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◆ Journal of colloid and interface science2026-08-29

Metal-free urea synthesis on nitrogen-deficient carbon nitride via direct carboxyl-nitrite coupling.

Xuepeng Yan, Gang Lin, Yun Bai, Yixin Liu, Yuwen Tao, Shoujun Liu, Song Yang, Yadong Bai, Qipeng Lu

原始摘要(英文原文)· Original abstract
Electrocatalytic urea synthesis offers advantages such as low energy consumption, mild conditions, and environmental friendliness, making it a promising alternative to the energy-intensive Haber-Bosch process. However, the kinetic mismatch between CO2 reduction reaction and NO3- reduction reaction, coupled with the high thermodynamic barrier of CN coupling, often leads to low faradaic efficiency for urea production. This work reports a strategy of introducing nitrogen vacancies into graphitic carbon nitride to create localized electron-rich sites for driving efficient urea electrosynthesis. Results show that the electron-enriched structure enhances CO2 adsorption and activation, promoting the pathway (CO2 → *CO2 → *COOH) and thereby balancing the kinetic mismatch between nitrogen and carbon reduction. This effectively improves the faradaic efficiency for urea synthesis. Furthermore, a thermodynamically more favorable CN coupling route is established on the catalyst surface: *COOH + *NO2 → *COOHNO2. The strong electron-donating effect of the active sites stabilizes the post-coupling intermediates and renders the CN coupling step thermodynamically more favorable. Experimentally, at a low applied potential of -0.6 V vs reversible hydrogen electrode (RHE), a urea faradaic efficiency of 26.8 ± 2.5% and a urea formation rate of 1345 ± 76 μg h-1 mgcat-1 are achieved, rivaling the performance of many metal-based catalysts. This study provides a new perspective for designing stable and efficient metal-free catalysts for urea synthesis.
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Metal-free urea synthesis on nitrogen-deficient carbon nitride via direct carboxyl-nitrite coupling. — 科研速览 Science Skim