Гидрофобные эвтектические растворители на основе спиртов и камфоры в экстракции Fe(III) из солянокислых растворов
- Authors: Кожевникова А.В.1, Зиновьева И.В.1, Заходяева Ю.А.1, Вошкин А.А.1
-
Affiliations:
- Институт общей и неорганической химии им. Н.С. Курнакова РАН
- Issue: Vol 58, No 3 (2024)
- Pages: 347-355
- Section: Articles
- Published: 22.11.2024
- URL: https://kld-journal.fedlab.ru/0040-3571/article/view/652802
- DOI: https://doi.org/10.31857/S0040357124030094
- EDN: https://elibrary.ru/bvsnco
- ID: 652802
Cite item
Abstract
Предложены новые гидрофобные эвтектические растворители на основе линалоола, гераниола и камфоры в качестве экстрагентов для ионов Fe(III) из солянокислых растворов. Изучены температурные зависимости ключевых физических свойств предложенных эвтектических растворителей. Исследована экстракция ионов Fe(III) из водных растворов в зависимости от условий проведения процесса: кислотность среды, соотношение компонентов в эвтектическом растворителе, концентрация высаливателя и объемное соотношение фаз. При экстракции хлорида железа гидрофобными эвтектическими растворителями линалоол/камфора и гераниол/камфора в органической фазе образуются соединения состава (ROH2)+[FeCl4]–. Добавление камфоры улучшает экстракционные свойства спиртов, при этом гераниол является наиболее эффективным экстрагентом, нежели линалоол. Реэкстракция ионов Fe(III) из органической фазы осуществляется дистиллированной водой без введения дополнительных реагентов.
Full Text

About the authors
А. В. Кожевникова
Институт общей и неорганической химии им. Н.С. Курнакова РАН
Email: yz@igic.ras.ru
Russian Federation, Москва, 119991
И. В. Зиновьева
Институт общей и неорганической химии им. Н.С. Курнакова РАН
Email: yz@igic.ras.ru
Russian Federation, Москва, 119991
Ю. А. Заходяева
Институт общей и неорганической химии им. Н.С. Курнакова РАН
Author for correspondence.
Email: yz@igic.ras.ru
Russian Federation, Москва, 119991
А. А. Вошкин
Институт общей и неорганической химии им. Н.С. Курнакова РАН
Email: yz@igic.ras.ru
Russian Federation, Москва, 119991
References
- Wang J.; Ma J., Zhuang Z., Liang Z., Jia K., Ji G., Zhou G., Cheng H.-M. Toward Direct Regeneration of Spent Lithium-Ion Batteries: A Next-Generation Recycling Method. Chem Rev 2024, 124, 2839–2887, doi: 10.1021/acs.chemrev.3c00884.
- Saju D., Ebenezer J., Chandran N., Chandrasekaran N. Recycling of Lithium Iron Phosphate Cathode Materials from Spent Lithium-Ion Batteries: A Mini-Review. Ind Eng Chem Res 2023, 62, 11768–11783, doi: 10.1021/acs.iecr.3c01208.
- Wu C., Awasthi A.K., Qin W., Liu W., Yang C. Recycling Value Materials from Waste PCBs Focus on Electronic Components: Technologies, Obstruction and Prospects. J Environ Chem Eng 2022, 10, 108516, doi: 10.1016/j.jece.2022.108516.
- Yudaev,P.A., Kolpinskaya N.A., Chistyakov E.M. Organophosphorous Extractants for Metals. Hydrometallurgy 2021, 201, 105558, doi: 10.1016/j.hydromet.2021.105558.
- Wang L.Y., Guo Q.J., Lee M.S. Recent Advances in Metal Extraction Improvement: Mixture Systems Consisting of Ionic Liquid and Molecular Extractant. Sep Purif Technol 2019, 210, 292–303, doi: 10.1016/j.seppur.2018.08.016.
- Lommelen R., Vander Hoogerstraete T., Onghena B., Billard I., Binnemans K. Model for Metal Extraction from Chloride Media with Basic Extractants: A Coordination Chemistry Approach. Inorg Chem 2019, 58, 12289–12301, doi: 10.1021/acs.inorgchem.9b01782.
- Khanramaki F., Safdari J., Shirani A.S., Torkaman R. Investigations on the Complete Removal of Iron(III) Interference on the Uranium(VI) Extraction from Sulfate Leach Liquor Using Alamine 336 in Kerosene. Radiochim Acta 2018, 106, 631–643, doi: 10.1515/ract-2017-2906.
