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The redshift of the absorption peaks is correlated with the morphological distribution of PFO-DBT nanorod bundles.
The morphological distribution of the PFO-DBT nanorod bundles has a significant contribution to their optical properties.
The immersion time played a vital role in determining the aspect ratio and morphological distribution of the final nanotubes.
Distinct morphological distribution of the PFO-DBT nanorod bundles are depicted by the different spin coating rates (100, 500, and 1000 rpm).
The schematic diagram in Figure 1c illustrates the different alignment, densification, and morphological distribution of PCDTBT nanotubes resulted between 2 and 24 h of immersion time.
In addition, our results suggest that assuming a constant spherical fraction independent of particle size may not accurately reflect the real morphological distribution of atmospheric aerosol particles.
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Depending on the applications, the morphological distributions of the PFO-DBT nanorods can be simply tuned via the spin coating of template-assisted method.
Dissimilar morphological distributions of the nanotubes give the distinct optical properties as indicated from the red-shift of about 13 nm by the nanotubes prepared for 24 h of immersion time.
The denser morphological distributions of PFO-DBT nanorod bundles are favorably yielded at the low spin coating rate of 100 rpm, while at high spin coating rate, it is shown otherwise.
Synchrotron small-angle X-ray scattering (SAXS) studies were carried out to investigate effects of thickness of injection-moulded isotactic polypropylene (iPP) plates on shear-induced morphology and morphological distribution through the depth direction of the plates.
This hypothesis is also supported by the denser morphological distribution and better alignment of nanotubes observed from the 24 h of infiltration time, thus following more closely to the morphology of the original template.Fundamentally, polymer solution possesses a lower surface energy than the template's surface.
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