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Adsorption based realistic molecular model of amorphous kerogen

This paper reports the results of Grand Canonical Monte Carlo (GCMC)/molecular dynamics (MD) simulations of N(2) and CO(2) gas adsorption on three different organic geomacromolecule (kerogen) models. Molecular models of kerogen, although being continuously developed through various analytical and th...

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Autores principales: Lee, Hyeonseok, Shakib, Farnaz A., Liu, Kouqi, Liu, Bo, Bubach, Bailey, Varma, Rajender S., Jang, Ho Won, Shokouhimher, Mohammadreza, Ostadhassan, Mehdi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9054644/
https://www.ncbi.nlm.nih.gov/pubmed/35520330
http://dx.doi.org/10.1039/d0ra04453a
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author Lee, Hyeonseok
Shakib, Farnaz A.
Liu, Kouqi
Liu, Bo
Bubach, Bailey
Varma, Rajender S.
Jang, Ho Won
Shokouhimher, Mohammadreza
Ostadhassan, Mehdi
author_facet Lee, Hyeonseok
Shakib, Farnaz A.
Liu, Kouqi
Liu, Bo
Bubach, Bailey
Varma, Rajender S.
Jang, Ho Won
Shokouhimher, Mohammadreza
Ostadhassan, Mehdi
author_sort Lee, Hyeonseok
collection PubMed
description This paper reports the results of Grand Canonical Monte Carlo (GCMC)/molecular dynamics (MD) simulations of N(2) and CO(2) gas adsorption on three different organic geomacromolecule (kerogen) models. Molecular models of kerogen, although being continuously developed through various analytical and theoretical methods, still require further research due to the complexity and variability of the organic matter. In this joint theory and experiment study, three different kerogen models, with varying chemical compositions and structure from the Bakken, were constructed based on the acquired analytic data by Kelemen et al. in 2007: (13)C nuclear magnetic resonance ((13)C-NMR), X-ray photoelectron spectroscopy (XPS), and X-ray absorption near-edge structure (XANES). N(2) and CO(2) gas adsorption isotherms obtained from GCMC/MD simulations are in very good agreement with the experimental isotherms of physical samples that had a similar geochemical composition and thermal maturity. The N(2)/CO(2) uptake by the kerogen model at a range of pressure shows considerable similarity with our experimental data. The stronger interaction of CO(2) molecules with the model leads to the penetration of CO(2) molecules to the sub-surface levels in contrast to N(2) molecules being concentrated on the surface of kerogen. These results suggest the important role of kerogen in the separation and transport of gas in organic-rich shale that are the target for sequestration of CO(2) and/or enhanced oil recovery (EOR).
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spelling pubmed-90546442022-05-04 Adsorption based realistic molecular model of amorphous kerogen Lee, Hyeonseok Shakib, Farnaz A. Liu, Kouqi Liu, Bo Bubach, Bailey Varma, Rajender S. Jang, Ho Won Shokouhimher, Mohammadreza Ostadhassan, Mehdi RSC Adv Chemistry This paper reports the results of Grand Canonical Monte Carlo (GCMC)/molecular dynamics (MD) simulations of N(2) and CO(2) gas adsorption on three different organic geomacromolecule (kerogen) models. Molecular models of kerogen, although being continuously developed through various analytical and theoretical methods, still require further research due to the complexity and variability of the organic matter. In this joint theory and experiment study, three different kerogen models, with varying chemical compositions and structure from the Bakken, were constructed based on the acquired analytic data by Kelemen et al. in 2007: (13)C nuclear magnetic resonance ((13)C-NMR), X-ray photoelectron spectroscopy (XPS), and X-ray absorption near-edge structure (XANES). N(2) and CO(2) gas adsorption isotherms obtained from GCMC/MD simulations are in very good agreement with the experimental isotherms of physical samples that had a similar geochemical composition and thermal maturity. The N(2)/CO(2) uptake by the kerogen model at a range of pressure shows considerable similarity with our experimental data. The stronger interaction of CO(2) molecules with the model leads to the penetration of CO(2) molecules to the sub-surface levels in contrast to N(2) molecules being concentrated on the surface of kerogen. These results suggest the important role of kerogen in the separation and transport of gas in organic-rich shale that are the target for sequestration of CO(2) and/or enhanced oil recovery (EOR). The Royal Society of Chemistry 2020-06-18 /pmc/articles/PMC9054644/ /pubmed/35520330 http://dx.doi.org/10.1039/d0ra04453a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Lee, Hyeonseok
Shakib, Farnaz A.
Liu, Kouqi
Liu, Bo
Bubach, Bailey
Varma, Rajender S.
Jang, Ho Won
Shokouhimher, Mohammadreza
Ostadhassan, Mehdi
Adsorption based realistic molecular model of amorphous kerogen
title Adsorption based realistic molecular model of amorphous kerogen
title_full Adsorption based realistic molecular model of amorphous kerogen
title_fullStr Adsorption based realistic molecular model of amorphous kerogen
title_full_unstemmed Adsorption based realistic molecular model of amorphous kerogen
title_short Adsorption based realistic molecular model of amorphous kerogen
title_sort adsorption based realistic molecular model of amorphous kerogen
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9054644/
https://www.ncbi.nlm.nih.gov/pubmed/35520330
http://dx.doi.org/10.1039/d0ra04453a
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