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Both optical microscope and field emission scanning electron microscopy (FESEM) observations verified this theoretical dispersion predication.
The test results of atomic force microscope and field emission scanning electron microscope show that the PEG significantly affects the porosity and surface morphology of the coating layer.
The microstructure of the real and simulated reheated CGHAZ regions was investigated using an optical microscope and field emission scanning electron microscope.
The self-healing effect was evaluated using permeability measurements along with a fatigue test under uniaxial compression cyclic loading and further confirmed by surface analytical tools including optical microscope and field emission scanning electron microscope coupled with energy-dispersive X-ray analyzer (FESEM/EDX).
The structure and morphology of the resulting particles were characterized by X-ray diffraction, field emission scanning electron microscope, and field emission transmission electron microscope, whereas their optical properties were monitored by photoluminescence spectroscopy.
Afterwards, the morphologies and detailed architectures of the butterfly wing scales were carefully investigated using the ultra-depth three-dimensional (3D) microscope and field emission scanning electronic microscopy (FESEM).
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X-ray diffraction, field-emission scanning electron microscope, and field-emission transmission electron microscopy have been employed to investigate powder diffractions, surface morphologies, particle sizes, etc.
The phase structure and morphology were analyzed by X-ray diffRamanon, Raman scattering, transmission electron microscope, and field-emission scanning electron microscopy.
The HMTA was used as an additive surfactant to acquire the uniform microsphere morphology, which was confirmed by high-resolution field-emission scanning electron microscope and field-emission transmission electron microscope images.
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.
Herein, ZnO-Am composite was synthesized and successfully characterized by X-ray diffraction (XRD), Fourier transform infrared spectroscopy (FTIR), thermalgravimeteric analysis (TGA), scanning electron microscope (SEM) and field emission electron microscope (FESEM).
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com