The Origins of Enhanced and Retarded Crystallization in Nanocomposite Polymers
Controlling the crystallinity of hybrid polymeric systems has an important impact on their properties and is essential for developing novel functional materials. The crystallization of nanocomposite polymers with gold nanoparticles is shown to be determined by free space between nanoparticles. Resul...
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doaj-de9649b8f5a4425a97b68fce7ea535102020-11-25T01:50:57ZengMDPI AGNanomaterials2079-49912019-10-01910147210.3390/nano9101472nano9101472The Origins of Enhanced and Retarded Crystallization in Nanocomposite PolymersAhmad Jabbarzadeh0Faculty of Engineering, School of Aerospace, Mechanical and Mechatronic Engineering, The University of Sydney, Sydney NSW 2006, AustraliaControlling the crystallinity of hybrid polymeric systems has an important impact on their properties and is essential for developing novel functional materials. The crystallization of nanocomposite polymers with gold nanoparticles is shown to be determined by free space between nanoparticles. Results of large-scale molecular dynamics simulations reveal while crystallinity is affected by the nanoparticle size and its volume fraction, their combined effects can only be measured by interparticle free space and characteristic size of the crystals. When interparticle free space becomes smaller than the characteristic extended length of the polymer molecule, nanoparticles impede the crystallization because of the confinement effects. Based on the findings from this work, equations for critical particle size or volume fraction that lead to this confinement-induced retardation of crystallization are proposed. The findings based on these equations are demonstrated to agree with the results reported in experiments for nanocomposite systems. The results of simulations also explain the origin of a two-tier crystallization regime observed in some of the hybrid polymeric systems with planar surfaces where the crystallization is initially enhanced and then retarded by the presence of nanoparticles.https://www.mdpi.com/2079-4991/9/10/1472nanocompositescubic nanoparticlespolymer crystallizationmolecular dynamicshexacontaneavrami constantscritical volume fractioncritical particle size |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Ahmad Jabbarzadeh |
spellingShingle |
Ahmad Jabbarzadeh The Origins of Enhanced and Retarded Crystallization in Nanocomposite Polymers Nanomaterials nanocomposites cubic nanoparticles polymer crystallization molecular dynamics hexacontane avrami constants critical volume fraction critical particle size |
author_facet |
Ahmad Jabbarzadeh |
author_sort |
Ahmad Jabbarzadeh |
title |
The Origins of Enhanced and Retarded Crystallization in Nanocomposite Polymers |
title_short |
The Origins of Enhanced and Retarded Crystallization in Nanocomposite Polymers |
title_full |
The Origins of Enhanced and Retarded Crystallization in Nanocomposite Polymers |
title_fullStr |
The Origins of Enhanced and Retarded Crystallization in Nanocomposite Polymers |
title_full_unstemmed |
The Origins of Enhanced and Retarded Crystallization in Nanocomposite Polymers |
title_sort |
origins of enhanced and retarded crystallization in nanocomposite polymers |
publisher |
MDPI AG |
series |
Nanomaterials |
issn |
2079-4991 |
publishDate |
2019-10-01 |
description |
Controlling the crystallinity of hybrid polymeric systems has an important impact on their properties and is essential for developing novel functional materials. The crystallization of nanocomposite polymers with gold nanoparticles is shown to be determined by free space between nanoparticles. Results of large-scale molecular dynamics simulations reveal while crystallinity is affected by the nanoparticle size and its volume fraction, their combined effects can only be measured by interparticle free space and characteristic size of the crystals. When interparticle free space becomes smaller than the characteristic extended length of the polymer molecule, nanoparticles impede the crystallization because of the confinement effects. Based on the findings from this work, equations for critical particle size or volume fraction that lead to this confinement-induced retardation of crystallization are proposed. The findings based on these equations are demonstrated to agree with the results reported in experiments for nanocomposite systems. The results of simulations also explain the origin of a two-tier crystallization regime observed in some of the hybrid polymeric systems with planar surfaces where the crystallization is initially enhanced and then retarded by the presence of nanoparticles. |
topic |
nanocomposites cubic nanoparticles polymer crystallization molecular dynamics hexacontane avrami constants critical volume fraction critical particle size |
url |
https://www.mdpi.com/2079-4991/9/10/1472 |
work_keys_str_mv |
AT ahmadjabbarzadeh theoriginsofenhancedandretardedcrystallizationinnanocompositepolymers AT ahmadjabbarzadeh originsofenhancedandretardedcrystallizationinnanocompositepolymers |
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