Atomistic to Mesoscopic Modelling of Thermophysical Properties of Graphene-Reinforced Epoxy Nanocomposites

Author:

Muhammad Atta12,Sáenz Ezquerro Carlos3ORCID,Srivastava Rajat14ORCID,Asinari Pietro15ORCID,Laspalas Manuel3,Chiminelli Agustín3,Fasano Matteo1ORCID

Affiliation:

1. Department of Energy, Politecnico di Torino, 10129 Torino, Italy

2. Department of Mechanical Engineering, MUET SZAB Campus, Khairpur Mir’s 66020, Pakistan

3. Aragon Institute of Technology ITAINNOVA, 50018 Zaragoza, Spain

4. Department of Engineering for Innovation, University of Salento, 73100 Lecce, Italy

5. Istituto Nazionale di Ricerca Metrologica, 10135 Torino, Italy

Abstract

This research addresses the need for a multiscale model for the determination of the thermophysical properties of nanofiller-enhanced thermoset polymer composites. Specifically, we analyzed the thermophysical properties of an epoxy resin containing bisphenol-A diglyceryl ether (DGEBA) as an epoxy monomer and dicyandiamide (DICY) and diethylene triamine (DETA) as cross-linking agents. The cross-linking process occurs at the atomistic scale through the formation of bonds among the reactive particles within the epoxy and hardener molecules. To derive the interatomic coarse-grained potential for the mesoscopic model and match the density of the material studied through atomic simulations, we employed the iterative Boltzmann inversion method. The newly developed coarse-grained molecular dynamics model effectively reproduces various thermophysical properties of the DGEBA-DICY-DETA resin system. Furthermore, we simulated nanocomposites made of the considered epoxy additivated with graphene nanofillers at the mesoscopic level and verified them against continuum approaches. Our results demonstrate that a moderate amount of nanofillers (up to 2 wt.%) increases the elastic modulus and thermal conductivity of the epoxy resin while decreasing the Poisson’s ratio. For the first time, we present a coarse-grained model of DGEBA-DICY-DETA/graphene materials, which can facilitate the design and development of composites with tunable thermophysical properties for a potentially wide range of applications, e.g., automotive, aerospace, biomedical, or energy ones.

Funder

European Union

Publisher

MDPI AG

Subject

General Materials Science,General Chemical Engineering

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