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Updated: Aug 6, 2026

Synthesis of Metal Nanoparticles Supported on Carbon Nanotube with Doped Co and N Atoms and its Catalytic Applications in Hydrogen Production
Published on: December 6, 2021
Local microenvironment regulation with co nanoparticles/ single-atoms sites to drive two-electron oxygen reduction
Sheng Wang1, Zhiyi Sun2, Yuxin Lu2
1School of Chemistry and Chemical Engineering, Beijing Institute of Technology, No. 5, South Street, Zhongguancun, Haidian District, Beijing, 100081, China; State Key Laboratory of Water Pollution Control and Green Resource Recycling, Shanghai Institute of Pollution Control and Ecological Security, School of Environmental Science and Engineering, Tongji University, Shanghai, 200092, China.
Abstract:
Overcoming the inherent trade-off between pollutant adsorption and catalytic site utilization remains a critical challenge in electrochemical advanced oxidation processes (EAOPs). Herein, we develop a "Zn-evaporation induced topological reconstruction" strategy to construct a hierarchically porous carbon catalyst (MOF-5-Co-C) that features coexisting Co single-atom sites (Co-O4) and Co nanoparticles, along with exceptional pore uniformity. The intrinsic interplay among Co single atoms, Co nanoparticles, and the hierarchical pore architecture confers a high H2O2 selectivity of 92.3% and a Faradaic efficiency of 86.6% for the two-electron oxygen reduction reaction (2e⁻ ORR). Through active-site poisoning experiments, impedance-based diffusion layer modeling, in situ electrochemical differential mass spectrometry, and approximate kinetic models, Co-O4 was identified as the reactive site, the oxygen diffusion layer was quantified (7.3 μm, equivalent to 52.1% of that of the pristine MOF-5-C material), and surface reactions were revealed to dominate pollutant removal. Notably, by integrating this cathode with the electro-peroxone process, we establish a localized reaction microenvironment that enables surface reaction-mediated degradation of highly adsorbed pharmaceuticals, thereby effectively mitigating active-site masking. The developed cathode achieves over 80% total organic carbon (TOC) removal for carbamazepine in surface water with low electric energy consumption at 0.21 kWh•g-1 TOC (5.2 kWh•m-3), and maintains stable performance in carbamazepine removal over 100 h of operation. These results demonstrate its practical applicability for decentralized remediation of pharmaceutical-contaminated water.

