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Application of Pistacia atlantica Leaves Powder as Natural Material To Remove Nitrate and Phosphate Ions From Domestic Wastewater by Characterization, Bio-removal, and Phytotoxicity Studies

Yıl 2022, Cilt: 9 Sayı: 3, 759 - 776, 31.08.2022
https://doi.org/10.18596/jotcsa.1026262

Öz



Application of Pistacia atlantica Leaves Powder as Natural Material To Remove Nitrate and Phosphate Ions From Domestic Wastewater by Characterization, Bio-removal, and Phytotoxicity Studies

Obaida Alhajali1* , Adnan Ali-Nizam1 , Rasha Almostafa2

1Damascus University, Department of Plant Biology, Damascus, Syria.
2International University for Science and Technology, Department of General and Analytical Chemistry, Syria.

Abstract: Description of Pistacia leaves powder using scanning electron microscopy (SEM), Fourier transform infrared spectroscopy (FT-IR), Energy-dispersive X-ray spectroscopy (EDX), specific surface area according to nitrogen adsorption (SBET) and methylene Blue (MB), and point of zero charge determination (pHpzc). A series of batch adsorption tests were conducted to study effect of various factors (plant powders dose, contact time, temperature, pH) on the percentage of nitrate and phosphate removal from domestic wastewater. The adsorption kinetics, regeneration ability test of plant powder, and phytotoxicity tests for treated water and spent powder on germination were studied. Results of SBET analysis showed that Pistacia leaves powders have a low surface area and microscopic pores, SEM images revealed rough surfaces with uneven cavities, EDX analysis showed that there are high percentages of carbon and oxygen, good percentages for nitrogen, and few percentages of potassium, calcium, magnesium, phosphorous, sulfur and chlorine, and FTIR analysis showed that there are more than five distinct absorption peaks. The maximum value of nitrate and phosphate removal was 76.47% and 52.20%, respectively, at powder dose of 2 g/L, temperature 25 °C, and pH 5, and the percentage of nitrate and phosphate removal increased with increasing contact time until equilibrium was reached after 120 min for nitrate and 180 min for phosphate, and It was found that adsorption of ions follows kinetics of reaction from pseudo-second-order model, and powders can be Regeneration and used for two successive cycles with a slight decrease in removal efficiency. Germination tests on Lepidium sativum indicate no phytotoxicity. That is, Pistacia leaves powder is one of the natural products that are effective in removing nitrate and phosphate from domestic wastewater.

Destekleyen Kurum

Damascus University

Teşekkür

The authors are grateful to Damascus University- Faculty of Science for their support provided for the completion of this research.

Kaynakça

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Yıl 2022, Cilt: 9 Sayı: 3, 759 - 776, 31.08.2022
https://doi.org/10.18596/jotcsa.1026262

