Suppr超能文献

锌催化的铃木-宫浦偶联反应分子机制的映射:一项计算研究

Mapping the molecular mechanism of zinc catalyzed Suzuki-Miyaura coupling reaction: a computational study.

作者信息

Rajalakshmi C, Devadas Sudheesh, M Manumol, Kottooran John B, S Kavya, Krishnan K Keerthi, Anilkumar Gopinathan, Thomas Vibin Ipe

机构信息

Department of Chemistry, CMS College Kottayam (Autonomous), Kottayam, Kerala, 686001, India.

E.C.G. Sudarshan Center for Theoretical Sciences, CMS College Kottayam (Autonomous), Kottayam, Kerala, 686001, India.

出版信息

Org Biomol Chem. 2025 Mar 19;23(12):2828-2835. doi: 10.1039/d4ob01170h.

Abstract

The Suzuki-Miyaura Coupling (SMC) reaction is a powerful method for forming carbon-carbon bonds in organic synthesis. Recent advancements in SMC reactions have introduced first-row transition metal catalysts, with zinc garnering significant interest due to its cost-effective and eco-friendly nature. Despite progress in experimental protocols, the mechanistic details of zinc-catalyzed SMC reactions are limited. This study explores the mechanism of Zn-catalyzed SMC reactions between alkynyl halides and aryl boronic acids using density functional theory. A four-coordinated ,'-dimethylethylenediamine (DMEDA) ligated Zn(II) complex is identified as the active catalyst. Unlike Pd-catalyzed SMC, the mechanism proceeds an initial transmetalation process forming aryl zincates. Further, the activation of organic halide occurs through a redox-neutral pathway involving a concerted nucleophilic substitution-reductive elimination process, eliminating the cross-coupled product while regenerating the active catalyst. The energy span (27.2 kcal mol) for the process concords with the temperature requirements (80 °C) in the experiment. The activation of organic halide is identified as the turnover-limiting step. The unconventional redox-neutral mechanism could be rationalized by the stable d configuration at the Zn(II) center and the ease of bond formation between the coupling partners. This computational study thereby provides new mechanistic insights into Suzuki cross-coupling reactions, aiding the synthesis of novel functional scaffolds using eco-friendly methods.

摘要

铃木-宫浦偶联(SMC)反应是有机合成中形成碳-碳键的一种强大方法。SMC反应的最新进展引入了第一行过渡金属催化剂,其中锌因其具有成本效益和环境友好的特性而备受关注。尽管在实验方案方面取得了进展,但锌催化的SMC反应的机理细节仍然有限。本研究使用密度泛函理论探索了炔基卤化物与芳基硼酸之间锌催化的SMC反应的机理。一种四配位的N,N'-二甲基乙二胺(DMEDA)配位的Zn(II)配合物被确定为活性催化剂。与钯催化的SMC不同,该机理通过一个初始的转金属化过程进行,形成芳基锌酸盐。此外,有机卤化物的活化通过一个氧化还原中性途径发生,该途径涉及一个协同的亲核取代-还原消除过程,消除交叉偶联产物同时再生活性催化剂。该过程的能量跨度(27.2千卡/摩尔)与实验中的温度要求(80°C)一致。有机卤化物的活化被确定为周转限制步骤。这种非常规的氧化还原中性机理可以通过Zn(II)中心稳定的d构型以及偶联伙伴之间易于形成键来解释。因此,这项计算研究为铃木交叉偶联反应提供了新的机理见解,有助于使用环境友好的方法合成新型功能支架。

相似文献

5
Unveiling the molecular mechanism of Mn and Zn-catalyzed Ullmann-type C-O cross-coupling reactions.
Phys Chem Chem Phys. 2025 Feb 6;27(6):2948-2957. doi: 10.1039/d4cp02777a.

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验