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Article

Adsorptive removal of antipsychotic drug by carbon nanofibers in a batch and fixed bed column system

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  • Ahmed, M. J., and B. H. Hameed. 2018. Removal of emerging pharmaceutical contaminants by adsorption in a fixed-bed column: A review. Ecotoxicology and Environmental Safety 149:257–66. doi:10.1016/j.ecoenv.2017.12.012.
  • Albayati, T. M., and K. R. Kalash. 2020. Polycyclic aromatic hydrocarbons adsorption from wastewater using different types of prepared mesoporous materials MCM-41in batch and fixed bed column. Process Safety and Environmental Protection 133:124–36. doi:10.1016/j.psep.2019.11.007.
  • Anastopoulos, I., I. Pashalidis, A. G. Orfanos, I. D. Manariotis, T. Tatarchuk, L. Sellaoui, A. Bonilla-Petriciolet, A. Mittal, and A. Núñez-Delgado. 2020. Removal of caffeine, nicotine and amoxicillin from (waste) waters by various adsorbents. A review. Journal of Environmental Management 261:110236.
  • Banipal, T. S., H. Kaur, and P. K. Banipal. 2016. Investigations on micellization and surface properties of sodium dodecyl sulfate in aqueous solutions of triflupromazine hydrochloride at different temperatures. Journal of Molecular Liquids 218:112–9. doi:10.1016/j.molliq.2016.02.036.
  • Caliskan Salihi, E. 2017. Adsorption of Metamizole sodium by activated carbon in simulated gastric and intestinal fluids. Journal of the Turkish Chemical Society, Section A: Chemistry 5 (1):237–46. doi:10.18596/jotcsa.353590.
  • Çalışkan Salihi, E., and E. Aydın. 2017. Adsorptive characteristics of isoniazid on powdered activated carbon: π–π Dispersion interactions at the solid–solution interface. Journal of Dispersion Science and Technology 38 (4):457–62. doi:10.1080/01932691.2016.1173562.
  • Çalışkan Salihi, E., and M. Mahramanlıoğlu. 2014. Equilibrium and kinetic adsorption of drugs on bentonite: Presence of surface active agents effect. Applied Clay Science 101:381–9. doi:10.1016/j.clay.2014.06.015.
  • Çalışkan Salihi, E., J. Wang, D. J. Coleman, and L. Šiller. 2016. Enhanced removal of nickel(II) ions from aqueous solutions by SDS-functionalized graphene oxide. Separation Science and Technology 51 (8):1317–27. doi:10.1080/01496395.2016.1162172.
  • Çalışkan Salihi, E., J. Wang, G. Kabacaoğlu, S. Kırkulak, and L. Šiller. 2021. Graphene oxide as a new generation adsorbent for the removal of antibiotics from waters. Separation Science and Technology 56 (3):453–61. doi:10.1080/01496395.2020.1717533.
  • Çalışkan Salihi, E., Z. Gündüz, and A. S. Baştuğ. 2019. Fast retention of isoniazid on organobentonite prepared using green chemistry approach: Contribution of the π interactions. Separation Science and Technology 54 (16):2695–705. doi:10.1080/01496395.2018.1543324.
  • Çalışkan, E., and S. Göktürk. 2010. Adsorption characteristics of sulfamethoxazole and metronidazole on activated carbon. Separation Science and Technology 45 (2):244–55. doi:10.1080/01496390903409419.
  • Castillo-Zacarías, C., M. E. Barocio, E. Hidalgo-Vázquez, J. E. Sosa-Hernández, L. Parra-Arroyo, I. Y. López-Pacheco, D. Barceló, H. N. Iqbal, and R. Parra-Saldívar. 2021. Antidepressant drugs as emerging contaminants: Occurrence in urban and non-urban waters and analytical methods for their detection. Science of the Total Environment 757:143722. doi:10.1016/j.scitotenv.2020.143722.
