Desalination of Caspian Sea Water by Using Graphene Oxide-based Covalent Organic Frameworks and HDTMA -Modified Iranian Natural Zeolite
الموضوعات :
Jahangir Abedi-Koupai,
1
,
Arefeh Chehrehrazi,
2
,
Fatemeh Dadvand
3
,
Mohammad Javad Amiri
4
1 - Professor, Department of Water Science and Engineering, College of Agriculture, Isfahan University of Technology, Isfahan, 84156-83111, Iran;
2 - Former MSc Student, Department of Water Science and Engineering, College of Agriculture, Isfahan University of Technology, Isfahan, 84156-83111, Iran
3 - MSc Student, Department of Water Science and Engineering, College of Agriculture, Isfahan University of Technology, Isfahan, 84156-83111, Iran;
4 - Associate Professor of Water Engineering, Fasa University
تاريخ الإرسال : 12 الإثنين , صفر, 1445
تاريخ التأكيد : 13 الإثنين , جمادى الأولى, 1445
تاريخ الإصدار : 17 الجمعة , جمادى الأولى, 1445
الکلمات المفتاحية:
desalination,
Graphene oxide,
Iranian natural zeolite,
HDTMA,
ملخص المقالة :
The depletion of freshwater resources emphasizes the significance of water desalination, while the high energy consumption and operating costs associated with existing desalination methods necessitate the search for cost-effective solutions. Therefore, this study presents a unique and innovative solution by employing advanced materials, specifically the combination of graphene oxide (GO)-based covalent organic frameworks (COF) and hexadecyltrimethylammonium bromide (HDTMA)-modified Iranian natural zeolite in the desalination of Caspian Sea water and well water in the Dark area of Isfahan. In this regard, GO was synthesized using Homer's modified method and subsequently functionalized with COF and the clinoptilolite zeolite was modified with HDTMA. A series of 28 column experiments were carried out using response surface methodology (RSM) to examine the elimination of electrical conductivity (EC), sodium (Na+), potassium (K+), calcium (Ca2+), magnesium (Mg2+), and chloride (Cl-) under the influence of five operational parameters: initial salinity (7.3-9.6 ds/m), flow rates (1-5 mL/min), GO amounts (0-30 mg), HDTMA quantities (0-13 g), and COF quantities (0-30 mg). The results revealed that the initial salinity concentration had the most significant impact on the reduction of EC, Na+, K+, and Mg2+. Conversely, the quantities of COF had the greatest influence on the reduction of Ca2+. Regarding Cl-, the interaction between HDTMA and salinity exhibited the most notable effect. Overall, this study highlights the potential of utilizing GO and HDTMA-modified Iranian zeolite for desalination purposes, offering a promising approach for addressing water scarcity and salinity challenges in arid regions.
المصادر:
Abushawish A, Bouaziz I, Almanassra IW, AL-Rajabi MM, Jaber L, Khalil AKA, Takriff MS, Laoui T, Shanableh A, Atieh MA, Chatla A, (2023) Desalination pretreatment technologies: current status and future developments. Water, 15: 1572.
Aende A, Gardy J, Hassanpour A, (2020) Seawater Desalination: a review of forward osmosis technique, its challenges, and future prospects. Processes, 8: 901.
Aghakhani A, Mousavi SF, Mostafazadeh-Fard B, Rostamian R, Seraji M, (2011) Application of some combined adsorbents to remove salinity parameters from drainage water. Desalination. 257: 217-223.
Amiri MJ, (2022) Synthesis and optimization of spherical nZVI (20–60 nm) immobilized in bio-apatite-based material for efficient removal of phosphate: Box-Behnken design in a fixed-bed column. Environ. Sci. Pollut. Res. 29: 67751–67764.
Amiri MJ, Arshadi M, Giannakopoulos E, Kalavrouziotis IK, (2018) Removal of mercury (II) and lead (II) from aqueous media by using a green adsorbent: Kinetics, thermodynamic, and mechanism studies. J Hazard Toxic Radioact Waste. 22: 04017026.
Amiri MJ, Bahrami M, Badkouby M, Kalavrouziotis IK, (2019) Greywater treatment using single and combined adsorbents for landscape irrigation. Environ. Process. 6: 43–63.
