Spin Polarization Enables Spin-Conserved Intermediate Migration for Selective C–N Coupling toward Urea Electrosynthesis

Abstract Electrochemical coreduction of CO2 and nitrate to urea offers a promising approach to carbon–nitrogen fixation but still suffers from sluggish C–N coupling and severe competition from ammonia formation. Existing studies primarily focus on intermediate adsorption and largely overlook the spin-state changes that occur during intermediate transformation and C–N coupling. Herein, we introduce a Cu-modulated spin-regulation strategy where Cu substitution subtly modulates the Fe electronic configuration of FeSe2 to generate spin-polarized Fe centers. We reveal that mixed-valence Fe species in Cu-FeSe2 induce a double-exchange-like spin polarization, which facilitated the migration of N-containing intermediates between neighboring Fe sites, thereby promoting C–N coupling. As a result, the Cu-FeSe2 catalyst achieves a urea Faradaic efficiency of 54.1%, a yield rate of 78.5 mmol h–1 g–1, and an electrochemical stability over 75 h. Supported by operando spectroscopic analyses and density functional theory (DFT) calculations, the spin-polarized Fe centers stabilize *COOH and *NH2 intermediates while suppressing over-hydrogenation to ammonia. This work highlights spin polarization as a promising strategy for constructing efficient electrocatalytic sites and enabling multi-intermediate electrocatalysis toward urea synthesis.

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Publication Details

Journal
ACS Catalysis
Published
2026-10-08
DOI
https://doi.org/10.1021/acscatal.6c04649
Primary Topic
CO2 Reduction Techniques and Catalysts
Type
article
Field-Weighted Citation Impact
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article

Spin Polarization Enables Spin-Conserved Intermediate Migration for Selective C–N Coupling toward Urea Electrosynthesis

Xuelian Qu, Yutong Luo, Tianyi Gao, Tong Zhang et al.
ACS Catalysis
CO2 Reduction Techniques and Catalysts
article

Spin Polarization Enables Spin-Conserved Intermediate Migration for Selective C–N Coupling toward Urea Electrosynthesis

Xuelian Qu, Yutong Luo, Tianyi Gao, Tong Zhang, Fang Fang, Fei Zhang, Fei Wang, Jiangnan Lv, Yang Liu, Kangrui Sun, Zhiyuan Su, Honghao Huang, Yameng Song
article en

Abstract

Abstract Electrochemical coreduction of CO2 and nitrate to urea offers a promising approach to carbon–nitrogen fixation but still suffers from sluggish C–N coupling and severe competition from ammonia formation. Existing studies primarily focus on intermediate adsorption and largely overlook the spin-state changes that occur during intermediate transformation and C–N coupling. Herein, we introduce a Cu-modulated spin-regulation strategy where Cu substitution subtly modulates the Fe electronic configuration of FeSe2 to generate spin-polarized Fe centers. We reveal that mixed-valence Fe species in Cu-FeSe2 induce a double-exchange-like spin polarization, which facilitated the migration of N-containing intermediates between neighboring Fe sites, thereby promoting C–N coupling. As a result, the Cu-FeSe2 catalyst achieves a urea Faradaic efficiency of 54.1%, a yield rate of 78.5 mmol h–1 g–1, and an electrochemical stability over 75 h. Supported by operando spectroscopic analyses and density functional theory (DFT) calculations, the spin-polarized Fe centers stabilize *COOH and *NH2 intermediates while suppressing over-hydrogenation to ammonia. This work highlights spin polarization as a promising strategy for constructing efficient electrocatalytic sites and enabling multi-intermediate electrocatalysis toward urea synthesis.

ACS Catalysis
Fudan University (CN), Ministry of Education (RW)
Openalex Percentile: Top 34%
CO2 Reduction Techniques and Catalysts
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