Studies on Degradation of Dye Contamination using TiO2/zeolite Modified with Nanocomposite. Influence of the Substitution on Photocatalytic Behaviour | ||
| Journal of Nanostructures | ||
| مقاله 1، دوره 11، شماره 2، تیر 2021، صفحه 202-212 اصل مقاله (932.52 K) | ||
| نوع مقاله: Research Paper | ||
| شناسه دیجیتال (DOI): 10.22052/JNS.2021.02.001 | ||
| نویسندگان | ||
| Maryam Moosavifar* ؛ Somayeh Ziaei | ||
| Department of Chemistry, Faculty of Science, University of Maragheh, Maragheh, Iran | ||
| چکیده | ||
| This research aimed to explain the preparation of functionalized-CeTPP/TiO2/Y zeolite in the degradation of dye contaminant. For this purpose, at first porphyrin ring is functionalized with OH groups with various ratios. Then the functionalized metal-porphyrin is encapsulated using the zeolite synthesis method. The entering of TiO2 is achieved by the impregnation method. The obtained photocatalyst systems are characterized by X-ray diffraction (XRD), Fourier transformation-infrared spectroscopy (FT-IR), field emission scanning electron microscopy (FESEM), and energy-dispersive X-ray (EDS) technique. It is found the functionalizing of the porphyrin ring with OH not only improved the photocatalytic behaviour but the reaction also can be occurred in the absence of H2O2. The effect of several parameters including catalyst loading, dye concentration, TiO2/CeTPP-Y on degradation yield is investigated. Mineralization of organic dye was studied by the Chemical Oxygen Demand (COD) experiment. It is found the kinetic of the photodegradation process is pseudo-first-order. However, the mechanism of the reaction has been proposed. | ||
| کلیدواژهها | ||
| Chemical oxygen demand (COD)؛ Photocatalyst؛ Substituted metalloporphyrin؛ TiO₂؛ Y zeolite | ||
| اصل مقاله | ||
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INTRODUCTION MATERIALS AND METHODS Preparation of Ce(OH)nTPP/TiO2/NaY General procedure for the photodegradation of 4-Nitrophenol Chemical oxygen demand RESULTS AND DISCUSSION Investigation of photocatalytic activity of CeTPP/TiO2/NaY CONCLUSION ACKNOWLEDGEMENT CONFLICT OF INTEREST | ||
| مراجع | ||
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1. Sun W, Li J, Lü X, Zhang F. Preparation, characterization and photocatalytic activity of metalloporphyrins-modified TiO2 composites. Research on Chemical Intermediates. 2012;39(3):1447-57. 2. Kidak R, Ince NH. Ultrasonic destruction of phenol and substituted phenols: A review of current research. Ultrasonics Sonochemistry. 2006;13(3):195-9. 3. Hoffmann MR, Martin ST, Choi W, Bahnemann DW. Environmental Applications of Semiconductor Photocatalysis. Chemical Reviews. 1995;95(1):69-96. 4. Dieckmann MS, Gray KA. A comparison of the degradation of 4-nitrophenol via direct and sensitized photocatalysis in TiO2 slurries. Water Research. 1996;30(5):1169-83. 5. Noroozi Z, Ali Rasekh H, Jaafar Soltanianfard M. Preparation and characterization of ZrO2-Cr2O3 nanocomposite as a p-n heterojunction by a facile sol-gel method: A kinetic investigation on the removal of p-nitrophenol dye from aqueous media. Polyhedron. 2019;168:11-20. 6. Yang Q, Guo E, Liu H, Lu Q. Engineering of Z-scheme 2D/3D architectures with Bi2MoO6 on TiO2 nanosphere for enhanced photocatalytic 4-nitrophenol degradation. Journal of the Taiwan Institute of Chemical Engineers. 2019;105:65-74. 7. Low KS, Lee CK, Wong AM. Carbonized spent bleaching earth as a sorbent for some organic dyes. Journal of Environmental Science and Health Part A: Environmental Science and Engineering and Toxicology. 