Electro/Ni Dual-Catalyzed Decarboxylative C(sp3)-C(sp2) Cross-Coupling Reactions of Carboxylates and Aryl Bromide

被引:3
作者
Luo, Jian [1 ]
Davenport, Michael T. [2 ]
Ess, Daniel H. [2 ]
Liu, T. Leo [1 ]
机构
[1] Utah State Univ, Dept Chem & Biochem, 0300 Old Main Hill, Logan, UT 84322 USA
[2] Brigham Young Univ, Dept Chem & Biochem, Provo, UT 84604 USA
基金
美国国家科学基金会; 美国国家卫生研究院;
关键词
Cross-coupling; Electrosynthesis; Ni catalysis; Decarboxylation; PAIRED ELECTROLYSIS; NICKEL; ARYLATION; ELECTROCHEMISTRY; LIMITATIONS; PHOTOREDOX; PALLADIUM;
D O I
10.1002/anie.202403844
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Paired redox-neutral electrolysis offers an attractive green platform for organic synthesis by avoiding sacrificial oxidants and reductants. Carboxylates are non-toxic, stable, inexpensive, and widely available, making them ideal nucleophiles for C-C cross-coupling reactions. Here, we report the electro/Ni dual-catalyzed redox-neutral decarboxylative C(sp(3))-C(sp(2)) cross-coupling reactions of pristine carboxylates with aryl bromides. At a cathode, a Ni-II(Ar)(Br) intermediate is formed through the activation of Ar-Br bond by a Ni-I-bipyridine catalyst and subsequent reduction. At an anode, the carboxylates, including amino acid, benzyl carboxylic acid, and 2-phenoxy propionic acid, undergo oxidative decarboxylation to form carbon-based free radicals. The combination of Ni-II(Ar)(Br) intermediate and carbon radical results in the formation of C(sp(3))-C(sp(2)) cross-coupling products. The adaptation of this electrosynthesis method to flow synthesis and valuable molecule synthesis was demonstrated. The reaction mechanism was systematically studied through electrochemical voltammetry and density functional theory (DFT) computational studies. The relationships between the electrochemical properties of carboxylates and the reaction selectivity were revealed. The electro/Ni dual-catalyzed cross-coupling reactions described herein expand the chemical space of paired electrochemical C(sp(3))-C(sp(2)) cross-coupling and represent a promising method for the construction of the C(sp(3))-C(sp(2)) bonds because of the ubiquitous carboxylate nucleophiles and the innate scalability and flexibility of electrochemical flow-synthesis technology.
引用
收藏
页数:10
相关论文
共 46 条
[1]  
Bard A. J., 2022, ELECTROCHEMICAL METH
[2]   Carboxylic Acids as Adaptive Functional Groups in Metallaphotoredox Catalysis [J].
Beil, Sebastian B. ;
Chen, Tiffany Q. ;
Intermaggio, Nicholas E. ;
MacMillan, David W. C. .
ACCOUNTS OF CHEMICAL RESEARCH, 2022, 55 (23) :3481-3494
[3]   Emerging Nickel Catalysis in Heck Reactions: Recent Developments [J].
Bhakta, S. ;
Ghosh, T. .
ADVANCED SYNTHESIS & CATALYSIS, 2020, 362 (23) :5257-5274
[4]   Metallaphotoredox: The Merger of Photoredox and Transition Metal Catalysis [J].
Chan, Amy Y. ;
Perry, Ian B. ;
Bissonnette, Noah B. ;
Buksh, Benito F. ;
Edwards, Grant A. ;
Frye, Lucas, I ;
Garry, Olivia L. ;
Lavagnino, Marissa N. ;
Li, Beryl X. ;
Liang, Yufan ;
Mao, Edna ;
Millet, Agustin ;
Oakley, James, V ;
Reed, Nicholas L. ;
Sakai, Holt A. ;
Seath, Ciaran P. ;
MacMillan, David W. C. .
CHEMICAL REVIEWS, 2022, 122 (02) :1485-1542
[5]   Mechanisms of Nickel-Catalyzed Cross-Coupling Reactions [J].
Diccianni, Justin B. ;
Diao, Tianning .
TRENDS IN CHEMISTRY, 2019, 1 (09) :830-844
[6]   Zinc-free, Scalable Reductive Cross-Electrophile Coupling Driven by Electrochemistry in an Undivided Cell [J].
Franke, Mareena C. ;
Longley, Victoria R. ;
Rafiee, Mohammad ;
Stahl, Shannon S. ;
Hansen, Eric C. ;
Weix, Daniel J. .
ACS CATALYSIS, 2022, 12 (20) :12617-12626
[7]   Transition-Metal Catalysis of Nucleophilic Substitution Reactions: A Radical Alternative to SN1 and SN2 Processes [J].
Fu, Gregory C. .
ACS CENTRAL SCIENCE, 2017, 3 (07) :692-700
[8]   How to approach flow chemistry [J].
Guidi, Mara ;
Seeberger, Peter H. ;
Gilmore, Kerry .
CHEMICAL SOCIETY REVIEWS, 2020, 49 (24) :8910-8932
[9]   Controlling Ni redox states by dynamic ligand exchange for electroreductive Csp3-Csp2 coupling [J].
Hamby, Taylor B. ;
LaLama, Matthew J. ;
Sevov, Christo S. .
SCIENCE, 2022, 376 (6591) :410-+
[10]  
Han FS, 2013, CHEM SOC REV, V42, P5270, DOI 10.1039/c3cs35521g