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The chemical coupling between SA1 and SBR results in drastically improved filler domain dispersion.
The addition of the polysulfones increases the stiffness and toughness of the composites, attributed to an improved filler dispersion and stronger matrix-reinforcement interfacial adhesion.
The formation of covalent bonds between the VTEOS functionality and the hydroxyl groups present at the surface of the particles, generated strong polymer/filler interactions, resulting in improved filler dispersion.
Moreover, the FG was also confirmed to decrease the electrical conductivity but significantly enhance the electromagnetic wave absorbing ability of SEBS/carbon nanotube (CNTs) hybrid composite, due to the improved filler dispersion, impedance match at air-sample interface and multi-scale synergy effects with CNTs.
In addition, although the incorporation of MAPP led to improved filler dispersion, it was damaging to the material fracture behavior for the composites with CaCO3, Al2O3 or Clay, as a result of a higher interfacial adhesion, the retardant effect of MAPP on PP nucleation and the lower molecular weight of the PP/MAPP blend.
The improved filler dispersion and filler-rubber interaction allow effective energy dissipation and result in significantly improved mechanical properties.
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Under the conditions studied, a ratio of 17 3 was particularly favorable for improving filler-fiber interaction.
Melt annealing markedly improved the filler dispersion in PP.
The results indicate that the strength, stiffness and moisture susceptibility performances of the asphalt concrete mixtures improved by filler are comparable to the performance of the polymer modified asphalt mixture.
The CNT-NH2 was embedded within the network to improve the filler-filler contact or network-density.
Similar observations were made by Zaman et al. [3] who reported improved dispersion, filler-matrix adhesion, and distribution of acid-treated MWCNTs in PET matrix.
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