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硼(膦)碳烯卡宾类似物与第 14 族元素(C、Si、Ge、Sb 和 Pb)作为杂原子的反应性:理论研究。

Reactivity for boryl(phosphino)carbenyl carbene analogues with group 14 elements (C, Si, Ge, Sb, and Pb) as a heteroatom: a theoretical study.

机构信息

Department of Applied Chemistry, National Chiayi University, Chiayi, Taiwan.

出版信息

Dalton Trans. 2012 Mar 21;41(11):3253-65. doi: 10.1039/c2dt11464j. Epub 2012 Feb 1.

Abstract

The potential energy surfaces for the chemical reactions of group 14 carbenes have been studied using density functional theory (B3LYP/LANL2DZ). Five boryl(phosphino)-based carbene (B-Ë-P) species, where Ë = C, Si, Ge, Sn, and Pb, have been chosen as model reactants in this work. Also, four kinds of chemical reactions; intramolecular 1,2-migration, water insertion, alkene cycloaddition, and intermolecular dimerization, have been used to study the chemical reactivities of these group 14 carbenes. The present theoretical investigations suggest that the relative carbenic reactivity decreases in the order C > Si > Ge > Sn > Pb. That is, the heavier the group 14 atom (E), the more stable is the boryl(phosphino)-based B-Ë-P species towards chemical reactions. Our theoretical findings thus demonstrate that all boryl(phosphino)-based carbenes are isolable at room temperature because they are quite inert to chemical reactions, except that they are also moisture-sensitive molecules. Furthermore, the singlet-triplet energy splitting of the B-Ë-P, as described in the configuration mixing model attributed to the work of Pross and Shaik, can serve as a diagnostic tool for a better understanding and predicting of their chemical reactivities, kinetically and thermodynamically. The results obtained allow a number of predictions to be made.

摘要

使用密度泛函理论(B3LYP/LANL2DZ)研究了第 14 族卡宾的化学反应势能面。本工作选择了五种硼基(膦基)卡宾(B-Ë-P)物种作为模型反应物,其中Ë=C、Si、Ge、Sn 和 Pb。还研究了四种化学反应:分子内 1,2-迁移、水插入、烯烃环加成和分子间二聚化,以研究这些第 14 族卡宾的化学反应活性。本理论研究表明,卡宾的相对反应活性顺序为 C>Si>Ge>Sn>Pb。也就是说,第 14 族原子(E)越重,硼基(膦基)B-Ë-P 物种对化学反应的稳定性就越高。因此,我们的理论研究结果表明,所有硼基(膦基)卡宾在室温下都是可分离的,因为它们对化学反应相当惰性,只是它们也是对水分敏感的分子。此外,根据 Pross 和 Shaik 的工作归因于构型混合模型的 B-Ë-P 的单重态-三重态能分裂可以作为更好地理解和预测其动力学和热力学化学反应活性的诊断工具。所得到的结果允许做出一些预测。

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