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Spectroelectrochemical insight into copper cobalt catalysts for CO<sub>2</sub> and nitrite co-electroreduction to urea.


ABSTRACT: Electrochemical CO2 and nitrite co-reduction provides a sustainable urea synthesis route but remains limited by low selectivity and an undecided C-N coupling mechanism. Here, we report co-sputtered bimetallic Cu-Co catalysts that facilitate urea formation via a tandem relay mechanism. The optimal Cu:Co ratio of 1:1 achieves a urea yield rate of 61 ± 6 mmol h⁻1gcat1 at -1.2 V vs. RHE under neutral pH, emphasizing the importance of proton balance in sustaining proton-coupled electron transfer. In situ synchrotron-based infrared and Raman spectroscopy monitor the dynamic evolution of *CO, *NH2, and C‒N intermediates. In situ X-ray absorption spectroscopy indicates the structural stability of metallic Cu and Co active sites. Density functional theory calculations suggest that *COOH + *NH2 coupling initiates urea pathway, with *NH2CO formation as the potential-determining step. This study integrates rational catalyst design and in situ spectroelectrochemical analysis to advance understanding of electrochemical C-N coupling for urea synthesis.

SUBMITTER: Ramadhany P 

PROVIDER: S-EPMC12917094 | biostudies-literature | 2026 Jan

REPOSITORIES: biostudies-literature

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Spectroelectrochemical insight into copper cobalt catalysts for CO&lt;sub&gt;2&lt;/sub&gt; and nitrite co-electroreduction to urea.

Ramadhany Putri P   Trần-Phú Thành T   Yuwono Jodie A JA   Hocking Rosalie K RK   Ma Zhipeng Z   Chau Ta Xuan Minh XM   Kumar Priyank P   Gunawan Denny D   Johannessen Bernt B   Tricoli Antonio A   Simonov Alexandr N AN   Amal Rose R   Daiyan Rahman R  

Nature communications 20260117 1


Electrochemical CO<sub>2</sub> and nitrite co-reduction provides a sustainable urea synthesis route but remains limited by low selectivity and an undecided C-N coupling mechanism. Here, we report co-sputtered bimetallic Cu-Co catalysts that facilitate urea formation via a tandem relay mechanism. The optimal Cu:Co ratio of 1:1 achieves a urea yield rate of 61 ± 6 mmol h⁻<sup>1</sup>g<sub>cat</sub>⁻<sup>1</sup> at -1.2 V vs. RHE under neutral pH, emphasizing the importance of proton balance in sus  ...[more]

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