Gravity-Driven Separation for Enrichment of Rare Earth Elements Using Lanthanide Binding Peptide-Immobilized Resin

26 December 2023, Version 1
This content is a preprint and has not undergone peer review at the time of posting.

Abstract

Rare Earth Elements (REEs) constitute indispensable raw materials and are employed in a diverse range of devices, including but not limited to smartphones, electric vehicles, and clean energy technologies. While there is an increase in demand for these elements, there is a global supply challenge due to limited availability and geopolitical factors affecting their procurement. A crucial step in manufacturing these devices involves utilizing highly pure REEs, often obtained through complex and non-sustainable processes. These processes are vital in isolating individual REEs from mixtures containing non-REEs and other REEs. There exists an urgent requirement to explore alternative techniques that enable the selective recovery of REEs through more energy-efficient processes. To overcome the limitations mentioned above, we have developed a microbead-based technology featuring immobilized lanthanide binding peptides (LBPs) for the selective adsorption of REEs. This technology does not require the utilization of external stimuli but uses gravity-based separation processes to separate the bound REE from the unbound REE. We demonstrate this technology's potential by enriching two relevant REEs (Europium and Terbium). Furthermore, despite their similar chemical properties, we present the distinctive binding preference of the LBPs for a specific rare earth element over another. Moreover, these LBPs exhibit no binding affinity towards other frequently encountered industrial ions. Finally, we demonstrate the recovery of REEs through a change in system conditions and assess the reusability of the microbeads for subsequent adsorption cycles. We anticipate that this approach addresses the challenges of REE recovery and demonstrates the potential of biomolecular strategies in advancing sustainable resource management.

Keywords

Rare Earth Elements
Adsorption
Gravity Separation
Sustainability
Peptides
Selectivity

Supplementary materials

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Title
Gravity-Driven Separation for Enrichment of Rare Earth Elements Using Lanthanide Binding Peptide-Immobilized Resin
Description
The separation of Rare Earth Elements using lanthanide binding peptides (biomaterials) which can act as a better approach for the separation for Rare Earth metal ions
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