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Original Articles

An assessment of alkyl chain length effect of symmetric İmidazolium salts as a carrier for selective separation of Cr(VI)

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Pages 110-120 | Received 21 Dec 2015, Accepted 22 Jan 2016, Published online: 19 Sep 2016

References

  • Nosrati, S., Jayakumar, N.S., Hashim, M.A., and Mukhopadhyay, S. (2013) Performance evaluation of vanadium (IV) transport through supported ionic liquid membrane. J. Taiwan Inst. Chem. Eng., 44: 337–342.
  • Soylak, M. and Yilmaz, E. (2011) Ionic liquid dispersive liquid-liquid microextraction of lead as pyrrolidinedithiocarbamate chelate prior to its flame atomic absorption spectrometric determination. Desalination, 275: 297–301.
  • Muhammad, N., Man, Z., Bustam, M.A., Mutalib, M.I.A., and Rafiq, S. (2013) Investigations of novel nitrile-based ionic liquids as pre-treatment solvent for extraction of lignin from bamboo biomass. J. Ind. Eng. Chem., 19: 207–214.
  • Coll, M.T., Fortuny, A., Kedari, C.S., and Sastre, A.M. (2012) Studies on the extraction of Co(II) and Ni(II) from aqueous chloride solutions using Primene JMT-Cyanex272 ionic liquid extractant. Hydrometallurgy, 125: 24–28.
  • Jung, M.J., Venkateswaran, P., and Lee, Y.S. (2008) Solvent extraction of nickel(II) ions from aqueous solutions using triethylamine as extractant. J. Ind. Eng. Chem., 14: 110–115.
  • Zeng, C.J., Lin, Y., Zhou, N., Zheng, J.T., and Zhang, W. (2012) Room temperature ionic liquids enhanced the speciation of Cr(VI) and Cr(III) by hollow fiber liquid phase microextraction combined with flame atomic absorption spectrometry. J. Hazard. Mater., 237: 365–370.
  • Alguacil, F.J., Garcia-Diaz, I., and Lopez, F.A. (2012) Transport of Cr(VI) from HCl media using (PJMTH(+)Cl(−)) ionic liquid as carrier by advanced membrane extraction processing. Sep. Sci. Technol., 47: 555–561.
  • Gregory Iii, J.F. (1989) Chemical and Nutritional Aspects of Folate Research: Analytical Procedures, Methods of Folate Synthesis, Stability, and Bioavailability of Dietary Folates. In Advances in Food and Nutrition Research, edited by John, E.K.; Academic Press; pp. 1–101.
  • Wionczyk, B. and Apostoluk, W. (2005) Equilibria of extraction of chromium(III) from alkaline solutions with trioctylmethylammonium chloride (Aliquat 336). Hydrometallurgy, 78: 116–128.
  • Wionczyk, B., Apostoluk, W., and Charewicz, W.A. (2006) Solvent extraction of chromium(III) from spent tanning liquors with Aliquat 336. Hydrometallurgy, 82: 83–92.
  • Kumbasar, R.A. (2010) Selective extraction and concentration of chromium(VI) from acidic solutions containing various metal ions through emulsion liquid membranes using Amber lite LA-2. J. Ind. Eng. Chem., 16: 829–836.
  • Alguacil, F.J., Garcia-Diaz, I., and Lopez, F. (2013) Transport of Cr(VI) using an advanced membrane technology and (PJMTH(+) NO3−) ionic liquid derived from amine Primene JMT as green chemicals. Desalin Water Treat, 51: 7201–7207.
  • Guo, L., Liu, Y.H., Zhang, C., and Chen, J. (2011) Preparation of PVDF-based polymer inclusion membrane using ionic liquid plasticizer and Cyphos IL 104 carrier for Cr(VI) transport. J. Membr. Sci., 372: 314–321.
  • Wellens, S., Thijs, B., Moller, C., and Binnemans, K. (2013) Separation of cobalt and nickel by solvent extraction with two mutually immiscible ionic liquids. Phys. Chem. Chem. Phys., 15: 9663–9669.
