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Histochemical stains, histographic analysis, and electron microscopy were performed.
Polarized optical microscopy and high resolution transmission electron microscopy were performed to investigate the morphology of the prepared particles.
Visual observation and electronic scanning microscopy were performed to obtain a fractographical description of the fracture surfaces.
Content determination by high-performance liquid chromatography (HPLC) and spectrophotometry, enzyme activity determination by colorimetry, and morphological observation by electron microscopy were performed in the present study.
Scanning electron microscopy and polarized light optical microscopy were performed to characterize the cell walls, revealing highly aligned graphitic-like structures along the axis of the ligaments.
Small angle neutron scattering and X-ray diffraction experiments, as well as transmission electron microscopy, were performed to characterize the precipitation of nanometric carbides.
In addition, in situ heating and cooling experiments using differential thermal analysis and transmission electron microscopy were performed to verify the results obtained for the quenched samples.
Thermal analysis, optical and scanning electron microscopy were performed to characterize solution-blended poly(4-methyl styrene) (P4MS)/poly cyclohexyl methacrylate) (PCHMA) of full compositions.
A series of measurements using a novel technique called electrostatic-manipulation scanning tunneling microscopy were performed on a highly-oriented pyrolytic graphite (HOPG) surface.
Therefore, corona radiata and corpus callosum regions were tested, and histology and transmission electron microscopy were performed on tested specimens to relate the distribution of axon orientations and the axon volume fraction to the mechanical behavior.
Immunocytochemistry and confocal microscopy were performed as previously described [18].
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