References

  1. R.N. Bharagava, S. Mishra, Hexavalent chromium reduction potential of Cellulosimicrobium sp. isolated from common effluent treatment plant of tannery industries, Ecotoxicol. Environ. Saf., 147 (2018) 102–109.
  2. S. Mani, R.N. Bharagava, Isolation, screening and biochemical characterization of bacteria capable of crystal violet dye decolorization, Int. J. Appl. Adv. Sci. Res., 2 (2017) 70–75.
  3. S.K. Sen, P. Patra, C.R. Das, S. Raut, S. Raut, Pilot-scale evaluation of bio-decolorization and biodegradation of reactive textile wastewater: an impact on its use in irrigation of wheat crop, Water Resour. Ind., 21 (2019) 100106, doi: 10.1016/j.wri.2019.100106.
  4. P. Velmurugan, V. Rathinakumar, G. Dhinakaran, Dye removal from aqueous solution using low cost adsorbent, Int. J. Environ. Sci., 1 (2011) 1492–1503.
  5. Z.L. Yaneva, N.V. Georgieva, Insights into Congo red adsorption on agro-industrial materials - spectral, equilibrium, kinetic, thermodynamic, dynamic and desorption studies. A review, Int. Rev. Chem. Eng., 4 (2012) 127–146.
  6. R. Awual, G.E. Eldesoky, T. Yaita, Mu. Naushad, H. Shiwaku, Z.A. Alothman, S. Suzuki, Schiff based ligand containing nano-composite adsorbent for optical copper(II) ions removal from aqueous solutions, Chem. Eng. J., 279 (2015) 639–647.
  7. T. Tatarchuk, N. Paliychuk, R.P. Bitra, A. Shyichuk, Mu. Naushad, I. Mironyuk, D. Ziolkovska, Adsorptive removal of toxic Methylene Blue and Acid Orange 7 dyes from aqueous medium using cobalt-zinc ferrite nanoadsorbents, Desal. Water Treat., 150 (2019) 374–385.
  8. G. Sharma, B. Thakur, A. Kumar, S. Sharma, Mu. Naushad, F.J. Stadler, Gum acacia-Cl-poly(acrylamide)@carbon nitride nanocomposite hydrogel for adsorption of ciprofloxacin and its sustained release in artificial ocular solution, Macromol. Mater. Eng., 305 (2020) 2000274, doi: 10.1002/mame.202000274.
  9. T. Ahamad, Ruksana, A.A. Chaudhary, Mu. Naushad, S.M. Alshehri, Fabrication of MnFe2O4 nanoparticles embedded chitosan-diphenylurea formaldehyde resin for the removal of tetracycline from aqueous solution, Int. J. Biol. Macromol., 134 (2019) 180–188.
  10. E.R. Rozema, A.C. Vanderzaag, J.D. Wood, A. Drizo, Y. Zheng, A. Madani, R.J. Gordon, Constructed wetlands for agricultural wastewater treatment in Northeastern North America: a review, Water, 8 (2016) 1–14.
  11. R. Al-Isawi, M. Scholz, Y. Wang, A. Sani, Clogging of verticalflow constructed wetlands treating urban wastewater contaminated with a diesel spill, Environ. Sci. Pollut. Res., 22 (2015) 12779–12803.
  12. L.C. Davies, G. Cabrita, R. Ferreira, C. Carias, J. Novais, S. Martins-Dias, Integrated study of the role of Phragmites australis in azo-dye treatment in a constructed wetland: From pilot to molecular scale, Ecol. Eng., 35 (2009) 961–970.
  13. J. Paing, A. Guilbert, V. Gagnon, F. Chazarenc, Effect of climate, wastewater composition, loading rates, system age and design on performances of French vertical flow constructed wetlands: a survey based on 169 full scale systems, Ecol. Eng., 80 (2015) 46–52.
  14. N.M. Azeez, A.A. Sabbar, Efficiency of Duckweed (Lemna minor L) in phytotreatment of wastewater pollutants from Basrah oil refinery, J. Appl. Phytotechnol. Environ. Sanit., 1 (2012) 163–172.
  15. A. Stefanakis, C.S. Akratos, V.A. Tsihrintzis, Vertical Flow Constructed Wetlands: Eco-engineering Systems for Wastewater and Sludge Treatment, Elsevier Science, 2014.
  16. M.A. Rahi, A.A.H. Faisal, Performance of subsurface flow constructed wetland systems in the treatment of
    Al-Rustumia municipal wastewater using continuous loading feed, Iraqi J. Chem. Pet. Eng., 20 (2019) 33–40.
  17. M.A. Rahi, A.A.H. Faisal, Using horizontal subsurface flow constructed wetland system in the treatment of municipal wastewater for agriculture purposes, Iraqi J. Agric. Sci., 50 (2019), doi: 10.36103/ijas.v50i4.765.
  18. M.A. Rahi, A.A.H. Faisal, L.A. Naji, S.A. Almuktar, S.N. Abed, M. Scholz, Biochemical performance modelling of nonvegetated and vegetated vertical subsurface-flow constructed wetlands treating municipal wastewater in hot and dry climate, J. Water Process Eng., 33 (2020) 101003, doi: 10.1016/j.jwpe.2019.101003.