- Vereycken W., Riaño S., Gerven T. Van, Binnemans K. Extraction Behavior and Separation of Precious and Base Metals from Chloride, Bromide, and Iodide Media Using Undiluted Halide Ionic Liquids. ACS Sustain Chem Eng 2020, 8, 8223–8234, doi: 10.1021/acssuschemeng.0c01181.
- Przeszlakowski S., Habrat E. Extraction of Iron(III) from Aqueous Solution with Mixtures of Aliquat 336 and Ferron in Chloroform. Analyst 1982, 107, 1320, doi: 10.1039/an9820701320.
- El-Wakil A.M., Farag A.B., Ez-Eldin A.Kh. Liquid-Liquid Extraction of Iron(III), Cobalt(II), Nickel(II) and Cadmium(II) from Aqueous Halide Media with Aliquat 336. Fresenius’ Zeitschrift für analytische Chemie 1982, 311, 522–522, doi: 10.1007/BF00521183.
- Yu S., Chen J., Chen C. Stripping of Fe(III) Extracted by Di-2-Ethylhexyl Phosphoric Acid from Sulfate Solutions with Sulfuric Acid. Hydrometallurgy 1989, 22, 267–272, doi: 10.1016/0304-386X(89)90057-1.
- El Dessouky S.I., El-Nadi Y.A., Ahmed I.M., Saad E.A., Daoud J.A. Solvent Extraction Separation of Zn(II), Fe(II), Fe(III) and Cd(II) Using Tributylphosphate and CYANEX 921 in Kerosene from Chloride Medium. Chemical Engineering and Processing: Process Intensification 2008, 47, 177–183, doi: 10.1016/j.cep.2007.03.002.
- Majumdar S. Liquid-Liquid Extraction of IronIII with Tributylphosphate Separation from Mixtures. Talanta 1960, 7, 1–6, doi: 10.1016/0039-9140(60)80002-1.
- Bagreev V.V., Fischer C., Yudushkina L.M., Zolotov Yu.A. Mutual Influence of Metals in the Extraction of Their Chloride Complexes with Tri-n-Octylamine and Aliquat 336 in Benzene. Journal of Inorganic and Nuclear Chemistry 1978, 40, 553–557, doi: 10.1016/0022-1902(78)80441-2.
- Mishra R.K., Rout P.C., Sarangi K., Nathsarma K.C. Solvent Extraction of Fe(III) from the Chloride Leach Liquor of Low Grade Iron Ore Tailings Using Aliquat 336. Hydrometallurgy 2011, 108, 93–99, doi: 10.1016/j.hydromet.2011.03.003.
- Kasikov A.G., Dyakova L. V., Khomchenko O.A. Mastering of Extraction Technology of New Cobalt Production in Kola MMC. Tsvetnye Metally 2018, 14–19, doi: 10.17580/tsm.2018.01.01.
- Fábrega F. de M., Mansur M.B. Liquid–Liquid Extraction of Mercury (II) from Hydrochloric Acid Solutions by Aliquat 336. Hydrometallurgy 2007, 87, 83–90, doi: 10.1016/j.hydromet.2007.02.004.
- Stas J., Alsawaf H. Liquid – Liquid Extraction of Hydrochloric Acid from Aqueous Solutions by Tri-n-Dodecylamine and Tri-n-Octylamine / Diluents. Periodica Polytechnica Chemical Engineering 2015, doi: 10.3311/PPch.8355.
- Petrova A.M., Nikolaev A.E., Kasikov A.G. Extraction of Gold(III) from Hydrochloric Acid Solutions with High-Molecular Aliphatic Alcohols. Russian Journal of Applied Chemistry 2014, 87, 234–240, doi: 10.1134/S1070427214020190.
- Kasikov A.G., Petrova A.M. Extraction of Rhenium(VII) with Aliphatic Alcohols from Acid Solutions. Russian Journal of Applied Chemistry 2009, 82, 197–203, doi: 10.1134/S1070427209020050.
- Sokolov A., Valeev D., Kasikov A. Solvent Extraction of Iron(III) from Al Chloride Solution of Bauxite HCl Leaching by Mixture of Aliphatic Alcohol and Ketone. Metals (Basel) 2021, 11, 321, doi: 10.3390/met11020321.