Öz

Kaynakça

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  • 2. Yadav D, Kapur M, Kumar P, Mondal MK. Adsorptive removal of phosphate from aqueous solution using rice husk and fruit juice residue. Process Safety and Environmental Protection. 2015 Mar;94:402–9.
  • 3. Abdolali A, Guo WS, Ngo HH, Chen SS, Nguyen NC, Tung KL. Typical lignocellulosic wastes and by-products for biosorption process in water and wastewater treatment: A critical review. Bioresource Technology. 2014 May;160:57–66.
  • 4. Rashed MK, Tayh W. Removal of Heavy Metals from Wastewater Using Pomegranate Peel. IOP Conf Ser: Mater Sci Eng. 2020 Jul 1;881(1):012187.
  • 5. Diriba D, Hussen A, Rao VM. Removal of Nitrite from Aqueous Solution Using Sugarcane Bagasse and Wheat Straw. Bull Environ Contam Toxicol. 2014 Jul;93(1):126–31.
  • 6. Hodúr C, Bellahsen N, Mikó E, Nagypál V, Šereš Z, Kertész S. The Adsorption of Ammonium Nitrogen from Milking Parlor Wastewater Using Pomegranate Peel Powder for Sustainable Water, Resources, and Waste Management. Sustainability. 2020 Jun 15;12(12):4880.
  • 7. Velusamy K, Periyasamy S, Kumar PS, Vo DVN, Sindhu J, Sneka D, et al. Advanced techniques to remove phosphates and nitrates from waters: a review. Environ Chem Lett. 2021 Aug;19(4):3165–80.
  • 8. Riahi K, Thayer BB, Mammou AB, Ammar AB, Jaafoura MH. Biosorption characteristics of phosphates from aqueous solution onto Phoenix dactylifera L. date palm fibers. Journal of Hazardous Materials. 2009 Oct 30;170(2–3):511–9.
  • 9. Reddy ChA, N P, P HB, S JM. Banana Peel as a Biosorbent in Removal of Nitrate from Water. International Advanced Research Journal in Science, Engineering and Technology. 2015 Oct 20;2(10):94–8.
  • 10. Chiban M, Soudani A, Sinan F, Tahrouch S, Persin M. Characterization and Application of Dried Plants to Remove Heavy Metals, Nitrate, and Phosphate Ions from Industrial Wastewaters. Clean Soil Air Water. 2011 Apr;39(4):376–83.
  • 11. Michalak I, Chojnacka K, Witek-Krowiak A. State of the Art for the Biosorption Process—a Review. Appl Biochem Biotechnol. 2013 Jul;170(6):1389–416.
  • 12. Crini G, Lichtfouse E, Wilson LD, Morin-Crini N. Adsorption-Oriented Processes Using Conventional and Non-conventional Adsorbents for Wastewater Treatment. In: Crini G, Lichtfouse E, editors. Green Adsorbents for Pollutant Removal [Internet]. Cham: Springer International Publishing; 2018 [cited 2022 May 19]. p. 23–71. (Environmental Chemistry for a Sustainable World; vol. 18).
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  • 14. Fiol N, Villaescusa I. Determination of sorbent point zero charge: usefulness in sorption studies. Environ Chem Lett. 2009 Feb;7(1):79–84.
  • 15. Sulyman M, Gierak A. Green environmental approach for adsorption of hazardous dye from water using tree and sea plant leaves (Dead L.). Acta Scientific Agriculture. 2020;4(2):1–10.
  • 16. Benyoucef S, Amrani M. Removal of phosphorus from aqueous solutions using chemically modified sawdust of Aleppo pine (Pinus halepensis Miller): kinetics and isotherm studies. Environmentalist. 2011 Sep;31(3):200–7.
  • 17. Zhang Z, Yan L, Yu H, Yan T, Li X. Adsorption of phosphate from aqueous solution by vegetable biochar/layered double oxides: Fast removal and mechanistic studies. Bioresource Technology. 2019 Jul;284:65–71.
  • 18. Ren Z, Xu X, Wang X, Gao B, Yue Q, Song W, et al. FTIR, Raman, and XPS analysis during phosphate, nitrate and Cr(VI) removal by amine cross-linking biosorbent. Journal of Colloid and Interface Science. 2016 Apr;468:313–23.
  • 19. Robalds A, Dreijalte L, Bikovens O, Klavins M. A novel peat-based biosorbent for the removal of phosphate from synthetic and real wastewater and possible utilization of spent sorbent in land application. Desalination and Water Treatment. 2016 Jun 14;57(28):13285–94.
  • 20. Wang X, Liu Z, Liu J, Huo M, Huo H, Yang W. Removing Phosphorus from Aqueous Solutions Using Lanthanum Modified Pine Needles. Joles JA, editor. PLoS ONE. 2015 Dec 2;10(12):e0142700.
  • 21. Khodabandehloo A, Rahbar-Kelishami A, Shayesteh H. Methylene blue removal using Salix babylonica (Weeping willow) leaves powder as a low-cost biosorbent in batch mode: Kinetic, equilibrium, and thermodynamic studies. Journal of Molecular Liquids. 2017 Oct;244:540–8.
  • 22. Kong L, Gong L, Wang J. Removal of methylene blue from wastewater using fallen leaves as an adsorbent. Desalination and Water Treatment. 2015 Feb 27;53(9):2489–500.
