Efficient Removal of Reactive Orange 107 Dye from Aqueous Media by Shrimp Shell Derived Chitosan Functionalized Magnetic Nanoparticles — Oak Academic Publishing
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Efficient Removal of Reactive Orange 107 Dye from Aqueous Media by Shrimp Shell Derived Chitosan Functionalized Magnetic Nanoparticles
H.E.J. Research Institute of Chemistry, International Center for Chemical and Biological Sciences (ICCBS), University of Karachi, Karachi, Pakistan
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Department of Basic Sciences and Humanities, Khawaja Fareed University of Engineering and Information Technology (KFUEIT), Rahim Yar Khan, Pakistan
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H.E.J. Research Institute of Chemistry, International Center for Chemical and Biological Sciences (ICCBS), University of Karachi, Karachi, Pakistan
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National Centre of Excellence in Analytical Chemistry, University of Sindh, Jamshoro, Pakistan
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H.E.J. Research Institute of Chemistry, International Center for Chemical and Biological Sciences (ICCBS), University of Karachi, Karachi, Pakistan
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H.E.J. Research Institute of Chemistry, International Center for Chemical and Biological Sciences (ICCBS), University of Karachi, Karachi, Pakistan
1 H.E.J. Research Institute of Chemistry, International Center for Chemical and Biological Sciences (ICCBS), University of Karachi, Karachi, Pakistan
2 Department of Basic Sciences and Humanities, Khawaja Fareed University of Engineering and Information Technology (KFUEIT), Rahim Yar Khan, Pakistan
3 H.E.J. Research Institute of Chemistry, International Center for Chemical and Biological Sciences (ICCBS), University of Karachi, Karachi, Pakistan
4 National Centre of Excellence in Analytical Chemistry, University of Sindh, Jamshoro, Pakistan
5 H.E.J. Research Institute of Chemistry, International Center for Chemical and Biological Sciences (ICCBS), University of Karachi, Karachi, Pakistan
6 H.E.J. Research Institute of Chemistry, International Center for Chemical and Biological Sciences (ICCBS), University of Karachi, Karachi, Pakistan
In present work chitosan functionalized magnetic nanoparticles (CMNPs) were successfully prepared and investigated for the removal of Reactive Orange 107 dye (RO 107) from water. The chitosan was extracted from shrimp shells ( Penaeus merguiensis ) and was characterized by solubility test and fourier transform infrared spectroscopy (FTIR). Degree of deacetylation of chitosan was examined by 1 H-NMR and potentiometric titration method. Thereafter, the chitosan was used for synthesis of CMNPs. The synthesized CMNPs were characterized by FTIR, scanning electron microscopy-energy dispersive spectroscopy (SEM-EDS), thermal gravimetric analysis (TGA) and atomic force microscopy (AFM). Effects of various variables such as contact time, pH, stirring speed, adsorbent dosage, temperature, and concentration of electrolyte on extraction efficiency were evaluated. Freundlich isotherm model fits better that shows the removal of RO 107 with CMNPs by multilayer adsorption behaviour. Furthermore, kinetic study showed that adsorption process followed pseudo-second order kinetic model regulated by chemisorption. Thermodynamic analysis explained that adsorption of RO 107 onto CMNPs was endothermic as well as spontaneous. The developed CNMPs were applied to environmental remediation of spiked RO 107 treated waste water samples with 96.20% removal potential, hence, offered an effective sorbent for removal of RO 107 contaminated water samples.
Özcan, A.S. and Özcan, A. (2004) Adsorption of Acid Dyes from Aqueous Solutions onto Acid-Activated Bentonite Journal of Colloid and Interface Science, 276, 39-46.
