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Hydrophobic glass (sample D, θst = 107.1 ± 0.5°) was obtained by self-assembly of OTS on the piranha-cleaned surface.
The relationship between the critical load and the strength of the glass sample was established.
Untreated glass (sample E) appeared to be relatively hydrophobic (θst = 60.7 ± 0.7°) and became highly hydrophilic (θst = 13.1 ± 0.5°) after piranha washing (sample F).
According to the designed program, different patterns made up of copper nanoparticles can be induced inside the glass sample.
An important question is how to evaluate the results as evidence that a glass sample originates from a known glass source or from an arbitrary different glass source.
The feasibility investigation is performed by taking into account the optical and spectroscopic parameters measured on a previously fabricated chalcogenide glass sample.
Similar(6)
The well-mixed powders of biomass samples were laid on the glass sample-holder (35 × 50 × 5 mm) and were analyzed under plateau conditions.
At elevated temperatures the aluminised E-glass sample is unstable and exhibits significantly higher water absorption indicating that a new failure mechanism is occurring.
Illumination schemes like TIRF or HILO [16] [18] are highly selective and yield good SNRs, but they are restricted to excitation volumes close to the glass-sample interface.
TIRFM allows detection of molecules to a thin slice of illuminated field, about 100 nm, adjacent to the glass-sample interface.
The basic principle consists of illuminating a glass-sample interface with a light ray incidence higher than the critical angle θc = Arcsin (n1/ n2), where n1 and n2 are respectively the refractive index in the sample and the glass coverslip.
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