Nanocomposite of fullerenes and natural rubbers: Martini force field molecular dynamics simulations

Journal article


Authors/Editors


Strategic Research Themes


Publication Details

Author listKitjanon J., Khuntawee W., Phongphanphanee S., Sutthibutpong T., Chattham N., Karttunen M., Wong-Ekkabut J.

PublisherMDPI

Publication year2021

Volume number13

Issue number22

ISSN2073-4360

eISSN2073-4360

URLhttps://www.scopus.com/inward/record.uri?eid=2-s2.0-85119974635&doi=10.3390%2fpolym13224044&partnerID=40&md5=8ea33f9bbb5e7f9ce7050e1bd0873d5d

LanguagesEnglish-Great Britain (EN-GB)


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Abstract

The mechanical properties of natural rubber (NR) composites depend on many factors, including the filler loading, filler size, filler dispersion, and filler-rubber interfacial interactions. Thus, NR composites with nano-sized fillers have attracted a great deal of attention for improving properties such as stiffness, chemical resistance, and high wear resistance. Here, a coarse-grained (CG) model based on the MARTINI force field version 2.1 has been developed and deployed for simulations of cis-1,4-polyisoprene (cis-PI). The model shows qualitative and quantitative agreement with the experiments and atomistic simulations. Interestingly, only a 0.5% difference with respect to the experimental result of the glass transition temperature (Tg ) of the cis-PI in the melts was observed. In addition, the mechanical and thermodynamical properties of the cis-PI-fullerene(C60 ) composites were investigated. Coarse-grained molecular dynamics (MD) simulations of cis-PI-C60 composites with varying fullerene concentrations (0–32 parts per hundred of rubber; phr) were performed over 200 microseconds. The structural, mechanical, and thermal properties of the composites were determined. The density, bulk modulus, thermal expansion, heat capacity, and Tg of the NR composites were found to increase with increasing C60 concentration. The presence of C60 resulted in a slight increasing of the end-to-end distance and radius of the gyration of the cis-PI chains. The contribution of C60 and cis-PI interfacial interactions led to an enhancement of the bulk moduli of the composites. This model should be helpful in the investigations and design of effective fillers of NR-C60 composites for improving their properties. © 2021 by the authors. Licensee MDPI, Basel, Switzerland.


Keywords

Coarse-Grained ModellingMolecular Dynamics SimulationsNatural rubber


Last updated on 2023-03-10 at 10:34