  • Cortina, J.L., Miralles, N., Sastre, A.M., and Aguilar, M. (1995) Solid-liquid extraction studies of Zn(Ii), Cu(Ii) and Cd(Ii) from chloride media with ımpregnated resins containing mixtures of organophosphorus compounds ımmobilized on to amberlite Xad2. Hydrometallurgy, 37: 301–322.
  • Lee, S.C. (2009) Extraction equilibria of penicillin G in four different types of organic solvent systems. J. Ind. Eng. Chem., 15: 403–409.
  • Kumar, B.N., Reddy, B.R., Kantam, M.L., Kumar, J.R., and Lee, J.Y. (2014) Synergistic solvent extraction of neodymium(III) from chloride solutions using a mixture of triisooctylamine and bis(2,4,4-Trimethylpentyl) monothiophosphinic acid. Sep. Sci. Technol., 49: 130–136.
  • Kogelnig, D., Stojanovic, A., Jirsa, F., Körner, W., Krachler, R., and Keppler, B.K. (2010) Transport and separation of iron(III) from nickel(II) with the ionic liquid trihexyl(tetradecyl)phosphonium chloride. Sep. Purif. Technol., 72: 56–60.
  • Lertlapwasin, R., Bhawawet, N., Imyim, A., and Fuangswasdi, S. (2010) Ionic liquid extraction of heavy metal ions by 2-aminothiophenol in 1-butyl-3-methylimidazolium hexafluorophosphate and their association constants. Sep. Purif. Technol., 72: 70–76.
  • Reyna-González, J.M., Galicia-Pérez, R., Reyes-López, J.C., and Aguilar-Martínez, M. (2012) Extraction of copper(II) from aqueous solutions with the ionic liquid 3-butylpyridinium bis(trifluoromethanesulfonyl)imide. Sep. Purif. Technol., 89: 320–328.
  • Regel-Rosocka, M. and Wisniewski, M. (2011) Selective removal of zinc(II) from spent pickling solutions in the presence of iron ions with phosphonium ionic liquid Cyphos IL 101. Hydrometallurgy, 110: 85–90.
  • Rodriguez de San Miguel, E., Vital, X., and de Gyves, J. (2014) Cr(VI) transport via a supported ionic liquid membrane containing CYPHOS IL101 as carrier: system analysis and optimization through experimental design strategies. J. Hazard. Mater., 273: 253–262.
  • Hu, Q., Zhao, J., Wang, F., Huo, F., and Liu, H. (2014) Selective extraction of vanadium from chromium by pure [C8mim][PF6]: An anion exchange process. Sep. Purif. Technol., 131: 94–101.
  • Luo, H., Huang, J.-F., and Dai, S. (2010) Solvent Extraction of Sr2 + and Cs+using Protic Amide-Based Ionic Liquids. Sep. Sci. Technol., 45: 1679–1688.
  • Pernak, J., Sobaszkiewicz, K., and Foksowicz-Flaczyk, J. (2004) Ionic liquids with symmetrical dialkoxymethyl-substituted imidazolium cations. Chem.-Eur. J., 10: 3479–3485.
  • Eyupoglu, V., Polat, E., Kunduracioglu, A., and Turgut, H.I. (2015) A novel viewpoint of ımidazolium salts for selective extraction of cobalt in the presence of nickel from acidic thiocyanate solutions by ıonic-liquid-based solvent-extraction technique. J. Disper. Sci. Technol., 36: 1704–1720.
  • Eyupoglu, V. and Polat, E. (2015) Evaluation of Cd(II) transport with imidazolium bromides bearing butyl and isobutyl groups as extractants from acidic iodide solutions by liquid-liquid solvent extraction. Fluid Phase Equilib., 394: 46–60.
  • Zawadzki, M., Niedzicki, L., Wieczorek, W., and Domańska, U. (2013) Estimation of extraction properties of new imidazolide anion based ionic liquids on the basis of activity coefficient at infinite dilution measurements. Sep. Purif. Technol., 118: 242–254.
  • Eyupoglu, V. and Tutkun, O. (2011) The extraction of Cr(VI) by a flat sheet supported liquid membrane using alamine 336 as a carrier. Ara. J. Sci. Eng., 36: 529–539.
