86
Views
2
CrossRef citations to date
0
Altmetric
Articles

Removal of NaCl using facilitated up-hill transport through bulk liquid membranes containing dibenzo-18-crown-6

, &
Pages 4350-4358 | Received 19 Jun 2011, Accepted 22 Nov 2012, Published online: 08 Mar 2013

References

  • R.D. Noble, S.A. Stern, Membrane Separation Technology, Principals and Applications, Membrane Science and Technology Series, Elsevier Science B.V., vol. 2, 1995..
  • N.N. Li, Separating hydrocarbons with liquid membranes, U.S. Patent 3, 410, 794, 1968..
  • Marinsky, J.A., and Marcus, Y., 1988. Ion exchange and solvent extraction: a series advances, J. Electroanal. Chem. 252 (1988), p. 468.
  • Halwachs, W., and Schugerl, K., 1980. The liquid membrane technique – a promising extraction process, Inter. Chem. Eng. 20 (1980), pp. 519–528.
  • Draxler, J., Furst, W., and Marr, R., 1988. Separation of metal species by emulsion liquid membranes, J. Membr. Sci. 38 (1988), pp. 281–293.
  • J. Draxler, R. Marr, Emulsion liquid membranes for wastewater treatment, in: T. Sckine (Ed.), Solvent Extraction 1990, Elsevier Science Publishers B.V., 1992, pp. 37–48..
  • M.M. Naim, A.A. Moneer, Application of the emulsion liquid membrane technique to the extraction of alkali from aqueous solutions 1. Extraction of sodium hydroxide by type 1 facilitated transport, in: Proceedings of the Second International Conference on Role of Engineering Towards Better Environment (RETBE’98) – Sustainable Development, 1998, pp. 537–546 (Alexandria, Egypt, 12–15 Dec.)..
  • M.M. Naim, A.A. Moneer, Application of the emulsion liquid membrane technique to the extraction of alkali from aqueous solutions 2. Extraction of ammonia by type 1 facilitated transport, ibid. (1998) 619–628..
  • M.M. Naim, M.A. Abbas, An intensive study on pertraction of ammonia from dilute aqueous solution using facilitated transport. Part I by hydrochloric acid, in: Proceedings of the Third International Conference on Role of Engineering Towards Better Environment (RETBE’ 2000), vol. 2, 2000, pp. 753–763 (Alexandria, Egypt, 18–20 Nov.)..
  • M.M. Naim, M.A. Abbas, An intensive study on pertraction of ammonia from dilute aqueous solution using facilitated transport. Part II by nitric and sulphuric acids, ibid. (2000) 765–777..
  • Kato, S., and Kawasaki, J., 1987. Comparison of liquid membrane permeation with sulfolane extraction on aromatics separation, Sekiyu Gakkaishi 30 (1987), pp. 397–403.
  • S. Kato, J. Kawasaki, Enhancement of hydrocarbon permeation by polar additives in liquid emulsion membranes, J. Chem. Eng. Japan, 20 (1987) 585–590..
  • Sanyal, S., Datta, S., and Basu, M., 1986. Studies on transport through a liquid surfactant membrane, J. Inst. Eng. (India) 66 (1986), pp. 70–74.
  • Moneer, A.A., Naim, M.M., and El-Said, G.F., 2008. Separation of hydrocarbons by emulsion liquid membranes, Egypt. J. Aquat. Res. 34 (2008), pp. 1–15.
  • Shukla, P., and Misra, S.K., 1991. Carrier – mediated transport of uranyl ions across tributyl phosphate – dodecane liquid membranes, J. Membr. Sci. 64 (1991), pp. 93–102.
  • Hirato, T., Kishigaini, I., Awakura, Y., and Majima, H., 1991. Concentration of uranyl sulfate solution by an emulsion – type liquid membrane process, Hydrometallurgy 26 (1991), pp. 19–33.
  • Hayworth, H.C., Ho, W.S., Burns, W.A., and Li, N.N., 1983. Extraction of uranium from wet process phosphoric acid by liquid membranes, Sep. Sci. Technol. 18 (1983), pp. 493–521.
  • Gu, Z., Wasan, D.T., and Li, N.N., 1986. Ligand-accelerated liquid membrane extraction of metal ions, J. Membr. Sci. 26 (1986), pp. 129–142.
