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Detailed examination of 37 skull fragments and four pieces of jaw using a 3D microscope revealed a common pattern of hard strikes followed by more finessed stone tool work that turned a freshly decapitated head into a functional cup or bowl.
Observation of the organs at the Macrofluo microscope revealed a reduction in the fluorescence of the treated mice, as compared to untreated mice, which further confirms the efficacy of the pool 35/75.
Scanning electron microscope revealed a consistent morphology that cell membrane was damaged and lost asymmetry.
Visual inspection under the microscope revealed a large variety of bacterial cell types and no trace of eukaryotic cells.
Examination of Nissl-stained brain sections under a bright-field microscope revealed a dorsoventral lesion through the rostral commissure of the SC and rostromedial SC Figure 2A C illustrate the location and nature of this lesion.
That study, performed by monitoring Ca2+ dynamics in thousands of CA1 cells over weeks through a miniature head-mounted microscope, revealed a remarkable degree of instability in the coding of space: only 25% of cells with place fields at one recording session exhibited the same properties 5 days later.
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Moreover, in situ annealing inside a transmission electron microscope revealed an unexpected coarsening mechanism of α-Fe grain: thermal stress arising from thermal expansion mismatch between Fe and Fe2Zr led to plastic yielding of large α-Fe grains.
Experiments performed with a polarized light microscope revealed an increase in the number of activated nuclei after shear treatment, and alignment of these nuclei along flow lines after long shearing times.
The morphology of the precipitates analyzed using scanning electron microscope and transmission electron microscope reveal a complex morphology with crystalline nanorods grown uniformly over the balls.
Measurements with a digital microscope reveal an average thickness over the six sensors used of (54.5 ± 3.6) μm.
The result of morphological structure analysis using a scanning electron microscope revealed that a strong correlation was established between the fracture toughness and the percolation network of the particle agglomeration.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com