Amiri MJ, Eslamian S, Arshadi M, Khozaei M, (2015) Water recycling and community. In: Eslamian, S. (Ed.) Urban water reuse handbook. Boca Raton: CRC Press, pp. 261 – 273.
Amiri MJ, Roohi R, Arshadi M, Abbaspourrad A, (2020) 2,4-D adsorption from agricultural subsurface drainage by canola stalk-derived activated carbon: Insight into the adsorption kinetics models under batch and column conditions. Environ. Sci. Pollut.Res. 27: 16983–16997.
Bahrami M, Amiri MJ, Bagheri F, (2020) Optimization of crystal violet adsorption by chemically modified potato starch using response surface methodology. Pollution. 6: 159-170.
Banda H, Rezk A, Elsayed E, Askalany A, (2023) Experimental and computational study on utilising graphene oxide for adsorption cooling and water desalination. Appl. Therm. Eng. 229: 120631.
De Filippi FM, Iacurto S, Grelle G, Sappa G, (2021) Magnesium as environmental tracer for karst spring baseflow/overflow assessment—a case study of the Pertuso karst spring (Latium region, Italy). Water. 13: 93.
Greenberg AE, Clasceri LS, Eaton AD, (1992) Standard Methods for the Examination of Water and Wastewater, American Public Health Association, American Water Works Association and Water Pollution Control Federation, Washington, DC.
Guan H, Bestland E, Zhu Ch, Zhu H, Albertsdottir D, Hutson J, Simmons CT, Ginic-Markovic M, Tao X, Ellis AV, (2010) Variation in performance of surfactant loading and resulting nitrate removal among four selected natural zeolites. J. Hazard Mater. 183, 616-621.
Halouane F, Oz Y, Meziane D, Barras A, Juraszek J, Singh SK, Kurungot S, Shaw PK, Sanyal R, Boukherroub R, Sanyal A, Szunerits S, (2017) Magnetic reduced graphene oxide loaded hydrogels: Highly versatile and efficient adsorbents for dyes and selective Cr (VI) ions removal. J. Colloid Interface Sci. 507: 360–369.
Joya-Cárdenas DR, Rodríguez-Caicedo JP, Gallegos-Muñoz A, Zanor GA, Caycedo-García MS, Damian-Ascencio CE, Saldaña-Robles A, (2022) Graphene-based adsorbents for arsenic, fluoride, and chromium adsorption: synthesis methods review. Nanomaterials. 12, 3942.
Li Y, Xu X, Guo H, Bian Y, Li J, Zhang F, (2022) Magnetic graphene oxide−based covalent organic frameworks as novel adsorbent for extraction and separation of triazine herbicides from fruit and vegetable samples. Anal. Chim. Acta. 1219: 339984.
Li ZH, Bowman RS, (1997) Counterion effects on the sorption of cationic surfactant and chromate on natural clinoptilolite. Environ. Sci. Technol. 31(8): 2407-2412.
Lian B, Luca SD, You Y, Alwarappan S, Yoshimura M, Yoshimura V, Smith SC, Leslie G, Joshi RK, (2018) Extraordinary water adsorption characteristics of graphene oxide. Chem. Sci. 9: 5106.
Ming DW, Dixon JB, (1987) Quantitative determination of clinoptilolite in soils by a cation-exchange capacity method. Clay, Clay Miner. 35(6): 463–468.
Mousavi Moghanjooghi, S., Khoramnejadian,Sh., Fataei, E., Monsan, A.A. (2022) Laboratory investigation of arsenic removal from the aquatic environment using nano adsorbents extracted from native zeolite,Journal Main Group Chemistry, 21(1):113-123
Mouhtady O, Obeid E, Abu-samha M, Younes K, Murshid N, (2022) Evaluation of the adsorption efficiency of graphene oxide hydrogels in wastewater dye removal: application of principal component analysis. Gels. 8: 447.
Nguyen CT, Beskok A, (2019) Charged nanoporous graphene membranes for water desalination. Chem. Chem. Phys., 21: 9483-9494
Paul B, Dynes J, Chang W, (2017) Modified zeolite adsorbents for the remediation of potash brine-impacted groundwater: Built-in dual functions for desalination and pH neutralization. Desalination. 419: 141-151.
Paulchamy B, Arthi G, Lignesh BA, (2015) simple approach to stepwise synthesis of graphene oxide nanomaterial. J. Nanomed. Nanotechnol. 6: p1.
