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The main reason for using HA coating on metallic substrates is to keep the mechanical properties of the metal such as load-bearing capability and, at the same time, to take advantage of the coating's chemical similarity and biocompatibility with the human bone [3].
We show that optical visualization of ultrathin mica flakes on metallic substrates is viable using semitransparent gold as substrates.
The deposition of protective coatings on metallic substrates is a promising solution to overcome this problem.
The problem is that HAP coating on metallic substrates is easily exfoliated at the boundary between HAP and metallic substrates, i.e. titanium (Ti).
CNT forests easily develop on insulators but their growth on metallic substrates is subject to interdiffusion and wettability effects that hamper the formation of the catalyst nanoparticles.
The development of new effective anticorrosion pre-treatments for metallic substrates is an issue of primer importance for corrosion science due to the fact that chromates must be banned.
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Cleaned glass, conducting glass and metallic substrates were used.
Topography evolution of surface defects on these two types of metallic substrates was thoroughly investigated by atomic force microscopy (AFM).
The interface binding strength between the ceramic coatings and the metallic substrates was measured by the tensile adhesion test method.
The deposition behavior of cold-sprayed metallic glass particles onto different metallic substrates was studied by numerical analysis and simulation using the ABAQUS/Explicit software.
The HA coatings were examined with respect to their morphology, crystallinity and adhesion, while the phase concentration of the metallic substrates was also analysed.
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