Yang Li-Ming, Ding Yi-Hong, Sun Chia-Chung
State Key Laboratory of Theoretical and Computational Chemistry, Institute of Theoretical Chemistry, Jilin University, Changchun 130023, China.
Chemistry. 2007;13(9):2546-55. doi: 10.1002/chem.200601223.
Inspired by the pioneering experimental characterisation of the all-metal aromatic unit Al(4)2- in the bimetallic molecules MAl4- (M=Li, Na, Cu) and by the very recent theoretical design of sandwich-type transition-metal complexes [Al4MAl4]q- (q=0-2; M=Ti, V, Cr, Zr, Nb, Mo, Hf, Ta, W), we used density functional theory (DFT) calculations (B3LYP/6-311+G(d) to design a series of novel non-transition-metal sandwich complexes based on the all-metal aromatic unit Al4(2-) and the main-group metals M (M=Li, Na, K, Be, Mg, Ca). The traditional homo-decked sandwich compounds [Al4MAl4]q- (without counterions) and (nM)q+[Al4MAl4]q- (with counterions M) (q=2-3, M=Li, Na, K, Be, Mg, Ca), although some of them are truly energy minima, have a much higher energy than many fused isomers. We thus concluded that it seems unlikely for Al4(2-) to sandwich the main-group metal atoms in the homo-decked sandwich form. Alternatively, we proposed a new type of sandwich complex, namely hetero-decked sandwich compounds [CpMAl4]q-, that are the ground-state structures for each M both with and without counterions. It was shown that with the rigid Cp- partner, the all-metal aromatic unit Al(4)2- might indeed act as a "superatom". These new types of all-metal aromatic unit-based sandwich complexes await future experimental verification.
受双金属分子MAl4-(M = Li、Na、Cu)中全金属芳香单元Al(4)2-的开创性实验表征以及最近三明治型过渡金属配合物[Al4MAl4]q-(q = 0 - 2;M = Ti、V、Cr、Zr、Nb、Mo、Hf、Ta、W)的理论设计的启发,我们使用密度泛函理论(DFT)计算(B3LYP/6 - 311 + G(d))来设计一系列基于全金属芳香单元Al4(2-)和主族金属M(M = Li、Na、K、Be、Mg、Ca)的新型非过渡金属三明治配合物。传统的同层夹心化合物[Al4MAl4]q-(无抗衡离子)和(nM)q+[Al4MAl4]q-(有抗衡离子M)(q = 2 - 3,M = Li、Na、K、Be、Mg、Ca),尽管其中一些确实是真正的能量最小值,但它们的能量比许多稠合异构体高得多。因此我们得出结论,Al4(2-)以同层夹心形式夹入主族金属原子似乎不太可能。另外,我们提出了一种新型的三明治配合物,即异层夹心化合物[CpMAl4]q-,它们是有和没有抗衡离子时每种M的基态结构。结果表明,与刚性的Cp-配体结合时,全金属芳香单元Al(4)2-可能确实起到了“超原子”的作用。这些新型的基于全金属芳香单元的三明治配合物有待未来的实验验证。