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Samples were dehydrated in a graded ethanol series, critical point drying was performed using a BOMAR SPC-900 (The Bomar Co., Tacoma, WA), gold/palladium coating was performed in a SC7620 sputter coater (Quorum Technologies, East Sussex, England) and images were acquired using an S300N scanning electron microscope (Hitachi, Tokyo, Japan).
EPD was carried out first to obtain porous TiO2 nanostructured coatings while subsequent dip coating was performed using different concentrations of PLLA in dichloromethane (DCM) to obtain nanocomposite materials.
Coating was performed in the arc deposition mode.
The shell preparation ("coating") was performed by the freeze-drying of water-in-oil emulsions.
A protective polysiloxane coating was performed for protecting a structured polyurethane foam and anchoring the active TiO2 particles.
Dry particle coating was performed to coat powdered CuPc dye (copper phthalocyanine C32H16CuN8) on the surface of TiO2 powder.
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Critical point drying with liquid CO2 and a gold coating were performed using EM CPD300 (Leica) and E-1010 (Hitachi), respectively.
DEM simulation of coating is performed with post processing particle dynamics data.
In the present study wire coating is performed using melt polymer satisfying third grade fluid model.
Computational fluid dynamics (CFD) simulations and experimental measurements of laboratory-scale Wurster coating were performed.
Morphological investigations of the chromate conversion coating were performed using scanning electron microscopy (SEM).
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