Allouch A, Mougenot J, Michau A, Prasanna S, Brault P, Maurel F, Hassouni K
Laboratoire des Sciences des Procédés et des Matériaux (LSPM), CNRS UPR 3407, Université Sorbonne Paris Nord, Villetaneuse, France.
Groupe de Recherches sur l'Energétique des Milieux Ionisés, CNRS UMR 7344, Université d'Orléans, Orléans, France.
J Chem Phys. 2023 Oct 21;159(15). doi: 10.1063/5.0166116.
The mechanisms of carbon sticking reactions to C36 and C-C80 fullerenes were investigated with molecular dynamics simulations (MD) using the Second-generation Reactive Empirical Bond Order (SREBO) and Adaptive Intermolecular Reactive Empirical Bond Order (AIREBO) potentials that were specifically optimized for carbon-carbon interactions. Results showed the existence of three possible sticking configurations where the projectile atom can stick either to one, two or three atoms of the target fullerene. They also showed that although the two potentials give similar magnitudes for the sticking cross-sections, they yield fairly different results as far as sticking mechanisms and configurations at thermal collision-energies, i.e., in the range 0.05-0.5 eV, are concerned. While AIREBO, that takes into account the long-range Lennard-Jones interaction, essentially results in a surface-sticking configuration with a single atom of the target fullerene, SREBO potential yields both surface- and two neighbors-sticking (2N-sticking) configurations. The fullerene structure is preserved in the last configuration while it can be recovered by a 2000 K annealing in the former configuration. Results obtained with SREBO eventually showed larger sticking probabilities for C36 as compared with C80. In spite of this, the sticking cross-sections obtained for C80 are similar to or even larger than those obtained for C36 due to the larger size of C80 that compensates for its smaller sticking probabilities.
利用第二代反应经验键序(SREBO)和自适应分子间反应经验键序(AIREBO)势,通过分子动力学模拟(MD)研究了碳与C36和C-C80富勒烯的粘附反应机制,这两种势是专门针对碳-碳相互作用进行优化的。结果表明存在三种可能的粘附构型,其中入射原子可以粘附到目标富勒烯的一个、两个或三个原子上。结果还表明,尽管这两种势给出的粘附截面大小相似,但就热碰撞能量(即0.05-0.5电子伏特范围内)的粘附机制和构型而言,它们产生的结果相当不同。考虑到长程 Lennard-Jones 相互作用的 AIREBO 基本上导致目标富勒烯的单个原子的表面粘附构型,而 SREBO 势产生表面粘附和两个相邻原子粘附(2N 粘附)构型。在最后一种构型中富勒烯结构得以保留,而在前一种构型中可通过2000K退火恢复。最终,用SREBO获得的结果表明,与C80相比,C36的粘附概率更大。尽管如此,由于C80尺寸较大,弥补了其较小的粘附概率,C80获得的粘附截面与C36相似甚至更大。