Hai, F.I., Yamamoto, K. and Fukushi, K. (2007) Hybrid Treatment Systems for Dye Wastewater. Critical Reviews in Environmental Science and Technology, 37, 315-377. https://doi.org/10.1080/10643380601174723
Novotny, C., Dias, N., Kapanen, A., Malachová, K., Vándrovcová, M., Itävaara, M. and Lima, N. (2006) Comparative Use of Bacterial, Algal and Protozoan Tests to Study Toxicity of Azo- and Anthraquinone Dyes. Chemosphere, 63, 1436-1442. https://doi.org/10.1016/j.chemosphere.2005.10.002
Ohe, T., Watanabe, T. and Wakabayashi, K. (2004) Mutagens in Surface Waters: A Review. Mutation Research/Reviews in Mutation Research, 567, 109-149. https://doi.org/10.1016/j.mrrev.2004.08.003
Gholivand, M.B., Yamini, Y., Dayeni, M. and Seidi, S. (2015) Removal of Methylene Blue and Neutral Red from Aqueous Solutions by Surfactant-Modified Magnetic Nanoparticles as Highly Efficient Adsorbent. Environmental Progress & Sustainable Energy, 34, 1683-1693. https://doi.org/10.1002/ep.12174
Sun, Q. and Yang, L. (2003) The Adsorption of Basic Dyes from Aqueous Solution On Modified Peat-Resin Particle. Water Research, 37, 1535-1544. https://doi.org/10.1016/S0043-1354(02)00520-1
Gupta, V. (2009) Application of Low-Cost Adsorbents for Dye Removal—A Review. Journal of Environmental Management, 90, 2313-2342. https://doi.org/10.1016/j.jenvman.2008.11.017
Reed, B.E., Matsumoto, M.R., Jensen, J.N., Viadero, R. and Lin, W. (1998) Physicochemical Processes. Water Environment Research, 70, 449-473. https://doi.org/10.2175/106143098X134208
Ravi Kumar, M., Rajakala Sridhari, T., Durga Bhavani, K. and Dutta, P.K. (1998) Trends in Color Removal from Textile Mill Effluents. Colourage, 45, 25.
Garg, V., Kumar, R. and Gupta, R. (2004) Removal of Malachite Green Dye from Aqueous Solution by Adsorption Using Agro-Industry Waste: A Case Study of Prosopis Cineraria. Dyes and Pigments, 62, 1-10. https://doi.org/10.1016/j.dyepig.2003.10.016
Murray, C. and Parsons, S. (2004) Advanced Oxidation Processes: Flowsheet Options for Bulk Natural Organic Matter Removal. Water Science & Technology, 4, 113-119. https://doi.org/10.2166/ws.2004.0068
Bessbousse, H, Rhlalou, T., Verchère, J.-F. and Lebrun, L. (2008) Removal of Heavy Metal Ions from Aqueous Solutions by Filtration with a Novel Complexing Membrane Containing Poly(Ethyleneimine) in a Poly(Vinyl Alcohol) Matrix. Journal of Membrane Science, 307, 249-259. https://doi.org/10.1016/j.memsci.2007.09.027
Chaudhary, A.J. and Grimes, S.M. (2001) Simultaneous Recovery of Copper and Degradation of 2,4-Dichlorophenoxyacetic Acid in Aqueous Systems by a Combination of Electrolytic and Photolytic Processes. Chemosphere, 44, 1223-1230. https://doi.org/10.1016/S0045-6535(00)00350-7
Crini, G. (2006) Non-Conventional Low-Cost Adsorbents for Dye Removal: A Review. Bioresource Technology, 97, 1061-1085. https://doi.org/10.1016/j.biortech.2005.05.001
Zaharia, C., Diaconescu, R. and Surpateanu, M. (2007) Study of Flocculation with PONILIT GT-2 Anionic Polyelectrolyte Applied into a Chemical Wastewater Treatment. Open Chemistry, 5, 239-256. https://doi.org/10.2478/s11532-006-0057-6
Wu, H., Wang, S., Kong, H., Liu, T. and Xia, M. (2007) Performance of Combined Process of Anoxic Baffled Reactor-Biological Contact Oxidation Treating Printing and Dyeing Wastewater. Bioresource Technology, 98, 1501-1504. https://doi.org/10.1016/j.biortech.2006.05.037
Crini, G. and Badot, P.-M. (2008) Application of Chitosan, a Natural Aminopolysaccharide, for Dye Removal from Aqueous Solutions by Adsorption Processes Using Batch Studies: A Review of Recent Literature. Progress in Polymer Science, 33, 399-447. https://doi.org/10.1016/j.progpolymsci.2007.11.001
