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Separation of Co from Ni and Li from chloride media using polymer inclusion membrane system with thiosalicylate based ionic liquid

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Języki publikacji
EN
Abstrakty
EN
The selective removal of cobalt(II) from aqueous chloride solutions containing nickel(II) and lithium(I) was studied. The facilitated transport of metal ions through polymer inclusion membranes (PIMs) with trihexyl(tetradecyl)phosphonium thiosalicylate [PR4][TS] under various conditions was analyzed. In order to optimize the separation process, several factors such as the ion carrier concentration in the membrane as well as of the effect of the concentration of the acids in the source/receiving phases were investigated. The results show that PIM containing 25% CTA as the polymer support, 40% NPOE as the plasticizer and 35% [PR4][TS] allow the selective recovery of more than 90% of cobalt(II) from 6 mol/dm3 hydrochloric acid into 0.5 mol/dm3 sulfuric acid.
Słowa kluczowe
Rocznik
Strony
art. no. 152997
Opis fizyczny
Bibliogr. 28 poz., rys., wykr.
Twórcy
  • Czestochowa University of Technology, Department of Materials Engineering, Czestochowa, Armii Krajowej 19, Poland
Bibliografia
  • ALGUACIL, F.J., 2017. Non-dispersive extraction of gold(III) with ionic liquid Cyphos IL 101. Sep. Purif. Technol. 179, 72-76.
  • ALVIAL-HEIN, G., MAHANDRA, H., GHAHREMAN, A., 2021. Separation and recovery of cobalt and nickel from end of life products via solvent extraction technique: A review. J. Clean. Prod. 297, 126592,
  • BACZYNSKA, M., RZELEWSKA, M., REGEL-ROSOCKA, M., WISNIEWSKI, M., 2016. Transport of iron ions from chloride solutions using cellulose triacetate matrix inclusion membranes with an ionic liquid carrier. Chem. Pap. 70, 172-179.
  • BLITZ-RAITH, A.H., PAIMIN, R., CATTRALL, R.W., KOLEV, S.D., 2007. Separation of cobalt(II) from nickel(II) bysolid-phase extraction into Aliquat 336 chloride immobilized in poly(vinyl chloride). Talanta 71, 419-423,
  • CHENG, J., LU, T., WU, X., ZHANG, H., ZHANG, CH., PENG, CH., HUANG, S., 2019. Extraction of cobalt(II) by methyltrioctylammonium chloride in nickel(II)-containing chloride solution from spent lithium ion batteries. RSC Adv. 9, 22729-22739.
  • CHOLICO-GONZALEZ, D., CHAGNES, A., COTE, G., AVILA-RODRIGUEZ, M., 2015. Separation of Co(II) and Ni(II) from aqueous solutions by bis(2,4,4-trimethylpentyl)phosphinic acid (Cyanex 272) Rusing trihexyl(tetradecyl)phosphonium chloride (Cyphos IL 101) as solvent. J. Molec. Sci. 209, 203-208.
  • COLL, M.T., FORTUNY, A., KEDARI, C.S. 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 125-126, 24-28.
  • DIABATE, P.D., DUPONT, L., BOUDESOCQUE, S., MOHAMADOU, A., 2018. Novel task specific ionic liquids to remove heavy metals from aqueous effluents. Metals 8, 1-15.
  • JANISZEWSKA, M., MARKIEWICZ, A., REGEL-ROSOCKA, M., 2019. Hydrometallurgical separation of Co(II) from Ni(II) from model and real waste solutions. J. Clean. Prod. 228, 746-754.
  • KANG, J., SENANAYAKE, G., SOHN, J., SHIN, S.M., 2010. Recovery of cobalt sulfate from spent lithium ion batteries by reductive leaching and solvent extraction with Cyanex 272. Hydrometallurgy 100, 168–17.
  • KOZLOWSKI C.A., 2006. Facilitated transport of metal ions through composite and polymer inclusion membranes. Desaliantion 198, 132-140.
  • LEYMA, R., PLATZER, S., JIRSA, F., KANDIOLLER, W., KRACHLER, R., KEPPLER, B.K., 2016. Novel thiosalicylate-based ionic liquids for heavy metal extractions. J. Hazard. Mater. 314, 164-171.
