Literature DB >> 33607585

Enhanced uranium removal from acidic wastewater by phosphonate-functionalized ordered mesoporous silica: Surface chemistry matters the most.

Dimitrios A Giannakoudakis1, Ioannis Anastopoulos2, Mariusz Barczak3, Εvita Αntoniou4, Konrad Terpiłowski5, Elmira Mohammadi6, Mahmoud Shams7, Emerson Coy8, Aristides Bakandritsos9, Ioannis A Katsoyiannis10, Juan Carlos Colmenares11, Ioannis Pashalidis12.   

Abstract

The removal of uranium species from aqueous phases using non-hazardous chemicals is still an open challenge, and remediation by adsorption is a prosperous strategy. Among the most crucial concerns regarding the design of an efficient material as adsorbent are, except the cost and the green character, the feasibility to be stable and effective under acidic pH, and to selectively adsorb the desired metal ion (e.g. uranium). Herein, we present a phosphonate functionalized ordered mesoporous silica (OMS-P), prepared by a one-step co-condensation synthesis. The physicochemical features of the material were determined by HR-TEM, XPS, EDX, N2 sorption, and solid NMR, while the surface zeta potential was also measured. The removal efficiency was evaluated at two different temperatures (20 and 50 °C) in acidic environment to avoid interferences like solid phase formation or carbonate complexation and the adsorption isotherms, including data fitting with Langmuir and Freundlich models and thermodynamic parameters are presented and discussed. The high and homogeneous dispersion of the phosphonate groups within the entire silica's structure led to the greatest reported up-todays capacity (345 mg/g) at pH = 4, which was achieved in less than 10 min. Additionally, OMS-P showed that the co-presence of other polyvalent cation like Eu(III) did not affect the efficiency of adsorption, which occurs via inner-sphere complex formation. The comparison to the non-functionalized silica (OMS) revealed that the key feature towards an efficient, stable, and selective removal of the U(VI) species is the specific surface chemistry rather than the textural and structural features. Based on all the results and spectroscopic validations of surface adsorbed U(VI), the main interactions responsible for the elevated uranium removal were proposed.
Copyright © 2021 Elsevier B.V. All rights reserved.

Entities:  

Keywords:  Chemical functionalization; Ordered mesoporous silica; Uranium adsorption; Wastewater treatment; Water pollutants remediation

Year:  2021        PMID: 33607585     DOI: 10.1016/j.jhazmat.2021.125279

Source DB:  PubMed          Journal:  J Hazard Mater        ISSN: 0304-3894            Impact factor:   10.588


  2 in total

1.  Ecofriendly Composite as a Promising Material for Highly-Performance Uranium Recovery from Different Solutions.

Authors:  Mohammed F Hamza; Hanaa A Abu Khoziem; Mahmoud S Khalafalla; Walid M Abdellah; Doaa I Zaki; Khalid Althumayri; Yuezhou Wei
Journal:  Toxics       Date:  2022-08-24

2.  Synthesis of a New Phosphonate-Based Sorbent and Characterization of Its Interactions with Lanthanum (III) and Terbium (III).

Authors:  Yuezhou Wei; Khalid A M Salih; Mohammed F Hamza; Toyohisa Fujita; Enrique Rodríguez-Castellón; Eric Guibal
Journal:  Polymers (Basel)       Date:  2021-05-08       Impact factor: 4.329

  2 in total

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