The electrocatalytic synthesis of amides from abundant small molecules offers a sustainable route for green chemical production, yet faces fundamental challenges due to kinetic competition between C–C and C–N bond formation. Here we show an atomically engineered dual-site catalyst featuring nickel single atoms adjacent to copper nanoclusters (Ni-SA/Cu-NCs) on a nitrogen-doped carbon matrix for efficient CO2 and NO3− co-reduction to acetamide. This architecture enables complementary functions, with Ni sites selectively converting CO2 to CO and neighboring Cu nanoclusters promoting C–C coupling to form the *CCO intermediate while concurrently reducing NO3− to form the *NH2 intermediate. The resulting synergy facilitates rapid intermediate transfer and C–N coupling, delivering an acetamide yield rate of 257.3 mmol h−1 gcat.−1 at an industrial current density of 215.7 mA cm−2, with stable operation over 160 h. In situ spectroscopic studies and theoretical calculations suggest that strong Ni–Cu electronic coupling promotes reactant adsorption and reduces the activation barriers for critical steps, including *CO dimerization and *CCO–*NH2 coupling. This work provides an atomic-level design strategy for multi-site catalysts to steer complex electrocatalytic reactions toward value-added products. Producing amides sustainably from abundant feedstocks remains challenging because carbon–carbon and carbon–nitrogen bond formation competes kinetically. Here, the authors report a dual-site catalyst pairing nickel single atoms with copper nanoclusters that directs CO2 and nitrate co-reduction toward acetamide.
S. Xia, Hao Tan, Jianfang Zhang et al.· Nature Communications· 0 citations
The electrocatalytic co‐reduction of CO
2
and nitrate () to synthesize urea presents a sustainable alternative to traditional industrial processes, yet its efficiency is fundamentally limited by the kinetically mismatched activation and coupling of CO
2
and . To address this, we designed and synthesized two insoluble trinuclear ruthenium (Ru) cluster‐anchored polyoxometalate (POM) catalysts, Ru
3
SiW
12
and Ru
3
PW
12
, in which the central heteroatom of the Keggin‐type framework (Si vs. P) serves as a key structural variable. This work reveals that the central heteroatom critically modulates the synergy within the Ru‐cluster‐ligand ensemble, which in turn governs the catalytic interface. The optimized Ru
3
SiW
12
delivers a remarkable urea yield rate of 81.6 mmol h
−1
g
cat.
−1
with a Faradaic efficiency of 56.3% at −0.30 V versus RHE, substantially outperforming its P‐centered analog. In situ spectroscopic studies combined with electrochemical analysis demonstrate that the Si‐centered framework promotes a more effective activation of interfacial water, establishing an extensive hydrogen‐bonding network that facilitates proton transfer and hydrogenation of key C‐ and N‐intermediates, thereby boosting C–N coupling. This study highlights the pivotal role of engineering synergistic metal cluster‐ligand motifs via secondary coordination sphere tuning in insoluble matrices, offering a new design strategy for advanced electrocatalysts in sustainable chemical synthesis.