References

  1. M.I. Jalees, Synthesis and application of magnetized nanoparticles to remove lead from drinking water: Taguchi design of experiment, J. Water Sanit. Hyg. Dev., 10 (2020) 56–65.
  2. W.C. Li, Q.G. Niu, H. Zhang, Z. Tian, Y. Zhang, Y.X. Gao, Y.-Y. Li, O. Nishimura, M. Yang, UASB treatment of chemical synthesis-based pharmaceutical wastewater containing rich organic sulfur compounds and sulfate and associated microbial characteristics, Chem. Eng. J., 260 (2015) 55–63.
  3. D. Kanakaraju, B.D. Glass, M. Oelgemöller, Titanium dioxide photocatalysis for pharmaceutical wastewater treatment, Environ. Chem. Lett., 12 (2014) 27–47.
  4. M. Ahmadi, H.R. Motlagh, N. Jaafarzadeh, A. Mostoufi, R. Saeedi, G. Barzegar, S. Jorfi, Enhanced photocatalytic degradation of tetracycline and real pharmaceutical wastewater using MWCNT/TiO2 nano-composite, J. Environ. Manage., 186 (2017) 55–63.
  5. K.-F. Liao, C.-L. Lin, S.-W. Lai, W.-C. Chen, Sitagliptin use and risk of acute pancreatitis in type 2 diabetes mellitus: a population-based case-control study in Taiwan, Eur. J. Intern. Med., 27 (2016) 76–79.
  6. C. Ballav, S.C.L. Gough, Safety and efficacy of sitagliptinmetformin in fixed combination for the treatment of type 2 diabetes mellitus, Clin. Med. Insights: Endocrinol. Diabetes, 6 (2013) 25–37.
  7. T.M.S. Attia, X.L. Hu, Y.D. Qiang, Synthesized magnetic nanoparticles coated zeolite for the adsorption of pharmaceutical compounds from aqueous solution using batch and column studies, Chemosphere, 93 (2013) 2076–2085.
  8. R.H. Waring, R.M. Harris, S.C. Mitchell, Plastic contamination of the food chain: a threat to human health?, Maturitas, 115 (2018) 64–68.
  9. E. Bonora, M. Cigolini, DPP-4 inhibitors and cardiovascular disease in type 2 diabetes mellitus. Expectations, observations and perspectives, Nutr. Metab. Cardiovasc. Dis., 26 (2016) 273–284.
  10. B. Gupta, A.K. Gupta, A. Bhatnagar, Treatment of pharmaceutical wastewater using photocatalytic reactor and hybrid system integrated with biofilm based process: mechanistic insights and degradation pathways, J. Environ. Chem. Eng., 11 (2023) 109141, doi: 10.1016/j.jece.2022.109141.
  11. K. Pandya, T.S. Anantha Singh, P. Kodgire, S. Simon, Combined ultrasound cavitation and persulfate for the treatment of pharmaceutical wastewater, Water Sci. Technol., 86 (2022) 2157–2174.
  12. Z. Masood, A. Ikhlaq, O.S. Rizvi, H.A. Aziz, M. Kazmi, F. Qi, A novel hybrid treatment for pharmaceutical wastewater implying electroflocculation, catalytic ozonation with Ni-Co Zeolite 5A° catalyst followed by ceramic membrane filtration, J. Water Process Eng., 51 (2023) 103423, doi: 10.1016/j. jwpe.2022.103423.
  13. Z. Jing, Y. Xu, K. Fan, L. Chun, L. Shaoyan, L. Miaoqi, P. Bo, Performance of advanced treatment of pharmaceutical wastewater by microbubble catalytic ozonation and component variation characteristics of dissolved organic matter, Chin. J. Environ. Eng., 16 (2022) 1469–1479.
  14. R.K. Goswami, K. Agrawal, P. Verma, An exploration of natural synergy using microalgae for the remediation of pharmaceuticals and xenobiotics in wastewater, Algal Res., 64 (2022) 102703, doi: 10.1016/j.algal.2022.102703.
  15. J.K. Samson Ponselvan, A.G. Murugesan, Electrocoagulation of bio-treated pharmaceutical wastewater for RO pretreatment, J. Pharm. Res. Int., 34 (2022) 65–72.
  16. A. Hamdy, M.K. Mostafa, M. Nasr, Zero-valent iron nanoparticles for methylene blue removal from aqueous solutions and textile wastewater treatment, with cost estimation, Water Sci. Technol., 78 (2018) 367–378.
