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Electron microscopy analysis of the composites indicates that the nanoparticles are intercalated between graphene layers.
Fractograph analysis of the as-extruded composites indicates that TiBw fracture dominates the failure of the as-extruded composites at 923 973 K, while the fracture mechanism is predominantly controlled by interfacial debonding at 1023 K.
The improved thermal stability of PPy/MWCNT composites indicates that there should exist interfacial interaction between CNTs with polymer shell[21].
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Microstructural observations of strained composites indicated that deformation is achieved primarily by grain boundary sliding.
Structural investigation of the composites indicated that chemical interactions occurred between CHS and Tz after solid-state mechanochemical treatment.
The pseudo-first order kinetic equation well fitted the kinetics profiles obtained with all composites indicating that electrostatic interaction dominated the sorption process.
The morphology of printed composites indicated that good interfacial adhesion was obtained by impregnation of MA/CNC mixture and curing at elevated temperature.
Obtained results from thickness and areal density of the hybrid composites indicate that both properties increase with the ballistic properties of the hybrid composites.
Further analysis on the tensile strength of the composites indicated that such improved mechanical properties may be attributed to the presence of coupling agent.
The study on the shape memory effect of the CNT/SMP composites indicated that the CNT/SMP composites can be actuated by the resistive heating of the printed CNT layers without an external heater.
Studies of Sb2O3/WO3 composites indicate that one approach to design composite materials with enhanced photocatalytic performance is through coupling Sb2O3 with WO3, which the lowest energy states for electrons and holes are in different semiconductors.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com