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Thus, morphologies observed via optical and atomic force microscope techniques are therefore a result of the preparation technique.
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DRX and electron microscope techniques were used to examine the morphologies and evolution of the main mineral phases over time during a curing period of 180 days.
Physical adsorption of nitrogen, X-ray diffraction, thermogravimetric analysis, field-emission scanning electron microscope, and field-emission transmission electron microscope techniques were employed to study the structural and morphological properties of the samples.
In addition, mercury intrusion porosimetry and scanning electron microscope techniques were also used to investigate the pore microstructure of the concretes with different lithium slag contents to support the findings obtained from the mechanical property tests.
SEM (Scanning Electron Microscope) technique was used to determine the morphology of the surface in every step.
X-ray diffraction, Field emission scanning electron microscope technique was used to analyze the scales formed on the surface of the oxidized samples.
Electrochemical quartz crystal microbalance, scanning electrochemical microscope and scanning electron microscope techniques have been used for the electrochemical characterizations and surface morphology studies.
X-Ray Diffraction (XRD), Fourier transform infrared spectroscopy (FTIR), Scanning Electron Microscope (SEM) techniques are used for phase and microstructure characterisation.
Ni crystallite sizes, measured by X-ray line broadening analysis (XLBA), H2 pulse chemisorption and Transmission Electron Microscope (TEM) techniques, are in the range 8 12 nm.
Focused-ion-beam scanning-electron-microscope (Focused-ion-beam scanning-electron-microscope to reconstruct the actual catalyst-support microstructure.
Microscopes and imaging techniques are now sufficiently advanced to allow large scale collection and analysis of 3D data [1] [6].
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