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理解卡宾稳定的二磷配合物空气氧化中意外的产物分布

Understanding the Unexpected Product Distribution in the Aerial Oxidation of Carbene-Stabilized Diphosphorus Complex.

作者信息

Ghosh Boyli, Banerjee Ambar, Paul Ankan

机构信息

Raman Centre for Atomic Molecular and Optical Science, Indian Association for the Cultivation of Science, 2A and 2B, Raja S. C. Mullick Road, Kolkata, 700032, India.

出版信息

Chemistry. 2018 Mar 20;24(17):4350-4360. doi: 10.1002/chem.201705496. Epub 2018 Feb 23.

DOI:10.1002/chem.201705496
PMID:29323438
Abstract

Oxidation of nonmetallic singlet molecules by oxygen has its own share of intricacies. Herein, by means of DFT and ab initio techniques, mechanistic details of the aerial oxidation of an N-heterocyclic carbene (NHC) stabilized diphosphorus complex are revealed. This particular oxidation process is known to produce an unexpected P-P bond containing diphosphorus tetroxide complex, instead of the more thermodynamically stable oxo-bridged (P-O-P) compound. These findings suggest that the P-P bond containing less stabilized species is a kinetically controlled product (KCP) and obtained due to the presence of lower lying transition states (TSs) in the pathway leading to its formation, relative to the higher lying corresponding minimum-energy crossing points (MECPs) present in the pathway involved in the formation of the oxo-bridged species, which is the thermodynamically controlled product (TCP). Thus, an intriguing variant of the well-known KCP/TCP phenomenon is presented here, in which the KCP is formed not by merely traditionally known lower barrier heights of TSs involved in the formation of KCP, but by faster transmission of a system through a low barrier TS relative to a higher lying MECP. Additionally, the faster kinetics of an irreversible unimolecular O-O dissociation step, which avoids the formation of the TCP is a contributing factor in dictating the fate of the reaction. The insights provided herein may help to understand the oxidation of other P-P-containing species, such as black phosphorene.

摘要

氧气对非金属单重态分子的氧化作用有其自身的复杂性。在此,通过密度泛函理论(DFT)和从头算技术,揭示了一种氮杂环卡宾(NHC)稳定的双磷配合物的气相氧化反应的机理细节。已知该特定氧化过程会产生一种含有意外P-P键的四氧化双磷配合物,而不是热力学上更稳定的氧桥连(P-O-P)化合物。这些发现表明,含有稳定性较低物种的P-P键是动力学控制产物(KCP),其形成是由于在导致其形成的途径中存在较低的过渡态(TSs),相对于参与形成氧桥连物种(即热力学控制产物(TCP))的途径中存在的较高的相应最小能量交叉点(MECPs)而言。因此,本文展示了一个著名的KCP/TCP现象的有趣变体,其中KCP的形成不仅是由于传统上已知的参与KCP形成的TSs的较低势垒高度,而且是由于系统相对于较高的MECP通过低势垒TS的更快传输。此外,不可逆单分子O-O解离步骤的更快动力学避免了TCP的形成,这是决定反应命运的一个因素。本文提供的见解可能有助于理解其他含P-P物种的氧化,如黑磷烯。

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