On the mechanical properties and fracture analysis of polymer nanocomposites reinforced by functionalized silicon carbide nanotubes: A molecular dynamics investigation.
Hydrogen- and fluorine-functionalized SiCNT
Mechanical properties
Molecular dynamics simulation
Polymer nanocomposite
Journal
Journal of molecular graphics & modelling
ISSN: 1873-4243
Titre abrégé: J Mol Graph Model
Pays: United States
ID NLM: 9716237
Informations de publication
Date de publication:
03 2022
03 2022
Historique:
received:
22
09
2021
revised:
17
11
2021
accepted:
18
11
2021
pubmed:
4
12
2021
medline:
1
2
2022
entrez:
3
12
2021
Statut:
ppublish
Résumé
The mechanical characteristics of reinforced polymer nanocomposites with Hydrogen (H)- and Fluorine (F)-functionalized silicon carbide nanotubes (H-and F-fSiCNTs) are investigated herein using molecular dynamics (MD) simulations. The effects of covalent functionalization and chirality of SiCNT, and diverse polymer materials on Young's modulus, maximum stress, and strain to the failure point, as well as strain energy are studied. The results reveal that by increasing the functionalization degree, the maximum stress, maximum strain, elastic modulus, and strain energy decrease. The tensile strength of polymer nanocomposites containing SiCNT is higher than that of pure polymer and polymers containing functionalized silicon carbide nanotubes (fSiCNTs). It is also found that the incorporation of fSiCNT into the polymer matrix (fSiCNT/polymer) gives rise to a considerable improvement in the ultimate strength of nanocomposites compared to the pure polymer. Polymer nanocomposites reinforced by armchair SiCNTs and fSiCNTs withstand higher maximum stresses and possess less longitudinal Young's modulus as compared to the same systems comprising zigzag nanotubes. In every percent of functionalization, the zigzag F-fSiCNT/polymer tends to have a higher Young's modulus as compared to the zigzag H-fSiCNT/polymer. Similarly, the armchair F-fSiCNTs incorporated into the polyethylene (PE) matrix (F-fSiCNTs/PE) are stiffer than the armchair H-fSiCNTs/PE in each weight of functionalization. Moreover, the armchair fSiCNTs/polymer nanocomposites show higher storage of strain energy in comparison with their zigzag counterparts.
Identifiants
pubmed: 34861609
pii: S1093-3263(21)00257-6
doi: 10.1016/j.jmgm.2021.108086
pii:
doi:
Substances chimiques
Carbon Compounds, Inorganic
0
Polymers
0
Silicon Compounds
0
silicon carbide
WXQ6E537EW
Types de publication
Journal Article
Langues
eng
Sous-ensembles de citation
IM
Pagination
108086Informations de copyright
Copyright © 2021 Elsevier Inc. All rights reserved.