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Local microenvironment regulation with co nanoparticles/ single-atoms sites to drive two-electron oxygen reduction catalysis for efficient adsorption-electroperoxone water purification

  • Sheng Wang
  • , Zhiyi Sun
  • , Yuxin Lu
  • , Bincheng Xu
  • , Shangkun Pei
  • , Ying Wang
  • , Yujue Wang*
  • , Chong Chen Wang
  • , Xiang Li
  • , Bo Wang
  • *Corresponding author for this work
  • Beijing Institute of Technology
  • Tongji University
  • Tsinghua University
  • Beijing University of Civil Engineering and Architecture

Research output: Contribution to journalArticlepeer-review

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.

Original languageEnglish
Article number126496
JournalWater Research
Volume305
DOIs
Publication statusPublished - 15 Oct 2026
Externally publishedYes

Keywords

  • Electro-peroxone
  • Hierarchical pores
  • Local microenvironment
  • Metal-organic framework
  • Single-atom catalyst

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