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Published on: September 8, 2016
pH-Tunable, Ligand-Free Selective Separation of Rare Earth Elements Using Silica Nanoparticles
Yuxuan Dai1, Daeyeon Lee1, Kathleen J Stebe1
1Department of Chemical and Biomolecular Engineering, University of Pennsylvania, Philadelphia, Pennsylvania 19104, United States.
None:
Rare earth elements (REEs) are essential for clean energy technologies, yet their separation remains difficult due to their similar ionic radii and oxidation states. Conventional liquid-liquid extraction is energy-intensive and environmentally harmful, which motivates the development of more sustainable alternatives. Silica nanoparticles (SiO2 NPs), widely used as supports in solid-phase extraction, offer high surface area and tunable surface chemistry. However, the direct use of unmodified SiO2 NPs as selective REE adsorbents has been largely overlooked. In this study, we investigate the interactions between REEs and unmodified SiO2 NPs over a range of pH conditions to uncover the underlying mechanisms governing REE adsorption and desorption and explore their use to selectively separate REEs. We identify three distinct pH-dependent interaction regimes: the negligible interaction (near the SiO2 NPs isoelectric point), electrostatic, and hydrolysis-mediated regimes. In the negligible interaction regime, near the SiO2 NPs' isoelectric point, electrostatic interactions are absent, and the REE cations are stable in the bulk phase, resulting in minimal REE uptake. In the electrostatic interaction regime, at intermediate pH, negatively charged SiO2 NPs interact electrostatically with REE cations, resulting in the REE capture. Finally, in the hydrolysis-mediated regime, at high pH, neutral REE hydroxides deposit on the surfaces of the SiO2 NP, which serve as nuclei for hydroxide deposition. These interaction modes are reversible, enabling REE capture and release from the SiO2 NP via pH swing. Within the electrostatic regime, SiO2 NPs exhibit clear size-dependent selectivity, favoring the adsorption of smaller, more charge-dense REEs over larger REEs. This selectivity persists under competitive conditions in both binary and ternary mixtures. Selectivity is also observed in REE desorption: lowering the pH selectively releases smaller REEs while retaining larger REEs. This work provides fundamental insight into REE-SiO2 NP interactions and demonstrates a ligand-free, pH-responsive strategy for selective REE capture and separation using silica-based materials.
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