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This work first compares the ability of functionalized high surface area graphitic (carbon nanofibers) and amorphous (activated carbon) carbons to homogeneously support finely divided platinum catalyst particles, then contrasts the performance of platinum/carbon composite electrodes within a hydrogen fuel cell.
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By using this synthetic approach, we observed metal nanoparticles (NP) with diameters of 1 2 nm homogeneously supported on the MSN.
Physico-chemical characterization of metal-composites (by XRD, IR spectroscopy, TEM, N2 adsorption, ICP, among others) indicated that both Pt and Pd nano-particles were adequately supported and homogeneously dispersed on supports.
This event released Na+ ions that reacted with surface WOx species converting into sub-nanometric sodium tungstate (Na2WO4) particles, homogeneously dispersed on the support.
Characterization of the Co3O4/CeO2 catalysts using XRD, TEM, EDX and Raman spectroscopy indicates that Co3O4 particles obtained through using the impregnation method are highly dispersed and rather homogeneously distributed on the support surface while for the deposition method, TEM and EDX analyses show that Co3O4 particles can be observed separated from the support surface.
The similar individual intake rates measured in single and paired trials on homogeneously distributed food provide support for the absence of a food depletion effect in our 2-min long trials.
After impregnation, Ni and Mg are homogeneously distributed over the zirconia support in oxidic form.
The transmission electron micrographs of the Ni2P/SiO2 Al2O3 particles with their size ranging from 60 to 80 nm showed that they were homogeneously dispersed over the SiO2 Al2O3 support.
The K atoms shown in turquoise appear to be homogeneously distributed over the alumina support before the catalyst use in the WGSR.
The microstructure of the poly[Ni(salen)] homogeneously grown on the different carbon supports was evidenced by field emission scanning electron microscopy (FESEM).
Morphology analysis shows that the porous network layer of PANI homogeneously coated on the outer surface of ACTB support.
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