1996;31(3):673-85. 8. Huang CP, Dong C, Tang Z. Advanced chemical oxidation: Its present role and potential future in hazardous waste treatment. Waste Management. 1993;13(5-7):361-77. 9. Ogunbayo TB, Antunes E, Nyokong T. Investigation of homogeneous photosensitized oxidation activities of palladium and platinum octasubstituted phthalocyanines: Oxidation of 4-nitrophenol. Journal of Molecular Catalysis A: Chemical. 2011;334(1-2):123-9. 10. Li X, Wang J, Li M, Jin Y, Gu Z, Liu C, et al. Fe-doped TiO 2 /SiO 2 nanofibrous membranes with surface molecular imprinted modification for selective photodegradation of 4-nitrophenol. Chinese Chemical Letters. 2018;29(3):527-30. 11. Fox MA, Doan KE, Dulay MT. The effect of the “Inert” support on relative photocatalytic activity in the oxidative decomposition of alcohols on irradiated titanium dioxide composites. Research on Chemical Intermediates. 1994;20(7):711-21. 12. Bahnemann D, Cunningham J, Fox M, Pelizzetti E, Pichat P, Serpone N, et al. Aquatic and surface photochemistry. Lewis, Boca Raton, FL. 1994:261. 13. Abdullah M, Low GKC, Matthews RW. Effects of common inorganic anions on rates of photocatalytic oxidation of organic carbon over illuminated titanium dioxide. The Journal of Physical Chemistry. 1990;94(17):6820-5. 14. Sabate J, Anderson MA, Aguado MA, Giménez J, Cervera-March S, Hill CG. Comparison of TiO2 powder suspensions and TiO2 ceramic membranes supported on glass as photocatalytic systems in the reduction of chromium(VI). Journal of Molecular Catalysis. 1992;71(1):57-68. 15. Sabate J, Anderson M, Kikkawa H, Edwards M, Hill C. A kinetic study of the photocatalytic degradation of 3-chlorosalicylic acid over TiO 2 membranes supported on glass. Journal of catalysis. 1991;127(1):167-177. 16. Kim Y, Yoon M. TiO2/Y-Zeolite encapsulating intramolecular charge transfer molecules: a new photocatalyst for photoreduction of methyl orange in aqueous medium. Journal of Molecular Catalysis A: Chemical. 2001;168(1-2):257-63. 17. Aravindhan R, Fathima NN, Rao JR, Nair BU. Wet oxidation of acid brown dye by hydrogen peroxide using heterogeneous catalyst Mn-salen-Y zeolite: A potential catalyst. Journal of Hazardous Materials. 2006;138(1):152-9. 18. Lopez L, Daoud WA, Dutta D. Preparation of large scale photocatalytic TiO2 films by the sol–gel process. Surface and Coatings Technology. 2010;205(2):251-7. 19. Zanjanchi MA, Ebrahimian A, Arvand M. Sulphonated cobalt phthalocyanine–MCM-41: An active photocatalyst for degradation of 2,4-dichlorophenol. Journal of Hazardous Materials. 2010;175(1-3):992-1000. 20. Linsebigler AL, Lu G, Yates JT. Photocatalysis on TiO2 Surfaces: Principles, Mechanisms, and Selected Results. Chemical Reviews. 1995;95(3):735-58. 21. Klosek S, Raftery D. Visible Light Driven V-Doped TiO2 Photocatalyst and Its Photooxidation of Ethanol. The Journal of Physical Chemistry B. 2001;105(14):2815-9. 22. Al-Qaradawi S, Salman SR. Photocatalytic degradation of methyl orange as a model compound. Journal of Photochemistry and Photobiology A: Chemistry. 2002;148(1-3):161-8. 23. Rajamanickam D, Shanthi M. Photocatalytic degradation of an organic pollutant by zinc oxide – solar process. Arabian Journal of Chemistry. 2016;9:S1858-S68. 24. Liu X, Iu K-K, Kerry Thomas J. Encapsulation of TiO2 in zeolite Y. Chemical Physics Letters. 1992;195(2-3):163-8. 