Understanding double perovskite oxides capabilities to improve photocatalytic contaminants degradation performances in water treatment processes: A review
Author:
Funder
Amirkabir University of Technology
Publisher
Elsevier BV
Subject
General Chemical Engineering
Reference159 articles.
1. Crafting Mussel‐Inspired Metal Nanoparticle‐Decorated Ultrathin Graphitic Carbon Nitride for the Degradation of Chemical Pollutants and Production of Chemical Resources
2. Photocatalysis, Advanced oxidation processes for waste water treatment;Ameta,2018
3. Chemically bonded carbon quantum dots/Bi2WO6 S-scheme heterojunction for boosted photocatalytic antibiotic degradation: Interfacial engineering and mechanism insight
4. Direct Growth of TiO2 Nanosheet Arrays on Carbon Fibers for Highly Efficient Photocatalytic Degradation of Methyl Orange
5. Z. Shariatinia and A. Esmaeilzadeh, Water Environ. Res., 91 (12), 2019, 1624-1637.
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