PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
Tytuł artykułu

Solar Light-Driven Degradation of Isoprinosine–Efficiency of the Processes and Kinetic Calculations

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The photocatalytic degradation of the antiviral drug Isoprinosine (inosine pranobex, IPN) by TiO2-P25, ZnO and SnO2 was investigated in two different aquatic matrices, i.e. milli-Q-water (MQ) and tap water (TW) under solar irradiation of 500 W/m2. The changes in concentration of IPN during all experiments were monitored using HPLC at a wavelength of 260 nm, and the photocatalytic degradation of IPN followed pseudo-first-order kinetics. The highest value of the pseudo-first-order rate constant of IPN photodegradation (k) was obtained by the presence of 20 mg/l TiO2-P25, (k=0.0483 min-1) in MQ water with the value of the coefficient of determination (R2) equal to 0.9268. The study also assessed the impact of photocatalyst doses and initial IPN concentrations on the efficacy of IPN photodegradation. The results showed that IPN was resistant to degradation under only sunlight (without any photocatalysts addition), with a degradation rate of 9% after 2 hours in milli-Q water and 16% after 2 hours in tap water. However, the addition of selected photocatalysts resulted in the breakdown of the IPN molecule. TiO2-P25 was particularly promising among the tested photocatalysts. The research also discovered that IPN partially adsorbed to TiO2 particles (33% after 2 hours), ZnO particles (26% after 2 hours), and SnO2 (4% after 2 hours). Based on the f indings, solar-light-driven photocatalysis could be a promising technique for the degradation of certain antiviral drugs in water matrices after optimizing the process.
Rocznik
Strony
173--181
Opis fizyczny
Bibliogr. 38 poz., rys., tab.
Twórcy
autor
  • Environmental Biotechnology Department, Faculty of Energy and Environmental Engineering, Silesian University of Technology, ul. Akademicka 2A, 44-100, Gliwice, Poland
autor
  • Environmental Biotechnology Department, Faculty of Energy and Environmental Engineering, Silesian University of Technology, ul. Akademicka 2A, 44-100, Gliwice, Poland
Bibliografia
  • 1. Ahmed H., & Felis, E. (2023). Drugs used in COVID-19 therapy and their effects on the environment. Desalination and Water Treatment, 301(2023) 52–62. https://doi.org/10.5004/dwt.2023.29574
  • 2. Adekunle A.S., Oyekunle, J.A.O., Durosinmi, L.M., Saheed, O., Ajayeoba, T.A., Akinyele, O. F., Elugoke, S.E., & Oluwafemi, O.S. (2021). Comparative photocatalytic degradation of dyes in wastewater using solar enhanced iron oxide (Fe2 O3 ) nanocatalysts prepared by chemical and microwave methods. Nano-Structures & Nano-Objects, 28, 100804. https://doi.org/10.1016/J.NANOSO.2021.100804
  • 3. Begum S., & Ahmaruzzaman, M. (2018). Biogenic synthesis of SnO2 /activated carbon nanocomposite and its application as photocatalyst in the degradation of naproxen. Applied Surface Science, 449, 780–789. https://doi.org/10.1016/J.APSUSC.2018.02.069
  • 4. Beran J., Špajdel, M., & Slíva, J. (2021). Inosine pranobex deserves attention as a potential immunomodulator to achieve early alteration of the covid-19 disease course. Viruses, 13(11). https://doi. org/10.3390/V13112246
  • 5. Chen Y., Zhang, X., Wang, L., Cheng, X., & Shang, Q. (2020). Rapid removal of phenol/antibiotics in water by Fe-(8-hydroxyquinoline-7-carboxylic)/ TiO2 flower composite: Adsorption combined with photocatalysis. Chemical Engineering Journal, 402, 126260. https://doi.org/10.1016/J.CEJ.2020.126260
  • 6. Dharmaraj S., Ashokkumar, V., Hariharan, S., Manibharathi, A., Show, PL., Chong, C.T., & Ngamcharussrivichai, C. (2021). The COVID-19 pandemic face mask waste: A blooming threat to the marine environment. Chemosphere, 272, 129601. https:// doi.org/10.1016/J.CHEMOSPHERE.2021.129601
  • 7. Domyati D. (2023). Chemical and thermal study of metal chalcogenides (zinc sulfide), aluminum oxide, and graphene oxide based nanocomposites for wastewater treatment. Ceramics International, 49(1), 1464–1472. https://doi.org/10.1016/J.CERAMINT.2022.09.190
  • 8. Dong G., Chen, B., Liu, B., Hounjet, L.J., Cao, Y., Stoyanov, S.R., Yang, M., & Zhang, B. (2022). Advanced oxidation processes in microreactors for water and wastewater treatment: Development, challenges, and opportunities. Water Research, 211, 118047. https://doi.org/10.1016/J.WATRES.2022.118047
