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The results show that the composites are composed of carbon, ZrC and residual metal.
The prepared composites are composed of uniform nanoparticles of TiO2 intimately interconnected by FCNTs networks.
In the present study, composites are composed of nanoscopic particles; therefore, a larger percentage of the atoms in the mass get exposed to the material and alter the electrical conductivity of lignosulphonate, TEOS and nanocomposites at RT (Table 4).
In order to demonstrate that the conducting composites are composed of copolymers of aniline and pyrrole, instead of a simple blend of the homopolymers, the contrast FTIR spectra of the copolymers and blends are also shown in Fig. 2b.
XRD results reveal that the xLiMn0.9Fe0.1PO4·yLi3V2(PO4)3/C (x,y≠0) composites are composed of LiMn0.9Fe0.1PO4 and Li3V2(phasesphands, ano no impurities are detected.
The resulting composites are composed of turbostratic carbon, β-SiC and 4H type α-SiC, and show pseudo-plastic fracture behavior and excellent toughness.
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The ceramic matrix composites were composed of Hi-Nicalon Type S™ fibers, a boron-nitride interphase, and pre-impregnated (pre-preg) melt-infiltrated silicon/SiC matrix.
The sandwich flexible composites were composed of a three-dimensional (3D) fabric filled flexible polyurethane (PU) foam core, and two compound laminates as face sheet.
The composites were composed of h-BN, amorphous SiO2, m-ZrO2 and t-ZrO2, which keep stability in the process of Kr plasma sputtering.
The PG-Fe3O4 hybrid composites were composed of uniformly coated Fe3O4 nanoparticles on graphene oxide layers with water flow space between 3D structures providing many contact area and adsorption sites for Arsenic adsorption.
The three composites were composed of 50 wt.% PCL and (1) 50 wt.% 13 93 B3 borate glass particles, (2) 50 wt.% 45S5 silicate glass particles, or (3) a blend of 25 wt.% 13 93 B3 and 25 wt.% 45S5 glass particles.
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