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Hollow Fe3O4 nanospheres covered by phosphate-modified layered double hydroxides for the removal of uranium (VI) from water and soil.

Authors :
Zhang, Jianfeng
Wang, De
Cao, Ruya
Li, Jiaxing
Source :
Separation & Purification Technology. May2022, Vol. 288, pN.PAG-N.PAG. 1p.
Publication Year :
2022

Abstract

A novel core-shell nanocomposite composed of magnetic h-Fe 3 O 4 (hollow Fe 3 O 4) core and phos-LDH (phosphate-modified layered double hydroxides) shell was synthesized, and it exhibited excellent adsorption capacity for U(VI) in water and soil. [Display omitted] • A magnetic h-Fe 3 O 4 @phos-LDH nanocomposite was prepared successfully. • Nanocomposite exhibited good adsorption performance for U(VI). • Electromagnetic separation system was used to separate magnetic adsorbents from soil. Herein, a novel nanosphere composed of a magnetic h-Fe 3 O 4 (hollow ferroferric oxide) core and a phos-LDH (phosphate-modified layered double hydroxide) shell was synthesized. The h-Fe 3 O 4 @phos-LDH nanocomposite with rich phosphate groups and large specific surface area (93.53 m2/g) can be exploited for uranium (VI) elimination. Batch experiments were conducted to investigate the impacts of various conditions (pH, time, and temperatures) on U(VI) removal process. The maximum capacity of U(VI) adsorbed by h-Fe 3 O 4 @phos-LDH reached up to 542.6 mg/g at 298.15 K, and the adsorption isotherms were followed the Langmuir model. Thermodynamics analyses illustrated that the U(VI) adsorbed by h-Fe 3 O 4 @phos-LDH was a spontaneous and endothermic process. The characterization analysis manifested that the phosphate groups of the phos-LDH shell played a leading role in adsorption. More importantly, the removal of U(VI) from the soil by h-Fe 3 O 4 @phos-LDH with the assistance of an electromagnetic separation system was also investigated. The results indicated that h-Fe 3 O 4 @phos-LDH could remove more than 90% of U(VI) in soil. These findings demonstrated this work could be considered as a valuable research for the environment remediation. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
13835866
Volume :
288
Database :
Academic Search Index
Journal :
Separation & Purification Technology
Publication Type :
Academic Journal
Accession number :
155556586
Full Text :
https://doi.org/10.1016/j.seppur.2022.120688