Gupta, V., Carrott, P. and Ribeiro Carrott Suhas, M. (2009) Low-Cost Adsorbents: Growing Approach to Wastewater Treatment—A Review. Critical Reviews in Environmental Science and Technology, 39, 783-842. https://doi.org/10.1080/10643380801977610
Ali, I. and Gupta, V. (2006) Advances in Water Treatment by Adsorption Technology. Nature Protocols, 1, 2661-2667. https://doi.org/10.1038/nprot.2006.370
Zhu, H.-Y., Fu, Y.-Q., Jiang, R., Yao, J., Xiao, L. and Zeng, G.-M. (2012) Novel Magnetic Chitosan/Poly(vinyl alcohol) Hydrogel Beads: Preparation, Characterization and Application for Adsorption of Dye from Aqueous Solution. Bioresource Technology, 105, 24-30. https://doi.org/10.1016/j.biortech.2011.11.057
Kyzas, G.Z., Travlou, N.A., Kalogirou, O. and Deliyanni, E.A. (2013) Magnetic Graphene Oxide: Effect of Preparation Route on Reactive Black 5 Adsorption. Materials, 6, 1360-1376. https://doi.org/10.3390/ma6041360
Faraji, M., Yamini, Y., Tahmasebi, E., Saleh, A. and Nourmohammadian, F. (2010) Cetyltrimethylammonium Bromide-Coated Magnetite Nanoparticles as Highly Efficient Adsorbent for Rapid Removal of Reactive Dyes from the Textile Companies’ Wastewaters. Journal of the Iranian Chemical Society, 7, S130-S144. https://doi.org/10.1007/BF03246192
Ghaemi, M., Absalan, G. and Sheikhian, L. (2014) Adsorption Characteristics of Titan Yellow and Congo Red on CoFe2O4 Magnetic Nanoparticles. Journal of the Iranian Chemical Society, 11, 1759-1766. https://doi.org/10.1007/s13738-014-0448-0
Ramalakshmi, S., Selvakumar, R., Muthuchelian, K. and Swaminathan, K. (2011) Utilization of Modified Gloriosa superba Waste as an Adsorbent for the Removal of Reactive Dyes from Aqueous Solutions. World Applied Sciences Journal, 15, 415-421.
Mahmoodi, N.M., Arami, M., Limaee, N.Y., Gharanjig, K. and Ardejani, F.D. (2006) Decolorization and Mineralization of Textile Dyes at Solution Bulk by Heterogeneous Nanophotocatalysis Using Immobilized Nanoparticles of Titanium Dioxide. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 290, 125-131. https://doi.org/10.1016/j.colsurfa.2006.05.012
Tan, K.B., Vakili, M., Horri, B.A., Poh, P.E., Abdullah, A.Z. and Salamatinia, B. (2015) Adsorption of Dyes by Nanomaterials: Recent Developments and Adsorption Mechanisms. Separation and Purification Technology, 150, 229-242. https://doi.org/10.1016/j.seppur.2015.07.009
Dave, P.N. and Chopda, L.V.J. (2014) Application of Iron Oxide Nanomaterials for the Removal of Heavy Metals. Journal of Nanotechnology, 2014, Article ID: 398569.
Hua, M., Zhang, S., Pan, B., Zhang, W., Lv, L. and Zhang, Q. (2012) Heavy Metal Removal from Water/Wastewater by Nanosized Metal Oxides: A Review. Journal of Hazardous Materials, 211, 317-331. https://doi.org/10.1016/j.jhazmat.2011.10.016
Sadeghi, M., Irandoust, M., Khorshidi, F., Feyzi, M., Jafari, F., Shojaeimehr, T. and Shamsipur, M. (2016) Removal of Arsenic (III) from Natural Contaminated Water Using Magnetic Nanocomposite: Kinetics and Isotherm Studies. Journal of the Iranian Chemical Society, 13, 1175-1188. https://doi.org/10.1007/s13738-016-0832-z
Hossain, M. and Iqbal, A. (2014) Production and Characterization of Chitosan from Shrimp Waste. Journal of the Bangladesh Agricultural University, 12, 153-160.
Yuwei, C. and Jianlong, W. (2011) Preparation and Characterization of Magnetic Chitosan Nanoparticles and Its Application for Cu(II) Removal. Chemical Engineering Journal, 168, 286-292. https://doi.org/10.1016/j.cej.2011.01.006
Cárdenas, G., Cabrera, G., Taboada, E. and Miranda, S.P. (2004) Chitin Characterization by SEM, FTIR, XRD, and 13C Cross Polarization/Mass Angle Spinning NMR. Journal of Applied Polymer Science, 93, 1876-1885. https://doi.org/10.1002/app.20647
de Alvarenga, E.S. (2011) Characterization and Properties of Chitosan. In: Elnashar, M., Ed., Biotechnology of Biopolymers, InTech, Rijeka.
