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Hydrometallurgical recovery of platinum group metals from spent automotive converters

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
This work presents studies on the recovery of platinum group metals (PGM), especially platinum and rhodium, from spent automotive converters using hydrometallurgical techniques such as leaching and liquid-liquid extraction. The XRD analysis confirmed the presence of indialite – the high temperature hexagonal form of cordierite (the main catalyst building material) in the solid samples. The influence of time and temperature on the leaching of PGM from spent automotive converters was investigated. The largest amounts of Pt(IV) and Rh(III) were leached with freshly prepared aqua regia and a mixture of HCl, H<sub2 </sub>SO<sub>4 </sub>, and H<sub>2</sub>O<sub>2</sub>. Further, liquid-liquid extraction with quaternary phosphonium ionic liquid (Cyphos IL 101) was applied to recover PGM from the leach solutions (after leaching with a mixture of HCl, H<sub>2</sub>SO<sub>4</sub>, and H<sub>2 </sub>O<sub>2</sub>) and to separate Pt(IV) from Rh(III).
Rocznik
Strony
83--94
Opis fizyczny
Bibliogr. 31 poz., rys., tab., wykr.
Twórcy
  • Poznan University of Technology, Institute of Chemical Technology and Engineering, ul. Berdychowo 4, 60-965 Poznan, Poland
  • Poznan University of Technology, Institute of Chemical Technology and Engineering, ul. Berdychowo 4, 60-965 Poznan, Poland
  • Poznan University of Technology, Institute of Chemical Technology and Engineering, ul. Berdychowo 4, 60-965 Poznan, Poland
Bibliografia
  • ANGELIDIS, T.N., SKOURAKI, E., 1996. Preliminary studies of platinum dissolution from a spent industrial catalyst. Appl. Catal. A-Gen., 142: 387-395.
  • BAHALOO-HOREH, N., MOUSAVI, S.M., 2020. Comprehensive characterization and environmental risk assessment of End-of-Life automotive catalytic converters to arrange a sustainable roadmap for future recycling practices. J. Hazard. Mater. 400, 123186. Bankier.pl (accessed on April 24, 2020).
  • BASTRZYK, A., POLOWCZYK, I., SADOWSKI, Z., SIKORA, A., 2011. Relationship between properties of oil/water emulsion and agglomeration of carbonate minerals. Sep. Purif. Technol. 77, 325-330.
  • BOLIŃSKI, L., 1991. Platinum and rhodium recovery from scrapped automotive catalyst by oxidative acid chloride leaching. MSc thesis. Department of Mining and Metallurgical Engineering, McGill University, Montreal, Canada.
  • DRZYMALA, J., 2007. Mineral processing. Foundations of theory and practice of minerallurgy. Ofic. Wyd. PWr, Wroclaw, Poland.
  • COSTA, M.C., ALMEIDA, R., ASSUNÇÃO, A.,ROSA DA COSTA,A.M.,NOGUEIRA C., PAIVA, A.P., 2016. N,N’- tetrasubstitutedsuccinamides as new molecules for liquid–liquid extraction of Pt(IV) from chloride media. Sep. Purif. Technol. 158, 409-416.
  • EUROPEAN COMMISSION, Report from the Commission to the European Parliament, the Council, the European Economic and Social Committee and the Committee of the Regions on the implementation of the Circular Economy Action Plan, available at https://ec.europa.eu/environment/circular-economy/ (accessed on February 26, 2020).
  • FORNALCZYK, A., KRASZEWSKI, M., WILLNER, J., KADUKOVÁ, J., MRÁŽIKOVÁ, A., MARCINČÁKOVÁ, R.,VELGOSOVÁ, O., 2016. Dissolution of metal supported spent auto catalysts in acids. Arch. Metall. Mater. 61, 233-236.
  • GAO, M., SHIH, C.C., PAN, S.Y., CHUEH, C.C., CHEN, W.C., 2018. Advances and challenges of green materials for electronics and energy storage applications: from design to end-of-life recovery. J. Mater. Chem. A 6, 20546.
  • HOFMANN, G., ROCHET, A., OGEL, E., CASAPU, M., RITTER, S., OGURRECK, M., GRUNWALDT, J.D., 2015. Aging of a Pt/Al2O3 exhaust gas catalyst monitored by quasi in situ X-ray micro computed tomography. RSC Adv. 5, 6893.
  • INFOMINE, 2020. Infomine.com (accessed on April 24, 2020).
  • JAREE, A., KHUNPHAKDEE, N., 2011. Separation of concentrated platinum(IV) and rhodium(III) in acidic chloride solution via liquid–liquid extraction using tri-octylamine. J Ind. Eng. Chem. 17, 243-247.
  • JIANG, L., YANG, N., ZHU, J., SONG, C., 2013. Preparation of monolithic Pt–Pd bimetallic catalyst and it sperformance in catalytic combustion of benzene series. Catal. Today. 216, 71-75.