  • 9. Ebrahimian J., Mohsennia, M., & Khayatkashani, M. (2020). Photocatalytic-degradation of organic dye and removal of heavy metal ions using synthesized SnO2 nanoparticles by Vitex agnus-castus fruit via a green route. Materials Letters, 263, 127255. https://doi.org/10.1016/J.MATLET.2019.127255
  • 10. Efrain Merma Chacca D., Maldonado, I., & Vilca, F.Z. (2022). Environmental and ecotoxicological effects of drugs used for the treatment of COVID 19. Frontiers in Environmental Science, 10(August), 1–19. https://doi.org/10.3389/fenvs.2022.940975
  • 11. El Mouchtari E.M., Daou, C., Rafqah, S., Najjar, F., Anane, H., Piram, A., Hamade, A., Briche, S., & WongWah-Chung, P. (2020). TiO2 and activated carbon of Argania Spinosa tree nutshells composites for the adsorption photocatalysis removal of pharmaceuticals from aqueous solution. Journal of Photochemistry and Photobiology A: Chemistry, 388, 112183. https://doi. org/10.1016/J.JPHOTOCHEM.2019.112183
  • 12. Garrido-Cardenas J.A., Esteban-García, B., Agüera, A., Sánchez-Pérez, J.A., & Manzano-Agugliaro, F. (2020). Wastewater treatment by advanced oxidation process and their worldwide research trends. International Journal of Environmental Research and Public Health, 17(1). https://doi.org/10.3390/ijerph17010170
  • 13. Guillossou R., Le Roux, J., Mailler, R., Vulliet, E., Morlay, C., Nauleau, F., Gasperi, J., & Rocher, V. (2019). Organic micropollutants in a large wastewater treatment plant: What are the benefits of an advanced treatment by activated carbon adsorption in comparison to conventional treatment? Chemosphere, 218, 1050–1060. https://doi.org/10.1016/J. CHEMOSPHERE.2018.11.182
  • 14. Guo M., Yuan, B., Sui, Y., Xiao, Y., Dong, J., Yang, L., Bai, L., Yang, H., Wei, D., Wang, W., & Chen, H. (2023). Rational design of molybdenum sulfide/ tungsten oxide solar absorber with enhanced photocatalytic degradation toward dye wastewater purification. Journal of Colloid and Interface Science, 631, 33–43. https://doi.org/10.1016/J.JCIS.2022.11.015
  • 15. Gwenzi W., Selvasembian, R., Offiong, N.A.O., Mahmoud, A.E.D., Sanganyado, E., & Mal, J. (2022). COVID-19 drugs in aquatic systems: a review. Environmental Chemistry Letters, 20(2), 1275–1294. https://doi.org/10.1007/S10311-021-01356-Y
  • 16. Iazdani F., & Nezamzadeh-Ejhieh, A. (2021). Photocatalytic kinetics of 2,4-dichloroaniline degradation by NiO-clinoptilolite nanoparticles. Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy, 250, 119228. https://doi. org/10.1016/J.SAA.2020.119228
  • 17. Iqbal M., Ali, A., Nahyoon, N.A., Majeed, A., Pothu, R., Phulpoto, S., & Thebo, K.H. (2019). Photocatalytic degradation of organic pollutant with nanosized cadmium sulfide. Materials Science for Energy Technologies, 2(1), 41–45. https://doi. org/10.1016/J.MSET.2018.09.002
  • 18. Jain S., Kumar, P., Vyas, R.K., & Dalai, A.K. (2013). Occurrence and Removal of Antiviral Drugs in Environment: A Review. Water, Air, & Soil Pollution. https://doi.org/10.1007/s11270-012-1410-3
  • 19. Khamani S., Ghorbani, M.H., Torkian, L., Fazaeli, R., & Khodadadi, Z. (2021). Preparation of NiO/ WO3 heterostructure and photocatalytic properties in removal of lincomycin antibiotic: Experimental study and molecular dynamic simulation. Russian Journal of Physical Chemistry A, 95(10), 21542162. https://doi.org/10.1134/S0036024421100113
  • 20. Kumar N.M., Sudha, M.C., Damodharam, T., & Varjani, S. (2020). Micro-pollutants in surface water: Impacts on the aquatic environment and treatment technologies. Current Developments in Biotechnology and Bioengineering: Emerging Organic Micro-Pollutants, 41–62. https://doi.org/10.1016/ B978-0-12-819594-9.00003-6
  • 21. Kutluay S. (2021). Excellent adsorptive performance of novel magnetic nano-adsorbent functionalized with 8-hydroxyquinoline-5-sulfonic acid for the removal of volatile organic compounds (BTX) vapors. Fuel, 287. https://doi.org/10.1016/j.fuel.2020.119691
  • 22. Nanda S., & Berruti, F. (2021). Municipal solid waste management and landfilling technologies: a review. Environmental Chemistry Letters, 19(2), 14331456. https://doi.org/10.1007/s10311-020-01100-y
  • 23. Nannou C., Ofrydopoulou, A., Evgenidou, E., Heath, D., Heath, E., & Lambropoulou, D. (2020). Antiviral drugs in aquatic environment and wastewater treatment plants: A review on occurrence, fate, removal and ecotoxicity. Science of the Total Environment, 699. https://doi.org/10.1016/J. SCITOTENV.2019.134322
