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本文引用的文献

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Metal-catalyzed Markovnikov-type selective hydrofunctionalization of terminal alkynes.金属催化的端炔的马氏型选择性氢官能化反应。
Chem Soc Rev. 2024 Jul 15;53(14):7566-7589. doi: 10.1039/d4cs00167b.
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Metal-ligand cooperativity in chemical electrosynthesis.化学电合成中的金属-配体协同作用。
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Deep Electroreductive Chemistry: Harnessing Carbon- and Silicon-based Reactive Intermediates in Organic Synthesis.深度电还原化学:在有机合成中利用碳基和硅基反应中间体
ACS Catal. 2023 Jun 16;13(12):8038-8048. doi: 10.1021/acscatal.3c01174. Epub 2023 May 31.
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Electrocatalytic Semihydrogenation of Terminal Alkynes Using Ligand-Based Transfer of Protons and Electrons.利用基于配体的质子和电子转移实现末端炔烃的电催化半氢化反应
J Am Chem Soc. 2024 Jan 10;146(1):476-486. doi: 10.1021/jacs.3c09885. Epub 2024 Jan 1.
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Electrochemical halogen-atom transfer alkylation via α-aminoalkyl radical activation of alkyl iodides.通过碘代烷的α-氨基烷基自由基活化进行的电化学卤素原子转移烷基化反应。
Nat Commun. 2023 Oct 26;14(1):6825. doi: 10.1038/s41467-023-42566-y.
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Electrochemical NiH-Catalyzed C(sp )-C(sp ) Coupling of Alkyl Halides and Alkyl Alkenes.电化学镍氢催化的卤代烃与烷基烯烃的C(sp³)-C(sp²)偶联反应
Angew Chem Int Ed Engl. 2023 Oct 26;62(44):e202311941. doi: 10.1002/anie.202311941. Epub 2023 Sep 25.
7
Electrochemically Driven Hydrogen Atom Transfer Catalysis: A Tool for C(sp)/Si-H Functionalization and Hydrofunctionalization of Alkenes.电化学驱动的氢原子转移催化:一种用于C(sp)/Si-H官能化及烯烃氢官能化的工具。
ACS Catal. 2023 Jun 16;13(13):8731-8751. doi: 10.1021/acscatal.3c01221. eCollection 2023 Jul 7.
8
Highly stereoselective synthesis of -alkenes electrochemical Ni-catalyzed hydroarylation of alkynes with aryl iodides.高对映选择性合成 -烯烃:电化学镍催化炔烃与芳基碘化物的氢芳基化反应。
Org Biomol Chem. 2023 Jun 28;21(25):5189-5193. doi: 10.1039/d3ob00705g.
9
Nickel-Catalyzed Markovnikov-Selective Hydrodifluoromethylation of Alkynes Using BrCF H.使用BrCF₂H进行镍催化的炔烃的马氏选择性氢二氟甲基化反应
Angew Chem Int Ed Engl. 2023 Aug 1;62(31):e202305426. doi: 10.1002/anie.202305426. Epub 2023 Jun 26.
10
Electrochemical Hydrosilylation of Alkynes.炔烃的电化学硅氢化反应
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通过金属-配体协同储存氢原子等价物实现的马尔科夫尼科夫选择性电催化氢烷基化反应

Markovnikov-Selective Electrocatalytic Hydroalkylation Enabled by Metal-Ligand Cooperative Storage of H-Atom Equivalents.

作者信息

Czaikowski Maia E, Boyn Jan-Niklas, Anderson John S

机构信息

Department of Chemistry, University of Chicago, Chicago, Illinois 60637, United States.

Department of Chemistry, University of Minnesota, Minneapolis, MN 55455, United States.

出版信息

ACS Catal. 2025 Jun 20;15(12):10694-10701. doi: 10.1021/acscatal.5c01943. Epub 2025 Jun 6.

DOI:10.1021/acscatal.5c01943
PMID:40589999
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC12206373/
Abstract

The synthesis of 1,1-disubstitued olefins is an important transformation that classically uses strategies like Wittig chemistry or cross coupling reactions. Here, we introduce an electrochemical method for the selective hydroalkylation of terminal alkynes to generate a variety of 1,1-disubstituted olefins. This approach utilizes a dihydrazonopyrrole Ni complex capable of storing an H equivalent (2H + 2e) on the ligand backbone. This mild reaction uses electricity and a weak acid and thus tolerates amine and ketone functional groups which are sensitive to classic Wittig conditions. Mechanistic studies reveal the essential role of the ligand steric environment in dictating product regioselectivity. Calculations support an outer sphere alkyl radical addition instead of a Ni-centered reductive elimination mechanism which is commonly invoked for transition metal hydroalkylation catalysts. Beyond its unique functional group compatibility, the scope of this reaction includes primary and secondary alkyl iodide electrophiles along with unactivated alkyne substrates. These findings underscore how metal-ligand cooperativity, particularly with ligand-based storage of protons and electrons, supports catalytic platforms which can be tuned for varied electrosynthetic applications beyond hydrogenation.

摘要

1,1-二取代烯烃的合成是一种重要的转化反应,传统上使用诸如维蒂希化学或交叉偶联反应等策略。在此,我们介绍一种电化学方法,用于末端炔烃的选择性氢烷基化反应,以生成多种1,1-二取代烯烃。该方法利用了一种二肼基吡咯镍配合物,它能够在配体主链上储存一个氢当量(2H + 2e)。这种温和的反应使用电和弱酸,因此能够耐受对经典维蒂希条件敏感的胺和酮官能团。机理研究揭示了配体空间环境在决定产物区域选择性方面的重要作用。计算结果支持外层球烷基自由基加成,而不是常用于过渡金属氢烷基化催化剂的以镍为中心的还原消除机理。除了其独特的官能团兼容性外,该反应的范围还包括伯烷基和仲烷基碘亲电试剂以及未活化的炔烃底物。这些发现强调了金属-配体协同作用,特别是基于配体的质子和电子储存,如何支持催化平台,这些平台可针对氢化以外的各种电合成应用进行调整。