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Adsorption of Hydrogen Sulfide at Low Temperatures Using an Industrial Molecular Sieve: An Experimental and Theoretical Study

[Image: see text] In the work presented herein, a joint experimental and theoretical approach has been carried out to obtain an insight into the desulfurization performance of an industrial molecular sieve (IMS), resembling a zeolitic structure with a morphology of cubic crystallites and a high surf...

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Autores principales: Georgiadis, Amvrosios G., Charisiou, Nikolaos D., Gaber, Safa, Polychronopoulou, Kyriaki, Yentekakis, Ioannis V., Goula, Maria A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8209825/
https://www.ncbi.nlm.nih.gov/pubmed/34151059
http://dx.doi.org/10.1021/acsomega.0c06157
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author Georgiadis, Amvrosios G.
Charisiou, Nikolaos D.
Gaber, Safa
Polychronopoulou, Kyriaki
Yentekakis, Ioannis V.
Goula, Maria A.
author_facet Georgiadis, Amvrosios G.
Charisiou, Nikolaos D.
Gaber, Safa
Polychronopoulou, Kyriaki
Yentekakis, Ioannis V.
Goula, Maria A.
author_sort Georgiadis, Amvrosios G.
collection PubMed
description [Image: see text] In the work presented herein, a joint experimental and theoretical approach has been carried out to obtain an insight into the desulfurization performance of an industrial molecular sieve (IMS), resembling a zeolitic structure with a morphology of cubic crystallites and a high surface area of 590 m(2) g(–1), with a view to removing H(2)S from biogas. The impact of temperature, H(2)S inlet concentration, gas matrix, and regeneration cycles on the desulfurization performance of the IMS was thoroughly probed. The adsorption equilibrium, sorption kinetics, and thermodynamics were also examined. Experimental results showed that the relationship between H(2)S uptake and temperature increase was inversely proportional. Higher H(2)S initial concentrations led to lower breakpoints. The presence of CO(2) negatively affected the desulfurization performance. The IMS was fully regenerated after 15 adsorption/desorption cycles. Theoretical studies revealed that the Langmuir isotherm better described the sorption behavior, pore diffusion was the controlling step of the process (Bangham model), and that the activation energy was 42.7 kJ mol(–1) (physisorption). Finally, the thermodynamic studies confirmed that physisorption predominated.
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spelling pubmed-82098252021-06-17 Adsorption of Hydrogen Sulfide at Low Temperatures Using an Industrial Molecular Sieve: An Experimental and Theoretical Study Georgiadis, Amvrosios G. Charisiou, Nikolaos D. Gaber, Safa Polychronopoulou, Kyriaki Yentekakis, Ioannis V. Goula, Maria A. ACS Omega [Image: see text] In the work presented herein, a joint experimental and theoretical approach has been carried out to obtain an insight into the desulfurization performance of an industrial molecular sieve (IMS), resembling a zeolitic structure with a morphology of cubic crystallites and a high surface area of 590 m(2) g(–1), with a view to removing H(2)S from biogas. The impact of temperature, H(2)S inlet concentration, gas matrix, and regeneration cycles on the desulfurization performance of the IMS was thoroughly probed. The adsorption equilibrium, sorption kinetics, and thermodynamics were also examined. Experimental results showed that the relationship between H(2)S uptake and temperature increase was inversely proportional. Higher H(2)S initial concentrations led to lower breakpoints. The presence of CO(2) negatively affected the desulfurization performance. The IMS was fully regenerated after 15 adsorption/desorption cycles. Theoretical studies revealed that the Langmuir isotherm better described the sorption behavior, pore diffusion was the controlling step of the process (Bangham model), and that the activation energy was 42.7 kJ mol(–1) (physisorption). Finally, the thermodynamic studies confirmed that physisorption predominated. American Chemical Society 2021-05-28 /pmc/articles/PMC8209825/ /pubmed/34151059 http://dx.doi.org/10.1021/acsomega.0c06157 Text en © 2021 The Authors. Published by American Chemical Society Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Georgiadis, Amvrosios G.
Charisiou, Nikolaos D.
Gaber, Safa
Polychronopoulou, Kyriaki
Yentekakis, Ioannis V.
Goula, Maria A.
Adsorption of Hydrogen Sulfide at Low Temperatures Using an Industrial Molecular Sieve: An Experimental and Theoretical Study
title Adsorption of Hydrogen Sulfide at Low Temperatures Using an Industrial Molecular Sieve: An Experimental and Theoretical Study
title_full Adsorption of Hydrogen Sulfide at Low Temperatures Using an Industrial Molecular Sieve: An Experimental and Theoretical Study
title_fullStr Adsorption of Hydrogen Sulfide at Low Temperatures Using an Industrial Molecular Sieve: An Experimental and Theoretical Study
title_full_unstemmed Adsorption of Hydrogen Sulfide at Low Temperatures Using an Industrial Molecular Sieve: An Experimental and Theoretical Study
title_short Adsorption of Hydrogen Sulfide at Low Temperatures Using an Industrial Molecular Sieve: An Experimental and Theoretical Study
title_sort adsorption of hydrogen sulfide at low temperatures using an industrial molecular sieve: an experimental and theoretical study
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8209825/
https://www.ncbi.nlm.nih.gov/pubmed/34151059
http://dx.doi.org/10.1021/acsomega.0c06157
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