Hindered dialkyl ether synthesis with electrogenerated carbocations

碳阳离子 亲核细胞 乙醚 化学 电化学 组合化学 烷基 反应中间体 有机化学 催化作用 电极 物理化学
作者
Jinbao Xiang,Maoyu Shang,Yu Kawamata,Helena Lundberg,Solomon H. Reisberg,Chen Miao,Pavel K. Mykhailiuk,Gregory L. Beutner,Michael R. Collins,Alyn Davies,Matthew Del Bel,Gary M. Gallego,Jillian E. Spangler,Jeremy T. Starr,Shouliang Yang,Donna G. Blackmond,Phil S. Baran
出处
期刊:Nature [Springer Nature]
卷期号:573 (7774): 398-402 被引量:236
标识
DOI:10.1038/s41586-019-1539-y
摘要

Hindered ethers are of high value for various applications; however, they remain an underexplored area of chemical space because they are difficult to synthesize via conventional reactions1,2. Such motifs are highly coveted in medicinal chemistry, because extensive substitution about the ether bond prevents unwanted metabolic processes that can lead to rapid degradation in vivo. Here we report a simple route towards the synthesis of hindered ethers, in which electrochemical oxidation is used to liberate high-energy carbocations from simple carboxylic acids. These reactive carbocation intermediates, which are generated with low electrochemical potentials, capture an alcohol donor under non-acidic conditions; this enables the formation of a range of ethers (more than 80 have been prepared here) that would otherwise be difficult to access. The carbocations can also be intercepted by simple nucleophiles, leading to the formation of hindered alcohols and even alkyl fluorides. This method was evaluated for its ability to circumvent the synthetic bottlenecks encountered in the preparation of 12 chemical scaffolds, leading to higher yields of the required products, in addition to substantial reductions in the number of steps and the amount of labour required to prepare them. The use of molecular probes and the results of kinetic studies support the proposed mechanism and the role of additives under the conditions examined. The reaction manifold that we report here demonstrates the power of electrochemistry to access highly reactive intermediates under mild conditions and, in turn, the substantial improvements in efficiency that can be achieved with these otherwise-inaccessible intermediates. A route to the synthesis of hindered ethers is developed, in which electrochemical oxidation is used to liberate high-energy carbocations that are then captured by an alcohol.
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