940
Views
7
CrossRef citations to date
0
Altmetric
Article

Photocatalytic degradation of alachlor by TiO2 nanoparticles from aqueous solutions under UV radiation

, ORCID Icon, ORCID Icon &
Pages 116-128 | Received 26 Feb 2019, Accepted 12 Sep 2019, Published online: 24 Oct 2019

References

  • Wang C, Liu C. Decontamination of alachlor herbicide wastewater by a continuous dosing mode ultrasound/Fe2+/H2O2 process. J Environ Sci. 2014;26(6):1332–1339..
  • Elsayed OF, Maillard E, Vuilleumier S, et al. Degradation of chloroacetanilide herbicides and bacterial community composition in lab-scale wetlands. Sci Total Environ. 2015;520:222–231.
  • Szewczyk R, Soboń A, Słaba M, et al. Mechanism study of alachlor biodegradation by Paecilomyces marquandii with proteomic and metabolomic methods. J Hazard Mater. 2015;291:52–64.
  • El-Nahhal Y, Hamdona N. Phytotoxicity of alachlor, bromacil and diuron as single or mixed herbicides applied to wheat, melon, and molokhia. Springerplus. 2015;4(1):367.
  • Dehghani M, Nasseri S, Zamanian Z. Biodegradation of alachlor in liquid and soil cultures under variable carbon and nitrogen sources by bacterial consortium isolated from corn field soil. Iranian J Environ Health Sci Eng. 2013;10(1):21.
  • Xin Y, Liu H, Han L, et al. Comparative study of photocatalytic and photoelectro catalytic properties of alachlor using different morphology TiO2/Ti photoelectrodes. J Hazard Mater. 2011;192(3):1812–1818.
  • Bolobajev J, Trapido M, Goi A. Improvement in iron activation ability of alachlor Fenton-like oxidation by ascorbic acid. Chem Eng J. 2015;281:566–574.
  • Pipi ARF, De Andrade AR, Brillas E, et al. Total removal of alachlor from water by electrochemical processes. Sep Purif Technol. 2014;132:674–683.
  • WHO. Alachlor in drinking-water. Background document for preparation of WHO Guidelines for drinking-water quality. Geneva: World Health Organization (WHO/SDE/WSH/03.04/31); 2003.
  • EPA. Ambient water quality value for protection of sources of potable water. New York: Human Health Fact Sheet; 1998.
  • Suwannaruang T, Wantala K. Single-step uncalcined N-TiO2 synthesis, characterizations and its applications on alachlor photocatalytic degradations. Appl Surf Sci. 2016;380:257–267.
  • Institute of Standards and Industrial Research of Iran. Drinking water - Physical and chemical specifications. Tehran: Institute of Standards and Industrial Research of Iran; 2010. (5th revision).
  • Vitanov NK, Lekova KI, Dobreva NI. Monitoring river water in the lower danube for atrazine contamination. Acta Chromatogr. 2003;(13):230–242.
  • Elsayed OF, Maillard E, Vuilleumier S, et al. Using compound-specific isotope analysis to assess the degradation of chloroacetanilide herbicides in lab-scale wetlands. Chemosphere. 2014;99:89–95.
  • Shaker EM, Elsharkawy EE. Organochlorine and or ganophosphorus pesticide residues in raw buffalo milk from agroindustrial areas in Assiut, Egypt. Environ Toxicol Pharmacol. 2015;39(1):433–440.
  • Sette LD, Alves M, Da Costa LA, et al. Biodegradation of alachlor by soil streptomycetes. Appl Microbiol Biotechnol. 2004;64(5):712–719.
  • US Environmental Protection Agency. Alachlor. Rev Environ Contam Toxicol. 1988;104:9–20.
  • Kim MS, Ryu CS, Kim BW. Effect of ferric ion added on photodegradation of alachlor in the presence of TiO2 and UV radiation. Water Res. 2005;39(4):525–532.
  • Wong CC, Chu W. The direct photolysis and photocatalytic degradation of alachlor at different TiO2 and UV sources. Chemosphere. 2003;50(8):981–987.
  • Yener HB, Yılmaz M, Deliismail Ö, et al. Clinoptilolite supported rutile TiO2 composites: Synthesis, characterization, and photocatalytic activity on the degradation of terephthalic acid. Sep Purif Technol. 2017;173:17–26.
  • Kamimura S, Miyazaki T, Zhang M, et al. (Au@Ag)@Au double shell nanoparticles loaded on rutile TiO2 for photocatalytic decomposition of 2-propanol under visible light irradiation. Appl Catal. 2016;180:255–262.
