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硼钳形配合物对吡啶的C-H活化:硼导向的C-H对铱的氧化加成的阐明以及铑催化下硼的过渡金属辅助还原消除的发现

C-H Activation of Pyridines by Boryl Pincer Complexes: Elucidation of Boryl-Directed C-H Oxidative Addition to Ir and Discovery of Transition Metal-Assisted Reductive Elimination from Boron at Rh.

作者信息

Nguyen Vinh T, Sladek R Noah, Cao Yihan, Bhuvanesh Nattamai, Zhou Jia, Ozerov Oleg V

机构信息

Department of Chemistry, Texas A&M University, College Station, Texas 77842, United States.

State Key Lab of Urban Water Resource and Environment, School of Science, Harbin Institute of Technology, Shenzhen 518055, China.

出版信息

J Am Chem Soc. 2024 Nov 13;146(45):31281-31294. doi: 10.1021/jacs.4c12143. Epub 2024 Oct 30.

Abstract

Experimental and theoretical techniques were used to investigate the mechanism of pyridine C-H activation by diarylboryl/bis(phosphine) PBP pincer complexes of Ir. The critical intermediate (PBP)IrCO () contains a three-coordinate, Ir-bound boron that retains Lewis acidity in the perpendicular direction. Coordination of pyridine to this boron center in leads to fast insertion of Ir into the 2-CH bond of pyridine, providing a different topology of direction than the conventional directed C-H activation where both the directing group coordination and C-H activation happen at the same metal center. Beyond this critical sequence, the system possesses significant complexity in terms of possible isomers and pathways, which have been thoroughly explored. Kinetic and thermodynamic preferences for the activation of differently substituted pyridines were also investigated. In experimental work, the key intermediate is accessed via elimination of benzene from a phenyl/hydride containing precursor (PBP)IrHCO (). Density functional theory (DFT) investigations of the mechanism of benzene loss from revealed the possibility of a genuinely new type of mechanism, whereby the Ph-H bond is made in a concerted process that is best described as C-H reductive elimination from boron, assisted by the transition metal (TMARE). For Ir, this pathway was predicted to be competitive with the more conventional pathways involving C-H reductive elimination from Ir, but still higher in energy barrier. However, for the Rh analog , TMARE was calculated to be the preferred pathway for benzene loss and this prediction was experimentally corroborated through the study of reaction rates and the kinetic isotope effect.

摘要

采用实验和理论技术研究了铱的二芳基硼基/双(膦)PBP钳形配合物对吡啶C-H活化的机理。关键中间体(PBP)IrCO()含有一个三配位的、与铱相连的硼,该硼在垂直方向上保留路易斯酸性。吡啶与该硼中心配位会导致铱快速插入吡啶的2-CH键中,这提供了一种与传统定向C-H活化不同的方向拓扑结构,在传统定向C-H活化中,导向基团配位和C-H活化都发生在同一金属中心。在这个关键序列之外,该体系在可能的异构体和途径方面具有显著的复杂性,对此已进行了深入研究。还研究了不同取代吡啶活化的动力学和热力学偏好。在实验工作中,关键中间体是通过从含苯基/氢化物的前体(PBP)IrHCO()中消除苯来获得的。对从(PBP)IrHCO()中损失苯的机理进行密度泛函理论(DFT)研究,揭示了一种全新类型机理的可能性,即Ph-H键在一个协同过程中形成,该过程最好描述为在过渡金属(TMARE)辅助下从硼进行C-H还原消除。对于铱,预计该途径与涉及从铱进行C-H还原消除的更传统途径具有竞争性,但能量垒仍然更高。然而,对于铑类似物,计算得出TMARE是苯损失的首选途径,并且通过反应速率和动力学同位素效应的研究,这一预测在实验中得到了证实。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7710/11565645/dd0ddfd317bf/ja4c12143_0002.jpg

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