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Basing on this material, a novel ε-MnO2 microspheres/chitosan/GCE (glassy carbon electrode) electrochemical sensor prepared by a simple physical deposit method was developed for the ultrasensitive determination of Ponceau 4R.
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The effects of pre-oxidation heat treatment on oxidation behavior and thermal cycle life of electron-beam physical deposited (EB-PVD) thermal barrier coatings (TBCs) with CoNiCrAlY bond coats were investigated as a function of the pO2 of the pre-oxidation atmosphere.
An attractive candidate for outstanding Si surface passivation is aluminum oxide (Al2O3), which can be deposited by physical vapor deposition (PVD) system [1], chemical vapor deposition (CVD) system [2-4], liquid-phase deposition (LPD) technique [5,6], and atomic layer deposition (ALD) system [7-9].
Porosity is virtually unavoidable in coatings such as TiN films deposited by physical vapor deposition (PVD) or chemical vapor deposition (CVD) on metal surfaces.
Electron-beam physical vapor deposited (EB-PVD) thermal barrier coatings (TBCs) display a lower thermal conductivity compared with the deposited bulk material.
During the high-temperature operation of the electron beam physical vapor deposited (EB-PVD) thermal barrier coating system (TBCs), the environmental calcium magnesium alumina silicate (CMAS) deposition would penetrate into the gaps between the columnar microstructure of top-coat.
Thermal barrier coatings, in this study, consisted of electron beam physical vapor deposited yttria partially stabilized zirconia (YSZ; ZrO2 8 wt.% Y2O3), vapor-deposited aluminide bond coat and Ni-base superalloy.
We present photosensitivity in large area physical vapour deposited mono and bi-layer MoS2 films.
MgF2 and TiO2 single layers have morphological and optical properties comparable with physical vapour deposited layers.
A multi-functional nano-multilayered Ti0.2Al0.55Cr0.2Si0.03Y0.02N/Ti0.25Al0.65Cr0.1N physical vapor deposited (PVD) adaptive hard coatings is presented.
The contact fatigue behavior of three microstructurally distinct tool steels coated with a physical vapor deposited TiN film is studied.
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