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Updated: Jan 14, 2026

Synthesis and Performance Characterizations of Transition Metal Single Atom Catalyst for Electrochemical CO2 Reduction
Published on: April 10, 2018
Orbital Hybridization-Mediated Decoupling of Electrocatalytic Functions for Paired CO2 Electrosynthesis
Youjia Wang1, Bochen Tian2, Yuxin Tian2
1State Key Laboratory of Heavy Oil Processing, China University of Petroleum, Beijing, China.
None:
The intrinsic trade-offs between activity, selectivity, and stability pose a fundamental challenge in electrocatalyst design. Here, we address these challenges by constructing a dual-scale catalytic architecture where traditionally competing functions are decoupled and optimized simultaneously. Our approach is guided by the unique orbital hybridization landscape of CeO2 {110} facets, predicted by density functional theory (DFT) to confer a moderate Ag adsorption energy (-4.11 eV), to construct an electronically coupled interface of atomically dispersed Ag1 (for CO2 activation) and metallic Agn sub-nanoclusters (for electron transport). The resulting orbitally hybridized interface boosts oxygen vacancy (OV) density by 1.84-fold and reduces charge-transfer resistance by 58%. When deployed in a membrane-free paired electrolyzer, this catalyst enables direct dialkyl carbonate synthesis from CO2, achieving 88.53% Faradaic efficiency (FE) for dimethyl carbonate (DMC) at an industrial current density of 52.5 mA·cm-2 with 20 h stability, a performance competitive with the state-of-the-art. The versatility of this morphology-governed orbital hybridization strategy is further demonstrated by the selective production of diethyl carbonate (DEC). This work establishes a rational design principle that controls catalytic synergy through crystallographically defined orbital interactions, offering a promising approach to address persistent trade-offs in electrocatalysis for CO2 valorization.
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