25. Liu X, Iu K-K, Thomas JK. Preparation, characterization and photoreactivity of titanium(IV) oxide encapsulated in zeolites. Journal of the Chemical Society, Faraday Transactions. 1993;89(11):1861. 26. Anpo M, Yamashita H, Ichihashi Y, Fujii Y, Honda M. Photocatalytic Reduction of CO2 with H2O on Titanium Oxides Anchored within Micropores of Zeolites: Effects of the Structure of the Active Sites and the Addition of Pt. The Journal of Physical Chemistry B. 1997;101(14):2632-6. 27. Saladin F, Kamber I, Pfanner K, Calzaferri G. Photochemical water oxidation to oxygen at the solid/gas interface of AgCl on zeolite A. Journal of Photochemistry and Photobiology A: Chemistry. 1997;109(1):47-52. 28. Yamashita H, Ichihashi Y, Anpo M, Hashimoto M, Louis C, Che M. Photocatalytic Decomposition of NO at 275 K on Titanium Oxides Included within Y-Zeolite Cavities: The Structure and Role of the Active Sites. The Journal of Physical Chemistry. 1996;100(40):16041-4. 29. Moosavifar M, Bagheri S. Photocatalytic Performance of H 6 P 2 W 18 O 62 /TiO 2 Nanocomposite Encapsulated into Beta Zeolite under UV Irradiation in the Degradation of Methyl Orange. Photochemistry and Photobiology. 2018;95(2):532-42. 30. Neamţu M, Zaharia C, Catrinescu C, Yediler A, Macoveanu M, Kettrup A. Fe-exchanged Y zeolite as catalyst for wet peroxide oxidation of reactive azo dye Procion Marine H-EXL. Applied Catalysis B: Environmental. 2004;48(4):287-94. 31. Alvaro M, Carbonell E, Esplá M, Garcia H. Iron phthalocyanine supported on silica or encapsulated inside zeolite Y as solid photocatalysts for the degradation of phenols and sulfur heterocycles. Applied Catalysis B: Environmental. 2005;57(1):37-42. 32. Neamţu M, Catrinescu C, Kettrup A. Effect of dealumination of iron(III)—exchanged Y zeolites on oxidation of Reactive Yellow 84 azo dye in the presence of hydrogen peroxide. Applied Catalysis B: Environmental. 2004;51(3):149-57. 33. Mohamed RM, Mohamed MM. Copper (II) phthalocyanines immobilized on alumina and encapsulated inside zeolite-X and their applications in photocatalytic degradation of cyanide: A comparative study. Applied Catalysis A: General. 2008;340(1):16-24. 34. Wang Z, Mao W, Chen H, Zhang F, Fan X, Qian G. Copper(II) phthalocyanine tetrasulfonate sensitized nanocrystalline titania photocatalyst: Synthesis in situ and photocatalysis under visible light. Catalysis Communications. 2006;7(8):518-22. 35. DeOliveira E, Neri CR, Ribeiro AO, Garcia VS, Costa LL, Moura AO, et al. Hexagonal mesoporous silica modified with copper phthalocyanine as a photocatalyst for pesticide 2,4-dichlorophenoxiacetic acid degradation. Journal of Colloid and Interface Science. 2008;323(1):98-104. 36. Moosavifar M, Heidari SM, Fathyunes L, Ranjbar M, Wang Y, Arandiyan H. Photocatalytic Degradation of Dye Pollutant Over FeTPP/NaY Zeolite Nanocomposite. Journal of Inorganic and Organometallic Polymers and Materials. 2019;30(5):1621-8. 37. Moosavifar M, Alemi A, Marefat MR, Nouruzi N, Mahmoodi H. The effect of synthesis method and post-synthesis treatment on the formation of neutral Mn(II) complex into anionic zeolite structure and investigation of its catalytic activity in the epoxidation of alkenes. Journal of the Iranian Chemical Society. 2014;11(6):1561-7. 38. Moghadam M, Tangestaninejad S, Mirkhani V, Mohammadpoor-Baltork I, Moosavifar M. Host (nanocavity of zeolite-Y or X)–guest (manganese (III) tetrakis[4-N-methylpyridinum]porphyrin) nanocomposite materials as efficient catalysts for biomimetic alkene epoxidation with sodium periodate: Shape-selective epoxidation of linear alkenes. Journal of Molecular Catalysis A: Chemical. 