  • Chaba, J. M., and P. N. Nomngongo. 2018. Preparation of V2O5-ZnO coated carbon nanofibers: Application for removal of selected antibiotics in environmental matrices. Journal of Water Process Engineering 23:50–60. doi:10.1016/j.jwpe.2018.03.003.
  • Chaba, J. M., and P. N. Nomngongo. 2019. Effective adsorptive removal of amoxicillin from aqueous solutions and wastewater samples using zinc oxide coated carbon nanofiber composite. Emerging Contaminants 5:143–9. doi:10.1016/j.emcon.2019.04.001.
  • Cheng, N., B. Wang, P. Wu, X. Lee, Y. Xing, M. Chen, and B. Gao. 2021. Adsorption of emerging contaminants from water and wastewater by modified biochar: A review. Environmental Pollution 273:116448. doi:10.1016/j.envpol.2021.116448.
  • Chernova, E., Z. Zhakovskaya, and N. Berezina. 2021. Occurrence of pharmaceuticals in the Eastern Gulf of Finland (Russia). Environmental Science and Pollution Research 28 (48):68871–14. doi:10.1007/s11356-021-15250-1.
  • Costa, L. R. D. C., and L. A. Féris. 2020. Use of functinalized adsorbents for tetracycline removal in wastewater: adsorption mechanism and comparison with activated carbon. Journal of Environmental Science and Health. Part A, Toxic/Hazardous Substances & Environmental Engineering 55 (14):1604–14. doi:10.1080/10934529.2020.1827654.
  • de Franco, M. A. E., C. B. de Carvalho, M. M. Bonetto, R. de Pelegrini Soares, and L. A. Féris. 2018. Diclofenac removal from water by adsorption using activated carbon in batch mode and fixed-bed column: Isotherms, thermodynamic study and breakthrough curves modeling. Journal of Cleaner Production 181:145–54. doi:10.1016/j.jclepro.2018.01.138.
  • De Jong, K. P., and J. W. Geus. 2000. Carbon nanofibers: Catalytic synthesis and applications. Catalysis Reviews 42 (4):481–510. doi:10.1081/CR-100101954.
  • Dyall, J., C. M. Coleman, B. J. Hart, T. Venkataraman, M. R. Holbrook, J. Kindrachuk, R. F. Johnson, G. G. Olinger, P. B. Jahrling, M. Laidlaw, et al. 2014. Repurposing of clinically developed drugs for treatment of Middle East respiratory syndrome coronavirus infection. Antimicrobial Agents and Chemotherapy 58 (8):4885–93. doi:10.1128/AAC.03036-14.
  • Fontes, M. K., L. A. Maranho, and C. D. S. Pereira. 2020. Review on the occurrence and biological effects of illicit drugs in aquatic ecosystems. Environmental Science and Pollution Research International 27 (25):30998–37. doi:10.1007/s11356-020-08375-2.
  • Ghosh, A. K., M. Brindisi, D. Shahabi, M. E. Chapman, and A. D. Mesecar. 2020. Drug development and medicinal chemistry efforts toward SARS‐coronavirus and Covid‐19 therapeutics. Chemmedchem. 15 (11):907–32. doi:10.1002/cmdc.202000223.
  • Giles, C. H., T. H. MacEwan, S. N. Nakhwa, and D. Smith. 1960. Studies in adsorption. Part XI. A system of classification of solution adsorption isotherms and its use in diagnosis of adsorption mechanisms and in measurement of specific surface areas of solids. Journal of the Chemical Society (Resumed) 786:3973–93. doi:10.1039/jr9600003973.
  • Gupta, V. K., S. Agarwal, I. Tyagi, M. Sohrabi, A. Fakhri, S. Rashidi, and N. Sadeghi. 2016. Microwave-assisted hydrothermal synthesis and adsorption properties of carbon nanofibers for methamphetamine removal from aqueous solution using a response surface methodology. Journal of Industrial and Engineering Chemistry 41:158–64. doi:10.1016/j.jiec.2016.07.018.
