References

  1. M.S.S. Abujazar, S. Fatihah, A.E. Kabeel, Seawater desalination using inclined stepped solar still with copper trays in a wet tropical climate, Desalination, 423 (2017) 141–148.
  2. H. Panchal, P.K. Shah, Investigation on solar stills having floating plates, Int. J. Energy Environ. Eng., 3 (2012) 8, doi: 10.1186/2251-6832-3-8.
  3. X. Zhu, C. Lei, J. Qi, G. Zhen, X. Lu, S. Xu, J. Zhang, H. Liu, X. Zhang, Z. Wu, The role of microbiome in carbon sequestration and environment security during wastewater treatment, Sci. Total Environ., 837 (2022) 155793, doi: 10.1016/j.scitotenv.2022.155793.
  4. M.M. Mekonnen, A.Y. Hoekstra, Four billion people facing severe water scarcity, Sci. Adv., 2 (2016) 1–7, doi: 10.1126/sciadv.1500323.
  5. J. Hubeny, M. Harnisz, E. Korzeniewska, M. Buta, W. Zieliński, D. Rolbiecki, J. Giebułtowicz, G. Nałęcz-Jawecki, G. Płaza, Industrialization as a source of heavy metals and antibiotics which can enhance the antibiotic resistance in wastewater, sewage sludge and river water, PLoS One, 16 (2021) e0252691, doi: 10.1371/journal.pone.0252691.
  6. N.A.A. Qasem, R.H. Mohammed, D.U. Lawal, Removal of heavy metal ions from wastewater: a comprehensive and critical review, npj Clean Water, 4 (2021), doi: 10.1038/s41545-021-00127-0.
  7. P.B. Tchounwou, C.G. Yedjou, A.K. Patlolla, D.J. Sutton, Heavy Metals Toxicity and the Environment, A. Luch, Ed., Mol. Clin. Environ. Toxicol., Springer Basel, Basel, 2012, pp. 133–164. Available at https://doi.org/10.1007/978-3-7643-8340-4_6
  8. Y. Wu, Z. Zhang, P. He, H. Ren, N. Wei, F. Zhang, H. Cheng, Q. Wang, Membrane fouling in a hybrid process of enhanced coagulation at high coagulant dosage and cross-flow ultrafiltration for deinking wastewater tertiary treatment, J. Cleaner Prod., 230 (2019) 1027–1035.
  9. K.E. Lee, N. Morad, T.T. Teng, B.T. Poh, Development, characterization and the application of hybrid materials in coagulation/flocculation of wastewater: a review, Chem. Eng. J., 203 (2012) 370–386.
  10. K.E. Lee, M.M. Hanafiah, A.A. Halim, M.H. Mahmud, Primary treatment of dye wastewater using Aloe vera-aided aluminium and magnesium hybrid coagulants, Procedia Environ. Sci., 30 (2015) 56–61.
  11. Y. Zou, X. Wang, A. Khan, P. Wang, Y. Liu, A. Alsaedi, T. Hayat, X. Wang, Environmental remediation and application of nanoscale zero-valent iron and its composites for the removal of heavy metal ions: a review, Environ. Sci. Technol., 50 (2016) 7290–7304.
  12. M.Y.D. Alazaiza, A. Albahnasawi, N.K. Copty, M.J.K. Bashir, D. Eddin, T. Al, S.S. Abu, M. Shadi, S. Abujazar, Nanoscale zerovalent iron application for the treatment of soil, wastewater and groundwater contaminated with heavy metals: a review, Desal. Water Treat., 253 (2022) 194–210.
  13. A. Roy, B.K. Das, J. Bhattacharya, Development and validation of a spectrophotometric method to measure sulfate concentrations in mine water without interference, Mine Water Environ., 30 (2011) 169–174.
  14. T.Y. Wu, A.W. Mohammad, S.L. Lim, P.N. Lim, J.X.W. Hay, Recent Advances in the Reuse of Wastewaters for Promoting Sustainable Development, S. Sharma, R. Sanghi, Eds., Wastewater Reuse and Management, Springer Netherlands, Dordrecht, 2013, pp. 47–103. Available at https://doi. org/10.1007/978-94-007-4942-9_3
  15. A. Aghababai Beni, A. Esmaeili, Y. Behjat, Invent of a simultaneous adsorption and separation process based on dynamic membrane for treatment Zn(II), Ni(II) and, Co(II) industrial wastewater, Arabian J. Chem., 14 (2021) 103231, doi: 10.1016/j.arabjc.2021.103231.
