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Enhanced pyrite passivation by carrier-microencapsulation using Fe-catechol and Ti-catechol complexes.
Li, Xinlong; Park, Ilhwan; Tabelin, Carlito Baltazar; Naruwa, Kosuke; Goda, Taiki; Harada, Chie; Jeon, Sanghee; Ito, Mayumi; Hiroyoshi, Naoki.
Afiliação
  • Li X; Division of Sustainable Resources Engineering, Graduate School of Engineering, Hokkaido University, Japan. Electronic address: rikinryu@gmail.com.
  • Park I; Division of Sustainable Resources Engineering, Faculty of Engineering, Hokkaido University, Japan. Electronic address: i-park@eng.hokudai.ac.jp.
  • Tabelin CB; School of Minerals and Energy Resources Engineering, The University of New South Wales, Sydney, NSW 2052, Australia.
  • Naruwa K; Division of Sustainable Resources Engineering, Graduate School of Engineering, Hokkaido University, Japan.
  • Goda T; Division of Sustainable Resources Engineering, Graduate School of Engineering, Hokkaido University, Japan.
  • Harada C; Division of Sustainable Resources Engineering, Graduate School of Engineering, Hokkaido University, Japan.
  • Jeon S; Division of Sustainable Resources Engineering, Faculty of Engineering, Hokkaido University, Japan.
  • Ito M; Division of Sustainable Resources Engineering, Faculty of Engineering, Hokkaido University, Japan.
  • Hiroyoshi N; Division of Sustainable Resources Engineering, Faculty of Engineering, Hokkaido University, Japan.
J Hazard Mater ; 416: 126089, 2021 08 15.
Article em En | MEDLINE | ID: mdl-34492902
ABSTRACT
Acid mine drainage (AMD) formation is mainly caused by the oxidation of pyrite. Carrier-microencapsulation (CME) using metal-catecholate complexes has been proposed to passivate sulfide minerals by forming surface-protective coatings on their surfaces. Among the various metal-catecholate complexes, Ti-catecholate formed stable coatings having superior acid-resistance, but a thick enough passivating film required considerable time (ca. 14 days) to grow. Meanwhile, Fe-catecholates can form Fe-oxyhydroxide coatings within 2 days, however, they are less stable than Ti-based coating. To address these drawbacks of using a single metal-complex, this study investigated the concurrent use of Fe-catechol and Ti-catechol complexes for accelerating the formation of stable passivating coating on pyrite. Compared with a single metal-complex system, the coating formation was significantly accelerated in mixed system. Linear sweep voltammetry showed the simultaneous decomposition of [Fe(cat)]+ and [Ti(cat)3]2- as the main reason for improved coating formation. Electrochemical properties of coatings formed by single and mixed complex systems, confirmed by electrochemical impedance spectroscopy and cyclic voltammetry, indicated the coating formed in the mixed system had higher resistance and more electrochemically inert than the other cases. The simultaneous use of Fe-catechol and Ti-catechol complexes enhanced pyrite passivation by accelerating metal-complex decomposition and forming more stable coating composed of Fe2TiO5.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Titânio / Ferro Idioma: En Ano de publicação: 2021 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Titânio / Ferro Idioma: En Ano de publicação: 2021 Tipo de documento: Article