  • M.M. Naim, M.A. Mahdy, E.A. Fouad, Application of emulsion liquid membrane technique for Uranium extraction from nitric acid solutions, in: Proceedings of the International Conference on Uranium Extraction, 1996, pp. 75–83 (Beijing, China, 22–25 Oct.)..
  • M.M. Naim, M.A. Mahdy, E.A. Fouad, Concentration of uranium from hydrochloric acid solutions by emulsion liquid membranes containing tri-ctyl-phosphine oxide, in: American Engineering Foundation Conference, 1997 (Cairo, Egypt, 16–21 Nov.)..
  • Pei, L., Wang, L.M., Guo, W., and Zhao, N., 2011. Stripping dispersion hollow fiber liquid membrane containing PC-88A as carrier and HCl for transport behavior of trivalent dysprosium, J. Membr. Sci. 378 (1–2) (2011), pp. 520–530.
  • Pei, L., Yao, B.H., and Zhang, C.J., 2009. Transport of Tm(III) through dispersion supported liquid membrane containing PC-88A in kerosene as the Carrier, Sep. Purif. Technol. 65 (2) (2009), pp. 220–227.
  • W.J. Asher, K.C Bovee, T.C. Vogler, R.W. Hamilton, P.G. Holtzapple, Secretion moderated release of urea from liquid membrane capsules (Lmc), Trans. Am. Soc. Artif. Int. Organs 26 (1980) 120–123..
  • W.J. Asher, H.W. Wallace, M.T. Zabrow, T.P. Stein, H. Brooks, Fluorocarbon liquid membranes for blood oxygenation, Final Report for Contract No. NIH-N1LI-71-2369-D, National Heart and Lung Institute, NIH, 1973..
  • M.M. Naim, A novel desalination technology using liquid membranes, ADST, Second International Workshop on Desalination Technology: Future Trends and Economics, 2001 (Alexandria, Egypt, 7–8 Feb.)..
  • Naim, M.M., and Moneer, A.A., 2002. Desalination using supported liquid membranes, Desalination 153 (2002), pp. 361–369.
  • M.M. Naim, A.A. Moneer, A study on desalination by a flowing liquid membrane, in: Proceedings of the Fifth International Conference on the Role of Engineering Towards Better Environment (RETBE’ 04), vol. 2, 2004 (Alexandria, Egypt, 11–13 Dec.)..
  • Izatt, R.M., Dcarden, D.V., Brown, P.R., Bradshaw, J.S., Lamb, J.D., and Christensen, J.J., 1983. Cation fluxes from binary Ag+-Mn+ mixtures in a water–trichloromethane–water liquid membrane system containing a series of macrocyclic ligand carriers, J. Am. Chem. Soc. 105 (1983), pp. 1785–1790.
  • Frensdorff, H.K., 1971. Stability contents of cyclic polyethers complexes with univalent cation, J. Am. Chem. Soc. 93 (1971), pp. 600–606.
  • Lamb, J.D., Christensen, J.J., Izatt, S.R., Bedke, K., Astin, M.S., and Izatt, R.M., 1980. Effect of salt concentration and anion on the rate of carrier-facilitated transport of metal cation through bulk liquid membranes containing crown ether, J. Am. Chem. Soc. 102 (1980), pp. 3399–3403.
  • Igawa, M., Kobayashi, E., Itakura, A., Kikichi, K., and Okochi, H., 1994. Selective ion transport across monomeric or reversed micellar liquid membrane containing an open-chain polyether surfactant, J. Phys. Chem. 98 (1994), pp. 12447–12451.
  • Dernini, S., Palmas, S., Polcaro, A.M., and Marongiu, B., 1992. Extraction and transport of sodium ion and potassium ion in a liquid membrane containing crown ethers; effect of the mixed solvent, J. Chem. Eng. Data 37 (1992), pp. 281–284.
  • Lamb, J.D., Christensen, J.J., Oscarson, J.L., Nielsen, B.L., Asay, B.W., and Izatt, R.M., 1980. The relationship between complex stability constants and rates of cation transport through liquid membranes by macrocyclic carriers, J. Am. Chem. Soc. 102 (1980), pp. 6820–6824.
  • C.J. Pederson, in: R.M. Izatt, J.J. Christensen (Eds.), Synthetic Multi Dentate Macrocyclic Compounds, Chapter I, Academic press, Inc., 1978..
