Liang Yanhong, Gao Xiaozhen, Li Nan, Zhang Xiuhui
Material Simulation and Computing laboratory, Institute of Condensed Matter Physics, Hebei Normal University of Science and Technology, Qinhuangdao, 066000, People's Republic of China.
State Key Laboratory of Explosion Science and Technology, School of Mechatronical Engineering, School of Chemistry, Beijing Institute of Technology, Beijing, 100081, People's Republic of China.
J Mol Model. 2015 Oct;21(10):265. doi: 10.1007/s00894-015-2811-1. Epub 2015 Sep 18.
The capture of N3-chains and N5-rings on the outer surface of C60 was studied using density functional calculations. For the neutral N5-ring, it was found that a N5-ring trapped by a C60 cage becomes more stable than an isolated N5-ring radical, and a C60-N5 compound with a C-N bond at an exohedral position of C60 is more stable than an isomer with the N5-ring encapsulated in C60. Such stability arises from the reduction in molecular strain energy, and charge transfer from C60 to N5. Dynamics calculations indicate that capture of the N5-ring on the outer surface of C60 is a barrierless process. Furthermore, the trapping sites of more N5-rings on the C60 were determined using condensed Fukui functions, where the N5-rings prefer to be trapped on the surface to form addition products across 6,6-junctions. Based on the optimized geometries of C60-(N5) n (n = 2, 6, 10), their chemical stabilities were found to be comparable with that of C60 in terms of the gap between the highest occupied molecular orbitals and the lowest unoccupied molecular orbitals. Similar phenomena were found for an N3-chain wrapped on the surface of C60. However, the results of the average adsorption energies show that C60 can capture N5-rings more effectively than N3-chains.
利用密度泛函计算研究了C60外表面上N3链和N5环的捕获情况。对于中性N5环,发现被C60笼捕获的N5环比孤立的N5环自由基更稳定,并且在C60外表面位置具有C-N键的C60-N5化合物比N5环封装在C60中的异构体更稳定。这种稳定性源于分子应变能的降低以及从C60到N5的电荷转移。动力学计算表明,N5环在C60外表面的捕获是一个无障碍过程。此外,使用凝聚福井函数确定了C60上更多N5环的捕获位点,其中N5环倾向于捕获在表面上以形成跨6,6-连接点的加成产物。基于C60-(N5)n(n = 2, 6, 10)的优化几何结构,就最高占据分子轨道和最低未占据分子轨道之间的能隙而言,发现它们的化学稳定性与C60相当。对于包裹在C60表面的N3链也发现了类似现象。然而,平均吸附能的结果表明,C60捕获N5环比捕获N3链更有效。