Rezaei-Aghdam E, Shamel A, Khodadadi-Moghaddam M, Ebrahimzadeh-Rajaei G, Mohajeri S, (2022) Synthesis of a nanocomposite containing CTAB-stabilized Fe3O4 magnetic nanoparticles and a comparison between the adsorption behavior of cobalt ions on the nanocomposite and Typha latifolia L. Theor Found Chem Eng. 56: 131–140.
Rostamian R, Heidarpour M, Mousavi SF, Afyuni M, (2015) Characterization and sodium sorption capacity of biochar and activated carbon prepared from rice husk. J Agric Sci Technol. 17: 1057 –1069.
Sadeghi S, Albaji M, Golabi M, Borooma Ndnasab S, (2022) Using modified natural zeolite clinoptilolite to remove nitrate, phosphate and salt from agricultural drainage water in a drainage system model. Irrigation Sciences and Engineering (JISE). 45: 131-152.
Sasani, M., Fataei, E., Safari, R., Nasehi, F., Mosayebi, M. (2021) Antibacterial effects of iron oxide and silver nanoparticles synthesized by Bacillus subtilis: a comparative study, Desalination and Water Treatment, 231:340-347.
Sherlala A, Raman A, Bello M, Asghar A, (2018) A review of the applications of organo-functionalized magnetic graphene oxide nanocomposites for heavy metal adsorption. Chemosphere. 193: 1004–1017.
Solinska A, Bajda T, (2022) Modified zeolite as a sorbent for removal of contaminants from wet flue gas desulphurization wastewater. Chemosphere. 286: 131772.
Ungureanu EL, Mocanu AL, Stroe CA, Panciu CM, Berca L, Sionel RM, Mustatea G, (2023) Agricultural byproducts used as low-cost adsorbents for removal of potentially toxic elements from wastewater: a comprehensive review. Sustainability. 5: 5999.
Wan Azelee I, Goh PS, Lau WJ, Ismail AF, Rezaei-DashtArzhandi M, Wong KC, Subramaniam MN, (2017) Enhanced desalination of polyamide thin film nanocomposite incorporated with acid treated multiwalled carbon nanotube-titania nanotube hybrid, Desalination. 409: 163–170.
Wang Y, Chen H, Liu Z, Li J, Tu Z, Li S, (2023) Improved adsorption desalination performance of DUT-67 by incorporating Graphene Oxide (GO). Microporous Mesoporous Mater. 354: 112554.
Wibowo E, Sutisna, Rokhmat M, Murniati R, Khairurrijal, Abdullah M, (2017) Utilization of natural zeolite as sorbent material for seawater desalination, Proc. Eng. 170: 8–13.
Wu H, Li L, Chang K, Du K, Shen C, Zhou S, Sheng G, Linghu W, Hayat T, Guo X, (2020) Graphene oxide decorated nanoscale iron sulfide for highly efficient scavenging of hexavalent chromium from aqueous solutions. Environ. Chem. Eng. 8: 103882.
Xu Z, Yan X, Du Z, Li J, Cheng F, (2020) Effect of oxygenic groups on desalination performance improvement of graphene oxide-based membrane in membrane distillation. Sep. Purif. Technol. 251: 117304.
Yusaf T, Mahamude ASF, Farhana K, Harun WSW, Kadirgama K, Ramasamy D, Kamarulzaman MK, Subramonian S, Hall S, Dhahad HA, (2022) A comprehensive review on graphene nanoparticles: preparation, properties, and applications. Sustainability. 14: 12336.
Zahed M, Parsamehr PS, Tofighy MA, Mohammadi T, (2018) Synthesis and functionalization of graphene oxide (GO) for salty water desalination as adsorbent. Chem Eng Res Des. 138: 358-365.
Zhang C, Li W, Liu C, Zhang C, Cao L, Kong D, Wang W, Chen S, (2022) Effect of covalent organic framework modified graphene oxide on anticorrosion and self-healing properties of epoxy resin coatings. J. Colloid Interface Sci. 608: 1025-1039.
Zaefizadeh, M., Jalili, A., Khayatnezhad, M., Gholamin, R., & Mokhtari, T. (2011). Comparison of multiple linear regressions (MLR) and artificial neural network (ANN) in predicting the yield using its components in the hulless barley. Advances in Environmental Biology, 109-114.