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Simulation of self-heating process on the nanoscale: a multiscale approach for molecular models of nanocomposite materials

A theoretical–computational protocol to model the Joule heating process in nanocomposite materials is presented. The proposed modeling strategy is based on post processing of trajectories obtained from large scale molecular simulations. This protocol, based on molecular models, is the first one to b...

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Autores principales: Donati, Greta, De Nicola, Antonio, Munaò, Gianmarco, Byshkin, Maksym, Vertuccio, Luigi, Guadagno, Liberata, Le Goff, Ronan, Milano, Giuseppe
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9418708/
https://www.ncbi.nlm.nih.gov/pubmed/36134283
http://dx.doi.org/10.1039/d0na00238k
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author Donati, Greta
De Nicola, Antonio
Munaò, Gianmarco
Byshkin, Maksym
Vertuccio, Luigi
Guadagno, Liberata
Le Goff, Ronan
Milano, Giuseppe
author_facet Donati, Greta
De Nicola, Antonio
Munaò, Gianmarco
Byshkin, Maksym
Vertuccio, Luigi
Guadagno, Liberata
Le Goff, Ronan
Milano, Giuseppe
author_sort Donati, Greta
collection PubMed
description A theoretical–computational protocol to model the Joule heating process in nanocomposite materials is presented. The proposed modeling strategy is based on post processing of trajectories obtained from large scale molecular simulations. This protocol, based on molecular models, is the first one to be applied to organic nanocomposites based on carbon nanotubes (CNT). This strategy allows to keep a microscopic explicit picture of the systems, to directly catch the molecular structure underlying the process under study and, at the same time, to include macroscopic boundary conditions fixed in the experiments. As validation and first application of the proposed strategy, a detailed investigation on CNT based organic composites is reported. The effect of CNT morphologies, concentration and working conditions on Joule heating has been modelled and compared with available experiments. Further experiments are performed also in this work to increase the number of comparisons especially in specific voltage ranges where available references from literature were missing. Simulations are in both qualitative and quantitative agreement with several experiments and trends reported in the recent literature, as well as with experiments performed in this work. The proposed approach combined with large scale hybrid particle-field molecular simulations can give insights and opens to way to a rational design of self-heating nanocomposites.
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spelling pubmed-94187082022-09-20 Simulation of self-heating process on the nanoscale: a multiscale approach for molecular models of nanocomposite materials Donati, Greta De Nicola, Antonio Munaò, Gianmarco Byshkin, Maksym Vertuccio, Luigi Guadagno, Liberata Le Goff, Ronan Milano, Giuseppe Nanoscale Adv Chemistry A theoretical–computational protocol to model the Joule heating process in nanocomposite materials is presented. The proposed modeling strategy is based on post processing of trajectories obtained from large scale molecular simulations. This protocol, based on molecular models, is the first one to be applied to organic nanocomposites based on carbon nanotubes (CNT). This strategy allows to keep a microscopic explicit picture of the systems, to directly catch the molecular structure underlying the process under study and, at the same time, to include macroscopic boundary conditions fixed in the experiments. As validation and first application of the proposed strategy, a detailed investigation on CNT based organic composites is reported. The effect of CNT morphologies, concentration and working conditions on Joule heating has been modelled and compared with available experiments. Further experiments are performed also in this work to increase the number of comparisons especially in specific voltage ranges where available references from literature were missing. Simulations are in both qualitative and quantitative agreement with several experiments and trends reported in the recent literature, as well as with experiments performed in this work. The proposed approach combined with large scale hybrid particle-field molecular simulations can give insights and opens to way to a rational design of self-heating nanocomposites. RSC 2020-05-18 /pmc/articles/PMC9418708/ /pubmed/36134283 http://dx.doi.org/10.1039/d0na00238k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Donati, Greta
De Nicola, Antonio
Munaò, Gianmarco
Byshkin, Maksym
Vertuccio, Luigi
Guadagno, Liberata
Le Goff, Ronan
Milano, Giuseppe
Simulation of self-heating process on the nanoscale: a multiscale approach for molecular models of nanocomposite materials
title Simulation of self-heating process on the nanoscale: a multiscale approach for molecular models of nanocomposite materials
title_full Simulation of self-heating process on the nanoscale: a multiscale approach for molecular models of nanocomposite materials
title_fullStr Simulation of self-heating process on the nanoscale: a multiscale approach for molecular models of nanocomposite materials
title_full_unstemmed Simulation of self-heating process on the nanoscale: a multiscale approach for molecular models of nanocomposite materials
title_short Simulation of self-heating process on the nanoscale: a multiscale approach for molecular models of nanocomposite materials
title_sort simulation of self-heating process on the nanoscale: a multiscale approach for molecular models of nanocomposite materials
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9418708/
https://www.ncbi.nlm.nih.gov/pubmed/36134283
http://dx.doi.org/10.1039/d0na00238k
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