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Tailoring Densified Dual Networks via Synergistic Asynchronous Cross-Linking for High-Performance and Heat-Resistant Thermosetting Composites

Aug 2026 · Industrial & Engineering Chemistry Research · 0 citations · 53 references

Abstract

Despite excellent processability and mechanical properties, the inferior heat resistance of epoxy resins limits their advanced aerospace applications. To overcome the processing bottlenecks, phase separation, and structural-kinetic constraints inherent in conventional modifications, this study extends the thermomechanical limits of epoxies via a single-molecule heterofunctional design. Specifically, a low-viscosity monomer, 5-ethynyl-1,3-phenylene diglycidyl ether (E-Ph-DGE), was developed. Upon curing with 4,4’-diaminodiphenylmethane (DDM), the orchestration of reaction kinetics enables the synergistic asynchronous cross-linking of its functional units, constructing a continuous and densified dual network featuring bimodal nanomechanical domains. This unique topology significantly enhances both thermomechanical and interfacial properties. Compared to the commercial diglycidyl ether of bisphenol A (DGEBA) system, the E-Ph-DGE_DDM neat resin and its carbon fiber composite exhibit superior compressive strengths of 301.6 MPa (126% increase) and 1216 MPa (48% increase), respectively. The system achieves a glass transition temperature (Tg) of 293 °C, maintaining high creep resistance and interfacial adhesion to aluminum alloys (63% retention) and carbon fibers (75% retention) at 200 °C. Additionally, it demonstrates intrinsic low flammability. This strategy robustly resolves the processability-thermomechanical trade-off in thermosetting composites.

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