ARTIKEL

Selective Sieving Effect of Multi‐Atomic Bismuth Interfaces for Efficient Formate Electrosynthesis and Evolution at Industrial Current Density

02.09.2025
Selective Sieving Effect of Multi‐Atomic Bismuth Interfaces for Efficient Formate Electrosynthesis and Evolution at Industrial Current Density

Multi-atomic Bi interfaces (Bi0/Biδ+−O moiety) embedded in porous Bi2O3-x nanosheets featuring interfacial atomic sieving effect enabling efficient CO2-to-formate conversion across pH ranges. The simultaneous production of formate on both the cathode and anode was also achieved by coupling CO2 reduction reaction with the methanol oxidation reaction under industrial current density conditions. Further intermediacy of the concentrated formate for C–N coupling toward urea synthesis, establishing pathway for sustainable evolution.


Abstract

Constructing multi-atomic interfaces architectures is promising for electrocatalytic CO2 conversion, yet their synthesis and stability under industrial current densities remain challenging. Herein, multi-atomic Bi interfaces (Bi0/Biδ+−O moiety) were precisely engineered by embedding atomically dispersed Bi centers, encompassing Bi single atoms and Bi atomic clusters into the substrate of porous Bi2O3-x nanosheets. The composite showcases outstanding CO2 conversion performance across a wide pH range, attaining remarkable Faradaic efficiency for formate (FEformate) of 96.48% (at ultralow potential of −0.5 V versus RHE) and 92.26% in alkaline and neutral electrolytes, along with exceptional long-term stability over 150 h. Depending on the designed CH3OH electrooxidation catalyst (CuOx/ZnCo(OH)x) at the anode to couple with CO2 conversion, symmetrical/asymmetrical electrolyzers were developed. The approach could obtain high-added value products with FEformate >90% at both electrodes, achieving a production rate of 4980 µmol h−1 cm−2 under industrial current density. Combined in situ characterizations and theoretical calculations unravel that multiple atomic interfaces featuring interfacial atomic sieving effects effectively enhance preferential binding of *H and *CO2 to form *OCHO, while simultaneously suppressing the undesired recombination of hydrogen species into H2, rationalizing the high selectivity. Further intermediacy of concentrated formate precursors for subsequent C–N coupling toward urea synthesis, establishing a pathway for sustainable evolution.

Verwandte Artikel

Selective Sieving Effect of Multi‐Atomic Bismuth Interfaces for Efficient Formate Electrosynthesis and Evolution at Industrial Current Density
Preferential Texture of Surface Coating on Zn Anodes for Advanced Aqueous Batteries: Small Change but Big Gain
Selective Sieving Effect of Multi‐Atomic Bismuth Interfaces for Efficient Formate Electrosynthesis and Evolution at Industrial Current Density
P450 Enzyme LyoI Performs Hydro‐2,2′‐Bifuran Oxidation in the Polyether Ionophore Lysocellin
Selective Sieving Effect of Multi‐Atomic Bismuth Interfaces for Efficient Formate Electrosynthesis and Evolution at Industrial Current Density
Enhancement of Emission Efficiency and Color Tuning by Mixing Platinum(II) and Palladium(II) Complexes in a One‐dimensional Chain
Selective Sieving Effect of Multi‐Atomic Bismuth Interfaces for Efficient Formate Electrosynthesis and Evolution at Industrial Current Density
Exercise Modulates Exocytosis: Chemical Insights from the Intracellular Vesicle Perspective
Selective Sieving Effect of Multi‐Atomic Bismuth Interfaces for Efficient Formate Electrosynthesis and Evolution at Industrial Current Density
Bio‐Transport Regulation Inspired 5‐Fluorouracil Keto to Enol Tautomerism Achieving High Proton Conductivity