Efficient Photocatalytic Degradation of Chlorpyrifos Pesticide from Aquatic Agricultural Waste Using g-C3N4 Decorated Graphene Oxide/V2O5 Nanocomposite
Author:
Publisher
Springer Science and Business Media LLC
Subject
General Chemistry,Catalysis
Link
https://link.springer.com/content/pdf/10.1007/s11244-023-01865-w.pdf
Reference53 articles.
1. Rasmussen JJ, Larsena PW, Pedersen AB, Cedergreenb N, McKnight US, Kreuger J, Jacobsen D, Kristensen EA, Friberg N (2015) The legacy of pesticide pollution: an overlooked factor in current risk assessments of freshwater systems. Water Res 84:25–32
2. Anirudhan TS, Shainy F, Sekhar VC, Athira VS (2021) Highly efficient photocatalytic degradation of chlorpyrifos in aqueous solutions by nano hydroxyapatite modified CFGO/ZnO nanorod composite. J Photochem Photobiol A 418:113333
3. Samy M, Ibrahim MG, Alalm MG, Fujii M, Diab KE, ElKady M (2020) Innovative photocatalytic reactor for the degradation of chlorpyrifos using a coated composite of ZrV2O7 and graphene nano-platelets. Chem Eng J 395:124974
4. Zhang Y, Hou Y, Chen F, Xiao Z, Zhang J, Hu X (2011) The degradation of chlorpyrifos and diazinon in aqueous solution by ultrasonic irradiation: effect of parameters and degradation pathway. Chemosphere 82:1109–1115
5. World Health Organization (WHO) (2011) Guidelines for Drinking Water Quality, 4th edn. World Health Organization (WHO), Geneva
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