4.6 Article

Investigation of the functional network modifier loading on the stoichiometric ratio of epoxy resins and their dielectric properties

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JOURNAL OF MATERIALS SCIENCE
卷 56, 期 22, 页码 12948-12964

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SPRINGER
DOI: 10.1007/s10853-021-06113-8

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Reactive molecular additives such as glycidyl polyhedral oligomeric silsesquioxane (GPOSS) have been found to significantly impact the cross-linking reactions, glass transition, breakdown strength, and dielectric properties of amine-cured epoxy resin systems. Proper stoichiometric compensation for the additional epoxide groups present on the GPOSS is crucial for achieving beneficial changes in electrical properties. Overall, optimizing the system with GPOSS can lead to materials with pronounced improvements in technologically important characteristics.
Reactive molecular additives have often been employed to tailor the mechanical properties of epoxy resins. In addition, several studies have reported improved electrical properties in such systems, where the network architecture and included function groups have been modified through the use of so-called functional network modifier (FNM) molecules. The study reported here set out to investigate the effect of a glycidyl polyhedral oligomeric silsesquioxane (GPOSS) FNM on the cross-linking reactions, glass transition, breakdown strength and dielectric properties of an amine-cured epoxy resin system. Since many previous studies have considered POSS to act as an inorganic filler, a key aim was to consider the impact of GPOSS addition on the stoichiometry of curing. Fourier transform infrared spectroscopy revealed significant changes in the cross-linking reactions that occur if appropriate stoichiometric compensation is not made for the additional epoxide groups present on the GPOSS. These changes, in concert with the direct effect of the GPOSS itself, influence the glass transition temperature, dielectric breakdown behaviour and dielectric response of the system. Specifically, the work shows that the inclusion of GPOSS can result in beneficial changes in electrical properties, but that these gains are easily lost if consequential changes in the matrix polymer are not appropriately counteracted. Nevertheless, if the system is appropriately optimized, materials with pronounced improvements in technologically important characteristics can be designed.

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