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The alloys were investigated using scanning electron microscopy and analyzed using energy-dispersive X-ray spectrometry.
Important structural properties and homogenity of each material were observed by electron microscopy and analyzed by image analysis.
Treatments were performed in triplicates at 10 μm concentration and initiated at day 4 in 3D culture and finished at day 7. Multicellular structures were stained by calcein AM, imaged by spinning disk confocal microscopy, and analyzed by AMIDA, as described above.
Microbial calcite precipitation was quantified using X-ray diffraction analysis, visualized by scanning electron microscopy and analyzed by energy dispersive spectrometer.
Proliferation and migration responses of mesenchymal stem cells seeded at pattern origins were observed with time-lapse video microscopy and analyzed using both manual and automated computer vision-based cell tracking techniques.
The micromechanisms that control the sliding wear behavior of Al Si alloys tested under ultra-mild wear conditions were characterized using optical profilometry and electron microscopy, and analyzed by means of a contact mechanics model.
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We study the structural properties of the nanoparticles by synchrotron-based X-ray diffraction and transmission electron microscopy, and analyze their bulk magnetic properties.
Determination of the particle size was performed by the light as well as phase contrast microscopies and analyzed by Pixcavator 6.0 and Image Tool programs.
Fluorinated Cu surfaces were observed using a scanning electron microscopy (SEM) and analyzed using an X-ray photoelectron spectroscopy (XPS).
The fluorinated metal surfaces were observed using a scanning electron microscopy (SEM) and analyzed using an X-ray photoelectron spectroscopy (XPS).
Images of the specimen surfaces were obtained by scanning electron microscopy (SEM) and analyzed by specific image processing software (SPIP™ - 3D Image Processing).
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