首页 正文

Nature. 2025 Apr 22. doi: 10.1038/s41586-025-09011-0 Q148.52025

Stereoretentive radical cross-coupling

立体专一性的自由基交叉偶联反应 翻译改进

Jiawei Sun  1, Jiayan He  1, Luca Massaro  1, David A Cagan  1, Jet Tsien  1, Yu Wang  1, Flynn C Attard  1, Jillian E Smith  2, Jason S Lee  2, Yu Kawamata  1, Phil S Baran  3

作者单位 +展开

作者单位

  • 1 Department of Chemistry, Scripps Research, 10550 North Torrey Pines Road, La Jolla, CA, USA.
  • 2 Automated Synthesis Facility, Scripps Research, 10550 North Torrey Pines Road, La Jolla, CA, USA.
  • 3 Department of Chemistry, Scripps Research, 10550 North Torrey Pines Road, La Jolla, CA, USA. pbaran@scripps.edu.
  • DOI: 10.1038/s41586-025-09011-0 PMID: 40262632

    摘要 中英对照阅读

    Free radicals were first discovered over 120 years ago by Gomberg1 and the first radical cross-couplings demonstrated by Kochi in the 1970's.2 In contrast to widely employed polar cross-coupling chemistry to forge C(sp2)-C(sp2) bonds (Suzuki, Negishi, Kumada, etc.), radical cross-coupling is advantageous when applied to the coupling of saturated systems due to the mild conditions employed and enhanced chemoselectivity associated with single electron chemistry. Indeed, the ability to employ ubiquitous carbon-based fragments (carboxylic acids, alcohols, amines, olefins, etc.) in cross-coupling has dramatically simplified access to a variety of complex molecules.3-9 Despite these advantages, enantiospecific coupling reactions involving free radicals are unknown and generally believed to be challenging due to their near-instantaneous racemization (picosecond timescale).10 As a result, controlling the stereochemical outcome of radical cross-coupling can only be achieved on a case-by-case basis using bespoke chiral ligands11 or in a diastereoselective fashion guided by nearby stereocenters.12 Here we show how readily accessible enantioenriched sulfonylhydrazides and low loadings of an inexpensive achiral Ni-catalyst can be enlisted to solve this vexing challenge for the first time thereby enabling enantiospecific, stereoretentive radical cross-coupling between enantioenriched alkyl fragments and (hetero)aryl halides without exogenous redox chemistry or chiral ligands. Calculations support the intermediacy of a unique Ni-bound diazene-containing transition state with C-C bond formation driven by loss of N2.

    Keywords:stereoretentive radical; cross-coupling

    自由基是在120多年前由Gomberg首次发现的1,而在上世纪70年代,Kochi展示了第一个自由基交叉偶联反应2。与广泛使用的极性交叉偶联化学方法(如Suzuki、Negishi、Kumada等)相比,当应用于饱和系统的耦合时,由于采用温和的条件和单电子化学带来的增强选择性,自由基交叉偶联具有明显优势。3-9尽管存在这些优点,但涉及自由基的手性特异性耦合反应尚不清楚,并且普遍认为这是由于自由基在皮秒时间尺度上几乎瞬时地发生消旋化而变得极具挑战性的。10因此,控制自由基交叉偶联立体化学结果只能通过定制手性配体11或根据附近的手性中心指导的非对映选择性方式来实现。12在这里,我们展示了如何利用易于获得的手性富集磺酰腙和少量廉价的非手性Ni催化剂解决这一难题,并首次实现了无外源氧化还原化学和手性配体的情况下,具有手性和立体保留性的自由基交叉偶联反应,使富含对映异构体的烷基片段与(杂)芳卤化物耦合。计算支持了中间态包含一个独特的含氮过渡态的Ni结合二氮烯,并且C-C键形成是由N2损失驱动的。

    © 2025. The Author(s), under exclusive licence to Springer Nature Limited.

    关键词:立体保留性自由基; 交叉偶联反应

    翻译效果不满意? 用Ai改进或 寻求AI助手帮助 ,对摘要进行重点提炼
    Copyright © Nature. 中文内容为AI机器翻译,仅供参考!

    相关内容

    期刊名:Nature

    缩写:NATURE

    ISSN:0028-0836

    e-ISSN:1476-4687

    IF/分区:48.5/Q1

    文章目录 更多期刊信息

    全文链接
    引文链接
    复制
    已复制!
    推荐内容
    Stereoretentive radical cross-coupling