- Mao X. Solvent Extraction of Iron (III) from Chloride Acid Solutions by Decanol. In Proceedings of the Proceedings of the 3rd International Conference on Material, Mechanical and Manufacturing Engineering, Atlantis Press: Paris, France, 2015.
- Tereshatov E.E., Boltoeva M.Yu., Folden C.M. First Evidence of Metal Transfer into Hydrophobic Deep Eutectic and Low-Transition-Temperature Mixtures: Indium Extraction from Hydrochloric and Oxalic Acids. Green Chemistry 2016, 18, 4616–4622, doi: 10.1039/C5GC03080C.
- van Osch D.J.G.P., Zubeir L.F., van den Bruinhorst A., Rocha M.A.A., Kroon M.C. Hydrophobic Deep Eutectic Solvents as Water-Immiscible Extractants. Green Chemistry 2015, 17, 4518–4521, doi: 10.1039/C5GC01451D.
- Milevskii N.A., Zinov’eva I. V., Kozhevnikova A. V., Zakhodyaeva Y.A., Voshkin A.A. Sm/Co Magnetic Materials: A Recycling Strategy Using Modifiable Hydrophobic Deep Eutectic Solvents Based on Trioctylphosphine Oxide. Int J Mol Sci 2023, 24, 14032, doi: 10.3390/ijms241814032.
- Milevskii N.A., Zinov’eva I.V., Zakhodyaeva Yu.A., Voshkin A.A. Separation of Li(I), Co(II), Ni(II), Mn(II), and Fe(III) from Hydrochloric Acid Solution Using a Menthol-Based Hydrophobic Deep Eutectic Solvent. Hydrometallurgy 2022, 207, 105777, doi: 10.1016/j.hydromet.2021.105777.
- Zinov’eva I. V., Kozhevnikova A. V., Milevskii N.A., Zakhodyaeva Yu.A., Voshkin A.A. Extraction of Cu(II), Ni(II), and Al(III) with the Deep Eutectic Solvent D2EHPA/Menthol. Theoretical Foundations of Chemical Engineering 2022, 56, 221–229, doi: 10.1134/S0040579522020178.
- Damilano G., Laitinen A., Willberg-Keyriläinen P., Lavonen T., Häkkinen R., Dehaen W., Binnemans K., Kuutti L. Effects of Thiol Substitution in Deep-Eutectic Solvents (DESs) as Solvents for Metal Oxides. RSC Adv 2020, 10, 23484–23490, doi: 10.1039/D0RA03696J.
- Kozhevnikova A. V., Zinov’eva I. V., Zakhodyaeva Y.A., Baranovskaya V.B., Voshkin A.A. Application of Hydrophobic Deep Eutectic Solvents in Extraction of Metals from Real Solutions Obtained by Leaching Cathodes from End-of-Life Li-Ion Batteries. Processes 2022, 10, 2671, doi: 10.3390/pr10122671.
- Kozhevnikova A. V., Milevskii N.A., Zinov’eva I. V., Zakhodyaeva Yu.A., Voshkin A.A. A Flow-Chart for Processing of a Lithium-Manganese Battery Using HDES Aliquat 336/Menthol. Theoretical Foundations of Chemical Engineering 2022, 56, 650–654, doi: 10.1134/S0040579522050268.
- Kasikov A.G., Sokolov A.Yu. Extraction of iron (III) from hydrochloric acid solution by isomers of octanol with inert diluent. Современные наукоемкие технологии (Modern High Technologies) 2019, 2, 187–192, doi: 10.17513/snt.37463.
- Zhu K., Wei Q., Liu K., Li H., Ren X. Design and Combination of Magnetic Ionic Liquids and Hydrophobic Deep Eutectic Solvents for Safer Extraction of Titanium: Physicochemical Properties and Toxicity Studies. Green Chemistry 2022, 24, 7481–7491, doi: 10.1039/D2GC01874H.
- Дегтев М.И. Закономерности Экстракции Ионов Железа (III) Из Хлороводородных Растворов Алифатическими Спиртами. Вестник Пермского университета. Серия: Химия 2013, 1, 37–46.
- Kasikov A., Sokolov A., Shchelokova E. Extraction of Iron(III) from Nickel Chloride Solutions by Mixtures of Aliphatic Alcohols and Ketones. Solvent Extraction and Ion Exchange 2022, 40, 251–268, doi: 10.1080/07366299.2021.1911036.
Supplementary files
