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The composite has found extensive applications because of its excellent mechanical properties, but most conditions for the composite serving are subjected to dynamical loads.
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Cu-doped TiO2 or CuO/TiO2 composite serves as an efficient photocatalytic material in the decomposition of gas-phase alcohols, acid orange 88, methylene blue, etc. [13, 14, 15].
The PEDOT/PyBA composite serves as a stable host matrix for large negatively charged polymolybdate inorganic species.
The composite served as cathode in lithium-sulfur batteries shows its capacity as high as 745 mAh g−1 at 0.2C after 20 cycles.
The carbon component present in the composite serves as a physical barrier preventing the aggregation of the MoO3 nanoparticles, provides structural flexibility for accommodation of large volume changes on electrochemical cycling, and offers good electronic conductivity for electrode reaction, ensuring the observed vast improvement of the electrochemical properties of MoO3/C anode.
However, graphene/hydroxyapatite composites serving as implant coating have rarely been studied.
The inorganic filler particles in dental resin composites serve to improve their mechanical properties and reduce polymerization shrinkage during their use.
The textured surface has a crater-like pattern ranging from 0.2 to 2 μm, in which carbon-dielectric nano-composite serves as the thermal stable skeleton material to protect Cu and Cu2O particles embedded inside the matrix.
Natural Fiber Reinforced Polymeric Composites serve as an important alternative to manmade fiber reinforced polymeric composites because they are abundantly available, economical, recyclable and biodegradable possessing a high mechanical strength and are quickly springing up in terms of research and industrial applications.
The theory can be used to describe the pneumatic behavior of composite structures serving in the environment that has fluctuating air pressure such as the composite components of aircraft, pressure vessels and pipes.
Mechanically stiff fillers, such as nanoclays, in the composite networks serve as reinforcement and as a multipoint cross-linker to improve the mechanical strength of the composite hydrogel, obviating the requirement for a high network density.
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