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溶剂对电生成碱驱动的转移氢化反应的影响。

Effect of Solvents on Electrogenerated Base-Driven Transfer Hydrogenation Reactions.

作者信息

Zhu Jing-Wei, Li Meng-Han, Zhang Feng, Wang Ya-Li, Lu Jia-Xing, Wang Huan

机构信息

Key Laboratory of Petroleum Molecular & Process Engineering, Shanghai Key Laboratory of Green Chemistry and Chemical Processes, School of Chemistry and Molecular Engineering, East China Normal University, Shanghai 200062, China.

College of Chemistry and Chemical Engineering, Ningxia Normal University, Guyuan 756099, China.

出版信息

Molecules. 2025 Feb 15;30(4):910. doi: 10.3390/molecules30040910.

Abstract

Transfer hydrogenation is a crucial technology for synthesizing fine chemicals and pharmaceuticals, offering improved safety and convenience over traditional hydrogen methods, although it typically requires external bases. While isopropanol is commonly used as a hydrogen source, methanol is superior but faces challenges due to its high dehydrogenation energy barrier, limiting its use under mild conditions. This study focuses on investigating the differences in the electrogenerated base-driven transfer hydrogenation of aromatic ketones in isopropanol and methanol solvents, using Mn(CO)₅Br and cyclohexanediamine derivatives as the catalyst. The research demonstrates that high enantiomeric excess (ee) values were obtained in isopropanol in the presence of chiral Mn-based catalysts, while only racemic products were observed in methanol. The results indicate a strong dependence of the catalytic pathway on the choice solvent: in isopropanol, the catalyst operates via a metal-ligand cooperative transfer hydrogenation, resulting in high ee values, whereas in methanol, transfer hydrogenation occurs through metal hydride transfer with no stereoselectivity.

摘要

转移氢化是合成精细化学品和药物的关键技术,与传统氢气方法相比,它具有更高的安全性和便利性,尽管通常需要外部碱。虽然异丙醇常用作氢源,但甲醇更具优势,但由于其较高的脱氢能垒,在温和条件下使用受到限制。本研究重点考察了以Mn(CO)₅Br和环己二胺衍生物为催化剂,在异丙醇和甲醇溶剂中电生成碱驱动的芳香酮转移氢化反应的差异。研究表明,在手性锰基催化剂存在下,异丙醇中获得了高对映体过量(ee)值,而在甲醇中仅观察到外消旋产物。结果表明催化途径强烈依赖于溶剂的选择:在异丙醇中,催化剂通过金属-配体协同转移氢化起作用,从而产生高ee值,而在甲醇中,转移氢化通过金属氢化物转移发生,没有立体选择性。

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