College of Chemistry and Molecular Sciences, Institute for Advanced Studies (IAS) , Wuhan University , Wuhan 430072 , People's Republic of China.
National Research Center for Carbohydrate Synthesis , Jiangxi Normal University , Nanchang 330022 , People's Republic of China.
Acc Chem Res. 2019 Dec 17;52(12):3309-3324. doi: 10.1021/acs.accounts.9b00512. Epub 2019 Nov 27.
Oxidative cross-coupling has proved to be one of the most straightforward strategies for forming carbon-carbon and carbon-heteroatom bonds from easily available precursors. Over the past two decades, tremendous efforts have been devoted in this field and significant advances have been achieved. However, in order to remove the surplus electrons from substrates for chemical bonds formation, stoichiometric oxidants are usually needed. Along with the development of modern sustainable chemistry, considerable efforts have been devoted to perform the oxidative cross-coupling reactions under external-oxidant-free conditions. Electrochemical synthesis is a powerful and environmentally benign approach, which can not only achieve the oxidative cross-couplings under external-oxidant-free conditions, but also release valuable hydrogen gas during the chemical bond formation. Recently, the electrochemical oxidative cross-coupling with hydrogen evolution reactions has been significantly explored. This Account presents our recent efforts toward the development of electrochemical oxidative cross-coupling with hydrogen evolution reactions. (1) We explored the oxidative cross-coupling of thiols/thiophenols with arenes, heteroarenes, and alkenes for C-S bond formation. (2) Using the strategy of electrochemical oxidative C-H/N-H cross-coupling with hydrogen evolution, we successfully realized the C-H amination of phenols, anilines, imidazopyridines, and even ethers. (3) Employing halide salts as the green halogenating reagents, we developed a clean C-H halogenation protocol under electrochemical oxidation conditions. To address the limitation that this reaction had to carry out in aqueous solvent, we also developed an alternative method that uses CBr, CHBr, CHBr, CClBr, and CCl as halogenating reagents and the mixture of acetonitrile and methanol as cosolvent. (4) We also developed an approach for constructing C-O bonds in a well-developed electrochemical oxidative cross-coupling with hydrogen evolution manner. (5) Under mild external-oxidant-free electrochemical conditions, we realized the C(sp)-H and C(sp)-H phosphonylation with modest to high yields. (6) We successfully achieved the S-H/S-H cross-coupling with hydrogen evolution under electrochemical oxidation conditions. By anodic oxidation instead of chemical oxidants, the overoxidation of thiols and thiophenols was well avoided. (7) The methods for constructing structurally diverse heterocyclic compounds were also developed via the electrochemical oxidative annulations. (8) We have also applied the electrochemical oxidative cross-coupling with hydrogen evolution strategy to the alkenes difunctionalization for constructing multiple bonds in one step, such as C-S/C-O bonds, C-S/C-N bonds, C-Se/C-O bonds, and C-Se/C-N bonds. We hope our studies will stimulate the research interest of chemists and pave the way for the discovery of more electrochemical oxidative cross-coupling with hydrogen evolution reactions.
氧化交叉偶联已被证明是从易得前体制备碳-碳和碳-杂原子键的最直接策略之一。在过去的二十年中,人们在这一领域投入了大量的努力,并取得了重大的进展。然而,为了从底物中除去形成化学键所需的过剩电子,通常需要使用化学计量的氧化剂。随着现代可持续化学的发展,人们致力于在无外部氧化剂的条件下进行氧化交叉偶联反应。电化学合成是一种强大且环境友好的方法,不仅可以在无外部氧化剂的条件下实现氧化交叉偶联,还可以在化学键形成过程中释放有价值的氢气。最近,电化学氧化与氢气析出反应的交叉偶联反应得到了显著的探索。本综述介绍了我们在电化学氧化与氢气析出反应的交叉偶联方面的最新进展。(1)我们探索了硫醇/硫酚与芳烃、杂芳烃和烯烃的氧化交叉偶联,以形成 C-S 键。(2)我们采用电化学氧化 C-H/N-H 交叉偶联与氢气析出的策略,成功实现了酚类、苯胺类、咪唑并吡啶类甚至醚类的 C-H 氨化。(3)我们使用卤化物盐作为绿色卤化试剂,在电化学氧化条件下开发了一种清洁的 C-H 卤化方案。为了解决该反应必须在水溶剂中进行的限制,我们还开发了一种替代方法,使用 CBr、CHBr、CHBr、CClBr 和 CCl 作为卤化试剂,乙腈和甲醇的混合物作为共溶剂。(4)我们还开发了一种在电化学氧化与氢气析出的交叉偶联中构建 C-O 键的方法。(5)在温和的无外部氧化剂电化学条件下,我们以中等至高产率实现了 C(sp)-H 和 C(sp)-H 膦化。(6)我们成功地在电化学氧化条件下实现了 S-H/S-H 交叉偶联和氢气析出。通过阳极氧化代替化学氧化剂,很好地避免了硫醇和硫酚的过度氧化。(7)还通过电化学氧化环化反应发展了构建结构多样的杂环化合物的方法。(8)我们还将电化学氧化与氢气析出的交叉偶联策略应用于烯烃的双官能化反应,以一步构建多个键,如 C-S/C-O 键、C-S/C-N 键、C-Se/C-O 键和 C-Se/C-N 键。我们希望我们的研究将激发化学家的研究兴趣,并为发现更多的电化学氧化与氢气析出反应铺平道路。