Search alternatives:
ppm decrease » _ decrease (Expand Search), a decrease (Expand Search), nn decrease (Expand Search)
mg decrease » _ decrease (Expand Search), a decrease (Expand Search), nn decrease (Expand Search)
n decrease » nn decrease (Expand Search), _ decrease (Expand Search), a decrease (Expand Search)
50 ppm » 5 ppm (Expand Search)
50 n » 50 ns (Expand Search), 50 ng (Expand Search), 50 μ (Expand Search)
5 mg » 5 mm (Expand Search)
ppm decrease » _ decrease (Expand Search), a decrease (Expand Search), nn decrease (Expand Search)
mg decrease » _ decrease (Expand Search), a decrease (Expand Search), nn decrease (Expand Search)
n decrease » nn decrease (Expand Search), _ decrease (Expand Search), a decrease (Expand Search)
50 ppm » 5 ppm (Expand Search)
50 n » 50 ns (Expand Search), 50 ng (Expand Search), 50 μ (Expand Search)
5 mg » 5 mm (Expand Search)
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Stability of Plasmonic Mg-MgO Core–Shell Nanoparticles in Gas-Phase Oxidative Environments
Published 2024“…Furthermore, we show that the reactivity of Mg-MgO nanoplates with water vapor (3.5 vol % in N<sub>2</sub>) decreases with temperature, with no oxidation of the Mg core detected from 200 to 400 °C. …”
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Stability of Plasmonic Mg-MgO Core–Shell Nanoparticles in Gas-Phase Oxidative Environments
Published 2024“…Furthermore, we show that the reactivity of Mg-MgO nanoplates with water vapor (3.5 vol % in N<sub>2</sub>) decreases with temperature, with no oxidation of the Mg core detected from 200 to 400 °C. …”
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100
Stability of Plasmonic Mg-MgO Core–Shell Nanoparticles in Gas-Phase Oxidative Environments
Published 2024“…Furthermore, we show that the reactivity of Mg-MgO nanoplates with water vapor (3.5 vol % in N<sub>2</sub>) decreases with temperature, with no oxidation of the Mg core detected from 200 to 400 °C. …”