  • 24. Nippes R.P., Macruz, P.D., da Silva, G.N., & Neves Olsen Scaliante, M.H. (2021). A critical review on environmental presence of pharmaceutical drugs tested for the Covid-19 treatment. Process Safety and Environmental Protection, 152, 568–582. https://doi.org/10.1016/J.PSEP.2021.06.040
  • 25. Prakash J., Cho, J., & Mishra, Y.K. (2022). Photocatalytic TiO2 nanomaterials as potential antimicrobial and antiviral agents: Scope against blocking the SARSCOV-2 spread. Micro and Nano Engineering, 14, 100100. https://doi.org/10.1016/J.MNE.2021.100100
  • 26. Rafiq A., Ikram, M., Ali, S., Niaz, F., Khan, M., Khan, Q., & Maqbool, M. (2021). Photocatalytic degradation of dyes using semiconductor photocatalysts to clean industrial water pollution. Journal of Industrial and Engineering Chemistry, 97, 111–128. https://doi.org/10.1016/J.JIEC.2021.02.017
  • 27. Sabouni R., & Gomaa, H. (2019). Photocatalytic degradation of pharmaceutical micro-pollutants using ZnO. Environmental Science and Pollution Research, 26(6), 5372–5380. https://doi.org/10.1007/ s11356-018-4051-2
  • 28. Saleh I.A., Zouari, N., & Al-Ghouti, M.A. (2020). Removal of pesticides from water and wastewater: Chemical, physical and biological treatment approaches. Environmental Technology & Innovation, 19, 101026. https://doi.org/10.1016/J.ETI.2020.101026
  • 29. Sun C., Yang, J., Xu, M., Cui, Y., Ren, W., Zhang, J., Zhao, H., & Liang, B. (2022). Recent intensification strategies of SnO2-based photocatalysts: A review. Chemical Engineering Journal, 427, 131564. https:// doi.org/10.1016/J.CEJ.2021.131564
  • 30. Tobólska S., Terpiłowska, S., Jaroszewski, J., & Siwicki, A.K. (2018). Influence of inosine pranobex on cell viability in normal fibroblasts and liver cancer cells. Journal of Veterinary Research (Poland), 62(2), 215–220. https://doi.org/10.2478/jvetres-2018-0031
  • 31. Trishitman D., Cassano, A., Basile, A., & Rastogi, N.K. (2020). Reverse osmosis for industrial wastewater treatment. Current Trends and Future Developments on (Bio-) Membranes: Reverse and Forward Osmosis: Principles, Applications, Advances, 207–228. https:// doi.org/10.1016/B978-0-12-816777-9.00009-5
  • 32. Wang R., Luo, J., Li, C., Chen, J., & Zhu, N. (2023). Antiviral drugs in wastewater are on the rise as emerging contaminants: A comprehensive review of spatiotemporal characteristics, removal technologies and environmental risks. Journal of Hazardous Materials, 457, 131694. https://doi.org/10.1016/J. JHAZMAT.2023.131694
  • 33. Wang W.L., Wu, Q.Y., Wang, Z.M., Hu, H.Y., Negishi, N., & Torimura, M. (2015). Photocatalytic degradation of the antiviral drug Tamiflu by UV-A/TiO2 : Kinetics and mechanisms. Chemosphere, 131, 41–47. https:// doi.org/10.1016/J.CHEMOSPHERE.2015.02.032
  • 34. Xu Y., Qian, Y.S., Qiao, J.L., Huang, D.Y., & Cui, S.B. (2022). Preparation and electrochemical study of Ag nanoparticles decorated on gallium arsenide as photocatalyst for methyl orange degradation under visible light. International Journal of Electrochemical Science, 17(2), 22024. https://doi. org/10.20964/2022.02.11
  • 35. Yadav G., & Ahmaruzzaman, M. (2023). Recent development of novel nanocomposites for photocatalysis mediated remediation of phenolic derivatives: A comprehensive review. Journal of Industrial and Engineering Chemistry. https://doi.org/10.1016/j. jiec.2023.07.029
  • 36. Zeshan M., Bhatti, I.A., Mohsin, M., Iqbal, M., Amjed, N., Nisar, J., AlMasoud, N., & Alomar, T. S. (2022). Remediation of pesticides using TiO2 based photocatalytic strategies: A review. Chemosphere, 300, 134525. https://doi.org/10.1016/J. CHEMOSPHERE.2022.134525
  • 37. Zhen Y., Zhang, Q., Zhang, X., Zhang, G., Chen, X., & Zhao, C. (2020). A novel tubular up-flow magnetic film photocatalytic system optimized by main factors control for efficient removal of chlorophenols wastewater. Journal of Hazardous Materials, 398, 122963. https:// doi.org/10.1016/J.JHAZMAT.2020.122963
  • 38. Zhu G., Sun, Q., Wang, C., Yang, Z., & Xue, Q. (2019). Removal of sulfamethoxazole, sulfathiazole and sulfamethazine in their mixed solution by UV/ H2 O2 process. International Journal of Environmental Research and Public Health, 16(10). https://doi. org/10.3390/IJERPH16101797
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-6ff3d949-fdbb-4131-a996-b01fd31cb51f
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.