Bryan Parnitzke, Rémy F. Lalisse, Ethan Gerhardt, Tapas Maity, Yaning Liu, Zi Xuan, Osvaldo Gutiérrez, Joseph Derosa
High Resolution Image Download MS PowerPoint Slide Redox mediators continue to emerge as powerful tools for driving electrochemical reactions, preventing electrode surface fouling and/or facilitating redox processes at milder operating potentials than direct electrolysis requires. In this study, we demonstrate a tandem electrocatalytic approach using a Cp 2 Co redox mediator and (dppe)CoCl 2 precatalyst to selectively hydrogenate a variety of alkynes to cis- alkenes. Controlled potential electrolysis (CPE) at the potential of the mediator ( E app = −1.45 V vs Fc +/0 ) successfully generates a variety of terminal and internal alkenes in moderate to good yields. Notably, substrates with tethered Lewis bases further drive selectivity almost exclusively for the Z isomer. Mechanistic investigation of the tandem catalytic reaction via CV and DFT point toward a multisite proton-coupled electron transfer (MS-PCET) step involving a hydride-free pathway where Cp 2 Co facilitates the reduction of alkyne- and acid-bound (dppe)Co(I)/(0). This developed methodology can be applied toward the synthesis of cis -stilbenoid natural products, as demonstrated with combretastatin A-4. It is also amenable to more practical gram-scale setup and proceeds with up to 99% Faradaic efficiency.