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Effect of nickel ion doping in MnO(2)/reduced graphene oxide nanocomposites for lithium adsorption and recovery from aqueous media

Novel and effective reduced graphene oxide–nickel (Ni) doped manganese oxide (RGO/Ni-MnO(2)) adsorbents were fabricated via a hydrothermal approach. The reduction of graphite to graphene oxide (GO), formation of α-MnO(2), and decoration of Ni-MnO(2) onto the surface of reduced graphene oxide (RGO) w...

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Autores principales: Kamran, Urooj, Heo, Young-Jung, Min, Byung-Gak, In, Insik, Park, Soo-Jin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9050059/
https://www.ncbi.nlm.nih.gov/pubmed/35497234
http://dx.doi.org/10.1039/c9ra10277a
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author Kamran, Urooj
Heo, Young-Jung
Min, Byung-Gak
In, Insik
Park, Soo-Jin
author_facet Kamran, Urooj
Heo, Young-Jung
Min, Byung-Gak
In, Insik
Park, Soo-Jin
author_sort Kamran, Urooj
collection PubMed
description Novel and effective reduced graphene oxide–nickel (Ni) doped manganese oxide (RGO/Ni-MnO(2)) adsorbents were fabricated via a hydrothermal approach. The reduction of graphite to graphene oxide (GO), formation of α-MnO(2), and decoration of Ni-MnO(2) onto the surface of reduced graphene oxide (RGO) were independently carried out by a hydrothermal technique. The physical and morphological properties of the as-synthesized adsorbents were analyzed. Batch adsorption experiments were performed to identify the lithium uptake capacities of adsorbents. The optimized parameters for Li(+) adsorption investigated were pH = 12, dose loading = 0.1 g, Li(+) initial concentration = 50 mg L(−1), in 10 h at 25 °C. It is noticeable that the highest adsorption of Li(+) at optimized parameters are in the following order: RGO/Ni3-MnO(2) (63 mg g(−1)) > RGO/Ni2-MnO(2) (56 mg g(−1)) > RGO/Ni1-MnO(2) (52 mg g(−1)). A Kinetic study revealed that the experimental data were best designated pseudo-second order for each adsorbent. Li(+) desorption experiments were performed using HCl as an extracting agent. Furthermore, all adsorbents exhibit efficient regeneration ability and to some extent satisfying selectivity for Li(+) recovery. Briefly, it can be concluded that among the fabricated adsorbents, the RGO/Ni3-MnO(2) exhibited the greatest potential for Li(+) uptake from aqueous solutions as compared to others.
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spelling pubmed-90500592022-04-29 Effect of nickel ion doping in MnO(2)/reduced graphene oxide nanocomposites for lithium adsorption and recovery from aqueous media Kamran, Urooj Heo, Young-Jung Min, Byung-Gak In, Insik Park, Soo-Jin RSC Adv Chemistry Novel and effective reduced graphene oxide–nickel (Ni) doped manganese oxide (RGO/Ni-MnO(2)) adsorbents were fabricated via a hydrothermal approach. The reduction of graphite to graphene oxide (GO), formation of α-MnO(2), and decoration of Ni-MnO(2) onto the surface of reduced graphene oxide (RGO) were independently carried out by a hydrothermal technique. The physical and morphological properties of the as-synthesized adsorbents were analyzed. Batch adsorption experiments were performed to identify the lithium uptake capacities of adsorbents. The optimized parameters for Li(+) adsorption investigated were pH = 12, dose loading = 0.1 g, Li(+) initial concentration = 50 mg L(−1), in 10 h at 25 °C. It is noticeable that the highest adsorption of Li(+) at optimized parameters are in the following order: RGO/Ni3-MnO(2) (63 mg g(−1)) > RGO/Ni2-MnO(2) (56 mg g(−1)) > RGO/Ni1-MnO(2) (52 mg g(−1)). A Kinetic study revealed that the experimental data were best designated pseudo-second order for each adsorbent. Li(+) desorption experiments were performed using HCl as an extracting agent. Furthermore, all adsorbents exhibit efficient regeneration ability and to some extent satisfying selectivity for Li(+) recovery. Briefly, it can be concluded that among the fabricated adsorbents, the RGO/Ni3-MnO(2) exhibited the greatest potential for Li(+) uptake from aqueous solutions as compared to others. The Royal Society of Chemistry 2020-03-04 /pmc/articles/PMC9050059/ /pubmed/35497234 http://dx.doi.org/10.1039/c9ra10277a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Kamran, Urooj
Heo, Young-Jung
Min, Byung-Gak
In, Insik
Park, Soo-Jin
Effect of nickel ion doping in MnO(2)/reduced graphene oxide nanocomposites for lithium adsorption and recovery from aqueous media
title Effect of nickel ion doping in MnO(2)/reduced graphene oxide nanocomposites for lithium adsorption and recovery from aqueous media
title_full Effect of nickel ion doping in MnO(2)/reduced graphene oxide nanocomposites for lithium adsorption and recovery from aqueous media
title_fullStr Effect of nickel ion doping in MnO(2)/reduced graphene oxide nanocomposites for lithium adsorption and recovery from aqueous media
title_full_unstemmed Effect of nickel ion doping in MnO(2)/reduced graphene oxide nanocomposites for lithium adsorption and recovery from aqueous media
title_short Effect of nickel ion doping in MnO(2)/reduced graphene oxide nanocomposites for lithium adsorption and recovery from aqueous media
title_sort effect of nickel ion doping in mno(2)/reduced graphene oxide nanocomposites for lithium adsorption and recovery from aqueous media
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9050059/
https://www.ncbi.nlm.nih.gov/pubmed/35497234
http://dx.doi.org/10.1039/c9ra10277a
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