Concurrent removal of Cr(III), Cu(II), and Pb(II) ions from water by multifunctional TiO2/Alg/FeNPs beads

The use of multifunctional materials for water remediation is a modern approach where adsorption phenomena and heterogeneous photocatalysis can be applied for the removal of pollutants. Since the ideal remediation system should be able to remove both organic and inorganic pollutants, a crucial aspec...

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Published in:Sustainable Chemistry and Pharmacy
Main Author: Kanakaraju D.; Rusydah bt Mohamad Shahdad N.; Lim Y.-C.; Pace A.
Format: Article
Language:English
Published: Elsevier B.V. 2019
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85071844335&doi=10.1016%2fj.scp.2019.100176&partnerID=40&md5=34dc775ba7603759c743c575403e7a3b
id 2-s2.0-85071844335
spelling 2-s2.0-85071844335
Kanakaraju D.; Rusydah bt Mohamad Shahdad N.; Lim Y.-C.; Pace A.
Concurrent removal of Cr(III), Cu(II), and Pb(II) ions from water by multifunctional TiO2/Alg/FeNPs beads
2019
Sustainable Chemistry and Pharmacy
14

10.1016/j.scp.2019.100176
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85071844335&doi=10.1016%2fj.scp.2019.100176&partnerID=40&md5=34dc775ba7603759c743c575403e7a3b
The use of multifunctional materials for water remediation is a modern approach where adsorption phenomena and heterogeneous photocatalysis can be applied for the removal of pollutants. Since the ideal remediation system should be able to remove both organic and inorganic pollutants, a crucial aspect to consider is the knowledge of operational parameters affecting the removal process, especially when heavy metal ions are present in concoction as in real systems. Given the proven efficiency of multifunctional TiO2/Alg/FeNPs magnetic beads for the removal of model organic pollutants, this study investigated the possibility to exploit such system also for the removal of mixed heavy metals (MHM), specifically Cr(III), Cu(II), and Pb(II) ions, under ultraviolet irradiation at a wavelength of 254 nm. After a preliminary screening on the optimal catalyst loading, operating parameters such as the initial concentration of metal ions, contact and irradiation time, and pH were investigated to optimize the removal of metal ions using response surface methodology (RSM) via Box–Behnken design. Starting from a MHM solution containing 44 ppm of each metal ion, the removal of Pb(II), Cr(III), and Cu(II) ions in the aqueous solution was nearly completed (>98.4%) for all three ions within 72 min of irradiation at almost neutral pH (pH = 6.8). The stability of TiO2/Alg/FeNPs was confirmed by retrieving and reusing the beads in three consecutive cycles of heavy metals removal without observing significant changes in catalyst efficiency. © 2019 Elsevier B.V.
Elsevier B.V.
23525541
English
Article
All Open Access; Green Open Access
author Kanakaraju D.; Rusydah bt Mohamad Shahdad N.; Lim Y.-C.; Pace A.
spellingShingle Kanakaraju D.; Rusydah bt Mohamad Shahdad N.; Lim Y.-C.; Pace A.
Concurrent removal of Cr(III), Cu(II), and Pb(II) ions from water by multifunctional TiO2/Alg/FeNPs beads
author_facet Kanakaraju D.; Rusydah bt Mohamad Shahdad N.; Lim Y.-C.; Pace A.
author_sort Kanakaraju D.; Rusydah bt Mohamad Shahdad N.; Lim Y.-C.; Pace A.
title Concurrent removal of Cr(III), Cu(II), and Pb(II) ions from water by multifunctional TiO2/Alg/FeNPs beads
title_short Concurrent removal of Cr(III), Cu(II), and Pb(II) ions from water by multifunctional TiO2/Alg/FeNPs beads
title_full Concurrent removal of Cr(III), Cu(II), and Pb(II) ions from water by multifunctional TiO2/Alg/FeNPs beads
title_fullStr Concurrent removal of Cr(III), Cu(II), and Pb(II) ions from water by multifunctional TiO2/Alg/FeNPs beads
title_full_unstemmed Concurrent removal of Cr(III), Cu(II), and Pb(II) ions from water by multifunctional TiO2/Alg/FeNPs beads
title_sort Concurrent removal of Cr(III), Cu(II), and Pb(II) ions from water by multifunctional TiO2/Alg/FeNPs beads
publishDate 2019
container_title Sustainable Chemistry and Pharmacy
container_volume 14
container_issue
doi_str_mv 10.1016/j.scp.2019.100176
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85071844335&doi=10.1016%2fj.scp.2019.100176&partnerID=40&md5=34dc775ba7603759c743c575403e7a3b
description The use of multifunctional materials for water remediation is a modern approach where adsorption phenomena and heterogeneous photocatalysis can be applied for the removal of pollutants. Since the ideal remediation system should be able to remove both organic and inorganic pollutants, a crucial aspect to consider is the knowledge of operational parameters affecting the removal process, especially when heavy metal ions are present in concoction as in real systems. Given the proven efficiency of multifunctional TiO2/Alg/FeNPs magnetic beads for the removal of model organic pollutants, this study investigated the possibility to exploit such system also for the removal of mixed heavy metals (MHM), specifically Cr(III), Cu(II), and Pb(II) ions, under ultraviolet irradiation at a wavelength of 254 nm. After a preliminary screening on the optimal catalyst loading, operating parameters such as the initial concentration of metal ions, contact and irradiation time, and pH were investigated to optimize the removal of metal ions using response surface methodology (RSM) via Box–Behnken design. Starting from a MHM solution containing 44 ppm of each metal ion, the removal of Pb(II), Cr(III), and Cu(II) ions in the aqueous solution was nearly completed (>98.4%) for all three ions within 72 min of irradiation at almost neutral pH (pH = 6.8). The stability of TiO2/Alg/FeNPs was confirmed by retrieving and reusing the beads in three consecutive cycles of heavy metals removal without observing significant changes in catalyst efficiency. © 2019 Elsevier B.V.
publisher Elsevier B.V.
issn 23525541
language English
format Article
accesstype All Open Access; Green Open Access
record_format scopus
collection Scopus
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