  16. M. Alazaiza, A. Albahnasawi, G. Ali, M. Bashir, D. Nassani, T. Al Maskari, S. Amr, M. Abujazar, Application of natural coagulants for pharmaceutical removal from water and wastewater: a review, Water, 14 (2022) 140, doi: 10.3390/w14020140.
  17. G. Wu, Z. Li, Y. Huang, F. Zan, J. Dai, J. Yao, B. Yang, G. Chen, L. Lei, Electrochemically assisted sulfate reduction autotrophic denitrification nitrification integrated (e-SANI®) process for high-strength ammonium industrial wastewater treatment, Chem. Eng. J., 381 (2020) 122707, doi: 10.1016/j.cej.2019.122707.
  18. M.A.N. Camacho, A.I.G. López, A. Martinez-Ferez, J.M. Ochando-Pulido, Increasing large-scale feasibility of twophase olive-oil washing wastewater treatment and phenolic fraction recovery with novel ion exchange resins, Chem. Eng. Process. Process Intensif., 164 (2021) 108416, doi: 10.1016/j.cep.2021.108416.
  19. G. Han, Y. Du, Y. Huang, S. Yang, W. Wang, S. Su, B. Liu, Efficient removal of hazardous benzohydroxamic acid (BHA) contaminants from the industrial beneficiation wastewaters by facile precipitation flotation process, Sep. Purif. Technol., 279 (2021) 119718, doi: 10.1016/j.seppur.2021.119718.
  20. Y. Jiao, L. Liu, Q. Zhang, M. Zhou, Y. Zhang, Treatment of reverse osmosis concentrate from industrial coal wastewater using an electro-peroxone process with a natural air diffusion electrode, Sep. Purif. Technol., 279 (2021) 119667, doi: 10.1016/j.seppur.2021.119667.
  21. A.A. Owodunni, S. Ismail, Revolutionary technique for sustainable plant-based green coagulants in industrial wastewater treatment—a review, J. Water Process Eng., 42 (2021) 102096, doi: 10.1016/j.jwpe.2021.102096.
  22. G.L. Muniz, A.C. Borges, T.C.F. da Silva, Performance of natural coagulants obtained from agro-industrial wastes in dairy wastewater treatment using dissolved air flotation, J. Water Process Eng., 37 (2020) 101453, doi: 10.1016/j.jwpe.2020.101453.
  23. P.J.M. Martins, P.M. Reis, R.C. Martins, L.M. Gando-Ferreira, R.M. Quinta-Ferreira, Iron recovery from the Fenton’s treatment of winery effluent using an ion-exchange resin, J. Mol. Liq., 242 (2017) 505–511.
  24. N. Meunier, P. Drogui, C. Montané, R. Hausler, G. Mercier, J.-F. Blais, Comparison between electrocoagulation and chemical precipitation for metals removal from acidic soil leachate, J. Hazard. Mater., 137 (2006) 581–590.
  25. P. Ostermeyer, L. Bonin, K. Folens, F. Verbruggen, C. García- Timermans, K. Verbeken, K. Rabaey, T. Hennebel, Effect of speciation and composition on the kinetics and precipitation of arsenic sulfide from industrial metallurgical wastewater, J. Hazard. Mater., 409 (2021) 124418, doi: 10.1016/j.jhazmat.2020.124418.
  26. S. Manhokwe, C. Zvidzai, Post-treatment of yeast processing effluent from a bioreactor using aluminium chlorohydrate polydadmac as a coagulant, Sci. Afr., 6 (2019) 4–11.
  27. M.F. Mohd Amin, S.G.J. Heijman, L.C. Rietveld, The potential use of polymer flocculants for pharmaceuticals removal in wastewater treatment, Environ. Technol. Rev., 3 (2014) 61–70.
  28. L. Zhou, H. Zhou, X. Yang, Preparation and performance of a novel starch-based inorganic/organic composite coagulant for textile wastewater treatment, Sep. Purif. Technol., 210 (2019) 93–99.
  29. K.P.Y. Shak, T.Y. Wu, Synthesis and characterization of a plantbased seed gum via etherification for effective treatment of high-strength agro-industrial wastewater, Chem. Eng. J., 307 (2017) 928–938.
  30. M.S.S. Abujazar, S.U. Karaağaç, H. Ramadan, S.S.A. Amr, M.Y.D. Alazaiza, application of pinecones powder as a natural coagulants for sustainable treatment of industrial wastewater, Desal. Water Treat., 269 (2022) 57–64.
  31. M. Shadi, S. Abujazar, S. Ugurlu, S.S. Abu, S. Fatihah, M.J.K. Bashir, M.Y.D. Alazaiza, E. Ibrahim, The effectiveness of rosehip seeds powder as a plant-based natural coagulant for sustainable treatment of steel industries wastewater, Desal. Water Treat., 270 (2022) 44–51.
