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Research Articles

Evaluation of microcystin-LR photocatalytic degradation in aqueous solutions by BiVO4/NaY-Zeolite nanocomposite: determination of optimum conditions by response surface methodology (RSM)

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Pages 564-576 | Received 04 Sep 2020, Accepted 11 Apr 2021, Published online: 01 Jun 2021

References

  • Abdulhameed, A.S., et al., 2019. Synthesis of chitosan-ethylene glycol diglycidyl ether/TiO2 nanoparticles for adsorption of reactive orange 16 dye using a response surface methodology approach. Bioresource technology, 293, 122071.
  • Adlnasab, L.D., et al., 2020. A new magnetic bio-sorbent for arsenate removal from the contaminated water: characterization, isotherms, and kinetics. Environmental health engineering and management, 7 (1), 49–58.
  • Antoniou, M.G., et al., 2018. Enhancing photocatalytic degradation of the cyanotoxin microcystin-LR with the addition of sulfate-radical generating oxidants. Journal of hazardous materials, 360, 461–470.
  • Channei, D., et al., 2018. Adsorption and photocatalytic processes of mesoporous SiO2-coated monoclinic BiVO4. Frontiers in chemistry, 6, 415.
  • Chong, M.N., et al., 2015. Synthesis, characterisation and application of TiO2–zeolite nanocomposites for the advanced treatment of industrial dye wastewater. Journal of the Taiwan institute of chemical engineers, 50, 288–296.
  • Díez-Quijada, L., et al., 2019. Occurrence and toxicity of microcystin congeners other than MC-LR and MC-RR: a review. Food chemical toxicology, 125, 106–132.
  • Ebrahimi, A., et al., 2021. A novel ternary heterogeneous TiO2/BiVO4/NaY-Zeolite nanocomposite for photocatalytic degradation of microcystin-leucine arginine (MC-LR) under visible light. Ecotoxicology and environmental safety, 210, 111862.
  • Fakhravar, S., et al., 2020a. Excellent performance of a novel dual Z-scheme Cu2S/Ag2S/BiVO4 heterostructure in metronidazole degradation in batch and continuous systems: immobilization of catalytic particles on α-Al2O3 fiber. Applied surface science, 505, 144599.
  • Fakhravar, S., et al., 2020b. Metronidazole degradation by Z-scheme Ag2S/BiVO4@ α-Al2O3 heterojunction in continuous photo-reactor: response surface methodology optimization, reaction mechanism and the effect of water matrix. Journal of environmental chemical engineering, 8 (5), 104136.
  • He, X., et al., 2012. Efficient removal of microcystin-LR by UV-C/H2O2 in synthetic and natural water samples. Water research, 46 (5), 1501–1510.
  • Hossaini, H., et al., 2014. The investigation of the LED-activated FeFNS-TiO2 nanocatalyst for photocatalytic degradation and mineralization of organophosphate pesticides in water. Water research, 59, 130–144.
  • Hu, X., et al., 2017. Mechanisms underlying degradation pathways of microcystin-LR with doped TiO2 photocatalysis. Chemical engineering journal, 330, 355–371.
  • Hu, Y., et al., 2018. Hydrothermal synthesis of BiVO4/TiO2 composites and their application for degradation of gaseous benzene under visible light irradiation. Applied surface science, 436, 319–326.
  • IARC. 2010. Humans, IARC monographs on the evaluation of carcinogenic risks to humans. Ingested nitrate and nitrite, and cyanobacterial peptide toxins. IARC monographs on the evaluation of carcinogenic risks to humans, 94, v–vii, 1–412
  • Jafari, N., et al., 2019. Efficient degradation of microcystin-LR by BiVO4/TiO2 photocatalytic nanocomposite under visible light. Journal of environmental health science, 17 (2), 1171–1183.
