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深入了解决定G13-P-P(G13 = 第13族元素)和G15-P-Ga(G15 = 第15族元素)受阻路易斯酸碱对激活氢气反应势垒起源的重要见解。

Significant Insight into the Origin of Reaction Barriers Determining Dihydrogen Activation by G13-P-P (G13 = Group 13 Element) and G15-P-Ga (G15 = Group 15 Element) Frustrated Lewis Pairs.

作者信息

Zhang Zheng-Feng, Yang Ming-Chung, Su Ming-Der

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

Inorg Chem. 2021 Oct 18;60(20):15253-15269. doi: 10.1021/acs.inorgchem.1c01809. Epub 2021 Sep 27.

Abstract

The heterolytic cleavage of H by multiply bonded phosphorus-bridged (G13 = B, Al, Ga, In, and Tl) and (G15 = N, P, As, Sb, and Bi) frustrated Lewis pairs (FLPs) has been theoretically investigated using density functional theory calculations. For the above nine FLP-type molecules, our theoretical findings suggest that only , , and can undergo the energetically feasible H activation reaction from kinetic and thermodynamic viewpoints. Our study based on the activation strain model (ASM) reveals that gaining a better orbital overlap between and molecules and H affected the reaction barriers through the atomic radius of G13 and G15. According to our energy decomposition analysis-natural orbitals for chemical valence (EDA-NOCV) results, the bonding of these H activation reactions involving and is dominated by the donor-acceptor interaction (singlet-singlet interaction) rather than the electron-sharing interaction (triplet-triplet interaction). Moreover, our EDA-NOCV evidence reveals that the best description for the above bonding situations is the lone pair(G15) → σ*(H) interaction rather than the empty p-π-orbital(G13) ← σ(H) interaction. In particular, the findings in this work based on theoretically calculated geometries and the corresponding relative free energies of the stationary points combined with the results from the above sophisticated methods nicely agree with the famous Hammond postulate.

摘要

利用密度泛函理论计算,对通过多重键合的磷桥连(G13 = B、Al、Ga、In和Tl)以及(G15 = N、P、As、Sb和Bi)受阻路易斯对(FLP)进行的H的异裂进行了理论研究。对于上述九种FLP型分子,我们的理论研究结果表明,从动力学和热力学角度来看,只有 、 和 能够发生能量上可行的H活化反应。我们基于活化应变模型(ASM)的研究表明, 和 分子与H之间获得更好的轨道重叠,通过G13和G15的原子半径影响了反应势垒。根据我们的能量分解分析 - 化学价自然轨道(EDA - NOCV)结果,这些涉及 和 的H活化反应的键合主要由供体 - 受体相互作用(单重态 - 单重态相互作用)而非电子共享相互作用(三重态 - 三重态相互作用)主导。此外,我们的EDA - NOCV证据表明,对上述键合情况的最佳描述是孤对电子(G15)→σ*(H)相互作用,而非空的p - π轨道(G13)←σ(H)相互作用。特别是,这项工作基于理论计算的几何结构和相应的驻点相对自由能的研究结果,结合上述精密方法的结果,与著名的哈蒙德假设非常吻合。

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