Czechowska-Biskup, R., Jarosińska, D., Rokita, B., Ulański, P. and Rosiak, J.M. (2012) Determination of Degree of Deacetylation of Chitosan—Comparision of Methods. Progress on Chemistry and Application of Chitin and Its Derivatives, 17, 5-20.
Focher, B., Naggi, A., Torri, G., Cosani, A. and Terbojevich, M. (1992) Structural Differences between Chitin Polymorphs and Their Precipitates from Solutions—Evidence from CP-MAS 13C-NMR, FT-IR and FT-Raman Spectroscopy. Carbohydrate Polymers, 17, 97-102. https://doi.org/10.1016/0144-8617(92)90101-U
Zhao, D.-L., Wang, X.-X., Zeng, X.-W., Xia, Q.-S. and Tang, J.-T. (2009) Preparation and Inductive Heating Property of Fe3O4-Chitosan Composite Nanoparticles in an AC Magnetic Field for Localized Hyperthermia. Journal of Alloys and Compounds, 477, 739-743. https://doi.org/10.1016/j.jallcom.2008.10.104
Xuan Nui, P., Tan Phuoc, N., Tuyet Nhung, P., Thi Thuy Nga, T. and Thi Van Thi, T. (2016) Synthesis and Characterization of Chitosan-Coated Magnetite Nanoparticles and Its Application in Curcumin Drug Delivery. Advances in Natural Sciences: Nanoscience and Nanotechnology, 7, Article ID: 045010.
Chen, L., Tang, C.-Y., Ning, N.-Y., Wang, C.-Y., Fu, Q. and Zhang, Q. (2009) Preparation and Properties of Chitosan/Lignin Composite Films. Chinese Journal of Polymer Science, 27, 739-746. https://doi.org/10.1142/S0256767909004448
Gregorio-Jauregui, K.M., Pineda, M.G., Rivera-Salinas, J.E., Hurtado, G., Saade, H., Martinez, J.L., Ilyina, A. and López, R.G. (2012) One-Step Method for Preparation of Magnetic Nanoparticles Coated with Chitosan. Journal of Nanomaterials, 2012, Article ID: 813958.
Zandipak, R. and Sobhanardakani, S. (2016) Synthesis of NiFe2O4 Nanoparticles for Removal of Anionic Dyes from Aqueous Solution. Desalination and Water Treatment, 57, 11348-11360. https://doi.org/10.1080/19443994.2015.1050701
Gao, H., Zhao, S., Cheng, X., Wang, X. and Zheng, L. (2013) Removal of Anionic Azo Dyes from Aqueous Solution Using Magnetic Polymer Multi-Wall Carbon Nanotube Nanocomposite as Adsorbent. Chemical Engineering Journal, 223, 84-90. https://doi.org/10.1016/j.cej.2013.03.004
Faraji, M., Shabanian, M. and Aryanasab, F. (2018) Efficient Removal of Anionic Dyes from Aqueous Media Using Newly in Situ Synthesized Triazine-Based Nitrogen-Rich Network-Modified Magnetic Nanoparticles. Journal of the Iranian Chemical Society, 15, 733-741. https://doi.org/10.1007/s13738-017-1273-z
Zhang, Y.-R., Su, P., Huang, J., Wang, Q.-R. and Zhao, B.-X. (2015) A Magnetic Nanomaterial Modified with Poly-Lysine for Efficient Removal of Anionic Dyes from Water. Chemical Engineering Journal, 262, 313-318. https://doi.org/10.1016/j.cej.2014.09.094
Babu, B. and Ramakrishna, V. (2003) Modeling of Adsorption Isotherm Constants using Regression Analysis & Neural Networks. Proceedings of 2nd International Conference on Water Quality Management, New Delhi, Paper No II-1.
Arshadi, M., Faraji, A. and Mehravar, M. (2015) Dye Removal from Aqueous Solution by Cobalt-Nano Particles Decorated Aluminum Silicate: Kinetic, Thermodynamic and Mechanism Studies. Journal of Colloid and Interface Science, 440, 91-101. https://doi.org/10.1016/j.jcis.2014.10.040