Steinert Henning, Löffler Julian, Gessner Viktoria H
Faculty of Chemistry and Biochemistry Ruhr-Universität Bochum Universitätsstraße 150 44780 Bochum Germany.
Eur J Inorg Chem. 2021 Dec 21;2021(47):5004-5013. doi: 10.1002/ejic.202100816. Epub 2021 Oct 26.
Due to their transition metal-like behavior divalent group 14 compounds bear huge potential for their application in bond activation reactions and catalysis. Here we report on detailed computational studies on the use of ylide-substituted tetrylenes in the activation of dihydrogen and phenol. A series of acyclic and cyclic ylidyltetrylenes featuring various α-substituents with different - and -donating capabilities have been investigated which demonstrate that particularly -accepting boryl groups lead to beneficial properties and low barriers for single-site activation reactions, above all in the case of silylenes. In contrast, for the thermodynamically more stable germylenes and stannylenes an alternative mechanism involving the active participation of the ylide ligand in the E-H bond (E=H or PhO) activation process by addition across the element carbon linkage was found to be energetically favored. Furthermore, the boryl substituted tetrylenes allowed for a further activation pathway involving the active participation of the boron element bond. These cooperative mechanisms are especially attractive for the heavier cyclic ylidyltetrylenes in which the loss of the protonated ylide group is prevented due to the cyclic framework. Overall, the present studies suggest that cyclic ylide-substituted germylenes and stannylenes bear huge potential for cooperative bond activations at mild conditions which should be experimentally addressed in the future.
由于其二价14族化合物具有类似过渡金属的性质,在键活化反应和催化领域具有巨大的应用潜力。在此,我们报告了关于叶立德取代的四价元素化合物在氢气和苯酚活化中应用的详细计算研究。研究了一系列具有不同吸电子和给电子能力的α-取代基的无环和环状叶立德基四价元素化合物,结果表明,特别是吸电子的硼基具有有益的性质,且单中心活化反应的能垒较低,尤其是对于硅烯而言。相比之下,对于热力学上更稳定的亚锗烯和亚锡烯,发现了另一种机制,即叶立德配体通过跨越元素-碳键加成而积极参与E-H键(E = H或PhO)活化过程,这在能量上更有利。此外,硼基取代的四价元素化合物还存在另一种涉及硼元素键积极参与的活化途径。这些协同机制对于较重的环状叶立德基四价元素化合物特别有吸引力,因为环状结构阻止了质子化叶立德基团的损失。总体而言,目前的研究表明,环状叶立德取代的亚锗烯和亚锡烯在温和条件下具有协同键活化的巨大潜力,未来应通过实验加以研究。