References
- G. Cote, Hydrometallurgy of strategic metals, Solvent Extr. Ion
Exch., 18 (2000) 703–727.
- S.R. Rao, Resource, Recovery and Recycling from Metallurgical
Wastes, Elsevier, Amsterdam, 2006.
- S.S. Hosseini, E. Bringas, N.R. Tan, I. Ortiz, M. Ghahramani,
M.A.A. Shahmirzadi, Recent progress in development of high
performance polymeric membranes and materials for metal
plating wastewater treatment: a review, J. Water Process Eng., 9
(2016) 78–110.
- M.I.G.S. Almeida, R.W. Cattrall, S.D. Kolev, Recent trends in
extraction and transport of metal ions using polymer inclusion
membranes (PIMs), J. Membr. Sci., 415–416 (2012) 9–23.
- E. Radzyminska-Lenarcik, M. Sulewski, W. Urbaniak, Recovery
of zinc from metallurgic waste sludges, Pol. J. Environ. Stud., 24
(2015) 1277–1282.
- E. Radzyminska-Lenarcik, R. Ulewicz, M. Ulewicz, Zinc
recovery from model and waste solutions using polymer
inclusion membranes (PIMs) with 1-octyl-4-methylimidazole,
Desal. Wat. Treat., 102 (2018) 211–219.
- D. Babilas, P. Dydo, Selective zinc recovery from electroplating
wastewaters by electrodialysis enhanced with complex
formation, Sep. Purif. Technol., 192 (2018) 419–428.
- Z. Shiri-Yekta, A.A. Zamani, M.R. Yaftian, Amelioration of
extraction–separation efficiency of Zn(II), Cd(II) and Pb(II)
ions with bis(2-ethylhexyl)phosphoric acid in the presence of a
water-soluble N4-type Schiff base ligand, Sep. Purif. Technol., 66
(2009) 98–103.
- K. Takeshita, K. Watanabe, Y. Nakano, M. Watanabe,
Solvent extraction separation of Cd(II) and Zn(II) with the
organophosphorus extractant D2EHPA and the aqueous
nitrogen-donor ligand TPEN, Hydrometallurgy, 70 (2003)
63–71.
- F. Luo, D. Li, P. Wei, Synergistic extraction of zinc(II) and
cadmium(II) with mixtures of primary amine N1923 and
neutral organophosphorous derivatives, Hydrometallurgy, 73
(2004) 31–40.
- H. Mahandra, R. Singh, B. Gupta, Liquid-liquid extraction
studies on Zn(II) and Cd(II) using phosphonium ionic liquid
(Cyphos IL 104) and recovery of zinc from zinc plating mud,
Sep. Purif. Technol., 177 (2017) 281–292.
- A.P. de los Rios, F.J. Hernández-Fernández, F.J. Alguacil,
L.J. Lozano, A. Ginestá, I. García-Díaz, S. Sánchez-Segado,
F.A. López, C. Godínez, 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 (2012) 150–157.
- M. Stasiak, M. Regel-Rosocka, A. Borowiak-Resterna,
Zinc extraction from chloride solutions with mixtures of
solvating and chelating reagents, Hydrometallurgy, 162 (2016)
57–62.
- M.K. Jha, V. Kumar, J. Jeong, J. Lee, Review on solvent extraction
of cadmium from various solutions, Hydrometallurgy, 111–112
(2012) 1–9.
- M.K. Jha, V. Kumar, R.J. Singh, Review of hydrometallurgical
recovery of zinc from industrial wastes, Resour. Conserv.
Recycl., 33 (2001) 1–22.
- K. Ding, Y. Liu, J. Tang, Y. Zhou, X. Lin, J. Hu, Efficiently
enriching zinc(II) from and into ammonium chloride media
with species regulation and Aliquat 336, Sep. Purif. Technol.,
190 (2018) 100–107.
- M. Regel-Rosocka, F.J. Alguacil, Recent trends in metals
extraction, Rev. Metal., 49 (2013) 292–316.
- V.S. Kislik, Liquid Membrane: Principles and Applications in
Chemical Separations and Wastewater Treatment, Elsevier,
Amsterdam, 2010.
