The catalytic mechanism of the Suzuki-Miyaura reaction

Juliet Macharia, C. Joshi, Joseph A. Izzo, Victor Wambua, Sungjin Kim, Jennifer S. Hirschi, Mathew J. Vetticatt
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引用次数: 1

Abstract

Abstract: Experimental and theoretical 13C kinetic isotope effects are utilized to obtain atomistic insight into the catalytic mechanism of the Pd(PPh3)4 catalyzed Suzuki-Miyaura reaction of aryl halides and aryl boronic acids. Under catalytic conditions, we establish that oxidative addition of aryl bromides occurs to a 12-electron monoligated palladium complex (Pd(PPh3)). For aryl iodides, the first irreversible step in the catalytic cycle precedes oxidative addition and is shown to be binding of the iodoarene to Pd(PPh3). Our results suggest that the commonly proposed oxidative addition to the 14-electron Pd(PPh3)2 complex can occur only in the presence of excess added ligand or under stoichiometric conditions. The transmetalation step, under catalytic conditions, is shown to proceed via a tetracoordinate boronate (8B4) intermediate with a Pd-O-B linkage.
Suzuki—Miyaura反应的催化机理
摘要:利用13C动力学同位素实验和理论效应对Pd(PPh3)4催化芳基卤化物和芳基硼酸的Suzuki-Miyaura反应机理进行了原子层面的研究。在催化条件下,我们建立了芳基溴的氧化加成发生在12电子单聚钯配合物(Pd(PPh3))上。对于芳基碘化物,催化循环的第一个不可逆步骤先于氧化加成,并被证明是碘芳烃与Pd(PPh3)的结合。我们的研究结果表明,通常提出的对14电子Pd(PPh3)2络合物的氧化加成只能在过量添加配体或在化学计量条件下发生。在催化条件下,通过带有Pd-O-B键的四配位硼酸盐(8B4)中间体进行金属转化步骤。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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