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Unveiling the Molecular Origin of Vapor-Liquid Phase Transition of Bulk and Confined Fluids

At temperatures below the critical temperature, discontinuities in the isotherms are one critical issue in the design and construction of separation units, affecting the level of confidence for a prediction of vapor–liquid equilibriums and phase transitions. In this work, we study the molecular mech...

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Autores principales: Jitmitsumphan, Sorrasit, Sripetdee, Tirayoot, Chaimueangchuen, Tharathep, Tun, Htet Myet, Chinkanjanarot, Sorayot, Klomkliang, Nikom, Srinives, Sira, Jonglertjunya, Woranart, Ling, Tau Chuan, Phadungbut, Poomiwat
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9103202/
https://www.ncbi.nlm.nih.gov/pubmed/35566010
http://dx.doi.org/10.3390/molecules27092656
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author Jitmitsumphan, Sorrasit
Sripetdee, Tirayoot
Chaimueangchuen, Tharathep
Tun, Htet Myet
Chinkanjanarot, Sorayot
Klomkliang, Nikom
Srinives, Sira
Jonglertjunya, Woranart
Ling, Tau Chuan
Phadungbut, Poomiwat
author_facet Jitmitsumphan, Sorrasit
Sripetdee, Tirayoot
Chaimueangchuen, Tharathep
Tun, Htet Myet
Chinkanjanarot, Sorayot
Klomkliang, Nikom
Srinives, Sira
Jonglertjunya, Woranart
Ling, Tau Chuan
Phadungbut, Poomiwat
author_sort Jitmitsumphan, Sorrasit
collection PubMed
description At temperatures below the critical temperature, discontinuities in the isotherms are one critical issue in the design and construction of separation units, affecting the level of confidence for a prediction of vapor–liquid equilibriums and phase transitions. In this work, we study the molecular mechanisms of fluids that involve the vapor–liquid phase transition in bulk and confinement, utilizing grand canonical (GCE) and meso-canonical (MCE) ensembles of the Monte Carlo simulation. Different geometries of the mesopores, including slit, cylindrical, and spherical, were studied. During phase transitions, condensation/evaporation hysteretic isotherms can be detected by GCE simulation, whereas employing MCE simulation allows us to investigate van der Waals (vdW) loop with a vapor spinodal point, intermediate states, and a liquid spinodal point in the isotherms. Depending on the system, the size of the simulation box, and the MCE method, we are able to identify three distinct groups of vdW-type isotherms for the first time: (1) a smooth S-shaped loop, (2) a stepwise S-shaped loop, and (3) a stepwise S-shaped loop with just a vertical segment. The first isotherm type is noticed in the bulk and pores having small box sizes, in which vapor and liquid phases are close and not clearly identified. The second and the third types occurred in the bulk, cylindrical, and slit mesopores with sufficiently large spaces, where vapor and liquid phases are distinctly separated. Results from our studies provide an insight analysis into vapor–liquid phase transitions, elucidating the effect of the confinement of fluid behaviors in a visual manner.
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spelling pubmed-91032022022-05-14 Unveiling the Molecular Origin of Vapor-Liquid Phase Transition of Bulk and Confined Fluids Jitmitsumphan, Sorrasit Sripetdee, Tirayoot Chaimueangchuen, Tharathep Tun, Htet Myet Chinkanjanarot, Sorayot Klomkliang, Nikom Srinives, Sira Jonglertjunya, Woranart Ling, Tau Chuan Phadungbut, Poomiwat Molecules Article At temperatures below the critical temperature, discontinuities in the isotherms are one critical issue in the design and construction of separation units, affecting the level of confidence for a prediction of vapor–liquid equilibriums and phase transitions. In this work, we study the molecular mechanisms of fluids that involve the vapor–liquid phase transition in bulk and confinement, utilizing grand canonical (GCE) and meso-canonical (MCE) ensembles of the Monte Carlo simulation. Different geometries of the mesopores, including slit, cylindrical, and spherical, were studied. During phase transitions, condensation/evaporation hysteretic isotherms can be detected by GCE simulation, whereas employing MCE simulation allows us to investigate van der Waals (vdW) loop with a vapor spinodal point, intermediate states, and a liquid spinodal point in the isotherms. Depending on the system, the size of the simulation box, and the MCE method, we are able to identify three distinct groups of vdW-type isotherms for the first time: (1) a smooth S-shaped loop, (2) a stepwise S-shaped loop, and (3) a stepwise S-shaped loop with just a vertical segment. The first isotherm type is noticed in the bulk and pores having small box sizes, in which vapor and liquid phases are close and not clearly identified. The second and the third types occurred in the bulk, cylindrical, and slit mesopores with sufficiently large spaces, where vapor and liquid phases are distinctly separated. Results from our studies provide an insight analysis into vapor–liquid phase transitions, elucidating the effect of the confinement of fluid behaviors in a visual manner. MDPI 2022-04-20 /pmc/articles/PMC9103202/ /pubmed/35566010 http://dx.doi.org/10.3390/molecules27092656 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Jitmitsumphan, Sorrasit
Sripetdee, Tirayoot
Chaimueangchuen, Tharathep
Tun, Htet Myet
Chinkanjanarot, Sorayot
Klomkliang, Nikom
Srinives, Sira
Jonglertjunya, Woranart
Ling, Tau Chuan
Phadungbut, Poomiwat
Unveiling the Molecular Origin of Vapor-Liquid Phase Transition of Bulk and Confined Fluids
title Unveiling the Molecular Origin of Vapor-Liquid Phase Transition of Bulk and Confined Fluids
title_full Unveiling the Molecular Origin of Vapor-Liquid Phase Transition of Bulk and Confined Fluids
title_fullStr Unveiling the Molecular Origin of Vapor-Liquid Phase Transition of Bulk and Confined Fluids
title_full_unstemmed Unveiling the Molecular Origin of Vapor-Liquid Phase Transition of Bulk and Confined Fluids
title_short Unveiling the Molecular Origin of Vapor-Liquid Phase Transition of Bulk and Confined Fluids
title_sort unveiling the molecular origin of vapor-liquid phase transition of bulk and confined fluids
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9103202/
https://www.ncbi.nlm.nih.gov/pubmed/35566010
http://dx.doi.org/10.3390/molecules27092656
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