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Updated: Jun 4, 2026

Synthesis and Performance Characterizations of Transition Metal Single Atom Catalyst for Electrochemical CO2 Reduction
Published on: April 10, 2018
Atomic-Layer Thinning of Bismuth Oxide Confers Antireduction Stability and Tunable Protonation Pathway in
Chang Wang1, Shuxian Xie1, Yanyang Qin2
1Key Laboratory of the Ministry of Education for Advanced Catalysis Materials, Zhejiang Key Laboratory of Advanced Catalysis and Adsorption Materials, College of Chemistry and Materials Science, Zhejiang Normal University, Jinhua, Zhejiang 321004, China.
Abstract:
Bismuth oxide (Bi2O3) holds great potential for the selective electroreduction of CO2 to formate, yet its practical application is hindered by rapid cathodic reduction to metallic Bi0 and competing hydrogen evolution under industrially relevant conditions. Herein, we report a scalable solvothermal method to synthesize free-standing, three-atom-thick (∼1.25 nm) Bi2O3 nanosheets (3L-Bi2O3) that simultaneously achieve antireduction stability and tunable protonation kinetics for efficient CO2-to-formate conversion. Potentiodynamic XAS and Raman spectroscopies reveal that compressive strain induced by atomic-layer thinning strengthens Bi-O bonds, as evidenced by ∼11.5% Bi0 formation at -1.0 V vs RHE, compared to ∼65.7% for bulk-Bi2O3 at -0.6 V vs RHE. Consequently, 3L-Bi2O3 maintains a formate Faradaic efficiency of >90% and durability for ∼50 h at 200 mA cm-2 in 1.0 M KHCO3 solution. In situ infrared spectroscopy and differential mass spectrometry combined with kinetic analyses identify HCO3- as the essential proton donor in the two-step sequential proton-coupled electron transfer (PCET) process. In contrast to bulk-Bi2O3, 3L-Bi2O3 exhibits a distinct volcano-shaped dependence of formate selectivity on HCO3- concentration, reflecting a trade-off between sufficient proton availability for *OCHO formation and suppression of competitive hydrogen evolution. This behavior originates from the weakened *H adsorption and stabilized *OCHO intermediates on an atomically thin Bi2O3 surface, which shift the rate-determining step from the initial PCET step (as in bulk-Bi2O3) to the subsequent *OCHO protonation, as confirmed by free energy profiles and electronic structure analyses, including charge density differences, Bader charge analysis, and projected density of states.
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