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September 16, 2025Polymer Composites0 citations

Thermal Decomposition Kinetics and Viscoelastic Properties of Epoxy Nanocomposites: Comparative Study of Graphene, GO, and rGO Nanoparticle Effects

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NSNavid SokhandaniOBOmid BaviSZSeyed Mojtaba Zebarjad

Key Points

  • Graphene significantly increases thermal stability in epoxy composites, with a 25.7°C rise in mass-loss onset temperature.
  • Dynamic mechanical analysis shows a 16.6% increase in storage modulus for graphene composites compared to baseline epoxy.
  • Isoconversional kinetic modeling reveals that graphene enhances activation energy for thermal degradation by 15 to 25 kJ mol −1.
  • These findings underline graphene's potential in aerospace applications due to improved mechanical resilience and thermal reliability.

Abstract

ABSTRACT Graphene‐family nanofillers were dispersed at loadings (≤ 0.60 wt%) into a diglycidyl ether of bisphenol‐A epoxy to elucidate how the sheet chemistry of graphene (Gr), reduced graphene oxide (rGO), and graphene oxide (GO) governs thermal stability and visco‐elastic behavior. Thermogravimetric analysis (TGA) showed that Gr raised the 5% mass‐loss onset temperature by 25.7°C and lowered the peak degradation rate by 18% versus neat epoxy, whereas rGO and GO offered moderate gains. Isoconversional kinetic modeling indicated a 15 to 25 kJ mol −1 increase in apparent activation energy throughout the conversion range, confirming that Gr creates a more energy‐intensive degradation pathway through tortuous, heat‐shielding barriers. Dynamic mechanical analysis (DMA) revealed a 16.6% enhancement in storage modulus ( E ') at 25°C for the Gr composite while maintaining tan δ = 0.43, evidencing efficient stress transfer without compromising damping. All improvements were realized below the electrical percolation threshold, preserving viscosity and density critical for aerospace and electronic encapsulation. These results establish pristine graphene as the most effective single additive route to simultaneously elevate thermal reliability and mechanical resilience in epoxy matrices, while rGO and GO enable application‐specific tuning of damping or glass transition temperature.

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Cite This Study

Sokhandani et al. (2025) studied this question.

synapsesocial.com/papers/68d4565431b076d99fa5ae60https://doi.org/10.1002/pc.70433
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