  32. A. Hariz Amran, N. Syamimi Zaidi, K. Muda, L. Wai Loan, Effectiveness of natural coagulant in coagulation process: a review, Int. J. Eng. Technol., 7 (2018) 34, doi: 10.14419/ijet.v7i3.9.15269.
  33. A. Ahmad, S.R.S. Abdullah, H.A. Hasan, A.R. Othman, N. ‘Izzati Ismail, Plant-based versus metal-based coagulants in aquaculture wastewater treatment: effect of mass ratio and settling time, J. Water Process Eng., 43 (2021) 102269, doi: 10.1016/j.jwpe.2021.102269.
  34. S.K. Rifi, S. Souabi, L. El Fels, A. Driouich, I. Nassri, C. Haddaji, M. Hafidi, Optimization of coagulation process for treatment of olive oil mill wastewater using Moringa oleifera as a natural coagulant, CCD combined with RSM for treatment optimization, Process Saf. Environ. Prot., 162 (2022) 406–418.
  35. S.K. Rifi, S. Souabi, L. El Fels, A. Driouich, I. Nassri, C. Haddaji, M. Hafidi, Optimization of coagulation process for treatment of olive oil mill wastewater using Moringa oleifera as a natural coagulant, CCD combined with RSM for treatment optimization, Process Saf. Environ. Prot., 162 (2022) 406–418.
  36. B.T. Iber, V.T. Okomoda, S.A. Rozaimah, N.A. Kasan, Ecofriendly approaches to aquaculture wastewater treatment: assessment of natural coagulants vis-a-vis chitosan, Bioresour. Technol. Rep., 15 (2021) 100702, doi: 10.1016/j.biteb.2021.100702.
  37. M.B. Fard, D. Hamidi, K. Yetilmezsoy, J. Alavi, F. Hosseinpour, Utilization of Alyssum mucilage as a natural coagulant in oilysaline wastewater treatment, J. Water Process Eng., 40 (2021) 101763, doi: 10.1016/j.jwpe.2020.101763.
  38. S. Ghafari, H.A. Aziz, M.J.K. Bashir, The use of poly-aluminum chloride and alum for the treatment of partially stabilized leachate: a comparative study, Desalination, 257 (2010) 110–116.
  39. S. Yi, Y. Su, B. Qi, Z. Su, Y. Wan, Application of response surface methodology and central composite rotatable design in optimizing the preparation conditions of vinyltriethoxysilane modified silicalite/polydimethylsiloxane hybrid pervaporation membranes, Sep. Purif. Technol., 71 (2010) 252–262.
  40. C. Tizaoui, L. Bouselmi, L. Mansouri, A. Ghrabi, Landfill leachate treatment with ozone and ozone/hydrogen peroxide systems, J. Hazard. Mater., 140 (2007) 316–324.
  41. H. Salehizadeh, S.A. Shojaosadati, Extracellular biopolymeric flocculants recent trends and biotechnological importance, Biotechnol. Adv., 19 (2001) 371–385.
  42. N. He, Y. Li, J. Chen, S. Lun, Identification of a novel bioflocculant from a newly isolated Corynebacterium glutamicum, Biochem. Eng. J., 11 (2002) 137–148.
  43. S. Vishali, R. Karthikeyan, Cactus opuntia (ficus-indica): an ecofriendly alternative coagulant in the treatment of paint effluent, Desal. Water Treat., 56 (2015) 1489–1497.
  44. B. Kakoi, J.W. Kaluli, P. Ndiba, G. Thiong’o, Banana pith as a natural coagulant for polluted river water, Ecol. Eng., 95 (2016) 699–705.
  45. G. Palma, J. Freer, J. Baeza, Removal of metal ions by modified Pinus radiata bark and tannins from water solutions, Water Res., 37 (2003) 4974–4980.
  46. P. Schofield, D. Mbugua, A. Pell, Analysis of condensed tannins: a review, Anim. Feed Sci. Technol., 91 (2001) 21–40.
  47. A.S. Mangrich, M.E. Doumer, A.S. Mallmannn, C.R. Wolf, Green chemistry in water treatment: use of coagulant derived from Acacia mearnsii tannin extracts, Rev. Virtual Química., 6 (2014),
    doi: 10.5935/1984-6835.20140002.
  48. T.J. Kim, J.L. Silva, M.K. Kim, Y.S. Jung, Enhanced antioxidant capacity and antimicrobial activity of tannic acid by thermal processing, Food Chem., 118 (2010) 740–746.