Oxygen Doping Cooperated with Co-N-Fe Dual-Catalytic Sites: Synergistic Mechanism for Catalytic Water Purification within Nanoconfined Membrane.

Adv Mater

College of Environmental Science and Engineering, Hunan University and Key Laboratory of Environmental Biology and Pollution Control (Ministry of Education), Hunan University, Changsha, 410082, P. R. China.

Published: July 2024

AI Article Synopsis

  • Atom-site catalysts, particularly those based on graphitic carbon nitride, show great promise for water purification but face challenges in understanding their synthesis and properties.
  • This study investigates the effects of metal site coordination and structure on catalytic efficiency using various analytical techniques, revealing that a specific dual-site configuration (OCN Co/Fe) improves activation of peroxymonosulfate.
  • The resulting OCN-Co/Fe/PVDF composite membrane achieves high rejection efficiency for ciprofloxacin and maintains excellent performance over time, providing insights for future catalyst design.

Article Abstract

Atom-site catalysts, especially for graphitic carbon nitride-based catalysts, represents one of the most promising candidates in catalysis membrane for water decontamination. However, unravelling the intricate relationships between synthesis-structure-properties remains a great challenge. This study addresses the impacts of coordination environment and structure units of metal central sites based on Mantel test, correlation analysis, and evolution of metal central sites. An optimized unconventional oxygen doping cooperated with Co-N-Fe dual-sites (OCN Co/Fe) exhibits synergistic mechanism for efficient peroxymonosulfate activation, which benefits from a significant increase in charge density at the active sites and the regulation in the natural population of orbitals, leading to selective generation of SO . Building upon these findings, the OCN-Co/Fe/PVDF composite membrane demonstrates a 33 min ciprofloxacin (CIP) rejection efficiency and maintains over 96% CIP removal efficiency (over 24 h) with an average permeance of 130.95 L m h. This work offers a fundamental guide for elucidating the definitive origin of catalytic performance in advance oxidation process to facilitate the rational design of separation catalysis membrane with improved performance and enhanced stability.

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Source
http://dx.doi.org/10.1002/adma.202404278DOI Listing

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