Sinha, Shivendra and De, S and Mishra, D and Shekhar, S and Agarwal, A and Sahu, K K (2021) Phosphonomethyl iminodiacetic acid functionalized metal organic framework supported PAN composite beads for selective removal of La(III) from wastewater: Adsorptive performance and column separation studies. Journal of Hazardous Materials, 425 .
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Abstract
The rare earth elements being toxic in nature are being accumulated in water bodies as their industrial usage is growing exponentially, thus their efficient separation holds an immense significance. Herein, ligand functionalized metal organic framework (MOF), Phosphonomethyl iminodiacetic acid coordinated at Fe-BTC, was synthesized post-synthetically and incorporated subsequently in polyacrylonitrile polymer to prepare the composite beads via nonsolvent induced-phase-inversion technique for selective adsorption of La(III) from the wastewater in batch and dynamic column mode. XPS NMR, and FTIR were used to establish the interaction between functionalized ligand and unsaturated metal nodes of MOF. The adsorption capacity was 232.5 mg/g and 77.51 mg/g at 298 K of the functionalized MOF and composite beads respectively. Adsorption kinetics followed a pseudosecond order rate equation, and isotherm indicated the best fitting with Langmuir model. The dynamic behavior of the adsorption column packed with MOF/Polymer beads was fairly described by the Thomas model. The breakthrough time of 23.2 h could be attained with 12 cm of bed height and 10 ml/min of flow rate. These MOF/Polymer beads shown the selectivity of La over transitional metals were recycled over 5 times with about 15% loss of adsorption capacity. The findings provide suggestive insights of the potential use of functionalized MOF towards the separation of the rare earth element.
Item Type: | Article |
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Official URL/DOI: | https://10.1016/j.jhazmat.2021.127802 |
Uncontrolled Keywords: | Metal organic framework; lanthanum; functionalization; adsorption; rare-earth elements; aqueous solution; lanthanum; recovery; biosorption; oxide; desorption; mechanism; cerium; amine |
Divisions: | Material Science and Technology |
ID Code: | 8491 |
Deposited By: | HOD KRIT |
Deposited On: | 25 Jan 2022 15:42 |
Last Modified: | 15 May 2024 15:34 |
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