- M.F. San Roman, E. Bringas, R. Ibanez, I. Ortiz, Liquid membrane
technology: fundamentals and review of its applications,
J. Chem. Technol. Biotechnol., 85 (2010) 2–10.
- L.D. Nghiem, P. Mornane, I.D. Potter, J.M. Perera, R.W. Cattrall,
S.D. Kolev, Extraction and transport of metal ions and small
organic compounds using polymer inclusion membranes
(PIMs), J. Membr. Sci., 281 (2006) 7–41.
- B. Lenarcik, B. Barszcz, Stability and structure of transition
metal complexes with azoles in aqueous solutions. Part XXI. A
comparison of complex-forming of 1,2-dimethylimidazole with
that of other 1,3-diazoles, J. Chem. Soc. Dalton Trans., (1980)
24–28, doi: 1039/DT9800000024.
- B. Lenarcik, K. Kurdziel, R. Czopek, Search for optimum conditions
of extraction of metal complexes with alkylimidazoles. III.
Structure-extractability relation-ships for 1,4-dimethylimidazole
complexes of Co(II), Ni(II), Cu(II), Zn(II), and Cd(II), Solvent
Extr. Ion Exch., 4 (1986) 165–182.
- E. Radzyminska-Lenarcik, The influence of alkyl chain length in
1,2-dialkylimidazoles on the extraction capacity and structure
of their copper(II) complexes, Sep. Sci. Technol., 44 (2009)
954–970.
- E. Radzyminska-Lenarcik, K. Witt, The influence of alkyl chain
length and steric effect on the stability constants and extractability
of Co(II) complexes with 1-alkyl-2-methylimidazoles, Sep. Sci.
Technol., 50 (2015) 676–682.
- B. Lenarcik, A. Kierzkowska, The influence of alkyl chain
length and steric effect on stability constants and extractability
of Zn(II) complexes with 1-alkyl-4-methylimidazoles, Sep. Sci.
Technol., 39 (2004) 3485–3508.
- E. Radzyminska-Lenarcik, Influence of the solvent donor
number on the O/W partition ratio of Cu(II) complexes of
1,2-dialkylimidazoles, Chem. Pap., 65 (2011) 226–232.
- Z. Ajji, A.M. Ali, Separation of copper ions from iron ions using
PVA-g-(acrylic acid/N-vinyl imidazole) membranes prepared
by radiation-induced grafting, J. Hazard. Mater., 173 (2010)
71–74.
- M. Ulewicz, K. Sadowska, J.F. Biernat, Selective transport of
Pb(II) across polymer inclusion membrane using imidazole
azocrown ethers as carriers, Physicochem. Prob. Miner. Process.,
41 (2007) 133–143.
- M. Ulewicz, E. Radzyminska-Lenarcik, Transport of metal ions
across polymer inclusion membrane with 1-alkylimidazole,
Physicochem. Prob. Miner. Process., 46 (2011) 199–130.
- E. Radzyminska-Lenarcik, M. Ulewicz, Selective transport
of Cu(II) across a polymer inclusion membrane with
1-alkylimidazole from nitrate solutions, Sep. Sci. Technol., 47
(2012) 1113–1118.
- E. Radzyminska-Lenarcik, M. Ulewicz, Application of
polymer inclusion and membranes supported with 1-alkyl-2-
methylimidazoles for separation of selected transition metal
ions, Desal. Wat. Treat., 64 (2017) 425–431.
- M. Ulewicz, E. Radzyminska-Lenarcik, Supported liquid
(SLM) and polymer inclusion (PIM) membranes pertraction
of copper(II) from aqueous nitrate solutions by 1-hexyl-2-
methylimidazole, Sep. Sci. Technol., 47 (2012) 1383–1389.
- E. Radzyminska-Lenarcik, M. Ulewicz, The use of the steric effect
of the carrier molecule in the polymer inclusion membranes for
the separation of cobalt(II), nickel(II), copper(II), and zinc(II)
ions, Pol. J. Chem. Technol., 17 (2015) 51–56.
- M. Ulewicz, E. Radzyminska-Lenarcik, Application of supported
and polymer membrane with 1-decyl-2-methylimidazole for
separation of transition metal ions, Physicochem. Prob. Miner.
Process., 48 (2012) 91–102.
- E. Radzyminska-Lenarcik, M. Ulewicz, The use of 1-alkylimidazoles
for selective separation of zinc ions in the transport process
across polymer inclusion membrane, Physicochem. Prob.
