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Electron imaging is a powerful technique for visualizing 3D structural details.
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Conventional X-ray diffraction analysis and high-resolution transmission electron imaging are applied in order to obtain information on the phase composition.
In the current work, paired measurements of mechanical properties, using nanoindentation, and of bone mineral volume fraction, computed from quantitative back-scattered electron imaging, were made on six different types of normal and outlier bone samples.
Electron imaging was performed using a six component backscattered electron (BSE) detector operated in atomic number mode, where the brightness in an image is proportional to the mean atomic number of the area being imaged.
The back-scattered electron (BSE) imaging is a useful tool to identify the compositional contrast which originates from the atomic-number difference [31].
Therefore, a more thorough histologic assessment using scanning electron microscopy (SEM) and backscatter electron (BSE) imaging was needed to improve HO characterization.
Cross-sectional scanning electron microscopy (SEM) imaging is employed to examine the degree of electrolyte infiltration into the nanostructured electrodes as a function of filling conditions.
Electron tomography imaging was performed on single, 200 nm thick sections using a Tecnai F20 (FEI Company) transmission electron microscope.
Scanning electron microscopy imaging was done with SEM LEO 1550 Gemini.
Scanning electron microscopy imaging was performed for pore size measurement and cell attachment.
High resolution transmission electron microscopy imaging was employed for the initial qualitative assessment of the soot morphology.
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