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- In relation to this article, we declare that there is no conflict of interest.
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Received July 24, 2019
Accepted October 15, 2019
- This is an Open-Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/bync/3.0) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
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Application of amine-functioned Fe3O4 nanoparticles with HPEI for effective humic acid removal from aqueous solution: Modeling and optimization
Seyedeh Mahtab Pormazar1 2
Mohammad Hassan Ehrampoush1
Mohammad Taghi Ghaneian1
Mehdi Khoobi3 4
Parvaneh Talebi1
Arash Dalvand1†
1Environmental Science and Technology Research Center, Department of Environmental Health Engineering, School of Public Health, Shahid Sadoughi University of Medical Sciences, Yazd, Iran 2Student Research Committee, Shahid Sadoughi University of Medical Sciences, Yazd, Iran 3Biomaterials Group, The Institute of Pharmaceutical Sciences (TIPS), Tehran University of Medical Sciences, Tehran 1417614411, Iran 4Department of Pharmaceutical Biomaterials and Medicinal Biomaterials Research Center, Faculty of Pharmacy, Tehran University of Medical Sciences, Tehran, Iran
arash.dalvand@gmail.com
Korean Journal of Chemical Engineering, January 2020, 37(1), 93-104(12), 10.1007/s11814-019-0411-y
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Abstract
Humic acids are one type of natural organic matter and precursors of chloro organic compounds that cause a major problematic issue for water treatment plants. In the present study, Hyperbranched polyethylenimine (HPEI) was grafted onto Fe3O4 nanoparticles for HA adsorption from aqueous solution. Fe3O4@HPEI nanoparticles were characterized via TEM, SEM, FTIR, XRD, VSM, and BET analysis. The effects of various operational parameters including initial HA concentration, pH, adsorbent dose, contact time and ionic strength on the HA removal were assessed. According to the obtained statistical model, the optimal condition was acquired at the initial HA concentration 79mg/L, adsorbent dose 0.128 g/L, pH 3 and contact time 29 min, which up to 97.27% HA were adsorbed by Fe3O4@HPEI that was close to the predicted result by the model (95.6%) that confirmed the validity of the selected model. The adsorption data were fitted to the pseudo-second-order kinetic and Freundlich isotherm. Thermodynamic parameters indicated that the adsorption process was spontaneous and endothermic. The fabricated Fe3O4@HPEI nanoparticles could be repeatedly utilized as a suitable adsorbent to remove HA from the aqueous environment.
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Fakhri A, Behrouz S, Process Saf. Environ., 94, 37 (2015)
Leong K, See S, Lim JW, Bashir MJ, Ng CA, Tham L, Appl. Water Sci., 7, 2009 (2017)
Zheng H, Liu DH, Zheng Y, Liang SP, Liu Z, J. Hazard. Mater., 167(1-3), 141 (2009)
Chicinas RP, Bedelean H, Stefan P, Maicaneanu A, J. Mol. Struct., 1154, 187 (2018)
Zhang SL, Wang ZK, Chen HY, Kai CC, Jiang M, Wang Q, Zhou ZW, Appl. Surf. Sci., 440, 1277 (2018)
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Rashed MN, Gad AAE, Fathy NM, Adv. J. Chem., 2, 347 (2019)
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Kamran S, Shiri NA, Chem. Methodol., 2, 23 (2018)
Mohebali S, Bastani D, Shayesteh H, J. Mol. Struct., 1176, 181 (2019)
Chaari I, Fakhfakh E, Medhioub M, Jamoussi F, J. Mol. Struct., 1179, 672 (2019)
Onorato C, Banasiak LJ, Schafer AI, Sep. Purif. Technol., 187, 426 (2017)
Wang JL, Wang SZ, Chem. Eng. J., 334, 1502 (2018)
Wang JH, Zheng SR, Shao Y, Liu JL, Xu ZY, Zhu DQ, J. Colloid Interface Sci., 349(1), 293 (2010)