Cargando…

Physical property and gas transport studies of ultrathin polysulfone membrane from 298.15 to 328.15 K and 2 to 50 bar: atomistic molecular simulation and empirical modelling

Elucidation of ultrathin polymeric membrane at the laboratory scale is complicated at different operating conditions due to limitation of instruments to obtain in situ measurement data of membrane physical properties. This is essential since their effects are reversible. In addition, tedious experim...

Descripción completa

Detalles Bibliográficos
Autores principales: Lock, S. S. M., Lau, K. K., Jusoh, Norwahyu, Shariff, A. M., Yeong, Y. F., Yiin, Chung Loong, Ammar Taqvi, Syed Ali
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/PMC9056602/
https://www.ncbi.nlm.nih.gov/pubmed/35516493
http://dx.doi.org/10.1039/d0ra05836j
_version_ 1784697699427155968
author Lock, S. S. M.
Lau, K. K.
Jusoh, Norwahyu
Shariff, A. M.
Yeong, Y. F.
Yiin, Chung Loong
Ammar Taqvi, Syed Ali
author_facet Lock, S. S. M.
Lau, K. K.
Jusoh, Norwahyu
Shariff, A. M.
Yeong, Y. F.
Yiin, Chung Loong
Ammar Taqvi, Syed Ali
author_sort Lock, S. S. M.
collection PubMed
description Elucidation of ultrathin polymeric membrane at the laboratory scale is complicated at different operating conditions due to limitation of instruments to obtain in situ measurement data of membrane physical properties. This is essential since their effects are reversible. In addition, tedious experimental work is required to collect gas transport data at varying operating conditions. Recently, we have proposed a validated Soft Confining Methodology for Ultrathin Films that can be used to simulate ultrathin polysulfone (PSF) membranes upon confinement limited to 308.15 K and 2 bars. In industry application, these ultrathin membranes are operated within 298.15–328.15 K and up to 50 bars. Therefore, our proposed methodology using computational chemistry has been adapted to circumvent limitation in experimental study by simulating ultrathin PSF membranes upon confinement at different operating temperatures (298.15 to 328.15 K) and pressures (2 to 50 bar). The effect of operating parameters towards non-bonded and potential energy, free volume, specific volume and gas transport data (e.g. solubility and diffusivity) for oxygen and nitrogen of the ultrathin films has been simulated and collected using molecular simulation. Our previous empirical equations that have been confined to thickness dependent gas transport properties have been modified to accommodate the effect of operating parameters. The empirical equations are able to provide a good quantitative characterization with R(2) ≥ 0.99 consistently, and are able to be interpolated to predict gas transport properties within the range of operating conditions. The modified empirical model can be utilized in process optimization studies to determine optimal membrane design for typical membrane specifications and operating parameters used in industrial applications.
format Online
Article
Text
id pubmed-9056602
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-90566022022-05-04 Physical property and gas transport studies of ultrathin polysulfone membrane from 298.15 to 328.15 K and 2 to 50 bar: atomistic molecular simulation and empirical modelling Lock, S. S. M. Lau, K. K. Jusoh, Norwahyu Shariff, A. M. Yeong, Y. F. Yiin, Chung Loong Ammar Taqvi, Syed Ali RSC Adv Chemistry Elucidation of ultrathin polymeric membrane at the laboratory scale is complicated at different operating conditions due to limitation of instruments to obtain in situ measurement data of membrane physical properties. This is essential since their effects are reversible. In addition, tedious experimental work is required to collect gas transport data at varying operating conditions. Recently, we have proposed a validated Soft Confining Methodology for Ultrathin Films that can be used to simulate ultrathin polysulfone (PSF) membranes upon confinement limited to 308.15 K and 2 bars. In industry application, these ultrathin membranes are