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Picomole-Scale Transition Metal Electrocatalysis Screening Platform for Discovery of Mild C-C Coupling and C-H Arylation through in Situ Anodically Generated Cationic Pd.
J Am Chem Soc. 2022 01 26; 144(3):1306-1312.JA

Abstract

Development of new transition-metal-catalyzed electrochemistry promises to improve overall synthetic efficiency. Here, we describe the first integrated platform for online screening of electrochemical transition-metal catalysis. It utilizes the intrinsic electrochemical capabilities of nanoelectrospray ionization mass spectrometry (nano-ESI-MS) and picomole-scale anodic corrosion of a Pd electrode to generate and evaluate highly efficient cationic catalysts for mild electrocatalysis. We demonstrate the power of the novel electrocatalysis platform by (1) identifying electrolytic Pd-catalyzed Suzuki coupling at room temperature, (2) discovering Pd-catalyzed electrochemical C-H arylation in the absence of external oxidant or additive, (3) developing electrolyzed Suzuki coupling/C-H arylation cascades, and (4) achieving late-stage functionalization of two drug molecules by the newly developed mild electrocatalytic C-H arylation. More importantly, the scale-up reactions confirm that new electrochemical pathways discovered by nano-ESI can be implemented under the conventional electrolytic reaction conditions. This approach enables in situ mechanistic studies by capturing various intermediates including transient transition metal species by MS, and thus uncovering the critical role of anodically generated cationic Pd catalyst in promoting otherwise sluggish transmetalation in C-H arylation. The anodically generated cationic Pd with superior catalytic efficiency and novel online electrochemical screening platform hold great potential for discovering mild transition-metal-catalyzed reactions.

Authors+Show Affiliations

Department of Chemistry, Texas A&M University, College Station, Texas 77843, United States. College of Material, Chemistry and Chemical Engineering, Hangzhou Normal University, Hangzhou 311121, China.Department of Chemistry, Texas A&M University, College Station, Texas 77843, United States.Department of Chemistry, Texas A&M University, College Station, Texas 77843, United States.Department of Chemistry, Texas A&M University, College Station, Texas 77843, United States.Department of Chemistry, Texas A&M University, College Station, Texas 77843, United States.Department of Chemistry, Texas A&M University, College Station, Texas 77843, United States.

Pub Type(s)

Journal Article
Research Support, Non-U.S. Gov't

Language

eng

PubMed ID

35015550

Citation

Cheng, Heyong, et al. "Picomole-Scale Transition Metal Electrocatalysis Screening Platform for Discovery of Mild C-C Coupling and C-H Arylation Through in Situ Anodically Generated Cationic Pd." Journal of the American Chemical Society, vol. 144, no. 3, 2022, pp. 1306-1312.
Cheng H, Yang T, Edwards M, et al. Picomole-Scale Transition Metal Electrocatalysis Screening Platform for Discovery of Mild C-C Coupling and C-H Arylation through in Situ Anodically Generated Cationic Pd. J Am Chem Soc. 2022;144(3):1306-1312.
Cheng, H., Yang, T., Edwards, M., Tang, S., Xu, S., & Yan, X. (2022). Picomole-Scale Transition Metal Electrocatalysis Screening Platform for Discovery of Mild C-C Coupling and C-H Arylation through in Situ Anodically Generated Cationic Pd. Journal of the American Chemical Society, 144(3), 1306-1312. https://doi.org/10.1021/jacs.1c11179
Cheng H, et al. Picomole-Scale Transition Metal Electrocatalysis Screening Platform for Discovery of Mild C-C Coupling and C-H Arylation Through in Situ Anodically Generated Cationic Pd. J Am Chem Soc. 2022 01 26;144(3):1306-1312. PubMed PMID: 35015550.
* Article titles in AMA citation format should be in sentence-case
TY - JOUR T1 - Picomole-Scale Transition Metal Electrocatalysis Screening Platform for Discovery of Mild C-C Coupling and C-H Arylation through in Situ Anodically Generated Cationic Pd. AU - Cheng,Heyong, AU - Yang,Tingyuan, AU - Edwards,Madison, AU - Tang,Shuli, AU - Xu,Shiqing, AU - Yan,Xin, Y1 - 2022/01/11/ PY - 2022/1/12/pubmed PY - 2022/1/12/medline PY - 2022/1/11/entrez SP - 1306 EP - 1312 JF - Journal of the American Chemical Society JO - J Am Chem Soc VL - 144 IS - 3 N2 - Development of new transition-metal-catalyzed electrochemistry promises to improve overall synthetic efficiency. Here, we describe the first integrated platform for online screening of electrochemical transition-metal catalysis. It utilizes the intrinsic electrochemical capabilities of nanoelectrospray ionization mass spectrometry (nano-ESI-MS) and picomole-scale anodic corrosion of a Pd electrode to generate and evaluate highly efficient cationic catalysts for mild electrocatalysis. We demonstrate the power of the novel electrocatalysis platform by (1) identifying electrolytic Pd-catalyzed Suzuki coupling at room temperature, (2) discovering Pd-catalyzed electrochemical C-H arylation in the absence of external oxidant or additive, (3) developing electrolyzed Suzuki coupling/C-H arylation cascades, and (4) achieving late-stage functionalization of two drug molecules by the newly developed mild electrocatalytic C-H arylation. More importantly, the scale-up reactions confirm that new electrochemical pathways discovered by nano-ESI can be implemented under the conventional electrolytic reaction conditions. This approach enables in situ mechanistic studies by capturing various intermediates including transient transition metal species by MS, and thus uncovering the critical role of anodically generated cationic Pd catalyst in promoting otherwise sluggish transmetalation in C-H arylation. The anodically generated cationic Pd with superior catalytic efficiency and novel online electrochemical screening platform hold great potential for discovering mild transition-metal-catalyzed reactions. SN - 1520-5126 UR - https://www.unboundmedicine.com/medline/citation/35015550/Picomole_Scale_Transition_Metal_Electrocatalysis_Screening_Platform_for_Discovery_of_Mild_C_C_Coupling_and_C_H_Arylation_through_in_Situ_Anodically_Generated_Cationic_Pd_ DB - PRIME DP - Unbound Medicine ER -