  • Gwenzi, W., A. Kanda, C. Danha, N. Muisa‐Zikali, and N. Chaukura. 2021. Occurrence, human health risks, and removal of pharmaceuticals in aqueous systems: Current knowledge and future perspectives. In Applied water science volume 1: Fundamentals and Applications, ed. M. I. Ahamed, R. Boddula, and T. Ahmad Rangreez, 63–101. Beverly, MA: Scrivener Publishing.
  • Hammel, E., X. Tang, M. Trampert, T. Schmitt, K. Mauthner, A. Eder, and P. Pötschke. 2004. Carbon nanofibers for composite applications. Carbon 42 (5–6):1153–8. doi:10.1016/j.carbon.2003.12.043.
  • Han, Y. J., K. H. Lee, S. Yoon, S. W. Nam, S. Ryu, D. Seong, J. S. Kim, J. Y. Lee, J. W. Yang, J. Lee, et al. 2021. Treatment of severe acute respiratory syndrome (SARS), Middle East respiratory syndrome (MERS), and coronavirus disease 2019 (COVID-19): A systematic review of in vitro, in vivo, and clinical trials. Theranostics 11 (3):1207–31. doi:10.7150/thno.48342.
  • Hashimoto, K. 2021. Repurposing of CNS drugs to treat COVID-19 infection: Targeting the sigma-1 receptor. European Archives of Psychiatry and Clinical Neuroscience 271 (2):249–10. doi:10.1007/s00406-020-01231-x.
  • Hazafa, A., K. Ur-Rahman, I. U. Haq, N. Jahan, M. Mumtaz, M. Farman, H. Naeem, F. Abbas, M. Naeem, S. Sadiqa, et al. 2020. The broad-spectrum antiviral recommendations for drug discovery against COVID-19. Drug Metabolism Reviews 52 (3):408–24. doi:10.1080/03602532.2020.1770782.
  • Huang, L., R. Shen, and Q. Shuai. 2021. Adsorptive removal of pharmaceuticals from water using metal-organic frameworks: A review. Journal of Environmental Management 277:111389. doi:10.1016/j.jenvman.2020.111389.
  • Hubetska, T., N. Kobylinska, and J. R. García. 2020. Efficient adsorption of pharmaceutical drugs from aqueous solution using a mesoporous activated carbon. Adsorption 26 (2):251–66. doi:10.1007/s10450-019-00143-0.
  • Hunter, C. A., and J. K. Sanders. 1990. The nature of. pi.-. pi. interactions. Journal of the American Chemical Society 112 (14):5525–34. doi:10.1021/ja00170a016.
  • Karimi-Maleh, H., A. Ayati, R. Davoodi, B. Tanhaei, F. Karimi, S. Malekmohammadi, Y. Orooji, L. Fu, and M. Sillanpää. 2021. Recent advances in using of chitosan-based adsorbents for removal of pharmaceutical contaminants: A review. Journal of Cleaner Production 291:125880. doi:10.1016/j.jclepro.2021.125880.
  • Karimi-Maleh, H., A. Ayati, S. Ghanbari, Y. Orooji, B. Tanhaei, F. Karimi, M. Alizadeh, J. Rouhi, L. Fu, and M. Sillanpää. 2021. Recent advances in removal techniques of Cr (VI) toxic ion from aqueous solution: A comprehensive review. Journal of Molecular Liquids 329:115062. doi:10.1016/j.molliq.2020.115062.
  • Karimi-Maleh, H., M. Shafieizadeh, M. A. Taher, F. Opoku, E. M. Kiarii, P. P. Govender, S. Ranjbari, M. Rezapour, and Y. Orooji. 2020. The role of magnetite/graphene oxide nano-composite as a high-efficiency adsorbent for removal of phenazopyridine residues from water samples, an experimental/theoretical investigation. Journal of Molecular Liquids 298:112040. doi:10.1016/j.molliq.2019.112040.