  • Rane, M.V. and Venugopal, V. (2006) Study on the extraction of palladium(II) and platinum(IV) using LIX 84I. Hydrometallurgy, 84: 54–59.
  • Nosrati, S., Jayakumar, N.S., and Hashim, M.A. (2011) Extraction performance of chromium (VI) with emulsion liquid membrane by Cyanex 923 as carrier using response surface methodology. Desalination, 266: 286–290.
  • Tomaszewska, M., Borowiak-Resterna, A., and Olszanowski, A. (2007) Cadmium extraction from chloride solutions with model N-alkyl- and N,N-dialkyl-pyridine-carboxamides. Hydrometallurgy, 85: 116–126.
  • Leepipatpiboon, N., Pancharoen, U., and Ramakul, P. (2013) Separation of Co(II) and Ni(II) from thiocyanate media by hollow fiber supported liquid membrane containing Alamine300 as carrier — investigation on polarity of diluent and membrane stability. Korean J. Chem. Eng., 30: 194–200.
  • Kocherginsky, N.M., Yang, Q., and Seelam, L. (2007) Recent advances in supported liquid membrane technology. Sep. Purif. Technol., 53: 171–177.
  • Tandlich, R. (2010) Application of liquid membranes in wastewater treatment. 357–400.
  • Kumbasar, R.A. (2008) Studies on extraction of chromium (VI) from acidic solutions containing various metal ions by emulsion liquid membrane using Alamine 336 as extractant. J. Membr. Sci., 325: 460–466.
  • Pospiech, B., Walkowiak, W. (2007) Separation of copper(II), cobalt(II) and nickel(II) from chloride solutions by polymer inclusion membranes. Sep. Purif. Technol., 57: 461–465.
  • Zhu, Z., Zhang, W., Pranolo, Y., and Cheng, C.Y. (2012) Separation and recovery of copper, nickel, cobalt and zinc in chloride solutions by synergistic solvent extraction. Hydrometallurgy, 127–128: 1–7.
  • Wang, L., Paimin, R., Cattrall, R.W., Shen, W., and Kolev, S.D. (2000) The extraction of cadmium (II) and copper (II) from hydrochloric acid solutions using an Aliquat 336/PVC membrane. Journal of Membrane Science, 176: 105–111.
  • Al-Bishri, H.M., Abdel-Fattah, T.M., and Mahmoud, M.E. (2012) Immobilization of [Bmim(+)Tf(2)N(-)] hydrophobic ionic liquid on nano-silica-amine sorbent for implementation in solid phase extraction and removal of lead. J. Ind. Eng. Chem., 18: 1252–1257.
  • Mahmoud, M.E. and Al-bishri, H.M. (2013) Adjusted pH for the Selective Separation of Cadmium from Lead by Nano-Active Silica-Functionalized-[Bmim+Tf2 N] Ionic Liquid. Sep. Sci. Technol., 48: 931–940.
  • Jha, M.K., Gupta, D., Lee, J.-c., Kumar, V., and Jeong, J. (2014) Solvent extraction of platinum using amine based extractants in different solutions: a review. Hydrometallurgy, 142: 60–69.
  • El-Nadi, Y.A., Awwad, N.S., and Nayl, A.A. (2009) A comparative study of vanadium extraction by Aliquat-336 from acidic and alkaline media with application to spent catalyst. Internationa. J. Miner. Process., 92: 115–120.
  • Tavakoli, M.R. and Dreisinger, D.B. (2014) Separation of vanadium from iron by solvent extraction using acidic and neutral organophosporus extractants. Hydrometallurgy, 141: 17–23.
  • Mishra, R.K., Rout, P.C., Sarangi, K. and Nathsarma, K.C. 2010 A comparative study on extraction of Fe(III) from chloride leach liquor using TBP, Cyanex 921 and Cyanex 923. Hydrometallurgy, 104: 298–303.
  • Klonowska–Wieszczycka, K., Olszanowski, A., Parus, A., and Zydorczak, B. (2009) removal of copper(II) from chloride solutions using hydrophobic pyridyl ketone oximes. Solvent Extr. Ion Exc., 27: 50–62.