  • Koh, P., et al., 2019. Kinetics and optimization studies of photocatalytic degradation of methylene blue over Cr-doped TiO2 using response surface methodology. Iranian journal of science and technology, transactions A: science, 43 (1), 95–103.
  • Levizou, E., et al., 2020. Root vegetables bioaccumulate microcystins-LR in a developmental stage-dependent manner under realistic exposure scenario: the case of carrot and radish. Agricultural eater management, 240, 106274.
  • Li, Y., et al., 2019. Fabrication of BiVO4/RGO/Ag3PO4 ternary composite photocatalysts with enhanced photocatalytic performance. Applied surface science, 467–468, 902–911.
  • Liao, W., et al., 2013. Photoelectrocatalytic degradation of microcystin-LR using Ag/AgCl/TiO2 nanotube arrays electrode under visible light irradiation. Chemical engineering journal, 231, 455–463.
  • Lin, W., et al., 2020. Waterborne microcystin-LR exposure induced chronic inflammatory response via MyD88-dependent toll-like receptor signaling pathway in male zebrafish. Science of the total environment, 702, 134969.
  • Liu, B., et al., 2017. Microcystis aeruginosa-laden water treatment using enhanced coagulation by persulfate/Fe (II), ozone and permanganate: comparison of the simultaneous and successive oxidant dosing strategy. Water research, 125, 72–80.
  • Liu, G., et al., 2020. Degradation and mechanism of microcystin-LR by PbCrO4 nanorods driven by visible light. Chemosphere, 239, 124739.
  • Liu, X., et al., 2018. Performance and mechanism into TiO2/Zeolite composites for sulfadiazine adsorption and photodegradation. Chemical engineering journal, 350, 131–147.
  • Nawaz, M., et al., 2018. Photodegradation of microcystin-LR using graphene-TiO2/sodium alginate aerogels. Carbohydrate polymers, 199, 109–118.
  • Omrani, N., et al., 2020. Photodegradation of sulfasalazine over Cu2O-BiVO4-WO3 nano-composite: characterization and experimental design. International journal of hydrogen energy, 45 (38), 19144–19162.
  • Park, J.A., et al., 2019. Oxidation and molecular properties of microcystin-LR, microcystin-RR and anatoxin-a using UV-light-emitting diodes at 255 nm in combination with H2O2. Chemical engineering journal, 366 (15), 423–432.
  • Pelaez, M., et al., 2009. Visible light-activated NF-codoped TiO2 nanoparticles for the photocatalytic degradation of microcystin-LR in water. Catalysis today, 144 (1–2), 19–25.
  • Petala, A., et al., 2019. Synthesis and characterization of CoOx/BiVO4 photocatalysts for the degradation of propyl paraben. Journal of hazardous materials, 372, 52–60.
  • Pingmuang, K., et al., 2017. Composite photocatalysts containing BiVO4 for degradation of cationic dyes. Scientific reports, 7 (1), 1–11.
  • Rahimi, B., et al., 2019a. Application of efficient photocatalytic process using a novel BiVO4/TiO2-NaY zeolite composite for removal of acid orange 10 dye in aqueous solutions: modeling by response surface methodology (RSM). Journal of environmental chemical engineering, 7 (4), 103253.
  • Rahimi, B., et al., 2019b. Photocatalytic process for total arsenic removal using an innovative BiVO4/TiO2/LED system from aqueous solution: optimization by response surface methodology (RSM). Journal of the Taiwan institute of chemical engineers, 101, 64–79.
  • Raja, A., et al., 2020. Visible active reduced graphene oxide-BiVO4-ZnO ternary photocatalyst for efficient removal of ciprofloxacin. Separation and purification technology, 233, 115996.
  • Rastogi, R.P., et al., 2014. The cyanotoxin-microcystins: current overview. Reviews in environmental science and bio/technology, 13 (2), 215–249.
  • Salari, H., et al., 2018. Enhanced visible light photocatalytic activity of nano-BiOCl/BiVO4/Zeolite pn heterojunction and Ag/BiOCl/BiVO4 hybrid. Materials research innovations, 22 (3), 137–143.
