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The surface is passivated with a thin p + layer to minimize surface recombination and noise generation.
Diffraction in transmission was used to minimize surface crystallization effects.
Because objectives of responses were to minimize surface roughness and to maximize surface hardness.
The results identify the most important parameters to maximize material removal rate and minimize surface roughness.
To minimize side-flashes, the grounding resistance should be kept as low as possible, and the geometry should be arranged so as to minimize surface breakdown.
The feed rate and depth of cut were the most relevant factors to minimize surface roughness and the turning forces.
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A thin layer of ∼2 nm inert NaYF4 matrix was grown as a shell on top of the hexagonal core NaYbF4 Gd3+/Tm3+ UCNPs (∼22 nm) to minimize surface-related quenching mechanisms.
The more wells drilled from one location, minimizing surface impact, the greater the need to drill horizontally.
As such, crystal defects are minimized, surface electric fields are reduced through field shaping, and the chamber is filled with hexafluoroethane (an electrically insulating gas).
Lung surfactant protein B (SP-B) is critical to minimizing surface tension in the alveoli.
This procedure minimizes surface contamination in comparison to micromanipulations performed in an electron microscope.
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