کارایی نانو کامپوزیت سبز مغناطیسی بر پایه فریت منگنز بهمنظور حذف تتراسایکلین هیدرو کلراید در حضور نور فرابنفش
الموضوعات :فاطمه گلریزخاتمی 1 , لعبت تقوی 2 , نگین ناصح 3 , همایون پناهی 4
1 - دانشجوی دکتری رشته علوم و مهندسی محیط زیست، دانشکده منابع طبیعی و محیطزیست، واحد علوم و تحقیقات، دانشگاه آزاد اسلامی، تهران، ایران
2 - دانشیار گروه علوم محیط زیست و جنگل، دانشکده منابع طبیعی و محیط زیست، واحد علوم و تحقیقات، دانشگاه آزاد اسلامی، تهران، ایران. *(مسوول مکاتبات)
3 - استادیار گروه آموزش بهداشت و ارتقاء سلامت، دانشکده بهداشت، دانشگاه علوم پزشکی بیرجند، بیرجند، ایران.
4 - استاد گروه شیمی، دانشکده علوم پایه، واحد تهران مرکز، دانشگاه آزاد اسلامی، تهران، ایران.
الکلمات المفتاحية: سنتز سبز, MnFe2O4/BiOI, فرآیند فوتوکاتالیستی, تتراسایکلین, شرایط بهینه.,
ملخص المقالة :
زمينه و هدف: آنتیبیوتیکها به دلیل ویژگی زیستتخریبپذیری پایین، حلالیت و سمیت زیاد، سلامت انسان و محیطزیست را تهدید میکنند. لذا هدف از انجام این مطالعه سنتز نانو کامپوزیت سبز مغناطیسی MnFe2O4/BiOI و حذف آلاینده تتراسایکلین از محلولهای آبی به کمک این نانو کامپوزیت طی فرآیند فوتوکاتالیستی در حضور نور فرابنفش است.
روش بررسی: در این مطالعه، نانو کامپوزیت سبز مغناطیسیMnFe2O4/BiOI با استفاده از عصاره گیاهی همیشهبهار، در سال 1402- 1401 سنتز شد و کارایی آن در حذف تتراسایکلین توسط نور فرابنفش مورد ارزیابی قرار گرفت. بهمنظور تعیین مشخصات این نانو کامپوزیت، از آنالیزهای XRD، VSM، TEM، FESEM و DRS استفاده گردید.
یافتهها: نانو کامپوزیت MnFe2O4/BiOI دارای ابعاد در محدوده 45-14 نانومتر، باند گپ eV 7/1 و میزان اشباع مغناطیسی emu/g 92/19 است. نتایج حاصل از فرآیند فوتوکاتالیستی گویای حذف 100% تتراسایکلین در شرایط بهینه واکنش (9=pH، غلظت mg/L20 تتراسایکلین، دوز g/L 5/0 نانو کامپوزیت MnFe2O4/BiOI و زمان 200 دقیقه)، است.
بحث و نتیجهگیری: این مطالعه نشان داد که رویکرد فرآیند فوتوکاتالیستی MnFe2O4/BiOI/UV در تصفیه محلولهای آبی حاوی آنتیبیوتیک تتراسایکلین مؤثر است.
1. Yuan, X., Qu, S., Huang, X., Xue, X., Yuan, C., Wang, S., Wei, L. and Cai, P., 2021. Design of core-shelled g-C3N4@ ZIF-8 photocatalyst with enhanced tetracycline adsorption for boosting photocatalytic degradation. Chemical Engineering Journal, 416, p.129148.
2. Liu, C., Mao, S., Wang, H., Wu, Y., Wang, F., Xia, M. and Chen, Q., 2022. Peroxymonosulfate-assisted for facilitating photocatalytic degradation performance of 2D/2D WO3/BiOBr S-scheme heterojunction. Chemical Engineering Journal, 430, p.132806.
3. Talreja, N., Afreen, S., Ashfaq, M., Chauhan, D., Mera, A.C., Rodríguez, C.A. and Mangalaraja, R.V., 2021. Bimetal (Fe/Zn) doped BiOI photocatalyst: An effective photodegradation of tetracycline and bacteria. Chemosphere, 280, p.130803.
4. Aliyu, M., Abdullah, A.H. and bin Mohamed Tahir, M.I., 2022. Adsorption tetracycline from aqueous solution using a novel polymeric adsorbent derived from the rubber waste. Journal of the Taiwan Institute of Chemical Engineers, 136, p.104333.
5. Zhu, Y., Shen, J., Guo, M., Zheng, H. and Cao, Y., 2023. Nitrogen-doped magnetic porous carbon material from low-cost anion-exchange resin as an efficient adsorbent for tetracyclines in water. Environmental Science and Pollution Research, 30(10), pp.27315-27327.
6. Lu, S., Liu, L., Yang, Q., Demissie, H., Jiao, R., An, G. and Wang, D., 2021. Removal characteristics and mechanism of microplastics and tetracycline composite pollutants by coagulation process. Science of the Total Environment, 786, p.147508.
