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达尔磷/镍催化N-芳基化反应中亲电试剂化学选择性的映射:远程立体效应的异常影响

Mapping Electrophile Chemoselectivity in DalPhos/Nickel N-Arylation Catalysis: The Unusual Influence of Remote Sterics.

作者信息

Fox Peter L, Choi Jeongin, Johnson Erin R, Stradiotto Mark

机构信息

Department of Chemistry, Dalhousie University, 6274 Coburg Road, P.O. Box 15000, Halifax, Nova Scotia, B3H 4R2, Canada.

出版信息

Chemistry. 2024 Nov 21;30(65):e202402391. doi: 10.1002/chem.202402391. Epub 2024 Nov 3.

Abstract

We disclose herein our evaluation of competitive (hetero)aryl-X (X: Br>Cl>OTf) reactivity preferences in bisphosphine/Ni-catalyzed C-N cross-coupling catalysis, using furfurylamine as a prototypical nucleophile, and employing DalPhos and DPPF as representative ancillary ligands with established efficacy. Beyond this general (pseudo)halide ranking, other intriguing structure-reactivity trends were noted experimentally, including the unexpected observation that bulky alkyl (e. g., R=tBu) substitution in para-R-aryl-X electrophiles strongly discourages (pseudo)halide reactivity relative to smaller substituents (e. g., nBu, Et, Me), despite being both remote from, and having a similar electronic influence on, the reacting C-X bond; such effects on nickel oxidative addition have not been documented previously and were not observed in our comparator reactions presented herein involving palladium. Density functional theory modeling of such PhPAd-DalPhos/Ni-catalyzed C-N cross-couplings revealed the origins of competitive turnover of C-Br over C-Cl, and possible ways in which bulky para-alkyl substitution might discourage net electrophile uptake/turnover, leading to inversion of halide selectivity.

摘要

我们在此披露了我们对双膦/镍催化的C-N交叉偶联催化中竞争性(杂)芳基-X(X:Br>Cl>OTf)反应活性偏好的评估,使用糠胺作为典型亲核试剂,并采用DalPhos和DPPF作为具有既定功效的代表性辅助配体。除了这种一般的(拟)卤化物排序外,实验还发现了其他有趣的结构-反应活性趋势,包括意外观察到对-R-芳基-X亲电试剂中庞大的烷基(例如,R = tBu)取代相对于较小的取代基(例如,nBu、Et、Me)强烈抑制(拟)卤化物反应活性,尽管其既远离反应的C-X键,又对其具有相似的电子影响;这种对镍氧化加成的影响以前尚未有文献记载,并且在我们本文介绍的涉及钯的比较反应中未观察到。对这种PhPAd-DalPhos/Ni催化的C-N交叉偶联进行密度泛函理论建模揭示了C-Br相对于C-Cl竞争性周转的起源,以及庞大的对位烷基取代可能抑制净亲电试剂摄取/周转从而导致卤化物选择性反转的可能方式。

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