化学
催化作用
阳离子聚合
钯
配体(生物化学)
组合化学
反应性(心理学)
接受者
过渡金属
还原消去
偶联反应
表面改性
光化学
氢键
有机化学
分子
物理化学
医学
生物化学
物理
受体
替代医学
病理
凝聚态物理
作者
Sven H. Kaster,Lei Zhu,William L. Lyon,Rulin Ma,Stephen E. Ammann,M. Christina White
出处
期刊:Science
[American Association for the Advancement of Science (AAAS)]
日期:2024-09-05
卷期号:385 (6713): 1067-1076
标识
DOI:10.1126/science.ado8027
摘要
Transition metal–catalyzed cross-couplings have great potential to furnish complex ethers; however, challenges in the C(sp 3 )–O functionalization step have precluded general methods. Here, we describe computationally guided transition metal–ligand design that positions a hydrogen-bond acceptor anion at the reactive site to promote functionalization. A general cross-coupling of primary, secondary, and tertiary aliphatic alcohols with terminal olefins to furnish >130 ethers is achieved. The mild conditions tolerate functionality that is prone to substitution, elimination, and epimerization and achieve site selectivity in polyol settings. Mechanistic studies support the hypothesis that the ligand’s geometry and electronics direct positioning of the phosphate anion at the π-allyl-palladium terminus, facilitating the phosphate’s hydrogen-bond acceptor role toward the alcohol. Ligand-directed counteranion positioning in cationic transition metal catalysis has the potential to be a general strategy for promoting challenging bimolecular reactivity.
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