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硼催化直接酰胺化反应的机理见解

Mechanistic insights into boron-catalysed direct amidation reactions.

作者信息

Arkhipenko Sergey, Sabatini Marco T, Batsanov Andrei S, Karaluka Valerija, Sheppard Tom D, Rzepa Henry S, Whiting Andrew

机构信息

Centre for Sustainable Chemical Processes , Department of Chemistry , Durham University , Science Site , South Road , Durham , DH1 3LE , UK . Email:

Department of Chemistry , University College London , 20 Gordon Street , London , WC1H 0AJ , UK.

出版信息

Chem Sci. 2018 Jan 2;9(4):1058-1072. doi: 10.1039/c7sc03595k. eCollection 2018 Jan 28.

Abstract

The generally accepted monoacyloxyboron mechanism of boron-catalysed direct amidation is brought into question in this study, and new alternatives are proposed. We have carried out a detailed investigation of boron-catalysed amidation reactions, through study of the interaction between amines/carboxylic acids and borinic acids, boronic acids and boric acid, and have isolated and characterised by NMR/X-ray crystallography many of the likely intermediates present in catalytic amidation reactions. Rapid reaction between amines and boron compounds was observed in all cases, and it is proposed that such boron-nitrogen interactions are highly likely to take place in catalytic amidation reactions. These studies also clearly show that borinic acids are not competent catalysts for amidation, as they either form unreactive amino-carboxylate complexes, or undergo protodeboronation to give boronic acids. It therefore seems that at least three free coordination sites on the boron atom are necessary for amidation catalysis to occur. However, these observations are not consistent with the currently accepted 'mechanism' for boron-mediated amidation reactions involving nucleophilic attack of an amine onto a monomeric acyloxyboron intermediate, and as a result of our observations and theoretical modelling, alternative proposed mechanisms are presented for boron-mediated amidation reactions. These are likely to proceed the formation of a dimeric B-X-B motif (X = O, NR), which is uniquely able to provide activation of the carboxylic acid, whilst orchestrating the delivery of the amine nucleophile to the carbonyl group. Quantum mechanical calculations of catalytic cycles at the B3LYP+D3/Def2-TZVPP level (solvent = CHCl) support the proposal of several closely related potential pathways for amidation, all of which are likely to be lower in energy than the currently accepted mechanism.

摘要

本研究对硼催化直接酰胺化反应中普遍接受的单酰氧基硼机理提出了质疑,并提出了新的替代机理。我们通过研究胺/羧酸与硼酸、硼酸和硼酸之间的相互作用,对硼催化的酰胺化反应进行了详细的研究,并通过核磁共振/ X射线晶体学分离和表征了催化酰胺化反应中许多可能存在的中间体。在所有情况下都观察到胺与硼化合物之间的快速反应,并且提出这种硼-氮相互作用极有可能在催化酰胺化反应中发生。这些研究还清楚地表明,硼酸不是酰胺化反应的有效催化剂,因为它们要么形成无反应性的氨基羧酸盐配合物,要么发生质子脱硼反应生成硼酸。因此,似乎硼原子上至少需要三个自由配位位点才能发生酰胺化催化作用。然而,这些观察结果与目前公认的硼介导的酰胺化反应“机理”不一致,该机理涉及胺对单体酰氧基硼中间体的亲核攻击。基于我们的观察结果和理论模型,提出了硼介导的酰胺化反应的替代机理。这些机理可能会形成二聚体B-X-B基序(X = O,NR),它能够独特地激活羧酸,同时协调胺亲核试剂向羰基的传递。在B3LYP+D3/Def2-TZVPP水平(溶剂= CHCl)上对催化循环进行的量子力学计算支持了几种密切相关的酰胺化潜在途径的提议,所有这些途径的能量可能都低于目前公认的机理。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d4b7/5890798/5ee9389ba32b/c7sc03595k-s1.jpg

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