  • Sun, J., et al., 2018. Removal of Microcystis aeruginosa by UV/chlorine process: inactivation mechanism and microcystins degradation. Chemical engineering journal, 349, 408–415.
  • Tu, L., et al., 2020. Bio-photoelectrochemcial system constructed with BiVO4/RGO photocathode for 2, 4-dichlorophenol degradation: BiVO4/RGO optimization, degradation performance and mechanism. Journal of hazardous materials, 389, 121917.
  • Wei, J., et al., 2020. Simultaneous Microcystis algicidal and microcystin synthesis inhibition by a red pigment prodigiosin. Environmental pollution, 256, 113444.
  • Wen, C., et al., 2019. Effects of microcystins-LR on genotoxic responses in human intestinal epithelial cells (NCM460). Journal of toxicology and environmental health, part A, 82 (21), 1113–1119.
  • WHO. 1998. Cyanobacterial toxins: microcystin-LR guidelines for drinking water quality. 2rd ed. Geneva, Switzerland: World Health Organization Press.
  • Wu, P., et al., 2020. High-efficient and sustainable biodegradation of microcystin-LR using Sphingopyxis sp. YF1 immobilized Fe3O4@ chitosan. Colloids surfaces B: biointerfaces, 185, 110633.
  • Wu, Y., et al., 2016. Pirimicarb degradation by BiVO4 photocatalysis: Parameter and reaction pathway investigations. Separation science and technology, 51 (13), 2284–2296.
  • Xia, D., et al., 2016. Synthesis of magnetically separable Bi2O4/Fe3O4 hybrid nanocomposites with enhanced photocatalytic removal of ibuprofen under visible light irradiation. Water research, 100, 393–404.
  • Xing, B., et al., 2016. Preparation of TiO2/activated carbon composites for photocatalytic degradation of RhB under UV light irradiation. Journal of nanomaterials, 2016, 1–10.
  • Xu, X., et al., 2014. An impregnation route to synthesis of BiVO4/NaY materials and photocatalytic activities under visible light irradiation. Asian journal of chemistry, 26 (5), 1397–1400.
  • Xu, X., et al., 2018. Mechanisms for· O2-and· OH production on flowerlike BiVO4 photocatalysis based on electron spin resonance. Frontiers in chemistry, 6, 64.
  • Yang, F., et al., 2020a. A complete route for biodegradation of potentially carcinogenic cyanotoxin microcystin-LR in a novel indigenous bacterium. Water research, 174, 115638.
  • Yang, R., et al., 2020b. One-step preparation (3D/2D/2D) BiVO4/FeVO4@ rGO heterojunction composite photocatalyst for the removal of tetracycline and hexavalent chromium ions in water. Chemical engineering journal, 390, 124522.
  • Yang, Y., et al., 2019. Influence of microcystins-LR (MC-LR) on autophagy in human neuroblastoma SK-N-SH cells. Journal of toxicology environmental health, part A, 82 (21), 1129–1136.
  • Yuan, B.L., et al., 2002. Removal of cyanobacterial microcystin-LR by ferrate oxidation–coagulation. Toxicon, 40 (8), 1129–1134.
  • Zhan, C., et al., 2020. Microcystin-LR triggers different endoplasmic reticulum stress pathways in the liver, ovary, and offspring of zebrafish (Danio rerio). Journal of hazardous materials, 386, 121939.
  • Zhang, G., et al., 2014. Visible light-sensitized S, N and C co-doped polymorphic TiO2 for photocatalytic destruction of microcystin-LR. Applied catalysis B: environmental, 144, 614–621.
  • Zhang, G., et al., 2018. Enhanced photocatalytic activity of TiO2/zeolite composite for abatement of pollutants. Microporous and mesoporous materials, 255, 61–68.
  • Zhang, H., et al., 2011. Removal of microcystin-LR from drinking water using a bamboo-based charcoal adsorbent modified with chitosan. Journal of environmental sciences, 23 (12), 1983–1988.

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