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All solids, both crystalline and amorphous, exhibit short-range (atomic-scale) order.
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X-ray diffraction analysis and photoluminescence spectroscopy showed that the ZnO film was amorphous, exhibiting a broad emission spectrum.
Approximately 8 wt% of nitrogen is incorporated into the carbon films, which are practically amorphous, exhibiting a broad diffraction peak at d = 0.34 nm.
Films deposited at lower values of rf power (40 W) are amorphous and exhibit a semiconductive behaviour, showing an electrical conductivity of about 7.54 × 10− 1 (Ω cm)− 1.
These amorphous alloys exhibit good glass-forming ability, exceptional thermal stability and high strength.
The study underscores that CNT reinforced Mg-based amorphous composites exhibit the potential to be the next generation engineering materials.
Besides, the (Fe0.8Co0.2 84B15Si1 and (Fe0.8Co0.2 85B14Si1 amorphous alloys exhibit good bending ductility even in the optimal annealed state.
Owing to the high Fe content, the amorphous ribbons exhibit high saturation induction of over 1.3 T.
Amorphous coatings exhibit prominent properties, including high hardness and good wear resistance properties.
Aluminum-based amorphous nanocomposites exhibit exceptional strength while preserving reasonable ductility.
Silicified collagen scaffolds (SCSs), produced by infiltrating collagen matrices with intrafibrillar amorphous silica, exhibit osteogenic and angiogenic potential and are promising candidates in tissue engineering.
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