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Thermodynamics of Gas–Liquid Colloidal Equilibrium States: Hetero-Phase Fluctuations

Following on from two previous JETC (Joint European Thermodynamics Conference) presentations, we present a preliminary report of further advances towards the thermodynamic description of critical behavior and a supercritical gas-liquid coexistence with a supercritical fluid mesophase defined by perc...

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Autor principal: Woodcock, Leslie V.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7514534/
http://dx.doi.org/10.3390/e21121189
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author Woodcock, Leslie V.
author_facet Woodcock, Leslie V.
author_sort Woodcock, Leslie V.
collection PubMed
description Following on from two previous JETC (Joint European Thermodynamics Conference) presentations, we present a preliminary report of further advances towards the thermodynamic description of critical behavior and a supercritical gas-liquid coexistence with a supercritical fluid mesophase defined by percolation loci. The experimental data along supercritical constant temperature isotherms (T ≥ T(c)) are consistent with the existence of a two-state mesophase, with constant change in pressure with density, rigidity, (dp/dρ) (T), and linear thermodynamic state-functions of density. The supercritical mesophase is bounded by 3rd-order phase transitions at percolation thresholds. Here we present the evidence that these percolation transitions of both gaseous and liquid states along any isotherm are preceded by pre-percolation hetero-phase fluctuations that can explain the thermodynamic properties in the mesophase and its vicinity. Hetero-phase fluctuations give rise to one-component colloidal-dispersion states; a single Gibbs phase retaining 2 degrees of freedom in which both gas and liquid states with different densities percolate the phase volume. In order to describe the thermodynamic properties of two-state critical and supercritical coexistence, we introduce the concept of a hypothetical homo-phase of both gas and liquid, defined as extrapolated equilibrium states in the pre-percolation vicinity, with the hetero-phase fractions subtracted. We observe that there can be no difference in chemical potential between homo-phase liquid and gaseous states along the critical isotherm in mid-critical isochoric experiments when the meniscus disappears at T = T(c). For T > T(c), thermodynamic states comprise equal mole fractions of the homo-phase gas and liquid, both percolating the total phase volume, at the same temperature, pressure, and with a uniform chemical potential, stabilised by a positive finite interfacial surface tension.
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spelling pubmed-75145342020-11-09 Thermodynamics of Gas–Liquid Colloidal Equilibrium States: Hetero-Phase Fluctuations Woodcock, Leslie V. Entropy (Basel) Article Following on from two previous JETC (Joint European Thermodynamics Conference) presentations, we present a preliminary report of further advances towards the thermodynamic description of critical behavior and a supercritical gas-liquid coexistence with a supercritical fluid mesophase defined by percolation loci. The experimental data along supercritical constant temperature isotherms (T ≥ T(c)) are consistent with the existence of a two-state mesophase, with constant change in pressure with density, rigidity, (dp/dρ) (T), and linear thermodynamic state-functions of density. The supercritical mesophase is bounded by 3rd-order phase transitions at percolation thresholds. Here we present the evidence that these percolation transitions of both gaseous and liquid states along any isotherm are preceded by pre-percolation hetero-phase fluctuations that can explain the thermodynamic properties in the mesophase and its vicinity. Hetero-phase fluctuations give rise to one-component colloidal-dispersion states; a single Gibbs phase retaining 2 degrees of freedom in which both gas and liquid states with different densities percolate the phase volume. In order to describe the thermodynamic properties of two-state critical and supercritical coexistence, we introduce the concept of a hypothetical homo-phase of both gas and liquid, defined as extrapolated equilibrium states in the pre-percolation vicinity, with the hetero-phase fractions subtracted. We observe that there can be no difference in chemical potential between homo-phase liquid and gaseous states along the critical isotherm in mid-critical isochoric experiments when the meniscus disappears at T = T(c). For T > T(c), thermodynamic states comprise equal mole fractions of the homo-phase gas and liquid, both percolating the total phase volume, at the same temperature, pressure, and with a uniform chemical potential, stabilised by a positive finite interfacial surface tension. MDPI 2019-12-03 /pmc/articles/PMC7514534/ http://dx.doi.org/10.3390/e21121189 Text en © 2019 by the author. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Woodcock, Leslie V.
Thermodynamics of Gas–Liquid Colloidal Equilibrium States: Hetero-Phase Fluctuations
title Thermodynamics of Gas–Liquid Colloidal Equilibrium States: Hetero-Phase Fluctuations
title_full Thermodynamics of Gas–Liquid Colloidal Equilibrium States: Hetero-Phase Fluctuations
title_fullStr Thermodynamics of Gas–Liquid Colloidal Equilibrium States: Hetero-Phase Fluctuations
title_full_unstemmed Thermodynamics of Gas–Liquid Colloidal Equilibrium States: Hetero-Phase Fluctuations
title_short Thermodynamics of Gas–Liquid Colloidal Equilibrium States: Hetero-Phase Fluctuations
title_sort thermodynamics of gas–liquid colloidal equilibrium states: hetero-phase fluctuations
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7514534/
http://dx.doi.org/10.3390/e21121189
work_keys_str_mv AT woodcocklesliev thermodynamicsofgasliquidcolloidalequilibriumstatesheterophasefluctuations