Theoretical study on the CoII/CoIII and CoII/CoIV catalytic cycles in CoII(salen)-catalyzed radical fluorination with various different NF-type fluorinating reagents

Jingwen Li, Mong-Feng Chiou, Hongli Bao
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Abstract

CoII(salen)-catalyzed radical fluorination provides a mild and efficient approach for the construction of carbon–fluorine bonds. However, the mechanistic role of different NF-type fluorinating reagents and the corresponding catalytic cycle pathways (CoII/CoIIIvs. CoII/CoIV) in the CoII(salen)-catalyzed fluorination system remain controversial. Therefore, this work employs density functional theory (DFT) to computationally analyze the reaction mechanisms of radical fluorination involving three classes of NF-type fluorinating reagents: N-tert-butylfluoramide, N-ethyl-N-fluorobenzenesulfonamide, and Me3NFPy·BF4. The results indicate that the nature of the NF-type fluorinating reagent exerts a decisive influence on the reaction pathway. N-tert-butylfluoramide and N-ethyl-N-fluorobenzenesulfonamide tend to undergo single-electron oxidation with CoII(salen), generating CoIII(salen)–F and the corresponding amidyl radical, with the reaction proceeding via a CoII/CoIII cycle. In contrast, Me3NFPy·BF4 favors a two-electron oxidation process, directly forming the [CoIV(salen)–F]+ intermediate, and the reaction proceeds through a CoII/CoIV cycle. Furthermore, for the hydrofluorination of unactivated alkenes involving Me3NFPy·BF4, the calculations not only clearly elucidate the formation pathway of CoIII(salen)–H but also confirm that the occurrence of Wagner–Meerwein rearrangement in the product is related to the presence of a substituent at the benzylic position of the substrate. Through theoretical calculations, this study provides a unified theoretical analysis of the roles of different NF-type fluorinating reagents in the CoII(salen)-catalyzed fluorination system, offering an important theoretical basis for the rational design and condition optimization of future cobalt-catalyzed fluorination reactions.
不同nf型氟化试剂CoII(salen)催化自由基氟化CoII/CoIII和CoII/CoIV催化循环的理论研究
CoII(salen)-催化自由基氟化为构建碳氟键提供了一种温和而有效的方法。然而,不同的nf型氟化试剂和相应的催化循环途径(CoII/CoIIIvs)的机理作用。CoII(salen)催化氟化体系中的CoII/CoIV仍存在争议。因此,本文采用密度泛函理论(DFT)计算分析了n -叔丁基氟酰胺、n -乙基- n -氟苯磺酰胺和Me3NFPy·BF4三种nf型氟化试剂的自由基氟化反应机理。结果表明,nf型氟化试剂的性质对反应途径有决定性影响。n -叔丁基氟酰胺和n -乙基- n -氟苯磺酰胺倾向于与CoII(salen)发生单电子氧化,生成CoIII(salen) -F和相应的酰胺基自由基,反应通过CoII/CoIII循环进行。而Me3NFPy·BF4则倾向于双电子氧化过程,直接生成[CoIV(salen) -F]+中间体,并通过CoII/CoIV循环进行反应。此外,对于涉及Me3NFPy·BF4的非活化烯烃的氢氟化反应,计算结果不仅清楚地阐明了CoIII(salen) -H的形成途径,而且证实了产物中Wagner-Meerwein重排的发生与底物的苯基位置存在取代基有关。通过理论计算,本研究对不同nf型氟化试剂在CoII(salen)催化氟化体系中的作用进行了统一的理论分析,为今后钴催化氟化反应的合理设计和条件优化提供了重要的理论依据。
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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CiteScore
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