7. Wu, J., Jiang, Y., Zha, L., Ye, Z., Zhou, Z., Ye, J. and Zhou, H., 2010. Tetracycline degradation by ozonation, and evaluation of biodegradability and toxicity of ozonation byproducts. Canadian Journal of Civil Engineering, 37(11), pp.1485-1491.
8. Wang, L., Liu, Y., Pang, D., Song, H. and Zhang, S., 2022. Simultaneous electrochemical degradation of tetracycline and metronidazole through a high-efficiency and low-energy-consumption advanced oxidation process. Chemosphere, 292, p.133469.
9. Żyłła, R., Ledakowicz, S., Boruta, T., Olak-Kucharczyk, M., Foszpańczyk, M., Mrozińska, Z. and Balcerzak, J., 2021. Removal of tetracycline oxidation products in the nanofiltration process. Water, 13(4), p.555.
10. Liu, Z., Yang, Y., Liu, G. and Fang, J., 2023. Study on a novel immobilized microbe pellets constructed with Alcaligenes sp. R3 and its ability to remove tetracycline. Journal of Environmental Chemical Engineering, 11(2), p.109378.
11. Wu, S., Li, X., Tian, Y., Lin, Y. and Hu, Y.H., 2021. Excellent photocatalytic degradation of tetracycline over black anatase-TiO2 under visible light. Chemical Engineering Journal, 406, p.126747.
12. Xia, G., Zheng, Y., Sun, Z., Xia, S., Ni, Z. and Yao, J., 2022. Fabrication of ZnAl-LDH mixed metal-oxide composites for photocatalytic degradation of 4-chlorophenol. Environmental Science and Pollution Research, 29(26), pp.39441-39450.
13. Yu, H., Zhu, J., Qiao, R., Zhao, N., Zhao, M. and Kong, L., 2022. Facile Preparation and Controllable Absorption of a Composite Based on PMo12/Ag Nanoparticles: Photodegradation Activity and Mechanism”. ChemistrySelect, 7(2), p.e202103668.
14. Chen, F., Zhang, Y. and Huang, H., 2023. Layered photocatalytic nanomaterials for environmental applications. Chinese Chemical Letters, 34(3), p.107523.
15. Li, D., Xu, K. and Zhang, C., 2022. Improvement of Photocatalytic Performance by Building Multiple Heterojunction Structures of Anatase–Rutile/BiOI Composite Fibers. Nanomaterials, 12(21), p.3906.
16. Gupta, S., 2022. Sulfuric acid heterogenized on magnetic nanoparticles functionalized with glycerol catalyzed synthesis of 2, 3-dihydroquinazoline-4 (1H)-ones. Journal of Synthetic Chemistry, 1(1), pp.37-41.
17. Zhao, W., Wei, Z., Zhang, X., Ding, M., Huang, S. and Yang, S., 2020. Magnetic recyclable MnFe2O4/CeO2/SnS2 ternary nano-photocatalyst for photo-Fenton degradation. Applied Catalysis A: General, 593, p.117443.
18. Joseph, J., Keren, D.S., Raghavi, R., Mary, S.A. and Aruni, W., 2021. Green synthesis of silver nanoparticles using Phyllanthus amarus Seeds and their antibacterial activity assessment. Biomedical and Biotechnology Research Journal (BBRJ), 5(1), pp.35-38.
19. Gu, J., Aidy, A. and Goorani, S., 2022. Anti-human lung adenocarcinoma, cytotoxicity, and antioxidant potentials of copper nanoparticles green-synthesized by Calendula officinalis. Journal of Experimental Nanoscience, 17(1), pp.285-296.
20. Golrizkhatami, F., Taghavi, L., Nasseh, N. and Panahi, H.A., 2023. Synthesis of novel MnFe2O4/BiOI green nanocomposite and its application to photocatalytic degradation of tetracycline hydrochloride:(LC-MS analyses, mechanism, reusability, kinetic, radical agents, mineralization, process capability, and purification of actual pharmaceutical wastewater). Journal of Photochemistry and Photobiology A: Chemistry, 444, p.114989.
21. Desai, H.B., Hathiya, L.J., Joshi, H.H. and Tanna, A.R., 2020. Synthesis and characterization of photocatalytic MnFe2O4 nanoparticles. Materials Today: Proceedings, 21, pp.1905-1910.
22. Durán, S.V., Lapo, B., Meneses, M. and Sastre, A.M., 2020. Recovery of neodymium (III) from aqueous phase by chitosan-manganese-ferrite magnetic beads. Nanomaterials, 10(6), p.1204.
23. Han, J., Zhu, G., Hojamberdiev, M., Peng, J., Zhang, X., Liu, Y., Ge, B. and Liu, P., 2015, Rapid adsorption and photocatalytic activity for Rhodamine B and Cr (VI) by ultrathin BiOI nanosheets with highly exposed {001} facets, New Journal of Chemistry, 39(3), 1874-1882.
24. Ahmadi, A., Foroutan, R., Esmaeili, H. and Tamjidi, S., 2020. The role of bentonite clay and bentonite clay@ MnFe2O4 composite and their physico-chemical properties on the removal of Cr (III) and Cr (VI) from aqueous media. Environmental Science and Pollution Research, 27(12), pp.14044-14057.
