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Pd-Induced Cu Site Differentiation in Pd1Cu/Ag-N-C Catalyst Enables Asymmetric CO─CHO Coupling for Efficient
Xin Cui1, Yihong Yu1, Teng Zhang1
1Key Lab for Anisotropy and Texture of Materials (MoE), School of Materials Science and Engineering, Northeastern University, Shenyang, 110819, China.
Abstract:
Electrochemical CO2 reduction to ethylene (C2H4) presents a pivotal strategy for industrial decarbonization and carbon valorization but is persistently hindered by the intrinsic high kinetic barrier for symmetric *CO─*CO coupling on conventional Cu catalysts. To surmount this fundamental challenge, we synthesized a tandem Pd1Cu/Ag-N-C catalyst that achieves site differentiation of the surface Cu. The Pd1 atom induces electronic heterogeneity by creating two electronically distinct Cu sites. The Pd-proximal sites promote *CO protonation to *CHO by leveraging Pd assisted H2O dissociation, and Pd-distal sites stabilize *CO. This synergistic division unlocks a highly efficient asymmetric C─CHO coupling pathway. Operando spectroscopy and DFT calculations confirm that the engineered pathway lowers the critical C─C coupling barrier by ∼50%. The Pd1Cu/Ag-N-C catalyst delivers a peak C2H4 Faradaic efficiency of 78.8% (±2.5%) with a partial current density of 441 mA cm-2 at -0.97 V versus RHE in a flow cell, while maintaining excellent operational stability. This work validates asymmetric CO─CHO coupling as a superior route for C2H4 electrosynthesis by introducing a generalizable design paradigm of precisely steering reaction pathways on multi-carbon electrocatalysts.
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