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Isotopic Probe Illuminates the Role of the Electrode Surface in Proton Coupled Hydride Transfer Electrochemical Reduction of Pyridinium on Pt(111)

DOE

Source: doe_osti
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A recently proposed mechanism for electrochemical CO<sub>2</sub> reduction on Pt (111) catalyzed by aqueous acidic pyridine solutions suggests that the observed redox potential of ca. -600 mV vs. SCE is due to the one-electron reduction of pyridinium through proton coupled electron transfer (PCET) to form H atoms adsorbed on the Pt surface (H<sub>ads</sub>). The initial pyridinium reduction was probed isotopically via deuterium substitution. A combined experimental and theoretical analysis found equilibrium isotope effects (EIE) due to deuterium substitution at the acidic pyridinium site. A shift in the cathodic cyclic voltammetric half wave potential of -25 mV was observed, consistent with the theoretical prediction of -40 mV based on the recently proposed reaction mechanism where pyridinium is essential to establish a high concentration of Bronsted acid in contact with the substrate CO<sub>2</sub> and with the Pt surface. A prefeature in the cyclic voltammogram was examined under isotopic substitution and indicated an H-ads intermediate in pyridinium reduction. In conclusion, the theoretical prediction and observation of an BM supported the assignment of the cathodic wave to the proposed reduction of pyridinium through PCET forming H<sub>ads</sub> and eventually H<sub>2</sub> on the Pt surface.. Authors: Zeitler, Elizabeth L. [Princeton Univ., Princeton, NJ (United States); Princeton University]; Ertem, Mehmed Z. [Brookhaven National Lab. (BNL), Upton, NY (United States); Yale Univ., New Haven, CT (United States)]; Pander, III, James E. [Princeton Univ., Princeton, NJ (United States)]; Yan, Yong [Princeton Univ., Princeton, NJ (United States)]; Batista, Victor S. [Yale Univ., New Haven, CT (United States)]. DOE Contract: SC0002133. Subjects: 08 HYDROGEN; 14 SOLAR ENERGY; 25 ENERGY STORAGE; 37 INORGANIC, ORGANIC, PHYSICAL, AND ANALYTICAL CHEMISTRY; Pyridinium; carbon-dioxide; co2 reduction; density functional theory; electrocatalysis; hydrogen adsorption; isotope effect; proton coupled electron transfer; supporting electrolyte; weak acid

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