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Received October 28, 2019
Accepted January 5, 2020
- 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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A monophosphonic group-functionalized ion-imprinted polymer for a removal of Fe3+ from highly concentrated basic chromium sulfate solution
Guang-jin Zhu1 2
Hai-yan Tang1 2†
Peng-hui Qing1 2
Hong-ling Zhang1 2
Xi-chuan Cheng3
Zai-hua Cai3
Hong-bin Xu1 2
Yi Zhang1 2
1CAS Key Laboratory of Green Process and Engineering, Institute of Process Engineering, Chinese Academy of Sciences, Beijing 100190, China 2National Engineering Laboratory for Hydrometallurgical Cleaner Production Technology, Institute of Process Engineering, Chinese Academy of Sciences, Beijing 100190, China 3Hubei Zhenhua Chemical Co., LTD, Huangshi 435001, Hubei Province, China
Korean Journal of Chemical Engineering, May 2020, 37(5), 911-920(10), 10.1007/s11814-020-0485-6
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Abstract
An ion-imprinted polymer (IIP) with monophosphonic groups was prepared by thermal copolymerization. Bis(2-methacryloxyethyl) phosphate (BMAOP) was used as functional monomer to react with Fe3+ in dimethyl sulfoxide (DMSO). Ethylene glycol dimethacrylate (EGDMA) was used as cross-linker during polymerization process. A suitable molar ratio of BMAOP to Fe3+ was investigated by UV/Vis/NIR Spectrometer and ICP-OES. The obtained results showed that the monophosphonic groups could be selectively combined with Fe3+ in solutions containing other coexisting ions, and the selectivity could be further enhanced by ion-imprinted process. The prepared IIP was used for removing trace Fe3+ from high concentration basic chromium sulfate solutions. After adsorption process, the concentration of Fe3+ could be reduced from 4.486mg L?1 to 0.171mg L?1, which was much lower than the concentration in the solution treated by non-imprinted polymer (NIP). Moreover, the IIP exhibited excellent recyclability after six adsorption-desorption cycles.
Keywords
References
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Guo C, Yi S, Plat. Finish., 30, 28 (2008)
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Fu J, Chen L, Li J, Zhang Z, J. Mater. Chem. A, 3, 13598 (2015)
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Cimen D, Gokturk I, YIlmaz F, Artif. Cells Nanomed. Biotechnol., 44, 1158 (2016)
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Yavuz H, Say R, Denizli A, Mater. Sci. Eng. C-Biomimetic Supramol. Syst., 25, 521 (2005)
Fan HT, Sun T, Korean J. Chem. Eng., 29(6), 798 (2012)
Khajeh M, Kaykhaii M, Hashemi H, Mirmoghaddam M, Polym. Sci. Ser. B, 51, 344 (2009)
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McKevitt B, Dreisinger D, Hydrometallurgy, 98, 122 (2009)
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Liang HL, Chen QD, Ma JY, Huang YY, Shen XH, Rsc Adv., 7, 35394 (2017)
Formanek J, Jandova J, Capek, Hydrometallurgy, 138, 100 (2013)
El-Nadi YA, E-Hefny NE, Chem. Eng. Process., 49(2), 159 (2010)
Li P, Zheng SL, Qing PH, Chen YG, Tian L, Zheng XD, Zhang Y, Green Chem., 16, 4214 (2014)
Parijaee M, Noaparast M, Saberyan K, Shafaie-Tonkaboni SZ, Korean J. Chem. Eng., 31(12), 2237 (2014)
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Juang RS, Wu FC, Tseng RL, J. Colloid Interface Sci., 227(2), 437 (2000)
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Chen X, Pan J, Yan Y, Acta Phys.-Chim. Sin., 32, 2794 (2016)
Li Z, Kou W, Wu S, Wu L, Anal. Methods, 9, 3221 (2017)