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Zinc Selenide optical substrates have high transparency within the 0.5 to 14.0 μm wavelength range.
The TMEs were experimentally designed to have high transparency and conductance.
Unlike ZnO films which usually have high transparency in the spectral region from UV to near IR, the bare ZnO NRs exhibit low transparency with an absorption edge near 380 nm.
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The hydrides have higher transparency, and thus the device can be effectively switched to a transparent state.
Investigations into using alternative materials which have higher transparency and with material with higher compliance, would improve the model drastically.
Thus, the current system has high transparency through normative derivation, but serious flaws concerning the efficiency of the calculation.
The dark color part on the surface indicated lots of SACNTs grouped together, while the light color part had high transparency.
The polymer has high transparency in the deep UV region and its absorbances were 0.015 μm−1 at 248 nm and 0.163 μm−1 at 193 nm.
The Ti3C2T x -IC films have higher transparencies and resistivities than their Ti3C2T x counterparts.
Films incorporated with essential oils had higher transparency values than the control film, regardless of essential oil types (p < 0.05).
As shown in Fig. 1, the starch-zinc chloride solution has higher transparency and lower viscosity compared with the cooked starch solution, even though the concentration of starch in the starch-zinc chloride solution (13 wt%) was higher than that of cooked starch solution (8 wt%).
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