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On the feasibility of designing hyperalkali cations using superalkali clusters as ligands

机译:关于以超碱簇为配体设计高碱阳离子的可行性

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The possibility of using superalkali clusters instead of alkali atoms as ligands to design a class of cationic compounds, referred to as hyperalkali cations, has been examined by using gradient-corrected density functional theory. By taking typical superalkalis (FLi2, OLi3, and NLi4) as examples, a series of hyperalkali cations ML2+ [M = (super) halogen; L = superalkali] have been constructed and investigated. Calculational results show that all the superalkali moieties preserve their geometric and electronic integrity in these proposed cations. The stability of these studied cations is guaranteed by the strong ionic bonds between superalkali ligand and (super) halogen core, as well as their large highest occupied molecular orbital-lowest unoccupied molecular orbital gaps and positive dissociation energies. In particular, all these proposed cations possess lower vertical electron affinities (2.36-3.56 eV) than those of their corresponding cationic superalkali ligands, verifying their hyperalkali nature. We, therefore, hope that this study will provide an approach to obtain new species with excellent reducing capability by utilizing various superalkalis as building blocks. Published by AIP Publishing.
机译:通过使用梯度校正的密度泛函理论,已经研究了使用超碱金属簇代替碱金属原子作为配体来设计一类阳离子化合物(称为高碱金属阳离子)的可能性。以典型的超碱金属离子(FLi2,OLi3和NLi4)为例,一系列的高碱金属阳离子ML2 + [M =(超)卤素; L =超级碱]已被构建和研究。计算结果表明,所有超碱部分在这些拟议的阳离子中均保持其几何和电子完整性。这些研究的阳离子的稳定性由超级碱配体和(超级)卤素核之间的强离子键以及它们最大的最高占据分子轨道-最低最低未占据分子轨道间隙和正离解能保证。特别是,所有这些提出的阳离子都比其相应的阳离子超碱配体具有更低的垂直电子亲和力(2.36-3.56 eV),证明了它们的超碱性质。因此,我们希望这项研究将提供一种方法,通过利用各种超级碱作为结构单元来获得具有出色还原能力的新物种。由AIP Publishing发布。

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