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Updated: Oct 2, 2026

Magnetometric Characterization of Intermediates in the Solid-State Electrochemistry of Redox-Active Metal-Organic Frameworks
Published on: June 9, 2023
Bidirectional Electronic Modulation within Cu2O Lattice for Ampere-Level CO2 Electroreduction to Ethylene
Shanshan Chen1, Xiao-Rong Wen1, Wen-Jun Xie1
1State Key Laboratory and Institute of Elemento-Organic Chemistry, Frontiers Science Center for New Organic Matter, College of Chemistry, Nankai University, Tianjin, P. R. China.
Abstract:
Electrochemical CO2 reduction to ethylene requires Cu sites that simultaneously enrich carbon intermediates, promote C-C coupling, and suppress hydrogen evolution at high current density. Heteroatom doping is widely used to tune Cu-based catalysts. However, conventional single-dopant strategies typically impose either electron donation or electron withdrawal, limiting their ability to balance these coupled interfacial processes. Herein, a Y single-atom and Cl co-modified Cu2O catalyst (Y0.19-Cu2O-Cl) is developed to create lattice-confined donor-acceptor pairs for bidirectionally modulating Cu electronic states. Formation energy calculations prove the favorable thermodynamics of Y-Cl co-doping configuration. HAADF-STEM, XPS, and XAS support atomically dispersed Y, retained Cl-containing species, and coupled charge redistribution within the Cu2O-derived matrix. In situ Raman/ATR-SEIRAS and density functional theory calculations reveal that Y favors *CO enrichment, whereas Cl modifies hydrogen adsorption; the two dopants synergistically regulate Cu+ active sites and lower the C-C coupling energy barrier from 0.75 to 0.39 eV. Consequently, the catalyst achieves an FEC2H4 of 62.5% at 656.6 mA cm-2 and maintains higher ethylene selectivity than the singly modified controls, establishing donor-acceptor electronic pairing as a strategy for industrial-grade current densities for CO2 electroreduction.
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