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V(2)O(5), CeO(2) and Their MWCNTs Nanocomposites Modified for the Removal of Kerosene from Water

In this paper, the application of multiwalled carbon nanotubes (MWCNTs) based on metal oxide nanocomposites as adsorbents for the removal of hydrocarbons such as kerosene from water was investigated. Functionalized MWCNTs were obtained by chemical oxidation using concentrated sulfuric and nitric aci...

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Autores principales: Abdullah, Thamer Adnan, Juzsakova, Tatjána, Rasheed, Rashed Taleb, Mallah, Muhammad Ali, Salman, Ali Dawood, Cuong, Le Phuoc, Jakab, Miklós, Zsirka, Balázs, Kułacz, Karol, Sebestyén, Viktor
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8778115/
https://www.ncbi.nlm.nih.gov/pubmed/35055208
http://dx.doi.org/10.3390/nano12020189
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author Abdullah, Thamer Adnan
Juzsakova, Tatjána
Rasheed, Rashed Taleb
Mallah, Muhammad Ali
Salman, Ali Dawood
Cuong, Le Phuoc
Jakab, Miklós
Zsirka, Balázs
Kułacz, Karol
Sebestyén, Viktor
author_facet Abdullah, Thamer Adnan
Juzsakova, Tatjána
Rasheed, Rashed Taleb
Mallah, Muhammad Ali
Salman, Ali Dawood
Cuong, Le Phuoc
Jakab, Miklós
Zsirka, Balázs
Kułacz, Karol
Sebestyén, Viktor
author_sort Abdullah, Thamer Adnan
collection PubMed
description In this paper, the application of multiwalled carbon nanotubes (MWCNTs) based on metal oxide nanocomposites as adsorbents for the removal of hydrocarbons such as kerosene from water was investigated. Functionalized MWCNTs were obtained by chemical oxidation using concentrated sulfuric and nitric acids. V(2)O(5), CeO(2,) and V(2)O(5):CeO(2) nanocomposites were prepared using the hydrothermal method followed by deposition of these oxides over MWCNTs. Individual and mixed metal oxides, fresh MWCNTs, and metal oxide nanoparticle-doped MWCNTs using different analysis techniques were characterized. XRD, TEM, SEM, EDX, AFM, Raman, TG/DTA, and BET techniques were used to determine the structure as well as chemical and morphological properties of the newly prepared adsorbents. Fresh MWCNTs, Ce/MWCNTs, V/MWCNTs, and V:Ce/MWCNTs were applied for the removal of kerosene from a model solution of water. GC analysis indicated that high kerosene removal efficiency (85%) and adsorption capacity (4270 mg/g) after 60 min of treatment were obtained over V:Ce/MWCNTs in comparison with fresh MWCNTs, Ce/MWCNTs and V/MWCNTs. The kinetic data were analyzed using the pseudo-first order, pseudo-second order, and intra-particle diffusion rate equations.
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spelling pubmed-87781152022-01-22 V(2)O(5), CeO(2) and Their MWCNTs Nanocomposites Modified for the Removal of Kerosene from Water Abdullah, Thamer Adnan Juzsakova, Tatjána Rasheed, Rashed Taleb Mallah, Muhammad Ali Salman, Ali Dawood Cuong, Le Phuoc Jakab, Miklós Zsirka, Balázs Kułacz, Karol Sebestyén, Viktor Nanomaterials (Basel) Article In this paper, the application of multiwalled carbon nanotubes (MWCNTs) based on metal oxide nanocomposites as adsorbents for the removal of hydrocarbons such as kerosene from water was investigated. Functionalized MWCNTs were obtained by chemical oxidation using concentrated sulfuric and nitric acids. V(2)O(5), CeO(2,) and V(2)O(5):CeO(2) nanocomposites were prepared using the hydrothermal method followed by deposition of these oxides over MWCNTs. Individual and mixed metal oxides, fresh MWCNTs, and metal oxide nanoparticle-doped MWCNTs using different analysis techniques were characterized. XRD, TEM, SEM, EDX, AFM, Raman, TG/DTA, and BET techniques were used to determine the structure as well as chemical and morphological properties of the newly prepared adsorbents. Fresh MWCNTs, Ce/MWCNTs, V/MWCNTs, and V:Ce/MWCNTs were applied for the removal of kerosene from a model solution of water. GC analysis indicated that high kerosene removal efficiency (85%) and adsorption capacity (4270 mg/g) after 60 min of treatment were obtained over V:Ce/MWCNTs in comparison with fresh MWCNTs, Ce/MWCNTs and V/MWCNTs. The kinetic data were analyzed using the pseudo-first order, pseudo-second order, and intra-particle diffusion rate equations. MDPI 2022-01-06 /pmc/articles/PMC8778115/ /pubmed/35055208 http://dx.doi.org/10.3390/nano12020189 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Abdullah, Thamer Adnan
Juzsakova, Tatjána
Rasheed, Rashed Taleb
Mallah, Muhammad Ali
Salman, Ali Dawood
Cuong, Le Phuoc
Jakab, Miklós
Zsirka, Balázs
Kułacz, Karol
Sebestyén, Viktor
V(2)O(5), CeO(2) and Their MWCNTs Nanocomposites Modified for the Removal of Kerosene from Water
title V(2)O(5), CeO(2) and Their MWCNTs Nanocomposites Modified for the Removal of Kerosene from Water
title_full V(2)O(5), CeO(2) and Their MWCNTs Nanocomposites Modified for the Removal of Kerosene from Water
title_fullStr V(2)O(5), CeO(2) and Their MWCNTs Nanocomposites Modified for the Removal of Kerosene from Water
title_full_unstemmed V(2)O(5), CeO(2) and Their MWCNTs Nanocomposites Modified for the Removal of Kerosene from Water
title_short V(2)O(5), CeO(2) and Their MWCNTs Nanocomposites Modified for the Removal of Kerosene from Water
title_sort v(2)o(5), ceo(2) and their mwcnts nanocomposites modified for the removal of kerosene from water
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8778115/
https://www.ncbi.nlm.nih.gov/pubmed/35055208
http://dx.doi.org/10.3390/nano12020189
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