Nano zero-valent iron-based fiber electrode for efficient electro-Fenton treatment of pharmaceutical wastewater: Mechanism of degradation and sterilization
Author:
Publisher
Elsevier BV
Subject
Industrial and Manufacturing Engineering,General Chemical Engineering,Environmental Chemistry,General Chemistry
Reference65 articles.
1. Fate of antibiotics during municipal water recycling treatment processes;Le-Minh;Water Res.,2010
2. 3,5-Dibromosalicylaldehyde nicotinoylhydrazone and 4,4'-bipyridine appended new Zn(II) coordination polymer: secnidazole sensing and Rhodamine B photocatalytic degradation properties;Zhuo;J. Mol. Struct.,2022
3. Electrochemically reduced phytic acid-doped TiO2 nanotubes for the efficient electrochemical degradation of toxic pollutants;Liu;J. Hazard. Mater.,2021
4. Visible-light-driven Z-scheme Zn3In2S6/AgBr photocatalyst for boosting simultaneous Cr (VI) reduction and metronidazole oxidation: Kinetics, degradation pathways and mechanism;Sun;J. Hazard. Mater.,2021
5. Electro-Fenton process and related electrochemical technologies based on fenton's reaction chemistry;Brillas;Chem. Rev.,2009
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