  19. M.H. Rashid, A.H.A. Faisal, Removal of dissolved cadmium ions from contaminated wastewater using raw scrap zerovalent iron and zero valent aluminum as locally available and inexpensive sorbent wastes, Iraqi J. Chem. Pet. Eng., 19 (2018) 39–45.
  20. G. Sharma, A. Kumar, S. Sharma, A.H. Al-Muhtaseb, Mu. Naushad, A.A. Ghfar, T. Ahamad, F.J. Stadler, Fabrication and characterization of novel Fe0@Guar gum-crosslinkedsoya lecithin nanocomposite hydrogel for photocatalytic degradation of methyl violet dye, Sep. Purif. Technol., 211 (2019) 895–908.
  21. J. Leichtweis, S. Silvestri, E. Carissimi, New composite of pecan nutshells biochar-ZnO for sequential removal of Acid red 97 by adsorption and photocatalysis, Biomass Bioenergy, 140 (2020) 105648, doi: 10.1016/j.biombioe.2020.105648.
  22. A.A.H. Faisal, B.J.B. Basim, J. Bedah, O. Al-Hashimi, Constructed wetland units filled with waterworks sludge for remediating of wastewater contaminated with Congo red dye, Iraqi J. Chem. Pet. Eng., 23 (2022) 9–17.
  23. A.A.H. Faisal, B.J. Badah, Removal of Congo red dye from simulated wastewater using vertical subsurface flow constructed wetland packed with sewage sludge bed, Desal. Water Treat., 223 (2021) 414–424.
  24. A. Hussein, M. Scholz, Dye wastewater treatment by verticalflow constructed wetlands, Ecol. Eng., 101 (2017) 28–38.
  25. M.F. Imron, S.B. Kurniawan, A. Soegianto, F.E. Wahyudianto, Phytoremediation of methylene blue using duckweed (Lemna minor), Heliyon, 5 (2019) e02206.
  26. B.-H. Lee, M. Scholz, What is the role of Phragmites australis in experimental constructed wetland filters treating urban runoff?, Ecol. Eng., 29 (2007) 87–95.
  27. S. Lavrova, B. Koumanova, Nutrients and Organic Matter Removal in a Vertical-Flow Constructed Wetland, Y.B. Patil, P. Rao, Applied Bioremediation, InTechOpen, 2013.
  28. R. Chandra, S. Yadav, Use of PMDE with Sugar Industries Pressmud for Composting: A Green Technology for Safe Disposal in the Environment, Chapter in (Environmental Waste Management), 1st ed., CRC Press, 2015.
  29. F. Morari, L. Giardini, Municipal wastewater treatment with vertical flow constructed wetlands for irrigation reuse, Ecol. Eng., 35 (2009) 643–653.
  30. J. Vymazal, The use of sub-surface constructed wetlands for wastewater treatment in the Czech Republic: 10 years experience, Ecol. Eng., 18 (2002) 633–646.
  31. R.H. Kadlec, K.R. Reddy, Temperature effects in treatment wetlands, Water Environ. Res., 73 (2001) 543–557.
  32. S.G. Abdelhakeem, S.A. Aboulroos, M.M. Kamel, Performance of a vertical subsurface flow constructed wetland under different operational conditions, J. Adv. Res., 7 (2016) 803–814.
  33. M.A. Rahi, A.A.H. Faisal, L.A. Naji, S.A. Almuktar, S.N. Abed, M. Scholz, Biochemical performance modelling of nonvegetated and vegetated vertical subsurface-flow constructed wetlands treating municipal wastewater in hot and dry climate, J. Water Process Eng., 33 (2020) 101003, doi: 10.1016/j.jwpe.2019.101003.
  34. S. Sehar, Sumera, S. Naeem, I. Perveen, N. Ali, S. Ahmed, A comparative study of macrophytes influence on wastewater treatment through subsurface flow hybrid constructed wetland, Ecol. Eng., 81 (2015) 62–69.
  35. A.K. Yadav, P. Dash, A. Mohanty, R. Abbassi, B.K. Mishra, Performance assessment of innovative constructed wetlandmicrobial fuel cell for electricity production and dye removal, Ecol. Eng., 47 (2012) 126–131.
  36. X. Song, Y. Ding, Y. Wang, W. Wang, G. Wang, B. Zhou, Comparative study of nitrogen removal and bio-film clogging for three filter media packing strategies in vertical flow constructed wetlands, Ecol. Eng., 74 (2015) 1–7.
  37. Y. Yang, X. Zhan, S. Wu, M. Kang, J. Guo, F. Chen, Effect of hydraulic loading rate on pollutant removal efficiency in subsurface infiltration system under intermittent operation and micro-power aeration, Bioresour. Technol., 205 (2016) 174–182.
  38. A. Hussein, M. Scholz, Dye wastewater treatment by verticalflow constructed wetlands, Ecol. Eng., 101 (2017) 28–38.