催化作用
对映选择合成
氢
继电器
Atom(片上系统)
材料科学
化学
结晶学
光化学
氢原子
组合化学
氢的自旋异构体
纳米技术
立体化学
无机化学
作者
Navadheer Yalamanchili,Jules Hugo Alexandre,Robert L. Anderson,Giuseppe Zuccarello
出处
期刊:Nature
[Nature Portfolio]
日期:2026-06-01
卷期号:655 (8122): 381-388
标识
DOI:10.1038/s41586-026-10692-4
摘要
Abstract Most biological functions are regulated by chiral molecules 1 that contain at least one tertiary stereogenic carbon, that is, a carbon with one C( sp 3 )–H bond. Hydrogen atom transfer (HAT) 2 is a straightforward strategy that can be used to either edit 3 or introduce tertiary stereocentres in multiple synthetically useful transformations 4 , especially when coupled with photoredox catalysis 5,6 . However, traditional de novo design of chiral HAT catalysts that provide sufficient enantiocontrol over short-lived open-shell intermediates 7 has represented a major hurdle in the development of enantioselective HAT reactions. Here we describe a distinct approach in which chiral HAT catalysts are obtained in situ by non-covalent self-assembly of privileged chiral phosphoric acids and commercial 2-mercaptopyridines. The phosphoric acid serves as a modular interchangeable chiral element that renders the achiral thiol effectively chiral, thereby allowing access to a previously inaccessible combinatorial space of chiral HAT catalysts. This platform enabled the photochemical deracemization of 2-aryl pyrrolidines, which are prevalent scaffolds in active pharmaceutical ingredients. Optical enrichment occurs by means of enantioselective hydrogen atom relay, in which a single chiral assembly orchestrates hydrogen atom abstraction and delivery. This conceptual approach of relaying chiral information through non-covalent assembly paves the way for discovery of numerous asymmetric radical transformations.
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