4.7 Article

Bioleaching of metals from secondary materials using glycolipid biosurfactants

期刊

MINERALS ENGINEERING
卷 163, 期 -, 页码 -

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.mineng.2020.106665

关键词

Sophorolipids; Bioleaching; Heavy metal recovery; Fayalite; Copper

资金

  1. SIM-SBO SMART Grant [HBC.2016.0456]
  2. H2020 METGROW Grant [690088]
  3. European FP7 Project Biosurfing [289219]
  4. European Horizon 2020 Bio-Based Industries (BBI) Consortium Project Carbosurf [669003]
  5. Flemish Vlaio VIS project APPLISURF [HBC.2017.0704]
  6. Flemish Agency for Innovation and Entrepreneurship (Vlaio) [HBC.2017.0224]
  7. Research & Development Umicore Group
  8. H2020 Societal Challenges Programme [669003] Funding Source: H2020 Societal Challenges Programme

向作者/读者索取更多资源

The study examines the use of newly developed microbial biosurfactants for leaching metals, particularly Cu and Zn, from low-grade secondary materials. Acidic sophorolipid biosurfactants show the best performance for leaching, with potential for improving material recovery and impacting the bio- and circular economies positively.
With the global demand for economically important metals increasing, compounded by the depletion of readily accessible ores, secondary resources and low-grade ores are being targeted to meet growing demands. Novel technologies developed within biobased industries, such as microbial biosurfactants, could be implemented to improve the sustainability of traditional hydrometallurgy techniques. This study investigates newly developed microbial biosurfactants (acidic- and bolaform glycolipids) for the leaching of metals (particularly Cu and Zn) from a suite of mine tailings, metallurgical sludges and automotive shredder residues. Generally, acidic sophorolipids were the most performant, and optimal Cu leaching was observed from a fayalite slag (27%) and a copper sulfide mine tailing (53%). Further investigation of the leached fayalite material showed that leaching was occurring from small metallic Cu droplets in this material via a corrosion-based mechanism, and/or from Cu-Pb sulfides, selective against the dominant Fe-silicate matrix. This study highlights that acidic sophorolipid microbial biosurfactants have the potential to leach Cu and Zn from low-grade secondary materials. It also provides important fundamental insights into biosurfactant-metal and mineral interactions that are currently unexplored. Together, the convergence of leaching and mining industries with bio-industries can improve material recovery and will positively impact the bio- and circular economies and the environment.

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