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甲基五苯基二茂金属烷(Ph₃MM'Ph₂Me;M,M'= Si 和 Ge)的光解机制的理论研究。

Theoretical Study of the Photolysis Mechanisms of Methylpentaphenyldimetallanes (Ph₃MM'Ph₂Me; M, M' = Si and Ge).

机构信息

Department of Applied Chemistry, National Chiayi University, Chiayi 60004, Taiwan.

Department of Medicinal and Applied Chemistry, Kaohsiung Medical University, Kaohsiung 80708, Taiwan.

出版信息

Molecules. 2018 Jun 4;23(6):1351. doi: 10.3390/molecules23061351.

Abstract

The mechanisms of the photolysis reactions are studied theoretically at the M06-2X/6-311G(d) level of theory, using the four types of group 14 molecules that have the general structure, Ph₃M⁻M'Ph₂Me (M and M' = Si and Ge), as model systems. This study provides the first theoretical evidence for the mechanisms of these photorearrangements of compounds that contain a M⁻M' single bond. The model investigations indicate that the preferred reaction route for the photolysis reactions is, as follows: reactant → Franck-Condon (FC) region → minimum (triplet) → transition state (triplet) → triplet/singlet intersystem crossing → photoproducts (both di-radicals and singlets). The theoretical findings demonstrate that the formation of radicals results from reactions of the triplet states of these reactants. This could be because both the atomic radius and the chemical properties of silicon and germanium are quite similar to each other and compared to other group 14 elements, their photolytic mechanisms are nearly the same. The results for the photolytic mechanisms that are studied in this work are consistent with the available experimental observations and allow for a number of predictions for other group 14 dimetallane analogues to be made.

摘要

采用 M06-2X/6-311G(d)理论水平,以通式为 Ph₃M⁻M'Ph₂Me(M 和 M'=Si 和 Ge)的 4 种类型的第 14 族分子作为模型体系,从理论上研究了光解反应的机制。该研究为含有 M⁻M'单键的化合物这些重排的光解机制提供了第一个理论证据。模型研究表明,光解反应的首选反应途径如下:反应物→ Franck-Condon(FC)区→ 最低(三重态)→ 过渡态(三重态)→ 三重态/单重态系间窜跃→ 光产物(双自由基和单重态)。理论研究结果表明,自由基的形成是这些反应物的三重态反应的结果。这可能是因为硅和锗的原子半径和化学性质非常相似,与其他第 14 族元素相比,它们的光解机制几乎相同。本工作研究的光解机制的结果与现有实验观察结果一致,并允许对其他第 14 族二金属烷类似物进行一些预测。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/01c9/6100199/6cc71d3cb5bb/molecules-23-01351-g004.jpg

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