 K show that divalent Fe increases the number of coordination partners with carbon and/or Fe, depending on the Fe concentration. Fe/C interactions weaken the tube sidewall due to electron transfer from Fe into antibonding carbon orbitals, and C2 addition occurs mainly in an Fe-C2-Fe bridge addition mechanism, while growth of polyyne chains characteristic for high-temperature carbon systems is suppressed in the presence of Fe on the rims of the growing SWNT. Our findings are the first quantum chemical evidence for the importance of intermetallic interactions during SWNT growth.
我们基于密度泛函紧束缚(DFTB)量子化学势,展示了首个用于铁催化单壁碳纳米管(SWNT)生长的量子化学分子动力学(QM/MD)模型模拟。作为模型系统,选择了开口的(10,10)扶手椅型管片段,在开口边缘的1,4位置附着0、10和20个铁原子,并包含随机取向的C2分子系综以模拟碳等离子体原料分子。1500 K至3000 K的等动力学轨迹表明,二价铁增加了与碳和/或铁的配位体数量,这取决于铁的浓度。Fe/C相互作用由于电子从铁转移到反键碳轨道而削弱了管壁,并且C2添加主要以Fe-C2-Fe桥连添加机制发生,而在生长的SWNT边缘存在铁的情况下,高温碳系统特有的聚炔链生长受到抑制。我们的发现是SWNT生长过程中金属间相互作用重要性的首个量子化学证据。