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April 24, 2026Angewandte Chemie1 citationsOpen Access

Concerted Proton and Electron Transfer in Heterogeneous Electrocatalytic CO 2 Reduction

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SNSeonmyeong NohGZGong ZhangMKMegan Kelly

Key Points

  • This study aims to understand how protons affect the process of CO2 conversion into CO on various electrode surfaces.
  • Investigated CO2-to-CO conversion on Ag, Au, and Zn surfaces using concerted proton-electron transfer pathways.
  • Analyzed the influence of proton donors on overpotential and reaction kinetics.
  • Utilized kinetic isotope effect measurements and infrared spectroscopy to support findings.
  • Demonstrated that concerted proton-electron transfer can lower the overpotential by approximately 400 mV compared to cation-stabilized mechanisms.
  • Identified that kinetically, proton supply limits the efficiency of the CO2 reduction process.
  • Revealed that factors like proton donor competition can influence product outcomes in CO2 reduction.

Abstract

ABSTRACT Understanding how protons influence heterogeneous electrocatalytic CO 2 reduction on electrode surfaces is critical for advancing energy‐efficient carbon conversion technologies. Here, we show that on Ag, Au, and Zn surfaces, a concerted proton‐electron transfer (CPET) pathway enables CO 2 ‐to‐CO conversion at up to ∼400 mV lower overpotential than commonly proposed cation‐stabilized mechanisms, which dominate reactivity at higher overpotentials. Using both positively charged and neutral proton donors, we show that CPET operates at low overpotentials but is limited by the rate of proton supply. Kinetic isotope effect measurements and infrared adsorption spectroscopy support the involvement of protons in the rate‐determining step. Furthermore, our data shed light on the complex competition for proton donors between CO 2 reduction, carbonate acidification, and hydrogen evolution, explaining commonly reported product trends. Our findings suggest that enhancing proton flux and suppressing the hydrogen evolution reaction can further promote CPET‐based CO 2 reduction, offering a pathway to more efficient electrocatalytic processes.

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Cite This Study

Noh et al. (2026) studied this question.

synapsesocial.com/papers/69eb0aeb553a5433e34b4dd1https://doi.org/10.1002/ange.202515715
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