  • MAKOWKA, A., POSPIECH, B., 2019. Synthesis of polymer inclusion membranes (PIM) based on cellulose triacetate (CTA) for recovery lanthanum(III) from aqueous solutions, AUTEX Res. J. 19, 288-292.
  • MAKOWKA, A. POSPIECH, B., 2020. Studies on extraction and competitive permeation of cerium(III) and lanthanum(III) using Cyphos IL104 as selective extractant and ion carrier. Sep. Sci. Technol. 55. 2193-2203.
  • NAYL, A.A., 2010. Extraction and separation of Co(II) and Ni(II) from acidic sulfate solutions using Aliquat 336. J. Hazard.Mater. 173, 223-230.
  • NGUYEN, V.N.H., LEE, M.S., 2020. Separation of Co(II), Cu(II), Ni(II) and Mn(II) from synthetic hydrochloric acid leaching solution of spent lithium ion batteries by solvent extraction. Physicochem. Probl. Miner. Process. 56, 599-610.
  • NGUYEN, V.N.H., LEE, M.S., 2021. Improvement of metal separation process from synthetic hydrochloric acid leaching solution of spent lithium ion batteries by solvent extraction and ion exchange. Physicochem. Probl. Miner. Process. 57, 1-17.
  • POSPIECH, B., 2013. Hydrometallurgical recovery of cobalt(II) from acidic chloride solutions by transport through polimer inclusion membranes. Physicochem. Probl. Miner. Process. 49, 641-649.
  • POSPIECH, B., 2015. Studies on extraction and permeation of cadmium(II) using Cyphos IL 104 as selective extractant and ion carrier. Hydrometallurgy 154, 88-94.
  • POSPIECH, B., 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.
  • POSPIECH, B., MAKOWKA, A., 2022. Application of plasticized cellulose triacetate membranes for recovery and separation of cerium(III) and lanthanum(III). AUTEX Res. J. 22, 312-317.
  • REGEL-ROSOCKA, M., NOWAK, L., WISNIEWSKI, M., 2012. Removal of zinc(II) and iron ions from chloride solutions with phosphonium ionic liquids. Sep. Purif. Technol. 97, 158-163.
  • RYBKA, P., REGEL-ROSOCKA, M., 2012. Nickel(II) and cobalt(II) extraction from chloride solutions with quaternary phosphonium salts. Sep. Sci. Technol. 47, 1296-1302.
  • STEFANIAK, J., KARWACKA, S., JANISZEWSKA, M., REGEL-ROSOCKA M., 2020. Co(II) and Ni(II) transport from model and real sulfate solutions by extraction with bis(2,4,4-trimethylpentyl)phosphinic acid (Cyanex 272). Chemosphere 254, 126869.
  • TURGUT, H.I., EYUPOGLU, V., KUMBASR, R.A., SISMAN, I., 2017. Alkyl chain length dependent Cr(VI) transport by polymer inclusioin membrane using room temeprature ioni liquids as carrier and PVDF-co-HFP as polymer matrix. Sep. Purif. Tedchnol. 175, 406-417.
  • WANG, X., GAUSTAND, G., BABBITT, C., RICHA, K., 2014. Economies of scale for future lithium-ion battery recycling infrastructure. Res. Conserv. Recycl. 83, 53-62.
  • WINSLOW, K.M., LAUX, S.J., TOWNSEND, T.G., 2018. A review on the growing concern and potential management strategies of waste lithium-ion batteries. Res.Conserv. Recycl. 129, 263-277.
  • YUAN, L., YANG, H., NING, P., WEN, J., SUN, Z., CAO, H., 2022. Green separation and recovery of cobalt and Nikel from sulphuric acid achieved by complexation-assisted solvent extraction. Sep. Purif. Technol. 286, 1-12.
Uwagi
Opracowanie rekordu ze środków MEiN, umowa nr SONP/SP/546092/2022 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2022-2023).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-f7820f89-3426-41e0-8fbd-ea13e256c938
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