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Article Abstract

The electrochemical C─N coupling of CO and nitrogenous species provides a promising approach for synthesizing valuable chemicals such as urea, amides, and other C─N compounds. However, the unbalanced formation of C- and N-intermediates results in slow C─N coupling kinetics. Herein, we report an atomically Pd-bridged Cu/CuO (Pd-Cu/CuO) catalyst, synthesized through the in situ electrochemical reconstruction of Pd-CuTe nanosheets. This catalyst features Pd-Cu dual sites that significantly enhance C─N coupling both thermodynamically and kinetically. The reconstructed Pd-Cu/CuO achieves a urea yield rate of 31.8 mmol h g and a Faradaic efficiency (FE) of 42.2%, along with excellent stability over 100 h. In situ spectroscopic examinations and theoretical calculations disclose that the Pd-Cu dual sites on Pd-Cu/CuO modulate the reduction kinetics of CO and NO , balance the formation of crucial *CO and *NH intermediates, and lower the energy barrier for C─N coupling, thereby facilitating urea synthesis. Furthermore, the Pd-Cu/CuO enables the unprecedented C─N coupling of aniline with CO, resulting in a remarkable acetanilide yield rate of 1021.2 mmol h g with an FE of 23.7%. This heteroatom bridging strategy offers a new pathway for designing efficient electrocatalyst for the synthesis of C─N coupled compounds.

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http://dx.doi.org/10.1002/anie.202503011DOI Listing

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