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Sorption of CO(2) and CH(4) on Raw and Calcined Halloysite—Structural and Pore Characterization Study

The article presents comparative characteristics of the pore structure and sorption properties of raw halloysite (R-HAL) and after calcination (C-HAL) at the temperature of 873 K. Structural parameters were determined by optical scanning and transmission electron microscopy methods as well as by mer...

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Autores principales: Pajdak, Anna, Skoczylas, Norbert, Szymanek, Arkadiusz, Lutyński, Marcin, Sakiewicz, Piotr
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7078888/
https://www.ncbi.nlm.nih.gov/pubmed/32092961
http://dx.doi.org/10.3390/ma13040917
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author Pajdak, Anna
Skoczylas, Norbert
Szymanek, Arkadiusz
Lutyński, Marcin
Sakiewicz, Piotr
author_facet Pajdak, Anna
Skoczylas, Norbert
Szymanek, Arkadiusz
Lutyński, Marcin
Sakiewicz, Piotr
author_sort Pajdak, Anna
collection PubMed
description The article presents comparative characteristics of the pore structure and sorption properties of raw halloysite (R-HAL) and after calcination (C-HAL) at the temperature of 873 K. Structural parameters were determined by optical scanning and transmission electron microscopy methods as well as by mercury porosimetry (MIP, Hg) and low-pressure nitrogen adsorption (LPNA, N(2), 77 K). The surface area parameter (LPNA) of halloysite mesopores before calcination was 54–61 m(2)/g. Calcining caused the pore surface to develop to 70–73 m(2)/g. The porosity (MIP) of halloysite after calcination increased from 29% to 46%, while the surface area within macropores increased from 43 m(2)/g to 54 m(2)/g. The total pore volume within mesopores and macropores increased almost twice after calcination. The course of CH(4) and CO(2) sorption on the halloysite was examined and sorption isotherms (0–1.5 MPa, 313 K) were determined by gravimetric method. The values of equilibrium sorption capacities increased at higher pressures. The sorption capacity of CH(4) in R-HAL was 0.18 mmol/g, while in C-HAL 0.21 mmol/g. CO(2) sorption capacities were 0.54 mmol/g and 0.63 mmol/g, respectively. Halloysite had a very high rate of sorption equilibrium. The values of the effective diffusion coefficient for methane on the tested halloysite were higher than De > 4.2 × 10(−7) cm(2)/s while for carbon dioxide De > 3.1 × 10(−7) cm(2)/s.
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spelling pubmed-70788882020-04-21 Sorption of CO(2) and CH(4) on Raw and Calcined Halloysite—Structural and Pore Characterization Study Pajdak, Anna Skoczylas, Norbert Szymanek, Arkadiusz Lutyński, Marcin Sakiewicz, Piotr Materials (Basel) Article The article presents comparative characteristics of the pore structure and sorption properties of raw halloysite (R-HAL) and after calcination (C-HAL) at the temperature of 873 K. Structural parameters were determined by optical scanning and transmission electron microscopy methods as well as by mercury porosimetry (MIP, Hg) and low-pressure nitrogen adsorption (LPNA, N(2), 77 K). The surface area parameter (LPNA) of halloysite mesopores before calcination was 54–61 m(2)/g. Calcining caused the pore surface to develop to 70–73 m(2)/g. The porosity (MIP) of halloysite after calcination increased from 29% to 46%, while the surface area within macropores increased from 43 m(2)/g to 54 m(2)/g. The total pore volume within mesopores and macropores increased almost twice after calcination. The course of CH(4) and CO(2) sorption on the halloysite was examined and sorption isotherms (0–1.5 MPa, 313 K) were determined by gravimetric method. The values of equilibrium sorption capacities increased at higher pressures. The sorption capacity of CH(4) in R-HAL was 0.18 mmol/g, while in C-HAL 0.21 mmol/g. CO(2) sorption capacities were 0.54 mmol/g and 0.63 mmol/g, respectively. Halloysite had a very high rate of sorption equilibrium. The values of the effective diffusion coefficient for methane on the tested halloysite were higher than De > 4.2 × 10(−7) cm(2)/s while for carbon dioxide De > 3.1 × 10(−7) cm(2)/s. MDPI 2020-02-19 /pmc/articles/PMC7078888/ /pubmed/32092961 http://dx.doi.org/10.3390/ma13040917 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
Pajdak, Anna
Skoczylas, Norbert
Szymanek, Arkadiusz
Lutyński, Marcin
Sakiewicz, Piotr
Sorption of CO(2) and CH(4) on Raw and Calcined Halloysite—Structural and Pore Characterization Study
title Sorption of CO(2) and CH(4) on Raw and Calcined Halloysite—Structural and Pore Characterization Study
title_full Sorption of CO(2) and CH(4) on Raw and Calcined Halloysite—Structural and Pore Characterization Study
title_fullStr Sorption of CO(2) and CH(4) on Raw and Calcined Halloysite—Structural and Pore Characterization Study
title_full_unstemmed Sorption of CO(2) and CH(4) on Raw and Calcined Halloysite—Structural and Pore Characterization Study
title_short Sorption of CO(2) and CH(4) on Raw and Calcined Halloysite—Structural and Pore Characterization Study
title_sort sorption of co(2) and ch(4) on raw and calcined halloysite—structural and pore characterization study
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7078888/
https://www.ncbi.nlm.nih.gov/pubmed/32092961
http://dx.doi.org/10.3390/ma13040917
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