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The morphology of the electrochemically prepared thin film and nanoporous alumina surfaces was characterized by SEM imaging.
In this study, we first prepared thin layers of hydroxyapatite nanoparticle (nHA)/poly-hydroxybutyrate (PHB) via electrospinning.
We have prepared thin films of arc discharge single walled nanotubes by vacuum filtration.
Durrani et al. [41] prepared thin film of tin oxide mixed with cerium oxide by physical vapor depositions; the films were annealed at 500 °C.
In this work, we have prepared thin films of low and high MW P3HT using several fabrication techniques and compared their X-ray diffraction patterns and PL spectra.
We also prepared thin sections of rock samples of the slip zones oriented perpendicular to the fault surface and parallel to the fault striations for Raman spectroscopic analysis.
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As-prepared thin-walled FeNi-filled CNTs (FeNi CNTs) show much lower turn-on field of 0.30 V/μm (at 10 μandm2) and lower threshold field of 0.65 V/μm (at 1.0 mA/cm2) than those of thick-walled counterparts.
No other impurity diffraction peak is detected, indicating that as-prepared thin films are just composed of TiN.
XRD results showed that the as-prepared thin films were mainly in anatase phase.
Microstructural analysis shows that the as-prepared thin film consists of a continuous network of interconnected crystalline SnO2 nanoparticles (rutile structure).
The relative photocatalytic activity of the as-prepared thin layers of titania/graphene nanocomposite in poly(hydroxyethyl methacrylate) was assessed by the photocatalytic decomposition of butane under UV and visible light.
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