4.6 Article

A microfluidic study of synergic liquid-liquid extraction of rare earth elements

Journal

PHYSICAL CHEMISTRY CHEMICAL PHYSICS
Volume 22, Issue 10, Pages 5449-5462

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/c9cp06569e

Keywords

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Funding

  1. European Research Council under the European Union [320915]
  2. National Research Foundation, Prime Minister's Office, Singapore
  3. Ministry of National Development, Singapore
  4. National Environment Agency, Ministry of the Environment and Water Resource, Singapore under the Closing the Waste Loop R&D Initiative as part of the Urban Solutions & Sustainability -Integration Fund [USS-IF-2018-4]
  5. NTU
  6. European Research Council (ERC) [320915] Funding Source: European Research Council (ERC)

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A microfluidic technique is coupled with X-ray fluorescence in order to investigate the origin of the so-called synergy effect observed in liquid-liquid extraction of rare earth elements (REEs) when special combinations of two extractants - one solvating and one ionic - are used. The setup enables kinetic studies by varying the two phases' contact time. The results obtained are compared with those obtained using a standard batch extraction method at identical contact time. We then determine variations of free energies of transfer for five rare earth elements present in a solution together with a non-target ion (Fe3+) at different pH. Analysis of the effect of temperature and of surface charge density of the coexisting cations allows separating electrostatic effects from complexation effects. We finally show that all non-linear (synergic) effects are quadratic in mole fraction. This demonstrates that in-plane mixing entropy of the bent extractant film, in the first nanometer around rare earth ions, is the determining term in the synergy effect. Surprisingly, even when the third phase is present, free energies of transfer could still be measured in the dilute phase, which is reported for the first time, to our knowledge. We hence show that the extractive power of the dense third phase is stronger than that of conventional reverse aggregates in equilibrium with excess water.

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