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Toward realistic computer modeling of paraffin-based composite materials: critical assessment of atomic-scale models of paraffins

Paraffin-based composites represent a promising class of materials with numerous practical applications such as e.g. heat storage. Computer modeling of these complex multicomponent systems requires a proper theoretical description of both the n-alkane matrix and the non-alkane filler molecules. The...

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Autores principales: Glova, Artyom D., Volgin, Igor V., Nazarychev, Victor M., Larin, Sergey V., Lyulin, Sergey V., Gurtovenko, Andrey A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9076000/
https://www.ncbi.nlm.nih.gov/pubmed/35540183
http://dx.doi.org/10.1039/c9ra07325f
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author Glova, Artyom D.
Volgin, Igor V.
Nazarychev, Victor M.
Larin, Sergey V.
Lyulin, Sergey V.
Gurtovenko, Andrey A.
author_facet Glova, Artyom D.
Volgin, Igor V.
Nazarychev, Victor M.
Larin, Sergey V.
Lyulin, Sergey V.
Gurtovenko, Andrey A.
author_sort Glova, Artyom D.
collection PubMed
description Paraffin-based composites represent a promising class of materials with numerous practical applications such as e.g. heat storage. Computer modeling of these complex multicomponent systems requires a proper theoretical description of both the n-alkane matrix and the non-alkane filler molecules. The latter can be modeled with the use of a state-of-the-art general-purpose force field such as GAFF, CHARMM, OPLS-AA and GROMOS, while the paraffin matrix is traditionally described in the frame of relatively old, alkane-specific force fields (TraPPE, NERD, and PYS). In this paper we link these two types of models and evaluate the performance of several general-purpose force fields in computer modeling of paraffin by their systematic comparison with earlier alkane-specific models as well as with experimental data. To this end, we have performed molecular dynamics simulations of n-eicosane bulk samples with the use of 10 different force fields: TraPPE, NERD, PYS, OPLS-UA, GROMOS, GAFF, GAFF2, OPLS-AA, L-OPLS-AA, and CHARMM36. For each force field we calculated several thermal, structural and dynamic characteristics of n-eicosane over a wide temperature range. Overall, our findings show that the general-purpose force fields such as CHARMM36, L-OPLS-AA and GAFF/GAFF2 are able to provide a realistic description of n-eicosane samples. While alkane-specific models outperform most general-purpose force fields as far as the temperature dependence of mass density, the coefficient of volumetric thermal expansion in the liquid state, and the crystallization temperature are concerned, L-OPLS-AA, CHARMM36 and GAFF2 force fields provide a better match with experiment for the shear viscosity and the diffusion coefficient in melt. Furthermore, we show that most general-purpose force fields are able to reproduce qualitatively the experimental triclinic crystal structure of n-eicosane at low temperatures.
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spelling pubmed-90760002022-05-09 Toward realistic computer modeling of paraffin-based composite materials: critical assessment of atomic-scale models of paraffins Glova, Artyom D. Volgin, Igor V. Nazarychev, Victor M. Larin, Sergey V. Lyulin, Sergey V. Gurtovenko, Andrey A. RSC Adv Chemistry Paraffin-based composites represent a promising class of materials with numerous practical applications such as e.g. heat storage. Computer modeling of these complex multicomponent systems requires a proper theoretical description of both the n-alkane matrix and the non-alkane filler molecules. The latter can be modeled with the use of a state-of-the-art general-purpose force field such as GAFF, CHARMM, OPLS-AA and GROMOS, while the paraffin matrix is traditionally described in the frame of relatively old, alkane-specific force fields (TraPPE, NERD, and PYS). In this paper we link these two types of models and evaluate the performance of several general-purpose force fields in computer modeling of paraffin by their systematic comparison with earlier alkane-specific models as well as with experimental data. To this end, we have performed molecular dynamics simulations of n-eicosane bulk samples with the use of 10 different force fields: TraPPE, NERD, PYS, OPLS-UA, GROMOS, GAFF, GAFF2, OPLS-AA, L-OPLS-AA, and CHARMM36. For each force field we calculated several thermal, structural and dynamic characteristics of n-eicosane over a wide temperature range. Overall, our findings show that the general-purpose force fields such as CHARMM36, L-OPLS-AA and GAFF/GAFF2 are able to provide a realistic description of n-eicosane samples. While alkane-specific models outperform most general-purpose force fields as far as the temperature dependence of mass density, the coefficient of volumetric thermal expansion in the liquid state, and the crystallization temperature are concerned, L-OPLS-AA, CHARMM36 and GAFF2 force fields provide a better match with experiment for the shear viscosity and the diffusion coefficient in melt. Furthermore, we show that most general-purpose force fields are able to reproduce qualitatively the experimental triclinic crystal structure of n-eicosane at low temperatures. The Royal Society of Chemistry 2019-11-27 /pmc/articles/PMC9076000/ /pubmed/35540183 http://dx.doi.org/10.1039/c9ra07325f Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Glova, Artyom D.
Volgin, Igor V.
Nazarychev, Victor M.
Larin, Sergey V.
Lyulin, Sergey V.
Gurtovenko, Andrey A.
Toward realistic computer modeling of paraffin-based composite materials: critical assessment of atomic-scale models of paraffins
title Toward realistic computer modeling of paraffin-based composite materials: critical assessment of atomic-scale models of paraffins
title_full Toward realistic computer modeling of paraffin-based composite materials: critical assessment of atomic-scale models of paraffins
title_fullStr Toward realistic computer modeling of paraffin-based composite materials: critical assessment of atomic-scale models of paraffins
title_full_unstemmed Toward realistic computer modeling of paraffin-based composite materials: critical assessment of atomic-scale models of paraffins
title_short Toward realistic computer modeling of paraffin-based composite materials: critical assessment of atomic-scale models of paraffins
title_sort toward realistic computer modeling of paraffin-based composite materials: critical assessment of atomic-scale models of paraffins
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9076000/
https://www.ncbi.nlm.nih.gov/pubmed/35540183
http://dx.doi.org/10.1039/c9ra07325f
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