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Selective removal and recovery of La(III) using a phosphonic-based ion imprinted polymer: Adsorption performance, regeneration, and mechanism.

Authors :
Ni, Chenquan
Liu, Qiming
Ren, Zhong
Hu, Huiqin
Sun, Baihe
Liu, Chang
Shao, Penghui
Yang, Liming
Pavlostathis, Spyros G.
Luo, Xubiao
Source :
Journal of Environmental Chemical Engineering; Dec2021, Vol. 9 Issue 6, pN.PAG-N.PAG, 1p
Publication Year :
2021

Abstract

It is significant and difficult to selective removal and recovery rare earth elements in wastewater. A novel La(III) imprinted polymer (La-IIP) was synthesized by taking advantage of the strong interaction between Lanthanum and phosphorus combined the adsorption selectively of ion imprinted technology. The adsorption capacity of La-IIP is 62.8 mg g<superscript>–1</superscript> and the selectivity coefficient k La/Cu is 54.57. La-IIP can reach adsorption equilibrium within 0.5 h, the adsorption process was well revealed by the Intra-particle diffusion model. The regeneration properties (desorption rate, extent, and recycle times) of La-IIP were investigated. About 88% of the adsorbed La(III) was desorbed in the first 10 min. The high desorption rate was further confirmed in a fixed-bed column experiment. More significantly, the removal efficiency of the La-IIP remained about 100% after five regeneration cycles. Results of FT-IR, XPS, and DFT calculation indicated that the La(III) adsorption by La-IIP involves the reaction between La and O in the phosphonic group. This study not only demonstrated a high adsorption capacity, acid-stable, quick-desorption, and reusable adsorbent for La(III) recovery, but also developed a more comprehensive strategy for the design and testing of adsorbents with practical application prospects. [Display omitted] • Phosphonic-based ion imprinted was first synthesized for La(III) recovery. • A superior adsorption performance (adsorption capacity, rate, selective) was achieved. • The adsorbent exhibit a high stability in acid and a perfect regeneration capacity. • The adsorption and regeneration mechanism were clarified combined batch experiment, characterization, and theory calculation. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
22133437
Volume :
9
Issue :
6
Database :
Supplemental Index
Journal :
Journal of Environmental Chemical Engineering
Publication Type :
Academic Journal
Accession number :
153975458
Full Text :
https://doi.org/10.1016/j.jece.2021.106701