Miner. Process., 50 (2014) 131−142.
- M. Ulewicz, E. Radzyminska-Lenarcik, Application of polymer
inclusion membranes doped with 1-hexyl-4-methylimidazole
for pertraction of zinc(II) and other transition metal ions,
Physicochem. Prob. Miner. Process., 51 (2015) 447–460.
- M. Ulewicz, E. Radzyminska-Lenarcik, Application of polymer
and supported membranes with 1-decyl-4-methylimidazole for
pertraction of transition metal ions, Sep. Sci. Technol., 49 (2014)
1713–1721.
- K. Ali, R. Nawaz, N. Ali, A. Khaliq, R. Ullah, Selective removal of
zinc using tri-ethanolamine-based supported liquid membrane,
Desal. Wat. Treat., 57 (2016) 8549–8560.
- J. Kozlowska, C.A. Kozłowski, J.J. Koziol, Transport of
Zn(II), Cd(II), and Pb(II) across CTA plasticized membranes
containing organophosphorous acids as an ion carriers, Sep.
Purif. Technol., 57 (2007) 211–219.
- A.M. Tarditi, J. Marchese, M.E. Campderrós, Modelling of zinc
(II) transport through a PC-88A supported liquid membrane,
Desalination, 228 (2008) 226–236.
- C. Kozlowski, J. Kozlowska, PNP-16-crown-6 derivatives as ion
carriers for Zn(II), Cd(II) and Pb(II) transport across polymer
inclusion membranes, J. Membr. Sci., 326 (2009) 215–221.
- C. Sgarlata, G. Arena, E. Longo, D. Zhang, Y. Yang, R.A. Bartsch,
Heavy metal separation with polymer inclusion membranes,
J. Membr. Sci., 323 (2008) 444–451.
- D. Wang, J. Hu, D. Liu, Q. Chen, J. Li, Selective transport and
simultaneous separation of Cu(II), Zn(II) and Mg(II) using a
dual polymer inclusion membrane system, J. Membr. Sci., 524
(2017) 205–213.
- K. Witt, E. Radzyminska-Lenarcik, W. Urbaniak, Selective
transport of zinc ions through novel polymer inclusion
membranes (PIMs) containing β-diketone derivatives as carrier
reagents, Sep. Sci. Technol., 51 (2016) 2620–2627.
- N. Pont, V. Salvado, C. Fontas, Selective transport and removal
of Cd from chloride solutions by polymer inclusion membranes,
J. Membr. Sci., 318 (2008) 340–345.
- N.S. Abdul-Halim, P.G. Whitten, L.D. Nghiem, Characterising
poly(vinyl chloride)/Aliquat 336 polymer inclusion membranes:
evidence of phase separation and its role in metal extraction,
Sep. Purif. Technol., 119 (2013) 14–18.
- J. Pernak, J. Krysinski, A. Skrzypczak, Bakterizide wirkung von
iminiumverbindungen. A, Tens. Surf. Det., 24 (1987) 276–286.
- P.R. Danesi, Separation of metal species by supported liquid
membranes, Sep. Sci. Technol., 19 (1984–1985) 857–894.
- J.R. Wolf, W. Strieder, Tortuosities for a random fiber bed:
overlapping, parallel cylinders of several radii, J. Membr. Sci.,
49 (1999) 103–115.
- C.F. Bennani, O. M’hiri, Comparative study of the removal of
heavy metals by two nanofiltration membranes, Desal. Wat.
Treat., 53 (2015) 1024–1030.
- A. Tor, G. Arslan, H. Muslu, A. Celiktas, Y. Cengeloglu, M.
Ersoz, Facilitated transport of Cr(III) through polymer inclusion
membrane with di(2-ethylhexyl)phosphoric acid (DEHPA), J.
Membr. Sci., 329 (2009) 169–174.
- E. Radzyminska-Lenarcik, K. Witt, Studies on the separation
of some transition metals using 1,2,4-trimethylimidazole as
selective extractant, E3S Web of Conferences 18, 01017 (2017),
MEC2017, doi: 10.1051/e3sconf/20171801017.
- E. Radzyminska-Lenarcik, Influence of the alkyl chain
length on extraction equilibrium of Cu(II) complexes with
1-alkylimidazoles in aqueous solution/organic solvent systems,
Solvent Extr. Ion Exch., 25 (2007) 53–64.