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Updated: Aug 10, 2026

Synthesis and Characterization of Functionalized Metal-organic Frameworks
Published on: September 5, 2014
Room-Temperature Rapid Synthesis of Crystalline Ag─C Coordinated MOFs for Highly Efficient Acidic CO2
Ying Guo1,2, Yingzhe Feng1, Haojie Yang1
1Xi'an Key Laboratory of Functional Organic Porous Materials, School of Chemistry and Chemical Engineering, Northwestern Polytechnical University, Xi'an, P. R. China.
Abstract:
The acidic CO2 electroreduction reaction (eCO2RR) shows great promise in addressing carbonation issues encountered under neutral/alkaline conditions. However, it remains challenged by low selectivity arising from high proton availability, as well as catalyst degradation due to the corrosive and reductive nature of acidic media. In this work, we demonstrate a room-temperature and rapid (< 5 min) synthesis of a novel crystalline Ag-C coordinated metal-organic framework (TEPT-AgC-MOF) employing 4'-(4-ethynylphenyl)-2,2':6',2″-terpyridine as the ligand, enabling gram-scale production. The incorporation of strongly covalent Ag-C bonds significantly enhances the structural stability of the catalyst under acidic conditions. Moreover, the triazine-containing ligands in conjunction with a modulated electronic structure collectively enhance CO2 adsorption, activation, and reduction efficiency. The resulting catalyst delivers outstanding eCO2RR performance in acid, achieving a CO Faradaic efficiency of 94.5%, a partial current density of 417.5 mA·cm-2, and a turnover frequency (TOF) of 7357 h-1, surpassing those of most reported Ag-based acidic catalysts. Notably, this study not only establishes a facile route for synthesizing Ag-MOFs, but also constitutes the first investigation into crystalline Ag-C coordinated MOFs as electrocatalysts for the acidic eCO2RR.
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