Institute of Atomic and Molecular Physics, Sichuan University, Chengdu 610065, China.
Dalton Trans. 2013 Jun 28;42(24):8644-54. doi: 10.1039/c3dt50499a. Epub 2013 Apr 30.
The geometries, electronic and magnetic properties of neutral and negatively charged Mn(coronene)m (M = V and Ti; n, m = 1, 2) complexes were investigated using density functional theory. The results show that one V or Ti atom prefers to occupy the η(6)-site in M(coronene)(0/-) complexes and to be sandwiched between the two coronene molecules in M(coronene)2(0/-) complexes. Two metal atoms always form a dimer and interact with one coronene molecule. The calculated vertical electron affinities and transition energies are in good agreement with experimental values. This lends considerable credence to the obtained ground state structure and validates the chosen computational method. The bond formation between metal atom and coronene is accounted for by 3d/4s-π bonds, as revealed by the molecular orbitals plots. The reason why the peripheral ring site binds metal most effectively has been analyzed systematically by π electron content, aromaticity and average charge on carbon atoms. The electron localization function shows that there is perfect electron delocalization in these complexes. Furthermore, the magnetic moments of V(coronene)(0/-) and Ti(coronene)(-) are found to be substantially enhanced over the corresponding free metal atom; the magnetic moment of the neutral Ti(coronene) remains unchanged; while the larger size clusters experience a reduction.
采用密度泛函理论研究了中性和带负电荷的 Mn(coronene)m(M=V 和 Ti;n,m=1,2)配合物的几何形状、电子和磁性质。结果表明,一个 V 或 Ti 原子倾向于占据 M(coronene)(0/-)配合物中的 η(6)-位,并夹在两个 coronene 分子之间在 M(coronene)2(0/-)配合物中。两个金属原子总是形成二聚体并与一个 coronene 分子相互作用。计算得到的垂直电子亲和能和跃迁能与实验值吻合较好。这为获得的基态结构提供了相当大的可信度,并验证了所选的计算方法。金属原子和 coronene 之间的键形成归因于 3d/4s-π 键,这可以通过分子轨道图看出。通过π电子含量、芳香性和碳原子的平均电荷,系统地分析了外围环位置最有效地结合金属的原因。电子定域函数表明这些配合物中存在完美的电子离域。此外,发现 V(coronene)(0/-)和 Ti(coronene)(-)的磁矩相对于相应的自由金属原子大大增强;中性 Ti(coronene)的磁矩保持不变;而较大尺寸的团簇则经历了减少。