Concurrent removal of Cu(II), Co(II) and Ni(II) from wastewater by nanostructured layered sodium vanadosilicate: competitive adsorption kinetics and mechanisms

Wastewater usually contains various species of heavy metals, thus understanding of competitive adsorption kinetics of metallic ions in a multi-component system is necessary for developing an innovative adsorption process for wastewater decontamination. In this study, a novel adsorbent, namely nanost...

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Main Authors: Zhang, Xiaoyuan, Liu, Yu
Other Authors: School of Civil and Environmental Engineering
Format: Article
Language:English
Published: 2022
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Online Access:https://hdl.handle.net/10356/159873
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Institution: Nanyang Technological University
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spelling sg-ntu-dr.10356-1598732022-07-05T02:03:58Z Concurrent removal of Cu(II), Co(II) and Ni(II) from wastewater by nanostructured layered sodium vanadosilicate: competitive adsorption kinetics and mechanisms Zhang, Xiaoyuan Liu, Yu School of Civil and Environmental Engineering Nanyang Environment and Water Research Institute Engineering::Environmental engineering Nanostructured Layered Sodium Vanadosilicate Novel Adsorbent Wastewater usually contains various species of heavy metals, thus understanding of competitive adsorption kinetics of metallic ions in a multi-component system is necessary for developing an innovative adsorption process for wastewater decontamination. In this study, a novel adsorbent, namely nanostructured layered sodium vanadosilicate, was synthesized for concurrent remove of Cu2+, Ni2+ and Co2+ from wastewater in a ternary system, and was characterized by scanning electron microscopy (SEM), Brunauer–Emmet–Teller (BET), X-ray diffraction (XRD) and Fourier transform infrared (FTIR) spectroscopy. Results showed that the adsorption equilibrium could be reached within 30 min at different metal concentrations and adsorbent dosages, indicating a fast adsorption of Cu2+, Ni2+ and Co2+ by nanostructured layered sodium vanadosilicate, while both pseudo-first- and second-order equations could provide a good description of the observed adsorption kinetics. Moreover, the adsorption capacity and affinity were determined to be in the order of Cu2+ > Co2+ > Ni2+. It was further shown that with increasing the Cu2+ concentration from 5 mg/L to 200 mg/L in the ternary system, the respective adsorption efficiencies of Co2+ and Ni2+ tended to decrease from 97.4% to 26.0%, and 97.3 to 13.3% at an adsorbent dosage of 2.0 g/L. On the other hand, the adsorption efficiency of Cu2+ was not affected by the increase in the Co2+ and Ni2+ concentrations from 25 to 100 mg/L. Based on the experimental results obtained, the working mechanisms of nanostructured layered sodium vanadosilicates for Ni2+, Co2+ and Cu2+adsorption could be attributed to ion-exchange with sodium ion, surface electrostatic interaction and the formation of copper vanadium oxide. Consequently, this study clearly showed that nanostructured layered sodium vanadosilicates was an excellent adsorbent for fast and effective removal of soluble Cu2+, Co2+ and Ni2+ in a ternary system, while competitive adsorption among various metal ions revealed in this study may game-change the principles of design and operation of a multi-component system for wastewater treatment. Ministry of Education (MOE) Nanyang Technological University This research is supported by the Ministry of Education, Singapore, under the Academic Research Fund Tie 1 (2019-T1-001-092) and Advanced Environmental Biotechnology Centre, Nanyang Environment & Water Research Institute, Nanyang Technological University. 2022-07-05T02:03:58Z 2022-07-05T02:03:58Z 2021 Journal Article Zhang, X. & Liu, Y. (2021). Concurrent removal of Cu(II), Co(II) and Ni(II) from wastewater by nanostructured layered sodium vanadosilicate: competitive adsorption kinetics and mechanisms. Journal of Environmental Chemical Engineering, 9(5), 105945-. https://dx.doi.org/10.1016/j.jece.2021.105945 2213-3437 https://hdl.handle.net/10356/159873 10.1016/j.jece.2021.105945 2-s2.0-85109439793 5 9 105945 en 2019-T1-001-092 Journal of Environmental Chemical Engineering © 2021 Elsevier Ltd. All rights reserved.
