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Gas Phase Toluene Adsorption Using Date Palm-Tree Branches Based Activated Carbon

Activated carbon that has been widely used for several environmental applications is typically produced from carbon-based raw materials including agricultural by-products. To that end, extensive date palm-tree farming across the globe with millions of palm trees, also results in various types of agr...

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Autores principales: Vohra, Muhammad, Al-Suwaiyan, Mohammad, Hussaini, Minaam
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7763925/
https://www.ncbi.nlm.nih.gov/pubmed/33322520
http://dx.doi.org/10.3390/ijerph17249287
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author Vohra, Muhammad
Al-Suwaiyan, Mohammad
Hussaini, Minaam
author_facet Vohra, Muhammad
Al-Suwaiyan, Mohammad
Hussaini, Minaam
author_sort Vohra, Muhammad
collection PubMed
description Activated carbon that has been widely used for several environmental applications is typically produced from carbon-based raw materials including agricultural by-products. To that end, extensive date palm-tree farming across the globe with millions of palm trees, also results in various types of agricultural waste including date palm-tree branches (DPB) during the regular trimming phase of palm-trees. Furthermore, air pollution also remains a serious concern in many global regions, requiring the application of appropriate treatment technologies to mitigate the respective negative effects on human health and environment. The present study thus assessed the efficiency of activated carbon (AC) derived from date palm-tree branches to treat gaseous toluene (C(6)H(5)CH(3)) streams under varying dynamic flow conditions. The produced activated carbon showed BET specific surface area (SSA(BET)) of 800.87 m(2)/g with micro and mesoporous structure. The AC FTIR results indicated several surface groups including oxygen based functional groups. Furthermore, the dynamic gas treatment results showed that the respective activated carbon can successfully treat gaseous toluene under varying gas flow rates, gas concentrations and activated carbon bed depths. An increase in the carbon bed depth and decrease in toluene gas concentration and/or flow rate, yielded higher breakthrough time (BT) and exhaustion time (ET) values. Adsorption modeling employing the response surface methodology (RSM) approach successfully modeled the respective gaseous toluene removal experimental findings, with breakthrough time (BT) and exhaustion time (ET) as the response factors. The respective model-fitting parameters showed good outcomes using natural logarithmic transform model.
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spelling pubmed-77639252020-12-27 Gas Phase Toluene Adsorption Using Date Palm-Tree Branches Based Activated Carbon Vohra, Muhammad Al-Suwaiyan, Mohammad Hussaini, Minaam Int J Environ Res Public Health Article Activated carbon that has been widely used for several environmental applications is typically produced from carbon-based raw materials including agricultural by-products. To that end, extensive date palm-tree farming across the globe with millions of palm trees, also results in various types of agricultural waste including date palm-tree branches (DPB) during the regular trimming phase of palm-trees. Furthermore, air pollution also remains a serious concern in many global regions, requiring the application of appropriate treatment technologies to mitigate the respective negative effects on human health and environment. The present study thus assessed the efficiency of activated carbon (AC) derived from date palm-tree branches to treat gaseous toluene (C(6)H(5)CH(3)) streams under varying dynamic flow conditions. The produced activated carbon showed BET specific surface area (SSA(BET)) of 800.87 m(2)/g with micro and mesoporous structure. The AC FTIR results indicated several surface groups including oxygen based functional groups. Furthermore, the dynamic gas treatment results showed that the respective activated carbon can successfully treat gaseous toluene under varying gas flow rates, gas concentrations and activated carbon bed depths. An increase in the carbon bed depth and decrease in toluene gas concentration and/or flow rate, yielded higher breakthrough time (BT) and exhaustion time (ET) values. Adsorption modeling employing the response surface methodology (RSM) approach successfully modeled the respective gaseous toluene removal experimental findings, with breakthrough time (BT) and exhaustion time (ET) as the response factors. The respective model-fitting parameters showed good outcomes using natural logarithmic transform model. MDPI 2020-12-11 2020-12 /pmc/articles/PMC7763925/ /pubmed/33322520 http://dx.doi.org/10.3390/ijerph17249287 Text en © 2020 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Vohra, Muhammad
Al-Suwaiyan, Mohammad
Hussaini, Minaam
Gas Phase Toluene Adsorption Using Date Palm-Tree Branches Based Activated Carbon
title Gas Phase Toluene Adsorption Using Date Palm-Tree Branches Based Activated Carbon
title_full Gas Phase Toluene Adsorption Using Date Palm-Tree Branches Based Activated Carbon
title_fullStr Gas Phase Toluene Adsorption Using Date Palm-Tree Branches Based Activated Carbon
title_full_unstemmed Gas Phase Toluene Adsorption Using Date Palm-Tree Branches Based Activated Carbon
title_short Gas Phase Toluene Adsorption Using Date Palm-Tree Branches Based Activated Carbon
title_sort gas phase toluene adsorption using date palm-tree branches based activated carbon
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7763925/
https://www.ncbi.nlm.nih.gov/pubmed/33322520
http://dx.doi.org/10.3390/ijerph17249287
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