  • Cao B, Yao W, Wang C, et al. Simple fabrication of rutile titanium dioxide whiskers. Mater Lett. 2010;64(16):1819–1821.
  • Xu Y, Lin Z, Zhang H. Mineralization of sucralose by UV-based advanced oxidation processes: UV/PDS versus UV/H2O2. Chem Eng J. 2016;285:392–401.
  • Zabihi-Mobarakeh HR, Nezamzadeh-Ejhieh AR. Application of supported TiO2 onto Iranian clinoptilolite nanoparticles in the photodegradation of mixture of aniline and 2, 4-dinitroaniline aqueous solution. J Ind Eng Chem. 2015;26:315–321.
  • de Luna MDG, Rivera KKP, Suwannaruang T, et al. Alachlor photocatalytic degradation over uncalcined Fe–TiO2 loaded on granular activated carbon under UV and visible light irradiation. Desalin Water Treat. 2016;57(15):6712–6722.
  • Dehghani M, Nasseri S, Ahmadi M, et al. Removal of penicillin G from aqueous phase by Fe + 3-TiO2/UV-A process. J Environ Health Sci Eng. 2014;12(1):56.
  • Alvarez-Corena JR, Bergendahl JA, Hart FL. Advanced oxidation of five contaminants in water by UV/TiO2: Reaction kinetics and byproducts identification. J Environ Manage. 2016;181:544–551.
  • Hanini AE, Hanini S, Merzouk NK. Using central composite experimental design to optimize the degradation of tylosin from aqueous solution by photo-fenton reaction. Materials. 2016;9(6):428.
  • Ramezani AM, Yousefinejad S, Nazifi M, et al. Response surface approach for isocratic separation of some natural anthraquinone dyes by micellar liquid chromatography. J Mol Liquids. 2017;242:1058–1065.
  • Bayraktar E. Response surface optimization of the separation of DL-tryptophan using an emulsion liquid membrane. Process Biochem. 2001;37(2):169–175.
  • Owolabi RU, Usman MA, Kehinde A. Modelling and optimization of process variables for the solution polymerization of styrene using response surface methodology. J King Saud Univ Eng Sci. 2018;30(1):22–30.
  • Koocheki A, Taherian AR, Razavi S, et al. Response surface methodology for optimization of extraction yield, viscosity, hue and emulsion stability of mucilage extracted from Lepidium perfoliatum seeds. Food Hydrocoll. 2009;23(8):2369–2379.
  • Rai A, Mohanty B, Bhargava R. Supercritical extraction of sunflower oil: a central composite design for extraction variables. Food Chem. 2016;192:647–659.
  • Amin MM, Yousefinejad S, Dehghani M, et al. Electro Fenton process catalyzed by Fe@ Fe2O3 nanowire for degradation of carbamazepine from aqueous solutions. Desalin Water Treat. 2019;162:44–59.
  • Golbraikh A, Tropsha A. Predictive QSAR modeling based on diversity sampling of experimental datasets for the training and test set selection. Mol Divers. 2000;5(4):231–243.
  • Arivoli S, Hema M, Parthasarathy S, et al. Adsorption dynamics of methylene blue by acid activated carbon. J Chem Pharm Res. 2010;2(5):626–641.
  • Dehghani M, Nasseri N, Amin SA, et al. Assessment of atrazine distribution in Shiraz soils, south of Iran. Pak J Biol Sci. 2010;13(2):66–72.
  • Dehghani M, Nasseri S, Hashemi H. Study of the bioremediation of atrazine under variable carbon and nitrogen sources by mixed bacterial consortium isolated from corn field soil in fars province of Iran. J Environ Public Health. 2013;973165. Article ID
  • Shamsedini N, Dehghani M, Nasseri S, et al. Photocatalytic degradation of atrazine herbicide with Illuminated Fe + 3-TiO2 Nanoparticles. J Environ Health Sci Eng. 2017;15(1):7.
  • Tang WZ, An H. UV/TiO2 photocatalytic oxidation of commercial dyes in aqueous solutions. Chemosphere 1995;9(31):4157–4170.
  • Gupta VK, Kumar R, Nayak A, et al. Adsorptive removal of dyes from aqueous solution onto carbon nanotubes: a review. Adv Colloid Interface Sci. 2013;193-194:24–34.
  • Bagal MV, Gogate PR. Sonochemical degradation of alachlor in the presence of process intensifying additives. Sep Purif Technol. 2012;90:92–100.
  • Brandi RJ, Martín CA, Alfano OM, et al. A laboratory reactor for photocatalytic studies in slurry operation. J Adv Oxid Technol. 2002;5:175–185.