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  4. Safe and Sustainable by Design MOF Beads for Selective Entrapment and Recovery of Rare Earth Elements
 
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Safe and Sustainable by Design MOF Beads for Selective Entrapment and Recovery of Rare Earth Elements

Source
Environmental Science and Technology
ISSN
0013936X
Date Issued
2025-08-12
Author(s)
Bhadane, Prathmesh
Dhumal, Pankti
Brun, Emilie
Britton, Andrew
Lynch, Iseult
Chakraborty, Swaroop
DOI
10.1021/acs.est.5c03112
Volume
59
Issue
31
Abstract
We report the development of CA-BNMG-1 composite beads-cellulose acetate macrobeads embedded with nanosized copper imidazolate MOFs (BNMG-1) -engineered via nonsolvent-induced phase separation for the selective recovery of rare earth elements (REEs) from complex aqueous environments. This encapsulation strategy ensures uniform MOF dispersion, enhanced mechanical integrity, and minimized Cu(II) leaching (<1%), fulfilling the Safe and Sustainable by Design (SSbD) criteria. The CA matrix not only mitigates copper toxicity but also enables facile bead handling, recyclability, and scalable deployment in fixed-bed systems. Adsorption studies across a 10-REE standard solution and two simulated waste streams demonstrated significantly improved REE selectivity over pristine BNMG-1. Separation factors (SFs) for Yb(III) over Mn(II), Ni(II), and Na(I) reached 194.5, 325.8, and 339, respectively; Eu(III) showed SFs of 155.5, 260.5, and 271.2. The beads retained over 95% of their uptake capacity across multiple adsorption and single desorption cycles using mild acidic eluents, confirming excellent reusability and structural stability. This work advances a robust, low-toxicity, and scalable REE recovery platform that integrates adsorptive performance with environmental safety. CA-BNMG-1 beads offer a compelling alternative to solvent extraction, with potential for integration into circular economy strategies targeting REE recovery from e-waste, mine tailings, and industrial effluents-addressing both resource security and sustainability challenges.
Publication link
https://doi.org/10.1021/acs.est.5c03112
URI
https://d8.irins.org/handle/IITG2025/20683
Subjects
Circular Economy | Green Synthesis | Metal Organic Framework | Rare Earth Elements | Safe and Sustainable by Design | Sustainable Resource Recovery
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