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dc.contributor.authorNapol’skikh, J.en
dc.contributor.authorShoppert, A.en
dc.contributor.authorLoginova, I.en
dc.contributor.authorKirillov, S.en
dc.contributor.authorValeev, D.en
dc.date.accessioned2025-02-25T11:02:26Z-
dc.date.available2025-02-25T11:02:26Z-
dc.date.issued2024-
dc.identifier.citationNapol’skikh, J., Shoppert, A., Loginova, I., Kirillov, S., & Valeev, D. (2024). Selective Recovery of Scandium (Sc) from Sulfate Solution of Bauxite Residue Leaching Using Puromet MTS9580 Ion-Exchange Sorption. Metals, 14(2), [234]. https://doi.org/10.3390/met14020234apa_pure
dc.identifier.issn2075-4701-
dc.identifier.otherFinal2
dc.identifier.otherAll Open Access; Gold Open Access; Green Open Access3
dc.identifier.otherhttps://www.scopus.com/inward/record.uri?eid=2-s2.0-85185682806&doi=10.3390%2fmet14020234&partnerID=40&md5=0e8483aabc005c2a1be1c4f79ba35c9c1
dc.identifier.otherhttps://www.mdpi.com/2075-4701/14/2/234/pdf?version=1707988268pdf
dc.identifier.urihttp://elar.urfu.ru/handle/10995/141744-
dc.description.abstractRare earth elements (REEs) and Sc are concentrated in aluminum production byproducts. The novel REEs recovery approach, which involves leaching with acid at a pH > 3 in the presence of MgSO4, results in the formation of a pregnant leach solution (PLS) with a low concentration of iron (Fe) and titanium (Ti) and a large number of valuable elements. This work studies the application of chelating resin Puromet MTS9580 in the sorption recovery of Sc from sulfate solutions. To analyze the static Sc sorption data, Langmuir, Freundlich, and Temkin isotherm models were used. The Langmuir isotherm model was the best fitted to the experimental data, with a coefficient of determination (R2) of 0.983. The dynamic adsorption experiment was conducted using a PLS and a simulated solution without contaminants. Adsorption of Sc from the simulated solution was better fitted to the Thomas model with a Sc capacity greater than 6.4 mg mL−1. Because Ti had a gradual decrease in C/C0, which the Thomas model was unable to simulate, the modified dose-response (MDR) model fitted better with PLS with a Sc capacity greater than 3.8 mg mL−1. The NaHCO3 solution (200 g L−1) effectively desorbed Sc (>98%) from simulated and PLS solutions after 1.5 h of stirring in a batch mode. After 1.5 h of desorption, the concentration of Sc in the desorption solution was 461.5 mg L−1, while the concentration of Mg and Ti was lower than 200 mg L−1 and 50 mg L−1, respectively. © 2024 by the authors.en
dc.description.sponsorshipRussian Academy of Sciences, РАН, (FMMZ-2024-0045); Russian Academy of Sciences, РАН; Russian Science Foundation, RSF, (22-29-01515); Russian Science Foundation, RSFen
dc.description.sponsorshipThis work was funded by State Assignment, grant No. 075-03-2021-051/5 (FEUZ-2021-0017). The study of bauxite residue leaching was funded by the Russian Science Foundation Project No. 22-29-01515. The methods for determining Sc and the impurities in the solution using ICP-OES and AES (see Section 2.3. “Analysis”) were funded by the Project of the State Assignment (Vernadsky Institute of Geochemistry and Analytical Chemistry of Russian Academy of Sciences, no. FMMZ-2024-0045).en
dc.format.mimetypeapplication/pdfen
dc.language.isoenen
dc.publisherMultidisciplinary Digital Publishing Institute (MDPI)en
dc.rightsinfo:eu-repo/semantics/openAccessen
dc.rightscc-byother
dc.sourceMetals2
dc.sourceMetalsen
dc.subjectADSORPTION ISOTHERMen
dc.subjectCHELATING RESINen
dc.subjectPUROMET MTS9580en
dc.subjectRED MUDen
dc.subjectSC RECOVERYen
dc.subjectSELECTIVE SORPTIONen
dc.subjectSULFATE SOLUTIONen
dc.titleSelective Recovery of Scandium (Sc) from Sulfate Solution of Bauxite Residue Leaching Using Puromet MTS9580 Ion-Exchange Sorptionen
dc.typeArticleen
dc.typeinfo:eu-repo/semantics/articleen
dc.typeinfo:eu-repo/semantics/publishedVersionen
dc.identifier.doi10.3390/met14020234-
dc.identifier.scopus85185682806-
local.contributor.employeeNapol’skikh J., Laboratory of Advanced Technologies in Non-Ferrous and Ferrous Metals Raw Materials Processing, Ural Federal University, Yekaterinburg, 620002, Russian Federationen
local.contributor.employeeShoppert A., Laboratory of Advanced Technologies in Non-Ferrous and Ferrous Metals Raw Materials Processing, Ural Federal University, Yekaterinburg, 620002, Russian Federationen
local.contributor.employeeLoginova I., Department of Non-Ferrous Metals Metallurgy, Ural Federal University, Yekaterinburg, 620002, Russian Federationen
local.contributor.employeeKirillov S., Department of Rare Earth Metals and Nanomaterials, Ural Federal University, Yekaterinburg, 620002, Russian Federationen
local.contributor.employeeValeev D., Laboratory of Sorption Methods, Vernadsky Institute of Geochemistry and Analytical Chemistry, The Russian Academy of Sciences, Moscow, 119991, Russian Federationen
local.issue2-
local.volume14-
dc.identifier.wos001173942700001-
local.contributor.departmentLaboratory of Advanced Technologies in Non-Ferrous and Ferrous Metals Raw Materials Processing, Ural Federal University, Yekaterinburg, 620002, Russian Federationen
local.contributor.departmentDepartment of Non-Ferrous Metals Metallurgy, Ural Federal University, Yekaterinburg, 620002, Russian Federationen
local.contributor.departmentDepartment of Rare Earth Metals and Nanomaterials, Ural Federal University, Yekaterinburg, 620002, Russian Federationen
local.contributor.departmentLaboratory of Sorption Methods, Vernadsky Institute of Geochemistry and Analytical Chemistry, The Russian Academy of Sciences, Moscow, 119991, Russian Federationen
local.identifier.pure53802412-
local.description.order234
local.identifier.eid2-s2.0-85185682806-
local.fund.rsfRussian Academy of Sciences, РАН, (FMMZ-2024-0045); Russian Academy of Sciences, РАН; 22-29-01515
local.identifier.wosWOS:001173942700001-
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