operated within 298.15–328.15 K and up to 50 bars. Therefore, our proposed methodology using computational chemistry has been adapted to circumvent limitation in experimental study by simulating ultrathin PSF membranes upon confinement at different operating temperatures (298.15 to 328.15 K) and pressures (2 to 50 bar). The effect of operating parameters towards non-bonded and potential energy, free volume, specific volume and gas transport data (e.g. solubility and diffusivity) for oxygen and nitrogen of the ultrathin films has been simulated and collected using molecular simulation. Our previous empirical equations that have been confined to thickness dependent gas transport properties have been modified to accommodate the effect of operating parameters. The empirical equations are able to provide a good quantitative characterization with R(2) ≥ 0.99 consistently, and are able to be interpolated to predict gas transport properties within the range of operating conditions. The modified empirical model can be utilized in process optimization studies to determine optimal membrane design for typical membrane specifications and operating parameters used in industrial applications. The Royal Society of Chemistry 2020-09-01 /pmc/articles/PMC9056602/ /pubmed/35516493 http://dx.doi.org/10.1039/d0ra05836j Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Lock, S. S. M.
Lau, K. K.
Jusoh, Norwahyu
Shariff, A. M.
Yeong, Y. F.
Yiin, Chung Loong
Ammar Taqvi, Syed Ali
Physical property and gas transport studies of ultrathin polysulfone membrane from 298.15 to 328.15 K and 2 to 50 bar: atomistic molecular simulation and empirical modelling
title Physical property and gas transport studies of ultrathin polysulfone membrane from 298.15 to 328.15 K and 2 to 50 bar: atomistic molecular simulation and empirical modelling
title_full Physical property and gas transport studies of ultrathin polysulfone membrane from 298.15 to 328.15 K and 2 to 50 bar: atomistic molecular simulation and empirical modelling
title_fullStr Physical property and gas transport studies of ultrathin polysulfone membrane from 298.15 to 328.15 K and 2 to 50 bar: atomistic molecular simulation and empirical modelling
title_full_unstemmed Physical property and gas transport studies of ultrathin polysulfone membrane from 298.15 to 328.15 K and 2 to 50 bar: atomistic molecular simulation and empirical modelling
title_short Physical property and gas transport studies of ultrathin polysulfone membrane from 298.15 to 328.15 K and 2 to 50 bar: atomistic molecular simulation and empirical modelling
title_sort physical property and gas transport studies of ultrathin polysulfone membrane from 298.15 to 328.15 k and 2 to 50 bar: atomistic molecular simulation and empirical modelling
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9056602/
https://www.ncbi.nlm.nih.gov/pubmed/35516493
http://dx.doi.org/10.1039/d0ra05836j
work_keys_str_mv AT lockssm physicalpropertyandgastransportstudiesofultrathinpolysulfonemembranefrom29815to32815kand2to50baratomisticmolecularsimulationandempiricalmodelling
AT laukk physicalpropertyandgastransportstudiesofultrathinpolysulfonemembranefrom29815to32815kand2to50baratomisticmolecularsimulationandempiricalmodelling
AT jusohnorwahyu physicalpropertyandgastransportstudiesofultrathinpolysulfonemembranefrom29815to32815kand2to50baratomisticmolecularsimulationandempiricalmodelling
AT shariffam physicalpropertyandgastransportstudiesofultrathinpolysulfonemembranefrom29815to32815kand2to50baratomisticmolecularsimulationandempiricalmodelling
AT yeongyf physicalpropertyandgastransportstudiesofultrathinpolysulfonemembranefrom29815to32815kand2to50baratomisticmolecularsimulationandempiricalmodelling
AT yiinchungloong physicalpropertyandgastransportstudiesofultrathinpolysulfonemembranefrom29815to32815kand2to50baratomisticmolecularsimulationandempiricalmodelling
AT ammartaqvisyedali physicalpropertyandgastransportstudiesofultrathinpolysulfonemembranefrom29815to32815kand2to50baratomisticmolecularsimulationandempiricalmodelling