  • JIMENEZ DE ABERASTURI, D., PINEDO, R., RUIZ DE LARRAMENDI, I., RUIZ DE LARRAMENDI, J.I., ROJO, T., 2011. Recovery by hydrometallurgical extraction of the platinum-group metals from car catalytic converters. Miner. Eng. 24, 505-513.
  • JHA, M.K., LEE, J., KIM, M., JEONG, J., KIM, B-S., KUMAR, V., 2013. Hydrometallurgical recovery/recycling of platinum by the leaching of spent catalysts: a review. Hydrometallurgy, 133, 23-32. Johnson Matthey, Platinum Matthey, www.platinum.matthey.com (accessed on October 1, 2020).
  • LU, S., CHEN, D., ZHANG, P., CHEN, G., ZHANG, Y., PAN, Y., WANG, R., QIAO, J., SUN, X., CHEN, A., 2020. Leaching of platinum group metals from automobile spent catalyst. In: Li J. et al. (Eds) Characterization of Minerals, Metals, and Materials 2020. The Minerals, Metals & Materials Series. TMS, Springer.
  • MALIK, P., PAIVA A.P., 2010. A Novel Solvent Extraction Route for the Mutual Separation of Platinum, Palladium, and Rhodium in Hydrochloric Acid Media. Solvent Extr. Ion Exch. 28, 49-72.
  • MARCINIAK, H., DIDUSZKO, R., KOZAK, M., 2014. XRAYAN software for materials identification by XRD technique, Warsaw.
  • NOGUEIRA, C.A., PAIVA, A.P., OLIVEIRA, P.C.,COSTA, M.C., ROSA DA COSTA, A.M., 2014. Oxidative leaching process with cupric ion in hydrochloric acid mediafor recovery of Pd and Rh from spent catalytic converters. J. Hazard. Mater. 278, 82-90.
  • ORTET, O., PAIVA, A.P., 2015. Liquid–liquid extraction of palladium(II) from chloride media by N,N’-dimethyl-N,N’- dicyclohexylthiodiglycolamide. Sep. Purif. Technol. 156, 363-368.
  • POŚPIECH, B., 2012. Studies on platinum recovery from solutions after leaching of spent catalysts by solvent extraction. Physicochem. Probl. Miner. Process. 48(1), 239-246.
  • RZELEWSKA, M., REGEL-ROSOCKA, M., 2018. Wastes generated by automotive industry – spent automotive catalysts. Phys. Sci. Rev. 3(8), 20180021.
  • RZELEWSKA-PIEKUT, M., REGEL-ROSOCKA, M., 2019. Separation of Pt(IV), Pd(II), Ru(III) and Rh(III) from model chloride solutions by liquid-liquid extraction with phosphonium ionic liquids. Sep. Purif. Technol. 212, 791-801.
  • SAMPATHKUMAR, N.N., UMARJI, A.M., CHANDRASEKHAR, B.K. 1995. Synthesis of α-cordierite (indialite) from flyash. Mater. Res. Bull. 30(9), 1107–1114.
  • SATERNUS, M., FORNALCZYK, A., 2009. Zużyte katalizatory samochodowe jako źródło platynowców (Spent automobile converters as a source of platinumgroupmetals). Rudy Metale 54(2), 59-67 (in Polish).
  • SATERNUS, M., FORNALCZYK, A., GĄSIOR, W., DĘBSKI, A., TERLICKA, S., 2020. Modifications and Improvements to the Collector Metal Method Using an mhd Pump for Recovering Platinum from Used Car Catalysts. Catalysts 10, 880.
  • SERRY, M.A., ABD EL-RAOF, F.M., AHMED, S.E., 2011. Composition and properties of traditional cordierite-mullite ceramics for thermo-mechanical applications. Int. Ceramic Rev. XXX, 39-43.
  • SORIN, I., MIUŢESCU, A., VIOREL, N., CRIVAC G., 2013. Investigating the quality of catalytic converters microstructure by X-ray diffraction and x-ray fluorescence spectrometry. Nonconventional Technol. Rev. 2013, 36-40.
  • SUPANCHAIYAMAT, N.,HUNT, A.J., 2019.Conservation of critical elements of the periodic table. Chem. Sus. Chem. 12, 1-8.
  • WOŁOWICZ, A., 2013. Zastosowanie palladu i jego związków ze szczególnym uwzględnieniem katalizy (Application of palladium and itscompounds with particularemphasis for catalysis). Przem. Chem. 92(7), 1237-1245 (in Polish).
  • YIN, C.Y., NIKOLOSKI, A.N., WANG, M.W., 2013. Microfluidic solvent extraction of platinum and palladium from a chloride leach solution using Alamine 336. Miner. Eng. 45, 18-21.
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa Nr 461252 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2021).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-ac258606-a22a-48b3-abba-2ee538044f08
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