Carbon Molecular Sieves: Reconstruction of Atomistic Structural Models with Experimental Constraints

We propose a novel methodology for developing experimentally informed structural models of disordered carbon molecular sieves. The hybrid reverse Monte Carlo simulation method coupled with wide-angle X-ray scattering experiments is used for constructing an atomistic level model of a representative s...

Full description

Bibliographic Details
Main Authors: Kowalczyk, Poitr, Terzyk, A., Gauden, P., Furmaniak, S., Wisniewski, M., Burian, A., Hawalek, L., Kaneko, K., Neimark, A.
Format: Journal Article
Published: American Chemical Society 2014
Online Access:http://hdl.handle.net/20.500.11937/36591
_version_ 1848754813278355456
author Kowalczyk, Poitr
Terzyk, A.
Gauden, P.
Furmaniak, S.
Wisniewski, M.
Burian, A.
Hawalek, L.
Kaneko, K.
Neimark, A.
author_facet Kowalczyk, Poitr
Terzyk, A.
Gauden, P.
Furmaniak, S.
Wisniewski, M.
Burian, A.
Hawalek, L.
Kaneko, K.
Neimark, A.
author_sort Kowalczyk, Poitr
building Curtin Institutional Repository
collection Online Access
description We propose a novel methodology for developing experimentally informed structural models of disordered carbon molecular sieves. The hybrid reverse Monte Carlo simulation method coupled with wide-angle X-ray scattering experiments is used for constructing an atomistic level model of a representative sample of carbon molecular sieve film (CMS-F) synthesized in our laboratory. We found that CMS-F possesses a disordered matrix enriched with bended carbon chains and various carbon clusters as opposed to the turbostratic carbon or graphite-like microcrystals. The porestructure of CMS-F has a defected lamellar morphology of one-dimensional periodicity with narrow (~0.4 nm) micropores. The model is applied to study adsorption properties of CMS-F with respect to adsorbates of practical interest, such as N2, H2, CO, and C6H6. Special attention is paid to the hasetransformations in the course of adsorption. In particular, we show theoretically and confirm experimentally that nitrogen solidifies within CMS-F pores at 77 K upon adsorption of 5 mmol/g, and its further adsorption is associated with the adsorbed phase compression induced by strong surface forces.
first_indexed 2025-11-14T08:46:22Z
format Journal Article
id curtin-20.500.11937-36591
institution Curtin University Malaysia
institution_category Local University
last_indexed 2025-11-14T08:46:22Z
publishDate 2014
publisher American Chemical Society
recordtype eprints
repository_type Digital Repository
spelling curtin-20.500.11937-365912017-09-13T15:28:25Z Carbon Molecular Sieves: Reconstruction of Atomistic Structural Models with Experimental Constraints Kowalczyk, Poitr Terzyk, A. Gauden, P. Furmaniak, S. Wisniewski, M. Burian, A. Hawalek, L. Kaneko, K. Neimark, A. We propose a novel methodology for developing experimentally informed structural models of disordered carbon molecular sieves. The hybrid reverse Monte Carlo simulation method coupled with wide-angle X-ray scattering experiments is used for constructing an atomistic level model of a representative sample of carbon molecular sieve film (CMS-F) synthesized in our laboratory. We found that CMS-F possesses a disordered matrix enriched with bended carbon chains and various carbon clusters as opposed to the turbostratic carbon or graphite-like microcrystals. The porestructure of CMS-F has a defected lamellar morphology of one-dimensional periodicity with narrow (~0.4 nm) micropores. The model is applied to study adsorption properties of CMS-F with respect to adsorbates of practical interest, such as N2, H2, CO, and C6H6. Special attention is paid to the hasetransformations in the course of adsorption. In particular, we show theoretically and confirm experimentally that nitrogen solidifies within CMS-F pores at 77 K upon adsorption of 5 mmol/g, and its further adsorption is associated with the adsorbed phase compression induced by strong surface forces. 2014 Journal Article http://hdl.handle.net/20.500.11937/36591 10.1021/jp503628m American Chemical Society restricted
spellingShingle Kowalczyk, Poitr
Terzyk, A.
Gauden, P.
Furmaniak, S.
Wisniewski, M.
Burian, A.
Hawalek, L.
Kaneko, K.
Neimark, A.
Carbon Molecular Sieves: Reconstruction of Atomistic Structural Models with Experimental Constraints
title Carbon Molecular Sieves: Reconstruction of Atomistic Structural Models with Experimental Constraints
title_full Carbon Molecular Sieves: Reconstruction of Atomistic Structural Models with Experimental Constraints
title_fullStr Carbon Molecular Sieves: Reconstruction of Atomistic Structural Models with Experimental Constraints
title_full_unstemmed Carbon Molecular Sieves: Reconstruction of Atomistic Structural Models with Experimental Constraints
title_short Carbon Molecular Sieves: Reconstruction of Atomistic Structural Models with Experimental Constraints
title_sort carbon molecular sieves: reconstruction of atomistic structural models with experimental constraints
url http://hdl.handle.net/20.500.11937/36591