  • Karimi-Maleh, H., S. Ranjbari, B. Tanhaei, A. Ayati, Y. Orooji, M. Alizadeh, F. Karimi, S. Salmanpour, J. Rouhi, M. Sillanpää, et al. 2021. Novel 1-butyl-3-methylimidazolium bromide impregnated chitosan hydrogel beads nanostructure as an efficient nanobio-adsorbent for cationic dye removal: Kinetic study. Environmental Research 195:110809. doi:10.1016/j.envres.2021.110809.
  • Kebede, T. G., M. B. Seroto, R. C. Chokwe, S. Dube, and M. M. Nindi. 2020. Adsorption of antiretroviral (ARVs) and related drugs from environmental wastewaters using nanofibers. Journal of Environmental Chemical Engineering 8 (5):104049. doi:10.1016/j.jece.2020.104049.
  • Lai, C. C., and C. T. Lo. 2015. Preparation of nanostructural carbon nanofibers and their electrochemical performance for supercapacitors. Electrochimica Acta 183:85–93. doi:10.1016/j.electacta.2015.02.143.
  • Langmuir, I. 1918. The adsorption of gases on plane surfaces of glass, mica and platinum. Journal of the American Chemical Society 40 (9):1361–403. doi:10.1021/ja02242a004.
  • Machado-Vieira, R., J. Quevedo, L. Shahani, and J. C. Soares. 2021. Convergent evidence for the antiviral effects of several FDA-approved phenothiazine antipsychotics against SARS-CoV-2 and other coronaviruses. Revista Brasileira de Psiquiatria (Sao Paulo, Brazil : 1999) 43 (5):462–4. doi:10.1590/1516-4446-2020-0024.
  • Nannou, C., A. Ofrydopoulou, E. Evgenidou, D. Heath, E. Heath, and D. Lambropoulou. 2020. Antiviral drugs in aquatic environment and wastewater treatment plants: A review on occurrence, fate, removal and ecotoxicity. The Science of the Total Environment 699:134322. doi:10.1016/j.scitotenv.2019.134322.
  • Nassour, C., S. J. Barton, S. Nabhani-Gebara, Y. Saab, and J. Barker. 2020. Occurrence of anticancer drugs in the aquatic environment: A systematic review. Environmental Science and Pollution Research International 27 (2):1339–47. doi:10.1007/s11356-019-07045-2.
  • Nie, H., K. Mi, L. Song, and X. Zheng. 2019. Nitrogen-doped hierarchical porous CNF derived from fibrous structured hollow ZIF-8 for a high-performance supercapacitor electrode. RSC Advances 9 (69):40636–41. doi:10.1039/C9RA07846K.
  • Pérez, E. M., and N. Martín. 2015. π-π Interactions in carbon nanostructures. Chemical Society Reviews 44 (18):6425–33. doi:10.1039/c5cs00578g.
  • Pillaiyar, T., S. Meenakshisundaram, and M. Manickam. 2020. Recent discovery and development of inhibitors targeting coronaviruses. Drug Discovery Today 25 (4):668–88. doi:10.1016/j.drudis.2020.01.015.
  • Pouya, E. S., H. Abolghasemi, M. Esmaieli, H. Fatoorehchi, S. J. Hashemi, and A. Salehpour. 2015. Batch adsorptive removal of benzoic acid from aqueous solution onto modified natural vermiculite: Kinetic, isotherm and thermodynamic studies. Journal of Industrial and Engineering Chemistry 31:199–215. doi:10.1016/j.jiec.2015.06.024.
  • Queirós, V., U. M. Azeiteiro, A. M. Soares, and R. Freitas. 2021. The antineoplastic drugs cyclophosphamide and cisplatin in the aquatic environment–Review. Journal of Hazardous Materials 412:125028. doi:10.1016/j.jhazmat.2020.125028.