  17. R. Sridar, U. Uma Ramanane, M. Rajasimman, ZnO nanoparticles – synthesis, characterization and its application for phenol removal from synthetic and pharmaceutical industry wastewater, Environ. Nanotechnol. Monit. Manage., 10 (2018) 388–393.
  18. A.S. Mahmoud, M.K. Mostafa, M. Nasr, Regression model, artificial intelligence, and cost estimation for phosphate adsorption using encapsulated nanoscale zero-valent iron, Sep. Sci. Technol., 54 (2019) 13–26.
  19. D.A. Hussein Al-Timimi, Q.F. Alsalhy, A.A. AbdulRazak, Polyethersulfone/amine grafted silica nanoparticles mixed matrix membrane: a comparative study for mebeverine hydrochloride wastewater treatment, Alexandria Eng. J., 66 (2023) 167–190.
  20. I. Fatimah, P.W. Citradewi, G. Purwiandono, H. Hidayat, S. Sagadevan, Nickel oxide decorated reduced graphene oxide synthesized using single bioreductor of Pometia pinnata leaves extract as photocatalyst in tetracycline photooxidation and antibacterial agent, Inorg. Chem. Commun., 148 (2023) 110287, doi: 10.1016/j.inoche.2022.110287.
  21. M. Chapalaghi, M. Ahsani, B. Ghofrani, N. Ranjbaran, R. Yegani, A step-by-step assessment of the backwashing process impact on the fouling mitigation of blended PVC/PC and nanocomposite PVC/PC/MAg membranes in a membrane bioreactor (MBR) treating pharmaceutical wastewater, Chem. Eng. Res. Des., 188 (2022) 831–845.
  22. J.S. Afolayan, E. Ajani, S. Saheed, R.D. Folorunsho, M.A. Abdullateef, Green synthesis of copper and silver nanoparticles and their comparative toxicity and antibacterial evaluation in pharmaceutical wastewater treatment, Nanotechnol. Environ. Eng., 8 (2023) 333–346.
  23. T.S. Rajaraman, S.P. Parikh, V.G. Gandhi, Black TiO2: a review of its properties and conflicting trends, Chem. Eng. J., 389 (2020) 123918, doi: 10.1016/j.cej.2019.123918.
  24. C.G. Aba-Guevara, I.E. Medina-Ramírez, A. Hernández-Ramírez, J. Jáuregui-Rincón, J.A. Lozano-Álvarez, J.L. Rodríguez-López, Comparison of two synthesis methods on the preparation of Fe, N-Co-doped TiO2 materials for degradation of pharmaceutical compounds under visible light, Ceram. Int., 43 (2017) 5068–5079.
  25. M. Hinojosa-Reyes, R. Camposeco-Solis, F. Ruiz, V. Rodríguez-González, E. Moctezuma, Promotional effect of metal doping on nanostructured TiO2 during the photocatalytic degradation of 4-chlorophenol and naproxen sodium as pollutants, Mater. Sci. Semicond. Process., 100 (2019) 130–139.
  26. K.S. Varma, R.J. Tayade, K.J. Shah, P.A. Joshi, A.D. Shukla, V.G. Gandhi, Photocatalytic degradation of pharmaceutical and pesticide compounds (PPCs) using doped TiO2 nanomaterials: a review, Water-Energy Nexus, 3 (2020) 46–61.
  27. K. Oganisian, A. Hreniak, A. Sikora, D. Gaworska-Koniarek, A. Iwan, Synthesis of iron doped titanium dioxide by sol-gel method for magnetic applications, Process. Appl. Ceram., 9 (2015) 43–51.
  28. M.S. Khan, J.A. Shah, N. Riaz, T.A. Butt, A.J. Khan, W. Khalifa, H.H. Gasmi, E.R. Latifee, M. Arshad, A.A. Alawi Al-Naghi, A. Ul-Hamid, M. Arshad, M. Bilal, Synthesis and characterization of Fe-TiO2 nanomaterial: performance evaluation for RB5 decolorization and in vitro antibacterial studies, Nanomaterials, 11 (2021) 436, doi: 10.3390/nano11020436.
  29. D. Komaraiah, E. Radha, N. Kalarikkal, J. Sivakumar, M.V. Ramana Reddy, R. Sayanna, Structural, optical and photoluminescence studies of sol-gel synthesized pure and iron doped TiO2 photocatalysts, Ceram. Int., 45 (2019) 25060–25068.
