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Employing spheres of nanometer dimension to model surface roughness at these surfaces, the rates of electron transfer reactions are calculated using electron transfer theory based on the assumption of a dielectric continuum.
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The broadness of the diffraction peaks indicated that the particles are of nanometer dimensions.
Nanoclusters are ultrafine particles of nanometer dimensions located between molecules and microscopic structures (micron size).
In this respect, fillers of nanometer dimensions are added to polymers to enhance their mechanical and physical performances [7 10].
According Capobianco et al. (2004) [15], it is possible to develop activated carbon from biomass with pores of nanometer dimensions.
Actually, it is quite simple to realize that continuum-based models diverge in case of nanometer dimensions, because of the effects of singularity.
Conceptually, nanocrystalline (or nanostructured) materials are described as bulk materials consisting of single crystallites of nanometer dimensions that are connected by grain boundaries and form a three-dimensional (macroscopic) nanocrystalline solid.
This competitive mechanism of dissolution and passivation, repeated on the terraces newly formed by local dissolution, initiates the growth of 3D pits of nanometer dimensions, i.e. localized corrosion at the nanoscale.
The generation of structures on nanometer dimensions is preferentially performed by the rules of supramolecular chemistry, rather than by a covalent atom-by-atom approach.
The interphase of carbon fiber reinforced polymer composites (CFRPs) is difficult to quantitatively characterize because of its nanometer dimension.
The various approaches include: (i) a mechanical impact of the tip on the surface, e.g., creating reaction centres by a tip crash or by locally removing tarnishing overlayers, (ii) the spatially confined metal deposition or dissolution via the tip and (iii) down-scaling of the SECM to nanometer dimensions.
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