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It was found that the porosity increased with both a higher crystallization temperature and a lower drawing temperature.
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In this way, a single period of Si/Sb80Te20 film would have a higher crystallization threshold than single-layer Sb80Te20 film.
Secondly, it can be seen from the SAED patterns of the four samples (Figure 2b,d,f,g) that high-temperature samples have a higher crystallization degree.
In our work, we use Pt as the electrodes to dissociate hydrogen molecular and use a higher crystallization temperature to obtain more anatase phases.
The NiPAl interlayer exhibited a higher crystallization temperature of 450 °C as compared to that for binary NiP ones.
A higher number of nucleation sites in the nanocomposites promote a higher crystallization rate, and thus hedritic growth was stopped at the early stage of crystallization.
Independent control over microcarrier size and porosity is demonstrated, with a higher crystallization temperature leading to a larger size, and a higher PLLA content in the starting blend resulting in a lower microcarrier porosity.
A concomitant reduction of crystallization temperature (from 127 °C to 81 °C) as well as a higher crystallization rate (a factor of four increase) implies rapid nucleation of crystalline domains.
A higher crystallization rate and clear draw ratio dependence of crystallization rate were also observed for the fiber spun at 2000 m/min.
The morphology of single crystals is rounded below temperatures of 77 85 °C, while the growth shape has a faceted morphology at a higher crystallization temperature of 100 °C.
The nanoglobular interfaces remain amorphous and appear to act as a kinetic constraint to induce a higher crystallization temperature compared to the melt-spun ribbon.
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