Kong Richard Y, Crimmin Mark R
Molecular Science Research Hub, Imperial College London, 82 Wood Lane, White City, London, W12 0BZ, UK.
Dalton Trans. 2021 Jun 8;50(22):7810-7817. doi: 10.1039/d1dt01415c.
The synthesis and spectroscopic characterisation of eight new first-row transition metal (M = Cr, Mn, Fe, Co, Cu) aluminylene complexes is reported. DFT and ab initio calculations have been used to provide detailed insight into the metal-metal bond. The σ-donation and π-backdonation properties of the aluminylene ligand are evaluated via NBO and ETS-NOCV calculations. These calculations reveal that these ligands are strong σ-donors but also competent π-acceptors. These properties are not fixed but vary in response to the nature of the transition metal centre, suggesting that aluminylene fragments can modulate their bonding to accommodate both electron-rich and electron-poor transition metals. Ab initio DLPNO-CCSD(T) calculations show that dispersion plays an important role in stabilising these complexes. Both short-range and long-range dispersion interactions are identified. These results will likely inform the design of next-generation catalysts based on aluminium metalloligands.
报道了八种新型第一行过渡金属(M = Cr、Mn、Fe、Co、Cu)亚铝烯配合物的合成及光谱表征。采用密度泛函理论(DFT)和从头算计算来深入了解金属-金属键。通过自然键轨道(NBO)和能量分解分析-自然轨道耦合簇价键(ETS-NOCV)计算评估了亚铝烯配体的σ供体和π反馈供体性质。这些计算表明,这些配体是强σ供体,但也是有效的π受体。这些性质并非固定不变,而是会根据过渡金属中心的性质而变化,这表明亚铝烯片段可以调节其键合以适应富电子和贫电子的过渡金属。从头算DLPNO-CCSD(T)计算表明,色散作用在稳定这些配合物中起着重要作用。识别出了短程和长程色散相互作用。这些结果可能会为基于铝金属配体的下一代催化剂的设计提供参考。