Adsorption potential distributions for carbons having defined pore structure-GCMC simulations of the effect of heterogeneity

Adsorption Potential Distribution (APD) is one of the most important and widely propagated by Jaroniec and co-workers method since it is modeless. Using the GCMC simulation of Ar adsorption in pores with well defined geometry (slit-like, cylindrical, hexagonal and quadratic) we study the effect of h...

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Main Authors: Gauden, P., Terzyk, A., Furmaniak, S., Kowalczyk, Poitr
Format: Journal Article
Published: Multi-Science Publishing Co. Ltd. 2009
Subjects:
Online Access:http://hdl.handle.net/20.500.11937/6734
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author Gauden, P.
Terzyk, A.
Furmaniak, S.
Kowalczyk, Poitr
author_facet Gauden, P.
Terzyk, A.
Furmaniak, S.
Kowalczyk, Poitr
author_sort Gauden, P.
building Curtin Institutional Repository
collection Online Access
description Adsorption Potential Distribution (APD) is one of the most important and widely propagated by Jaroniec and co-workers method since it is modeless. Using the GCMC simulation of Ar adsorption in pores with well defined geometry (slit-like, cylindrical, hexagonal and quadratic) we study the effect of heterogeneity on the APDs. The heterogeneity is introduced by controlled removal of carbon atomsfrom the first internal layer of an adsorbent. Since defects are introduced for pores having different initial geometries it is possible to study the systematic changes in the APD curves.
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format Journal Article
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institution Curtin University Malaysia
institution_category Local University
last_indexed 2025-11-14T06:12:58Z
publishDate 2009
publisher Multi-Science Publishing Co. Ltd.
recordtype eprints
repository_type Digital Repository
spelling curtin-20.500.11937-67342017-02-28T01:30:43Z Adsorption potential distributions for carbons having defined pore structure-GCMC simulations of the effect of heterogeneity Gauden, P. Terzyk, A. Furmaniak, S. Kowalczyk, Poitr GCMC Carbon nanotubes Activated carbon Adsorption Slit-like pores Heterogeneity Adsorption potential distribution Adsorption Potential Distribution (APD) is one of the most important and widely propagated by Jaroniec and co-workers method since it is modeless. Using the GCMC simulation of Ar adsorption in pores with well defined geometry (slit-like, cylindrical, hexagonal and quadratic) we study the effect of heterogeneity on the APDs. The heterogeneity is introduced by controlled removal of carbon atomsfrom the first internal layer of an adsorbent. Since defects are introduced for pores having different initial geometries it is possible to study the systematic changes in the APD curves. 2009 Journal Article http://hdl.handle.net/20.500.11937/6734 Multi-Science Publishing Co. Ltd. restricted
spellingShingle GCMC
Carbon nanotubes
Activated carbon
Adsorption
Slit-like pores
Heterogeneity
Adsorption potential distribution
Gauden, P.
Terzyk, A.
Furmaniak, S.
Kowalczyk, Poitr
Adsorption potential distributions for carbons having defined pore structure-GCMC simulations of the effect of heterogeneity
title Adsorption potential distributions for carbons having defined pore structure-GCMC simulations of the effect of heterogeneity
title_full Adsorption potential distributions for carbons having defined pore structure-GCMC simulations of the effect of heterogeneity
title_fullStr Adsorption potential distributions for carbons having defined pore structure-GCMC simulations of the effect of heterogeneity
title_full_unstemmed Adsorption potential distributions for carbons having defined pore structure-GCMC simulations of the effect of heterogeneity
title_short Adsorption potential distributions for carbons having defined pore structure-GCMC simulations of the effect of heterogeneity
title_sort adsorption potential distributions for carbons having defined pore structure-gcmc simulations of the effect of heterogeneity
topic GCMC
Carbon nanotubes
Activated carbon
Adsorption
Slit-like pores
Heterogeneity
Adsorption potential distribution
url http://hdl.handle.net/20.500.11937/6734