25. Xiao, Y., Ji, Z., Zou, C., Xu, Y., Wang, R., Wu, J., Liu, G., He, P., Wang, Q. and Jia, T., 2021. Construction of CeO2/BiOI S-scheme heterojunction for photocatalytic removal of elemental mercury. Applied Surface Science, 556, p.149767.
26. Ghazai, A.J., Abdulmunem, O.M., Qader, K.Y., Chiad, S.S. and Habubi, N.F., 2020, March. Investigation of some physical properties of Mn doped ZnS nano thin films. In AIP Conference Proceedings (Vol. 2213, No. 1). AIP Publishing.
27. Divakaran, K., Baishnisha, A., Balakumar, V., Perumal, K.N., Meenakshi, C. and Kannan, R.S., 2021. Photocatalytic degradation of tetracycline under visible light using TiO2@ sulfur doped carbon nitride nanocomposite synthesized via in-situ method. Journal of Environmental Chemical Engineering, 9(4), p.105560.
28. Rouhani, M., Ashrafi, S.D., Taghavi, K., Joubani, M.N. and Jaafari, J., 2022. Evaluation of tetracycline removal by adsorption method using magnetic iron oxide nanoparticles (Fe3O4) and clinoptilolite from aqueous solutions. Journal of Molecular Liquids, 356, p.119040.
29. Doosti, M., Jahanshahi, R., Laleh, S., Sobhani, S. and Sansano, J.M., 2022. Solar light induced photocatalytic degradation of tetracycline in the presence of ZnO/NiFe2O4/Co3O4 as a new and highly efficient magnetically separable photocatalyst. Frontiers in Chemistry, 10, p.1013349.
30. Entezami, N., Farhadian, M., Nazar, A.R.S. and Tangestaninejad, S., 2022. Synthesis and characterization of Bi2O3/ZIF-67 nanocomposite integration with capacitive deionization system in the degradation tetracycline. Process Safety and Environmental Protection, 164, pp.747-760.
31. Nasseh, N., Barikbin, B. and Taghavi, L., 2020. Photocatalytic degradation of tetracycline hydrochloride by FeNi3/SiO2/CuS magnetic nanocomposite under simulated solar irradiation: Efficiency, stability, kinetic and pathway study. Environmental Technology & Innovation, 20, p.101035.
32. Al-Musawi, T.J., Rajiv, P., Mengelizadeh, N., Arghavan, F.S. and Balarak, D., 2021. Photocatalytic efficiency of CuNiFe2O4 nanoparticles loaded on multi-walled carbon nanotubes as a novel photocatalyst for ampicillin degradation. Journal of molecular liquids, 337, p.116470.
33. Wang, P. and Yuan, Q., 2021. Photocatalytic degradation of tetracyclines in liquid digestate: Optimization, kinetics and correlation studies. Chemical Engineering Journal, 410, p.128327
34. Adabavazeh, H., Saljooqi, A., Shamspur, T. and Mostafavi, A., 2021. Synthesis of polyaniline decorated with ZnO and CoMoO4 nanoparticles for enhanced photocatalytic degradation of imidacloprid pesticide under visible light. Polyhedron, 198, p.115058.
35. Sadat, S.A., Salimi, L., Ghafourian, H., Yadegarian Hadji Abadi, L. and Sadatipour, S.M., 2022. Study of the performance of improved TiO2/N/S photo-catalyst on the removal of tetracycline from aqueous solutions. Chemical Engineering Communications, 209(11), pp.1468-1481.
36. Beni, F.A., Gholami, A., Ayati, A., Shahrak, M.N. and Sillanpää, M., 2020. UV-switchable phosphotungstic acid sandwiched between ZIF-8 and Au nanoparticles to improve simultaneous adsorption and UV light photocatalysis toward tetracycline degradation. Microporous and Mesoporous Materials, 303, p.110275.
37. Ghorbani, M., Nazar, A.R.S., Frahadian, M. and Tangestaninejad, S., 2023. Fabrication of novel ZnO@ BiOBr/UiO-66-NH2 core-shell heterojunction for improved tetracycline degradation. Applied Surface Science, 612, p.155819.
38. Shan, J., Wu, X., Li, C., Hu, J., Zhang, Z., Liu, H., Xia, P. and Huang, X., 2023. Photocatalytic degradation of tetracycline hydrochloride by a Fe3O4/g-C3N4/rGO magnetic nanocomposite mechanism: modeling and optimization. Environmental Science and Pollution Research, 30(3), pp.8098-8109.
39. He, X., Qin, W. and Xie, Y., 2023. Degradation of Tetracycline with Photocatalysis by CeO2-Loaded Soybean Powder Carbon. Nanomaterials, 13(6), p.1076.
40. Mengting, Z., Kurniawan, T.A., Yanping, Y., Othman, M.H.D., Avtar, R., Fu, D. and Hwang, G.H., 2020. Fabrication, characterization, and application of ternary magnetic recyclable Bi2WO6/BiOI@ Fe3O4 composite for photodegradation of tetracycline in aqueous solutions. Journal of environmental management, 270, p.110839.