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These materials show very good mechanical properties at both room temperature and low temperature.
When used as electrodes, these materials show very fast electrochromic response.
Under low load and high cycles situation all the materials show very similar fatigue strength.
The materials show very good long-term stability in air, protecting the produced copper nanoparticles from oxidation.
Cyclic voltammetry experiments conducted on these materials show very high activity for the nano-particulate materials compared to the commercial materials despite a lower loading of gold (0.8 mg cm−2 compared to 1.0 mg cm−2) and lower interface area in the nano-particulate materials.
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All synthesized materials showed very good O2− scavenging activity.
All materials showed very good electrochemical performance in terms of energy and power density.
On removal of the surfactants these materials showed very high surface areas (604 634 m2 g−1) and good micropore volumes (0.26 0.29 cc g−1).
Furthermore, the white emission of devices based on these materials shows very good color quality, with high color rendering index range between 84 and 89.
The resulting materials showed very high CO conversion above 323 K and remained active over prolonged periods in the presence of SO2 and other sulfur compounds.
While good electronic quality and solar cell performance was found for a-Si H la-Si H the μc-Si:H materialayersed very high spin densithes, porosity and a characteristic structural inhomogeneity along the growth axis.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com