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering::Environmental engineering
Nanostructured Layered Sodium Vanadosilicate
Novel Adsorbent
spellingShingle Engineering::Environmental engineering
Nanostructured Layered Sodium Vanadosilicate
Novel Adsorbent
Zhang, Xiaoyuan
Liu, Yu
Concurrent removal of Cu(II), Co(II) and Ni(II) from wastewater by nanostructured layered sodium vanadosilicate: competitive adsorption kinetics and mechanisms
description Wastewater usually contains various species of heavy metals, thus understanding of competitive adsorption kinetics of metallic ions in a multi-component system is necessary for developing an innovative adsorption process for wastewater decontamination. In this study, a novel adsorbent, namely nanostructured layered sodium vanadosilicate, was synthesized for concurrent remove of Cu2+, Ni2+ and Co2+ from wastewater in a ternary system, and was characterized by scanning electron microscopy (SEM), Brunauer–Emmet–Teller (BET), X-ray diffraction (XRD) and Fourier transform infrared (FTIR) spectroscopy. Results showed that the adsorption equilibrium could be reached within 30 min at different metal concentrations and adsorbent dosages, indicating a fast adsorption of Cu2+, Ni2+ and Co2+ by nanostructured layered sodium vanadosilicate, while both pseudo-first- and second-order equations could provide a good description of the observed adsorption kinetics. Moreover, the adsorption capacity and affinity were determined to be in the order of Cu2+ > Co2+ > Ni2+. It was further shown that with increasing the Cu2+ concentration from 5 mg/L to 200 mg/L in the ternary system, the respective adsorption efficiencies of Co2+ and Ni2+ tended to decrease from 97.4% to 26.0%, and 97.3 to 13.3% at an adsorbent dosage of 2.0 g/L. On the other hand, the adsorption efficiency of Cu2+ was not affected by the increase in the Co2+ and Ni2+ concentrations from 25 to 100 mg/L. Based on the experimental results obtained, the working mechanisms of nanostructured layered sodium vanadosilicates for Ni2+, Co2+ and Cu2+adsorption could be attributed to ion-exchange with sodium ion, surface electrostatic interaction and the formation of copper vanadium oxide. Consequently, this study clearly showed that nanostructured layered sodium vanadosilicates was an excellent adsorbent for fast and effective removal of soluble Cu2+, Co2+ and Ni2+ in a ternary system, while competitive adsorption among various metal ions revealed in this study may game-change the principles of design and operation of a multi-component system for wastewater treatment.
author2 School of Civil and Environmental Engineering
author_facet School of Civil and Environmental Engineering
Zhang, Xiaoyuan
Liu, Yu
format Article
author Zhang, Xiaoyuan
Liu, Yu
author_sort Zhang, Xiaoyuan
title Concurrent removal of Cu(II), Co(II) and Ni(II) from wastewater by nanostructured layered sodium vanadosilicate: competitive adsorption kinetics and mechanisms
title_short Concurrent removal of Cu(II), Co(II) and Ni(II) from wastewater by nanostructured layered sodium vanadosilicate: competitive adsorption kinetics and mechanisms
title_full Concurrent removal of Cu(II), Co(II) and Ni(II) from wastewater by nanostructured layered sodium vanadosilicate: competitive adsorption kinetics and mechanisms
title_fullStr Concurrent removal of Cu(II), Co(II) and Ni(II) from wastewater by nanostructured layered sodium vanadosilicate: competitive adsorption kinetics and mechanisms
title_full_unstemmed Concurrent removal of Cu(II), Co(II) and Ni(II) from wastewater by nanostructured layered sodium vanadosilicate: competitive adsorption kinetics and mechanisms
title_sort concurrent removal of cu(ii), co(ii) and ni(ii) from wastewater by nanostructured layered sodium vanadosilicate: competitive adsorption kinetics and mechanisms
publishDate 2022
url https://hdl.handle.net/10356/159873
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