  • 23. Krishnan KA, Haridas A. Removal of phosphate from aqueous solutions and sewage using natural and surface modified coir pith. Journal of Hazardous Materials. 2008 Apr;152(2):527–35.
  • 24. Zdravkov B, Čermák J, Šefara M, Janků J. Pore classification in the characterization of porous materials: A perspective. Open Chemistry. 2007 Jun 1;5(2):385–95.
  • 25. Hanafiah MAKM, Ngah WSW. Preparation, Characterization and Adsorption Mechanism of Cu(II) onto Protonated Rubber Leaf Powder. Clean Soil Air Water. 2009 Sep;37(9):696–703.
  • 26. Vilvanathan S, Shanthakumar S. Removal of Ni(II) and Co(II) ions from aqueous solution using teak ( Tectona grandis ) leaves powder: adsorption kinetics, equilibrium and thermodynamics study. Desalination and Water Treatment. 2016 Feb 19;57(9):3995–4007.
  • 27. Hossain MA, Ngo HH, Guo WS, Nguyen TV, Vigneswaran S. Performance of cabbage and cauliflower wastes for heavy metals removal. Desalination and Water Treatment. 2014 Jan 28;52(4–6):844–60.
  • 28. Haghighizadeh M, Zare K, Aghaie H, Monajjemi M. Preparation and characterization of Chicory leaf powder and its application as a nano-native plant sorbent for removal of Acid Blue 25 from aqueous media: isotherm, kinetic and thermodynamic study of the adsorption phenomenon. J Nanostruct Chem. 2020 Mar;10(1):75–86.
  • 29. Hossain MA, Ngo HH, Guo W, Zhang J, Liang S. A laboratory study using maple leaves as a biosorbent for lead removal from aqueous solutions. Water Quality Research Journal. 2014 Aug 1;49(3):195–209.
  • 30. Moussavi G, Khosravi R. Removal of cyanide from wastewater by adsorption onto pistachio hull wastes: Parametric experiments, kinetics and equilibrium analysis. Journal of Hazardous Materials. 2010 Nov;183(1–3):724–30.
  • 31. Ahmad A, Ghazi ZA, Saeed M, Ilyas M, Ahmad R, Muqsit Khattak A, et al. A comparative study of the removal of Cr( vi ) from synthetic solution using natural biosorbents. New J Chem. 2017;41(19):10799–807.
  • 32. Khan Rao RA, Khatoon A. Aluminate treated Casuarina equisetifolia leaves as potential adsorbent for sequestering Cu(II), Pb(II) and Ni(II) from aqueous solution. Journal of Cleaner Production. 2017 Nov;165:1280–95.
  • 33. Jain SN, Gogate PR. Acid Blue 113 removal from aqueous solution using novel biosorbent based on NaOH treated and surfactant modified fallen leaves of Prunus Dulcis. Journal of Environmental Chemical Engineering. 2017 Aug;5(4):3384–94.
  • 34. Lafi R, Hamdi N, Hafiane A. Study of the performance of Esparto grass fibers as adsorbent of dyes from aqueous solutions. Desalination and Water Treatment. 2015 Oct 16;56(3):722–35.
  • 35. Ponnusami V, Vikram S, Srivastava SN. Guava (Psidium guajava) leaf powder: Novel adsorbent for removal of methylene blue from aqueous solutions. Journal of Hazardous Materials. 2008 Mar 21;152(1):276–86.
  • 36. Annadurai G, Juang R, Lee D. Use of cellulose-based wastes for adsorption of dyes from aqueous solutions. Journal of Hazardous Materials. 2002 Jun 10;92(3):263–74.
  • 37. Baruah S, Devi A, Bhattacharyya KG, Sarma A. Developing a biosorbent from Aegle Marmelos leaves for removal of methylene blue from water. Int J Environ Sci Technol. 2017 Feb;14(2):341–52.
  • 38. O. I, O. E, K. Audu TO. Application of Luffa Cylindrica in Natural form as Biosorbent to Removal of Divalent Metals from Aqueous Solutions - Kinetic and Equilibrium Study. In: Garca Einschlag FS, editor. Waste Water - Treatment and Reutilization [Internet]. InTech; 2011 [cited 2022 May 19]. ISBN: 978-953-307-249-4.
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  • 47. Coates J. Interpretation of Infrared Spectra, A Practical Approach. In: Meyers RA, editor. Encyclopedia of Analytical Chemistry [Internet]. Chichester, UK: John Wiley & Sons, Ltd; 2006 [cited 2022 May 19]. p. a5606.
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Toplam 74 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Kimya Mühendisliği
Bölüm Makaleler
Yazarlar

Obaida Alhajali 0000-0001-8576-180X

Adnan Ali - Nizam 0000-0002-4866-8363

Rasha Almostafa Bu kişi benim 0000-0003-2772-8547

Yayımlanma Tarihi 31 Ağustos 2022
Gönderilme Tarihi 20 Kasım 2021
Kabul Tarihi 5 Mayıs 2022
Yayımlandığı Sayı Yıl 2022 Cilt: 9 Sayı: 3

Kaynak Göster

Vancouver Alhajali O, Ali - Nizam A, Almostafa R. Application of Pistacia atlantica Leaves Powder as Natural Material To Remove Nitrate and Phosphate Ions From Domestic Wastewater by Characterization, Bio-removal, and Phytotoxicity Studies. JOTCSA. 2022;9(3):759-76.