2009;302(1-2):68-75. 39. Rosa ILV, Manso CMCP, Serra OA, Iamamoto Y. Biomimetical catalytic activity of iron(III) porphyrins encapsulated in the zeolite X. Journal of Molecular Catalysis A: Chemical. 2000;160(2):199-208. 40. APHA A. WEF (American Public Health Association, American Water Works Association, and Water Environment Federation). 1998. Standard methods for the examination of water and wastewater.19. 41. Linde C, Anderlund MF, Åkermark B. The effect of phenolates in the (salen)Mn-catalyzed epoxidation reactions. Tetrahedron Letters. 2005;46(33):5597-600. 42. Nakagaki S, Xavier CR, Wosniak AJ, Mangrich AS, Wypych F, Cantão MP, et al. Synthesis and characterization of zeolite-encapsulated metalloporphyrins. Colloids and Surfaces A: Physicochemical and Engineering Aspects. 2000;168(3):261-76. 43. Anandan S, Ryu SY, Cho W, Yoon M. Heteropolytungstic acid (H3PW12O40)—encapsulated into the titanium-exchanged HY (TiHY) zeolite: a novel photocatalyst for photoreduction of methyl orange. Journal of Molecular Catalysis A: Chemical. 2003;195(1-2):201-8. 44. San N, Hatipoğlu A, Koçtürk G, Çınar Z. Photocatalytic degradation of 4-nitrophenol in aqueous TiO2 suspensions: Theoretical prediction of the intermediates. Journal of Photochemistry and Photobiology A: Chemistry. 2002;146(3):189-97. 45. Legrini O, Oliveros E, Braun AM. Photochemical processes for water treatment. Chemical Reviews. 1993;93(2):671-98. 46. Moosavifar M, Nikkhoo M, Mansouri F. Host (nanocavity of dealuminated Y zeolite)-guest (Ce(IV) salophen/TiO2) nanocomposite materials as an efficient photocatalyst for degradation of 4-nitrophenol. Research on Chemical Intermediates. 2016;42(10):7417-27. 47. Xu W, Chen J, Qiu Y, Peng W, Shi N, Zhou J. Highly efficient microwave catalytic oxidation degradation of 4-nitrophenol over magnetically separable NiCo2O4-Bi2O2CO3 composite without adding oxidant. Separation and Purification Technology. 2019;213:426-36. 48. Ji K, Arandiyan H, Liu P, Zhang L, Han J, Xue Y, et al. Interfacial insights into 3D plasmonic multijunction nanoarchitecture toward efficient photocatalytic performance. Nano Energy. 2016;27:515-25. 49. Sun W, Li J, Lü X, Zhang F. Preparation, characterization and photocatalytic activity of metalloporphyrins-modified TiO2 composites. Research on Chemical Intermediates. 2012;39(3):1447-57. 50. Arandiyan H, Chang H, Liu C, Peng Y, Li J. Dextrose-aided hydrothermal preparation with large surface area on 1D single-crystalline perovskite La0.5Sr0.5CoO3 nanowires without template: Highly catalytic activity for methane combustion. Journal of Molecular Catalysis A: Chemical. 2013;378:299-306. 51. Uberoi V, Bhattacharya SK. Toxicity and degradability of nitrophenols in anaerobic systems. Water Environment Research. 1997;69(2):146-56. 52. Qiao XX, Yu K, Xu JY, Cai YL, Li YF, Cao HL, et al. Engineered nanoscale schwertmannites as Fenton–like catalysts for highly efficient degradation of nitrophenols. Applied Surface Science. 2021;548:149248. 53. Nakhjiri MT, Bagheri Marandi G, Kurdtabar M. Preparation of magnetic double network nanocomposite hydrogel for adsorption of phenol and p-nitrophenol from aqueous solution. Journal of Environmental Chemical Engineering. 2021;9(2):105039. | ||
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