  • Pospiech, B. and Kujawski, W. (2015) Ionic liquids as selective extractants and ion carriers of heavy metal ions from aqueous solutions utilized in extraction and membrane separation. Rev. Chem. Eng., 31: 179–191.
  • de los Ríos, A.P., Hernández-Fernández, F.J., Alguacil, F.J., Lozano, L.J., Ginestá, A. García-Díaz, I., Sánchez-Segado, S., López, F.A., and Godínez, C. (2012) On the use of imidazolium and ammonium-based ionic liquids as green solvents for the selective recovery of Zn(II), Cd(II), Cu(II) and Fe(III) from hydrochloride aqueous solutions. Sep. Purif. Technol., 97: 150–157.
  • Ulewicz, M., Sadowska, K., and Biernat, J.F. (2007) Facilitated transport of Zn(II), Cd(II) and Pb(II) across polymer inclusion membranes doped with imidazole azocrown ethers. Desalination, 214: 352–364.
  • Radzyminska-Lenarcik, E. (2007) The ınfluence of the alkyl chain length on extraction equilibrium of Cu(II) complexes with 1‐alkylimidazoles in aqueous solution/organic solvent systems. Solvent Extr. Ion Exc., 25: 53–64.
  • Li, H., Endres, F., and Atkin, R. (2013) Effect of alkyl chain length and anion species on the interfacial nanostructure of ionic liquids at the Au(111)-ionic liquid interface as a function of potential. Phys. Chem. Chem. Phys., 15: 14624–14633.
  • Morita, K. Hirayama N., Morita, K., and Imura, H. (2010) An 8-sulfonamidoquinoline derivative with imidazolium unit as an extraction reagent for use in ionic liquid chelate extraction systems. Anal. Chim. Acta, 680: 21–25.
  • Reddy, B.R., Raju, B., Lee, J.Y., and Park, H.K. (2010) Process for the separation and recovery of palladium and platinum from spent automobile catalyst leach liquor using LIX 84I and Alamine 336. J. Hazard. Mater., 180: 253–258.
  • Sun, T., Gao, S., Chen, Q., and Shen, X. (2014) Investigation on the interactions between hydrophobic anions of ionic liquids and Triton X-114 micelles in aqueous solutions. Colloids Surf A Physicochem Eng. Aspects, 456: 18–25.
  • Miyake, Y., Imanishi, Y., Katayama, Y., Hamatani, T., and Teramoto, M. (1986) effect of alkyl chain-length of ortho-hydroxyoxime on the extraction of copper. J. Chem. Eng. Jpn., 19: 117–125.
  • Balasubramanian, A. and Venkatesan, S. (2012) Removal of phenolic compounds from aqueous solutions by emulsion liquid membrane containing ıonic liquid [BMIM](+)[PF6](-) in tributyl phosphate. Desalination, 289: 27–34.
  • Rout, A., Venkatesan, K.A., Srinivasan, T.G., and Rao, P.R.V. (2013) Tuning the extractive properties of purex solvent using room temperature ıonic liquid. Sep. Sci. Technol., 48: 2576–2581.
  • Pospiech, B. (2013) Hydrometallurgical recovery of cobalt (II) from acidic chloride solutions by transport through polymer inclusion membranes. Physicochem. Probl. Miner. Process., 49: 641–649.
  • Zawisza, B. and Sitko, R. (2013) Micro-electrodeposition in the presence of ionic liquid for the preconcentration of trace amounts of Fe, Co, Ni and Zn from aqueous samples. Spectrochim. Acta Part B At. Spectrosc., 82: 60–64.
  • Eyupoglu, V. and Polat, E. (2015) Evaluation of Cd(II) transport with imidazolium bromides bearing butyl and isobutyl groups as extractants from acidic iodide solutions by liquid–liquid solvent extraction. Fluid Phase Equilib., 394: 46–60.
  • Gil, A.F., Salgado, L., Galicia, L., and Gonzalez, I. (1995) Predominance-zone diagrams of Fe(III) and Fe(II) sulfate complexes in acidic media. Voltammetric and spectrophotometric studies. Talanta, 42: 407–414.

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