  • Szpakowska, M., and Nagy, O.B., 2000. Influence of physic-chemical control and of membrane composition on the coupled transport of copper (II) ions through bulk liquid membranes, J. Membr. Sci. 168 (2000), pp. 183–186.
  • Szpakowska, M., 1994. Investigation of the rate-limiting step of coupled copper ion transport through bulk liquid membranes by means of variable speed experiments, J. Membr. Sci. 90 (1994), pp. 101–108.
  • Zhang, B., and Gozzelino, G., 2003. Facilitated transport of Fe “and Cu” ions through supported liquid membranes, Colloid Surf., A: Physicochem. Eng. Aspect 215 (2003), pp. 67–76.
  • Ma, M., He, D., Wang, Q., and Xie, Q., 2001. Kinetics of europium III transport through a liquid membrane containing HEH (EHP) in kerosene, Talanta 55 (2001), pp. 1109–1117.
  • León, G., and Guzmán, M.A., 2010. Facilitated transport of cobalt through bulk liquid membranes containing D2EHPA as carrier, kinetic study of the influence of some operational variables, Desalin. Water Treat. 13 (2010), pp. 267–273.
  • León, G., and Guzmán, M.A., 2011. Facilitated transport of valine through bulk liquid membranes containing aliquat 336: a kinetic study, Desalin. Water Treat. 27 (2011), pp. 114–119.
  • Misra, D., and Sharma, U., 2002. Extraction and bulk liquid membrane transport of some main group metal ions facilitated by triethyleneglycol monomethyl ether, Sep. Purif. Technol. 27 (2002), pp. 51–57.
  • Bartsch, R.A., Jeon, E.G., Walkowiak, W., and Apostoluk, W., 1999. Effect of solvent in competitive alkali metal cation transport across bulk liquid membranes by a lipophilic lariat ether carboxylic acid carrier, J. Membr. Sci. 159 (1999), pp. 123–131.
  • G. León, R. De los Santos, M.A. Guzman, Reduction of sodium and chloride ion content in aqueous solutions by bulk liquid membranes: a kinetic approach, Desalination 168 (2004) 271–275..
  • Altin, S., Demircioglu, N., Peker, I., and Altin, A., 2007. Effects of acceptor phase and donor phase properties on sodium ions transport from aqueous solutions using liquid membrane systems, Colloid Surf., A: Physicochem. Eng. Aspect 306 (2007), pp. 14–21.
  • Nabieyan, B., Kargari, A., Kaghazchi, T., Mahmoudian, A., and Soleimani, M., 2007. Bench-scale pertraction of iodine using a bulk liquid membrane system, Desalination 214 (2007), pp. 167–176.
  • M. Szpakowska, B.O. Nagy, Facilitated passive copper (II) ion transport through binary liquid membrane, Bull. Soc. Chim., Belg., Eur. Sect. 99(11–12) (1990) 889–893..
  • He, D., and Ma, M., 2000. Kinetics of Chromium (II) transport through a liquid membrane containing tricapryl amine in xylene, Sep. Sci. Technol. 35 (10) (2000), pp. 1573–1585.
  • Izatt, R.M., Haws, R.M., Lamb, J.D., Dearden, D.V., Brown, P.R., McBride, D.W., and Christensen, J.J., 1984. Facilitated transport from ternary cation mixtures through water–chloroform–water membrane systems containing macrocyclic ligands, J. Membr. Sci. 20 (1984), pp. 273–284.
  • Szpakowska, M., and Nagy, B.O., 1993. Non-steady state vs. steady state kinetic analysis of coupled ion transport through binary liquid membranes, J. Membr. Sci. 76 (1993), pp. 27–38.
  • Danesi, P.R., Horwitz, E.P., Vandegrift, G.F., and Chiarizia, R., 1981. Mass transfer rate through liquid membranes: interfacial chemical reactions and diffusion as simultaneous permeability controlling factors, Sep. Sci. Technol. 16 (2) (1981), pp. 201–211.
  • S.J. Angyal, Complexes of metal cations with carbohydrates in solution, in: R.S. Tepson, D. Horton (Eds.), Advances in Carbohydrate Chemistry and Biochemistry, Academic Press, Inc., vol. 47, 1989..

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.