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The Finite Pore Volume GAB Adsorption Isotherm Model as a Simple Tool to Estimate a Diameter of Cylindrical Nanopores

The finite pore volume Guggenheim–Anderson–de Boer (fpv-GAB) adsorption isotherm model has been considered as a simple tool which not only enables us to analyze the shape of isotherms theoretically, but also provides information about pore diameter. The proposed methodology is based on the geometric...

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Autores principales: Furmaniak, Sylwester, Gauden, Piotr A., Leżańska, Maria, Miśkiewicz, Radosław, Błajet-Kosicka, Anna, Kowalczyk, Piotr
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8000439/
https://www.ncbi.nlm.nih.gov/pubmed/33802008
http://dx.doi.org/10.3390/molecules26061509
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author Furmaniak, Sylwester
Gauden, Piotr A.
Leżańska, Maria
Miśkiewicz, Radosław
Błajet-Kosicka, Anna
Kowalczyk, Piotr
author_facet Furmaniak, Sylwester
Gauden, Piotr A.
Leżańska, Maria
Miśkiewicz, Radosław
Błajet-Kosicka, Anna
Kowalczyk, Piotr
author_sort Furmaniak, Sylwester
collection PubMed
description The finite pore volume Guggenheim–Anderson–de Boer (fpv-GAB) adsorption isotherm model has been considered as a simple tool which not only enables us to analyze the shape of isotherms theoretically, but also provides information about pore diameter. The proposed methodology is based on the geometrical considerations and the division of the adsorption space into two parts: the monolayer and the multilayer space. The ratio of the volumes of these two spaces is unambiguously related to the pore diameter. This ratio can be simply determined from the N(2) adsorption isotherm by its fitting with the use of fpv-GAB model. The volume ratio is equal to the ratio of the adsorption capacities in the monolayer and the multilayer—two of the best-fit parameters. The suggested approach has been verified using a series of isotherms simulated inside ideal carbon nanotubes. The adsorption data for some real adsorbents has also been used during tests. The studies performed have proven that diameters estimated with the use of the proposed method are comparable with the geometrical sizes or diameters published by others and based on the application of more sophisticated methods. For pores wider than 3 nm, the relative error does not exceed a few percent. The approach based on the fpv-GAB model reflects well the differences in pore sizes for the series of materials. Therefore, it can be treated as a convenient tool to compare various samples.
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spelling pubmed-80004392021-03-28 The Finite Pore Volume GAB Adsorption Isotherm Model as a Simple Tool to Estimate a Diameter of Cylindrical Nanopores Furmaniak, Sylwester Gauden, Piotr A. Leżańska, Maria Miśkiewicz, Radosław Błajet-Kosicka, Anna Kowalczyk, Piotr Molecules Article The finite pore volume Guggenheim–Anderson–de Boer (fpv-GAB) adsorption isotherm model has been considered as a simple tool which not only enables us to analyze the shape of isotherms theoretically, but also provides information about pore diameter. The proposed methodology is based on the geometrical considerations and the division of the adsorption space into two parts: the monolayer and the multilayer space. The ratio of the volumes of these two spaces is unambiguously related to the pore diameter. This ratio can be simply determined from the N(2) adsorption isotherm by its fitting with the use of fpv-GAB model. The volume ratio is equal to the ratio of the adsorption capacities in the monolayer and the multilayer—two of the best-fit parameters. The suggested approach has been verified using a series of isotherms simulated inside ideal carbon nanotubes. The adsorption data for some real adsorbents has also been used during tests. The studies performed have proven that diameters estimated with the use of the proposed method are comparable with the geometrical sizes or diameters published by others and based on the application of more sophisticated methods. For pores wider than 3 nm, the relative error does not exceed a few percent. The approach based on the fpv-GAB model reflects well the differences in pore sizes for the series of materials. Therefore, it can be treated as a convenient tool to compare various samples. MDPI 2021-03-10 /pmc/articles/PMC8000439/ /pubmed/33802008 http://dx.doi.org/10.3390/molecules26061509 Text en © 2021 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
Furmaniak, Sylwester
Gauden, Piotr A.
Leżańska, Maria
Miśkiewicz, Radosław
Błajet-Kosicka, Anna
Kowalczyk, Piotr
The Finite Pore Volume GAB Adsorption Isotherm Model as a Simple Tool to Estimate a Diameter of Cylindrical Nanopores
title The Finite Pore Volume GAB Adsorption Isotherm Model as a Simple Tool to Estimate a Diameter of Cylindrical Nanopores
title_full The Finite Pore Volume GAB Adsorption Isotherm Model as a Simple Tool to Estimate a Diameter of Cylindrical Nanopores
title_fullStr The Finite Pore Volume GAB Adsorption Isotherm Model as a Simple Tool to Estimate a Diameter of Cylindrical Nanopores
title_full_unstemmed The Finite Pore Volume GAB Adsorption Isotherm Model as a Simple Tool to Estimate a Diameter of Cylindrical Nanopores
title_short The Finite Pore Volume GAB Adsorption Isotherm Model as a Simple Tool to Estimate a Diameter of Cylindrical Nanopores
title_sort finite pore volume gab adsorption isotherm model as a simple tool to estimate a diameter of cylindrical nanopores
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8000439/
https://www.ncbi.nlm.nih.gov/pubmed/33802008
http://dx.doi.org/10.3390/molecules26061509
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