Unveiling the Novel Mechanistic Insights and Role of Base in Zn-Catalyzed Csp–Csp2 Cross-Coupling Reaction

IF 1.9 4区 化学 Q2 CHEMISTRY, ORGANIC Journal of Physical Organic Chemistry Pub Date : 2024-11-11 DOI:10.1002/poc.4671
C. Rajalakshmi, G. Krishnaveni, Binuja Varghese, Anandhu Gopan, Vibin Ipe Thomas
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Abstract

A detailed mechanistic investigation of the Zn (II)-catalyzed Csp–Csp2 (Sonogashira-type) cross-coupling reaction is reported herein, using the Density Functional Theory method. The present study unveiled an unconventional non-redox mechanism for Zn-catalyzed cross-coupling reaction, where the oxidation state of Zn remains intact throughout the catalytic cycle. Our study further revealed the significant role of the base in controlling the feasibility of cross-coupling reactions that are catalyzed by electron-deficient metal centers. Our study indicates that K3PO4 acts as an ancillary ligand (Lewis base) for the electron-deficient Zn (II) catalytic center rather than as a proton abstractor for the nucleophilic coupling partner (phenylacetylene) in this reaction. The active catalyst was identified to be a four-coordinate bis-DMEDA Zn (II) complex. The mechanism proceeds via the initial activation of the nucleophilic coupling partner (phenylacetylene), followed by the electrophilic coupling partner (organic halide) activation liberating the cross-coupled product by a concerted nucleophilic substitution pathway. The turn-over limiting step was identified to be the activation of the electrophilic coupling partner. The activation barrier obtained for the reaction, 31.0 kcal/mol concords well with experimental temperature requirements (125°C). The coordination by base is found to stabilize the rate-determining intermediates and transition states involved in the reaction. The mechanistic insights gained from this study could aid in the rational design and development of sustainable cross-coupling reactions using zinc as the catalyst.

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揭示了锌催化Csp-Csp2交叉偶联反应中碱的作用及其机理
本文采用密度泛函理论方法对Zn (II)催化的Csp-Csp2 (Sonogashira-type)交叉偶联反应进行了详细的机理研究。本研究揭示了锌催化交叉偶联反应的非常规非氧化还原机制,其中锌的氧化态在整个催化循环中保持完整。我们的研究进一步揭示了碱在控制由缺电子金属中心催化的交叉偶联反应的可行性方面的重要作用。我们的研究表明,在该反应中,K3PO4作为缺电子Zn (II)催化中心的辅助配体(路易斯碱),而不是作为亲核偶联伙伴(苯乙炔)的质子萃取剂。活性催化剂为四配位双dmeda Zn (II)配合物。该机制通过亲核偶联伙伴(苯基乙炔)的初始活化,随后亲电偶联伙伴(有机卤化物)的活化,通过协调的亲核取代途径释放交叉偶联产物。翻转限制步骤被确定为亲电偶联伙伴的激活。反应得到的活化势垒为31.0 kcal/mol,符合实验温度要求(125℃)。发现碱的配位稳定了反应中决定速率的中间体和过渡态。从本研究中获得的机理见解有助于合理设计和开发以锌为催化剂的可持续交叉偶联反应。
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来源期刊
CiteScore
3.60
自引率
11.10%
发文量
161
审稿时长
2.3 months
期刊介绍: The Journal of Physical Organic Chemistry is the foremost international journal devoted to the relationship between molecular structure and chemical reactivity in organic systems. It publishes Research Articles, Reviews and Mini Reviews based on research striving to understand the principles governing chemical structures in relation to activity and transformation with physical and mathematical rigor, using results derived from experimental and computational methods. Physical Organic Chemistry is a central and fundamental field with multiple applications in fields such as molecular recognition, supramolecular chemistry, catalysis, photochemistry, biological and material sciences, nanotechnology and surface science.
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