Molecular dynamic simulation study of molten cesium

Molecular dynamics simulations were performed to study thermodynamics and structural properties of expanded caesium fluid. Internal pressure, radial distribution functions (RDFs), coordination numbers and diffusion coefficients have been calculated at temperature range 700–1600 K and pressure range...

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Main Authors: Yeganegi Saeid, Moeini Vahid, Doroodi Zohreh
Format: Article
Language:English
Published: Serbian Chemical Society 2017-01-01
Series:Journal of the Serbian Chemical Society
Subjects:
RDF
Online Access:http://www.doiserbia.nb.rs/img/doi/0352-5139/2017/0352-51391700018Y.pdf
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spelling doaj-087d839d41454f74834bcd96f38a8f4b2020-11-24T23:21:52ZengSerbian Chemical Society Journal of the Serbian Chemical Society0352-51391820-74212017-01-0182668169410.2298/JSC160725018Y0352-51391700018YMolecular dynamic simulation study of molten cesiumYeganegi Saeid0Moeini Vahid1Doroodi Zohreh2University of Mazandaran, Department of Physical Chemistry, Babolsar, IranPayame Noor University, Department of Chemistry, Tehran, IranPayame Noor University, Department of Chemistry, Tehran, IranMolecular dynamics simulations were performed to study thermodynamics and structural properties of expanded caesium fluid. Internal pressure, radial distribution functions (RDFs), coordination numbers and diffusion coefficients have been calculated at temperature range 700–1600 K and pressure range 100–800 bar. We used the internal pressure to predict the metal–non-metal transition occurrence region. RDFs were calculated at wide ranges of temperature and pressure. The coordination numbers decrease and positions of the first peak of RDFs slightly increase as the temperature increases and pressure decreases. The calculated self-diffusion coefficients at various temperatures and pressures show no distinct boundary between Cs metallic fluid and its expanded fluid where it continuously increases with temperature.http://www.doiserbia.nb.rs/img/doi/0352-5139/2017/0352-51391700018Y.pdfmetal- nonmetal transitionMD simulationinternal pressureRDF
collection DOAJ
language English
format Article
sources DOAJ
author Yeganegi Saeid
Moeini Vahid
Doroodi Zohreh
spellingShingle Yeganegi Saeid
Moeini Vahid
Doroodi Zohreh
Molecular dynamic simulation study of molten cesium
Journal of the Serbian Chemical Society
metal- nonmetal transition
MD simulation
internal pressure
RDF
author_facet Yeganegi Saeid
Moeini Vahid
Doroodi Zohreh
author_sort Yeganegi Saeid
title Molecular dynamic simulation study of molten cesium
title_short Molecular dynamic simulation study of molten cesium
title_full Molecular dynamic simulation study of molten cesium
title_fullStr Molecular dynamic simulation study of molten cesium
title_full_unstemmed Molecular dynamic simulation study of molten cesium
title_sort molecular dynamic simulation study of molten cesium
publisher Serbian Chemical Society
series Journal of the Serbian Chemical Society
issn 0352-5139
1820-7421
publishDate 2017-01-01
description Molecular dynamics simulations were performed to study thermodynamics and structural properties of expanded caesium fluid. Internal pressure, radial distribution functions (RDFs), coordination numbers and diffusion coefficients have been calculated at temperature range 700–1600 K and pressure range 100–800 bar. We used the internal pressure to predict the metal–non-metal transition occurrence region. RDFs were calculated at wide ranges of temperature and pressure. The coordination numbers decrease and positions of the first peak of RDFs slightly increase as the temperature increases and pressure decreases. The calculated self-diffusion coefficients at various temperatures and pressures show no distinct boundary between Cs metallic fluid and its expanded fluid where it continuously increases with temperature.
topic metal- nonmetal transition
MD simulation
internal pressure
RDF
url http://www.doiserbia.nb.rs/img/doi/0352-5139/2017/0352-51391700018Y.pdf
work_keys_str_mv AT yeganegisaeid moleculardynamicsimulationstudyofmoltencesium
AT moeinivahid moleculardynamicsimulationstudyofmoltencesium
AT doroodizohreh moleculardynamicsimulationstudyofmoltencesium
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