Deferm Clio, Malaquias João C, Onghena Bieke, Banerjee Dipanjan, Luyten Jan, Oosterhof Harald, Fransaer Jan, Binnemans Koen
KU Leuven , Department of Chemistry , Celestijnenlaan 200F , bus 2404 , B-3001 Heverlee , Belgium . Email:
Umicore , Group Research & Development , Competence Area Recycling and Extraction Technologies , Watertorenstraat 33 , B-2250 Olen , Belgium.
Green Chem. 2019 Mar 21;21(6):1517-1530. doi: 10.1039/c8gc03389g. Epub 2019 Feb 28.
The electrochemical behavior of indium in the ionic liquid trihexyl(tetradecyl)phosphonium chloride (Cyphos IL 101) was studied. Cyphos IL 101 first had to be purified, as the impurities present in commercial Cyphos IL 101 interfered with the electrochemical measurements. Electrochemical deposition of indium metal from this electrolyte occurs without hydrogen evolution, increasing the cathodic current efficiency compared to deposition from water and avoiding porosity within the deposited metal. Indium(iii) is the most stable oxidation state in the ionic liquid. This ion is reduced in two steps, first from indium(iii) to indium(i) and subsequently to indium(0). The high thermal stability of Cyphos IL 101 allowed the electrodeposition of indium at 120 °C and 180 °C. At 180 °C indium was deposited as liquid indium which allows for the easy separation of the indium and the possibility to design a continuous electrowinning process. On molybdenum, indium deposits as liquid droplets even below the melting point of indium. This was explained by the combination of melting point depression and undercooling. The possibility to separate indium from iron and zinc by electrodeposition was tested. It is possible to separate indium from zinc by electrodeposition, but iron deposits together with indium.
研究了铟在离子液体三己基(十四烷基)氯化鏻(Cyphos IL 101)中的电化学行为。由于市售的Cyphos IL 101中存在的杂质会干扰电化学测量,所以首先必须对Cyphos IL 101进行纯化。从这种电解质中进行铟金属的电化学沉积时不会析氢,与从水中沉积相比,提高了阴极电流效率,并且避免了沉积金属中的孔隙率。铟(III)是离子液体中最稳定的氧化态。该离子分两步还原,首先从铟(III)还原为铟(I),随后再还原为铟(0)。Cyphos IL 101的高热稳定性使得铟能够在120℃和180℃下进行电沉积。在180℃时,铟以液态铟的形式沉积,这使得铟易于分离,并且有可能设计出连续的电解沉积工艺。在钼上,即使低于铟的熔点,铟也会以液滴的形式沉积。这可以通过熔点降低和过冷的结合来解释。测试了通过电沉积从铁和锌中分离铟的可能性。通过电沉积可以将铟与锌分离,但铁会与铟一起沉积。