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Updated: Jul 5, 2026

Synthesis and Performance Characterizations of Transition Metal Single Atom Catalyst for Electrochemical CO2 Reduction
Published on: April 10, 2018
Carbon-Supported Nano-Dispersed Metallic Copper Derived From Carbonization of MOF-199 for Electrocatalytic CO2
Min-Hua Huang1, Chun-Chieh Huang1, Taki Suginaga2
1Department of Chemical Engineering, Sustainable Electrochemical Energy Development (SEED) Center, National Taiwan University of Science and Technology, Daan Dist., Taipei City, 106, Taiwan.
Abstract:
CO2 emissions and accumulation in the ecosystem have exacerbated climate change and increased the global temperature. This study focused on the activation of hydrothermally synthesized Cu metal-organic framework (MOF-199) with potassium citrate (C6H5K3O7) to produce MOF-derived carbon incorporated with nano-dispersed metallic Cu and oxidative Cu species to facilitate electrochemical CO2 reduction. Among all MOF samples, the resulting MOF-derived carbon, activated by C6H5K3O7, demonstrated the highest electrocatalytic current and lowest charge transfer resistance, achieving a Faradaic efficiency exceeding 50% for the production of acetic acid (CH3COOH) at an applied potential of - 1.1 V (vs RHE). The addition of C6H5K3O7 during preparation endowed the MOF-derived C with a mesoporous structure, thereby enhancing CO2 adsorption and activation. A proposed reaction pathway suggested that the generation of nano-dispersed metallic Cu is critical for forming Cu─C bonds for producing CH3COOH. This study indicates that Cu-containing MOF-derived carbon with beneficial properties for electrocatalytic applications owing to its nanoispersed Cu features could be readily synthesized.
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