Institutes of Physical Science and Information Technology, Key Laboratory of Structure and Functional Regulation of Hybrid Materials of Ministry of Education, Anhui University, Hefei, Anhui 230601, China.
Department of Chemistry and Biochemistry, University of California Merced, Merced, California 95343, United States.
J Am Chem Soc. 2023 Jun 28;145(25):14143-14154. doi: 10.1021/jacs.3c04864. Epub 2023 Jun 15.
The direct coupling of aldehydes with petrochemical feedstock alkenes and alkynes would represent a practical and streamlined approach for allylation and allenylation chemistry. However, conventional approaches commonly require preactivated substrates or strong bases to generate allylic or propargylic carbanions and only afford branched allylation or propargylation products. Developing a mild and selective approach to access synthetically useful linear allylation and allenylation products is highly desirable, albeit with formidable challenges. We report a strategy using hydrogen evolution reaction (HER) to generate a carbanion from weakly acidic sp C-H bonds (p ∼ 35-40) under mild reaction conditions, obviating the use of strong bases, Schlenk techniques, and multistep procedures. The cathodically generated carbanion the typical reaction selectivity to afford unconventional isomerizing allylation and allenylation products (125 examples). The generation of carbanions was monitored and identified by ultraviolet-visible (UV-vis) spectroelectrochemistry. Furthermore, we extended this protocol to the generation of other carbanions and their application in coupling reactions between alcohols with carbanions. The appealing features of this approach include mild reaction conditions, excellent functional group tolerance, unconventional chemo- and regioselectivity, and the diverse utility of products, which includes offering direct access to diene luminophores and bioactive scaffolds. We also performed cyclic voltammetry, control experiments, and density functional theory (DFT) calculations to rationalize the observed reaction selectivity and mechanism.
醛与石化原料烯烃和炔烃的直接偶联将代表一种实用且精简的烯丙基化和 allenyl 化化学方法。然而,传统方法通常需要预活化的底物或强碱来生成烯丙基或炔丙基碳负离子,并且只能得到支化的烯丙基化或炔丙基化产物。开发一种温和且选择性的方法来获得具有合成用途的线性烯丙基化和 allenyl 化产物是非常可取的,尽管这面临着巨大的挑战。我们报告了一种使用氢析出反应(HER)在温和的反应条件下从弱酸性 sp³ C-H 键(p∼35-40)中生成碳负离子的策略,避免了强碱、Schlenk 技术和多步程序的使用。阴极生成的碳负离子 典型的反应选择性得到非常规的异构化烯丙基化和 allenyl 化产物(125 个实例)。通过紫外-可见(UV-vis)光谱电化学监测和鉴定了碳负离子的生成。此外,我们将该方案扩展到其他碳负离子的生成及其在醇与碳负离子之间偶联反应中的应用。该方法的吸引人之处包括温和的反应条件、出色的官能团耐受性、非常规的化学和区域选择性以及产物的多样化用途,包括提供直接获得二烯发光体和生物活性支架的途径。我们还进行了循环伏安法、对照实验和密度泛函理论(DFT)计算,以合理说明观察到的反应选择性和机制。