  • Qureshi, U. A., B. H. Hameed, and M. J. Ahmed. 2020. Adsorption of endocrine disrupting compounds and other emerging contaminants using lignocellulosic biomass-derived porous carbons: A review. Journal of Water Process Engineering 38:101380. doi:10.1016/j.jwpe.2020.101380.
  • Rocha, L. S., D. Pereira, É. Sousa, M. Otero, V. I. Esteves, and V. Calisto. 2020. Recent advances on the development and application of magnetic activated carbon and char for the removal of pharmaceutical compounds from waters: A review. The Science of the Total Environment 718:137272. doi:10.1016/j.scitotenv.2020.137272.
  • Santamaría, L., M. A. Vicente, S. A. Korili, and A. Gil. 2020. Progress in the removal of pharmaceutical compounds from aqueous solution using layered double hydroxides as adsorbents: A review. Journal of Environmental Chemical Engineering 8 (6):104577. doi:10.1016/j.jece.2020.104577.
  • Schwartz, H., L. Marushka, H. M. Chan, M. Batal, T. Sadik, A. Ing, K. Fediuk, and C. Tikhonov. 2021. Pharmaceuticals in source waters of 95 First Nations in Canada. Canadian Journal of Public Health = Revue Canadienne de Sante Publique 112 (Suppl 1):133–53. doi:10.17269/s41997-021-00499-3.
  • Silva, B., F. Costa, I. C. Neves, and T. Tavares. 2015. Psychiatric pharmaceuticals as emerging contaminants in wastewater. Cham: Springer International Publishing.
  • Soberman, M. J., R. R. Farnood, and S. Tabe. 2020. Functionalized powdered activated carbon electrospun nanofiber membranes for adsorption of micropollutants. Separation and Purification Technology 253:117461. doi:10.1016/j.seppur.2020.117461.
  • Sotelo, J. L., A. Rodríguez, S. Álvarez, and J. García. 2012. Removal of caffeine and diclofenac on activated carbon in fixed bed column. Chemical Engineering Research and Design 90 (7):967–74. doi:10.1016/j.cherd.2011.10.012.
  • Talreja, N., N. Verma, and D. Kumar. 2016. Carbon bead‐supported ethylene diamine‐functionalized carbon nanofibers: An efficient adsorbent for salicylic acid. CLEAN - Soil, Air, Water 44 (11):1461–70. doi:10.1002/clen.201500722.
  • Tulay, E. C. 2020. Investigation on adsorption of Triflupromazine hydrochloride on carbon nanofibers. Msc thesis, Marmara University, Institute of Health Sciences, Istanbul.
  • Vajtai, R. ed. 2013. Springer handbook of nanomaterials. Cham: Springer Science & Business Media.
  • Xu, J., Y. Xue, R. Zhou, P. Y. Shi, H. Li, and J. Zhou. 2021. Drug repurposing approach to combating coronavirus: Potential drugs and drug targets. Medicinal Research Reviews 41 (3):1375–426.
  • Yadav, A., E. R. Rene, M. K. Mandal, and K. K. Dubey. 2021. Threat and sustainable technological solution for antineoplastic drugs pollution: Review on a persisting global issue. Chemosphere 263:128285. doi:10.1016/j.chemosphere.2020.128285.
  • Yan, J., K. Dong, Y. Zhang, X. Wang, A. A. Aboalhassan, J. Yu, and B. Ding. 2019. Multifunctional flexible membranes from sponge-like porous carbon nanofibers with high conductivity. Nature Communications 10 (1):1–9. doi:10.1038/s41467-019-13430-9.
  • Yu, R., X. Yu, B. Xue, J. Liao, W. Zhu, and J. Fu. 2021. Adsorption of oxytetracycline from aquaculture wastewater by modified carbon nanotubes: Kinetics, isotherms and thermodynamics. Fullerenes, Nanotubes and Carbon Nanostructures 29 (1):28–38. doi:10.1080/1536383X.2020.1806248.
  • Zhou, R. 2015. Modeling of nanotoxicity. Cham: Springer.

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