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A lower recombination rate of photogenerated electron and hole is expected for higher photocatalytic activity.
A decrease in velocity at lower latitudes is also expected for higher densities of the F-region at lower latitudes.
An almost linear relationship between these two parameters with higher micro-cracking effects expected for higher reinforcement ratios can be observed.
As expected, for higher rates (R), which means removing few bits in the encoding process, MPCM algorithm generally provides good PSNR due to the fact that no significant loss occurs in the coding process, and, consequently, no big errors are introduced in the decoding process.
Energy minima on the aggregation side of the energy landscape might be poorly defined, as expected for broad ensembles of oligomeric states of similar energy that are rapidly interconverting, but could also be highly defined, as might be expected for higher order species such as protofibrils or fibrils.
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The former was as expected for high-Rayleigh natural convection systems.
Maximum gains of ∼50 are expected for high quality materials and an optimized layer design.
The migration of radioactive species that has been observed at shallow burial sites for low-level radioactive waste is not an indication that similar migration can be expected for high-level waste located in a repository deep underground.
On the other hand, high coverage probability is attained for low threshold values whereas poor coverage is expected for high thresholds.
The advantages of using those nanocomposites are expected for high-efficiency light-emitting diodes, platform fabrication of biological and environmental monitoring, and high-contrast imaging.
Additional input to Ps trapping channel in As4S4/ZnS nanocomposites is expected for high content of agglomerated ZnS NP due to multivacancy voids (see Fig. 1f).
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