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理解色散在受阻路易斯酸碱对和经典路易斯加合物中的作用:基于域的定域对自然轨道耦合簇研究。

Understanding the Role of Dispersion in Frustrated Lewis Pairs and Classical Lewis Adducts: A Domain-Based Local Pair Natural Orbital Coupled Cluster Study.

作者信息

Bistoni Giovanni, Auer Alexander A, Neese Frank

机构信息

Max Planck Institute for Chemical Energy Conversion, Stiftstr. 34-36, 45470, Mülheim an der Ruhr, Germany.

出版信息

Chemistry. 2017 Jan 18;23(4):865-873. doi: 10.1002/chem.201604127. Epub 2016 Dec 13.

DOI:10.1002/chem.201604127
PMID:27809358
Abstract

The interaction of Lewis acids and bases in both classical Lewis adducts and frustrated Lewis pairs (FLPs) is investigated to elucidate the role that London dispersion plays in different situations. The analysis comprises 14 different adducts between tris(pentafluorophenyl)borane and a series of phosphines, carbenes, and amines with various substituents, differing in both steric and electronic properties. The domain-based local pair natural orbital coupled-cluster (DLPNO-CCSD(T)) method is used in conjunction with the recently introduced local energy decomposition (LED) analysis to obtain state-of-the-art dissociation energies and, at the same time, a clear-cut definition of the London dispersion component of the interaction, with the ultimate goal of aiding in the development of designing principles for acid/base pairs with well-defined bonding features and reactivity. In agreement with previous DFT investigations, it is found that the London dispersion dominates the interaction energy in FLPs, and is also remarkably strong in Lewis adducts. In these latter systems, its magnitude can be easily modulated by modifying the polarizability of the substituents on the basic center, which is consistent with the recently introduced concept of dispersion energy donors. By counteracting the destabilizing energy contribution associated with the deformation of the monomers, the London dispersion drives the stability of many Lewis adducts.

摘要

研究了经典路易斯加合物和受阻路易斯对(FLP)中路易斯酸和碱的相互作用,以阐明伦敦色散在不同情况下所起的作用。分析包括三(五氟苯基)硼烷与一系列具有不同取代基的膦、卡宾和胺之间的14种不同加合物,这些取代基在空间和电子性质上均有所不同。基于域的局部对自然轨道耦合簇(DLPNO-CCSD(T))方法与最近引入的局部能量分解(LED)分析相结合,以获得最新的解离能,同时明确界定相互作用的伦敦色散成分,最终目标是协助制定具有明确键合特征和反应性的酸碱对设计原则。与之前的密度泛函理论研究一致,发现伦敦色散在FLP的相互作用能中占主导地位,在路易斯加合物中也非常强。在这些后一种体系中,其大小可以通过改变碱性中心上取代基的极化率轻松调节,这与最近引入的色散能量供体概念一致。通过抵消与单体变形相关的不稳定能量贡献,伦敦色散推动了许多路易斯加合物的稳定性。

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