Abstract
Iron-based catalysts with strong oxophilicity typically induce inert O-end adsorption of nitrogen-containing intermediates, severely constraining C‒N coupling efficiency in urea electrosynthesis. To break this thermodynamic limit and actively invert the adsorption configuration, we deliver a “geometry-spin” synergistic strategy to construct a surface-segregated Cu‒Fe@NC bimetallic electrocatalyst. Cu‒Fe interfacial tensile strain and orbital hybridization induce Fe-site spin depolarization, forming an atomic “spin-valve” for enhanced NO3−/CO2 co-reduction. It achieves 61.8% urea Faradaic efficiency, with remarkable yields of 2,273.7 and 21,176.7 μg h−1 mg−1 in H-type and flow cells, respectively. Mechanistic investigations elucidate that surface segregation optimizes spatial distance for Cu-activated ∗CO and Fe-immobilized ∗NO2; meanwhile, Cu incorporation realigns Fe d-band center toward the Fermi level, promoting ∗NO2 inversion to active N-end adsorption, thereby reducing the C‒N coupling kinetic barrier for urea electrosynthesis. This work offers a universal paradigm for oriented electrosynthesis by leveraging the geometry-spin coupling effect to reverse the adsorption configuration of key intermediates.
| Original language | English |
|---|---|
| Article number | 101824 |
| Journal | Chem Catalysis |
| DOIs | |
| State | Accepted/In press - 2026 |
| Externally published | Yes |
Keywords
- adsorption inversion
- CO conversion
- lattice distortion
- spin polarization
- surface segregation
- urea electrosynthesis
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