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A molecular dynamics study on thermal and mechanical properties of graphene-paraffin nanocomposites

journal contribution
posted on 2024-11-02, 13:06 authored by Yu Wang, Chunhui Yang, Yuan Cheng, Yingyan ZhangYingyan Zhang
Owing to the superior thermal conductivity of graphene, nanocomposites with graphene fillers dispersed in a polymer matrix become promising in thermal management applications, e.g. serving as thermal interface materials (TIMs) in high power microelectronic devices. However, the thermal conductivity of graphene-based nanocomposites is constrained by the high interfacial thermal resistance between the graphene fillers and polymer matrix. This research focuses on changing graphene-paraffin interfacial thermal transport by employing various treatment methods. Using molecular dynamics (MD) simulations, the effectiveness of hydrogenation, defecting and doping on reducing the graphene-paraffin interfacial thermal resistance is closely investigated. We found that the interfacial thermal resistance can be considerably reduced by the hydrogenation of graphene, while it is insensitive to defecting and doping. From the simulation results of the graphene-paraffin nanocomposites under tensile loading, a lower Young's modulus and lower tensile strength are observed for the paraffin filled with hydrogenated graphene. The results clearly show that the hydrogenation of graphene exerts opposite effects on the thermal and mechanical properties of graphene-paraffin nanocomposites. Thus hydrogenation is suggested to be used wisely in the graphene-paraffin nanocomposite so as to improve its interfacial thermal conductance at the minimum cost of its mechanical strength.

History

Related Materials

  1. 1.
    DOI - Is published in 10.1039/c5ra12028d
  2. 2.
    ISSN - Is published in 20462069

Journal

RSC Advances

Volume

5

Issue

101

Start page

82638

End page

82644

Total pages

7

Publisher

Royal Society of Chemistry

Place published

United Kingdom

Language

English

Copyright

This journal is © The Royal Society of Chemistry 2015

Former Identifier

2006099006

Esploro creation date

2020-06-22