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Synthesis and Characterization of Functionalized Metal-organic Frameworks
Published on: September 5, 2014
Fe2+/Fe3+ Redox Modulation in Iron-Based Metal-Organic Frameworks for Efficient C-N Coupling in Electrocatalytic Urea
Jie-Yao Song1, Ge Dong2, Jun-Ru Tian3
1Modern Chemical Engineering Department, Shanxi Engineering Vocational College, Taiyuan, Shanxi 030009, China.
None:
Designing efficient catalysts for the electrocatalytic coreduction of CO2 and N2 into urea remains challenging due to the sluggish activation of both molecules and the complex C-N coupling process. Herein, we report an iron-based metal-organic framework (Fe-MOF) system in which the ratio of Fe2+/Fe3+ active sites is modulated via solvent regulation to promote synergistic catalysis. Structural and spectroscopic analyses confirm that Fe-MOF-1, prepared in ethanol, possesses a higher Fe2+/Fe3+ ratio (0.91) than Fe-MOF-2 (0.56), leading to enhanced electronic conductivity and charge-transfer efficiency. Fe-MOF-1 exhibits a urea yield rate of 3.02 mmol h-1 g-1 with a Faradaic efficiency of 10.4% at -0.71 V (vs RHE), outperforming Fe-MOF-2. In situ FT-IR analysis reveals the generation of *COOH, *NH2, and C-N intermediates, confirming the occurrence of C-N coupling on Fe-MOF-1. The cooperative function of Fe2+ and Fe3+ centers facilitates simultaneous CO2 reduction and N2 activation, enabling efficient urea synthesis under mild conditions. This work provides mechanistic insights and a rational design strategy for dual-valence metal sites toward sustainable C-N coupling catalysis.
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