  30. P.A. Ochoa Rodríguez, G.A. Pecchi, S.G. Casuscelli, V.R. Elías, G.A. Eimer, A simple synthesis way to obtain iron-doped TiO2 nanoparticles as photocatalytic surfaces, Chem. Phys. Lett., 732 (2019) 136643, doi: 10.1016/j.cplett.2019.136643.
  31. X.Q. Shi, K.Y. Leong, H.Y. Ng, Anaerobic treatment of pharmaceutical wastewater: a critical review, Bioresour. Technol., 245 (2017) 1238–1244.
  32. M.I. Jalees, A. Javed, A. Iqbal, N. Zahara, M. Batool, Comparative isothermal study of phenolic removal from water using different forms of rice husk, Desal. Water Treat., 272 (2022) 220–232.
  33. C. Vatovec, P. Phillips, E. Van Wagoner, T.-M. Scott, E. Furlong, Investigating dynamic sources of pharmaceuticals: demographic and seasonal use are more important than down-the-drain disposal in wastewater effluent in a University City setting, Sci. Total Environ., 572 (2016) 906–914.
  34. S.P. Tripathy, R. Acharya, M. Das, R. Acharya, K. Parida, Adsorptive remediation of Cr(VI) from aqueous solution using cobalt ferrite: kinetics and isotherm studies, Mater. Today Proc., 30 (2020) 289–293.
  35. A. Alshameri, H.P. He, J.X. Zhu, Y.F. Xi, R.L. Zhu, L.Y. Ma, Q. Tao, Adsorption of ammonium by different natural clay minerals: characterization, kinetics and adsorption isotherms, Appl. Clay Sci., 159 (2018) 83–93.
  36. J. Cao, Z.-h. Yang, W.-p. Xiong, Y.-y. Zhou, Y.-r. Peng, X. Li, C.-y. Zhou, R. Xu, Y.-r. Zhang, One-step synthesis of
    Co-doped UiO-66 nanoparticle with enhanced removal efficiency of tetracycline: simultaneous adsorption and photocatalysis, Chem. Eng. J., 353 (2018) 126–137.
  37. M.I. Jalees, R. Nawaz, Synthesis and application of MoS2 nanosheets for the removal of amoxicillin from water: response surface method, Arabian J. Sci. Eng., 48 (2023) 443–455.
  38. M.O. Alfred, M.O. Omorogie, O. Bodede, R. Moodley, A. Ogunlaja, O.G. Adeyemi, C. Günter, A. Taubert, I. Iermak, H. Eckert, I.D.A. Silva, A.S.S. de Camargo, A. de Jesus Motheo, S.M. Clarke, E.I. Unuabonah, Solar-active clay-TiO2 nanocomposites prepared via biomass assisted synthesis: efficient removal of ampicillin, sulfamethoxazole and artemether from water, Chem. Eng. J., 398 (2020) 125544, doi: 10.1016/j.cej.2020.125544.
  39. Y. Cui, X. Deng, Q. Ma, H. Zhang, X. Cheng, X. Li, M. Xie, Q. Cheng, B. Li, Kinetics of photoelectrocatalytic degradation of diclofenac using N, S co-doped TiO2 nano-crystallite decorated TiO2 nanotube arrays photoelectrode, Environ. Prot. Eng., 44 (2018) 117–130.
  40. R.P. Cavalcante, R.F. Dantas, B. Bayarri, O. González, J. Giménez, S. Esplugas, A. Machulek Junior, Synthesis and characterization of B-doped TiO2 and their performance for the degradation of metoprolol, Catal. Today, 252 (2015) 27–34.
  41. V. Tiron, M.A. Ciolan, G. Bulai, G. Mihalache, F.D. Lipsa, R. Jijie, Efficient removal of methylene blue and ciprofloxacin from aqueous solution using flower-like, nanostructured ZnO coating under UV irradiation, Nanomaterials (Basel), 12 (2022) 2193, doi: 10.3390/nano12132193.
  42. K.H. Leong, B.L. Gan, S. Ibrahim, P. Saravanan, Synthesis of surface plasmon resonance (SPR) triggered Ag/TiO2 photocatalyst for degradation of endocrine disturbing compounds, Appl. Surf. Sci., 319 (2014) 128–135.