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These films were characterized for their structural and morphological study using X-ray diffraction and scanning electron microscope (SEM).
Morphological study using Field Emission Scanning Electron Microscope (FESEM) reveals that the fiber is highly exposed to the solution after 24 weeks of immersion.
The morphological study using the transmission electron microscope suggests that the large aggregates are composed of porous large compound micelles (LCM) in solution.
Morphological study using fluorescence micrographs and scanning electron microscopy showed that in vitro osteoblast cell culture demonstrated the electrospun Pluronic PLLA composite scaffolds could provide a suitable environment for good cell attachment.
Glancing incidence X-ray diffraction study of the TiO2 coated surface revealed anatase phase and surface morphological study using an atomic force microscope showed evenly spaced particles with nano pores in the matrix.
A morphological study using a transmission electron microscopic technique showed that with increasing content of styrene in the system the frequency distribution of the diameter of PS particles becomes increasingly broader and a foam-like structure is formed.
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Morphological studies using transmission electron microscopy and optical microscopy indicated that the graphene oxide particles were located mainly in the minor PCL phase, where the interphase between PLA and PCL acted as a compatibilizer.
Earlier work on mechanical properties and their relation to phase diagrams is complemented here by rheological and further morphological studies using an optical microscope and polarizing light, for the system studied previously and also for three other binary blend systems.
Morphological studies using field emission scanning electron microscopy and transmission electron microscopy revealed that doping elements affect the shape and size of ZnO nanostructures such as nanorods (Cr ZnO), nanosheets (Mn ZnO) and nanorods (Fe ZnO).
The structural and morphological studies using XRD, Raman spectroscopy, BET, SEM and TEM techniques reveal that, in the nanocomposite, the Mn3O4 nanorods are dispersed homogenously within the rGO layers, with the structural characteristics of the component materials kept intact.
Morphological studies using transmission electron microscopy and small angle X-ray scattering demonstrated that as the block length increased, the inter-ionic-domain distance increased, with a subsequent increase in lamellar ordering and long-range continuity.
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