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The two SILAR cycles show the highest absorption intensity indicating the presence of more Ag NPs, which couple with the dye to increase the optical absorption for the electrode with two SILAR cycles.
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These thin sections, as they are called, may then be stained with various dyes to increase the contrast between their various cellular components so that the latter can be more easily resolved using an optical microscope.
While the objects (e.g. biological cells) can be stained with dyes to increase their contrast, chemical staining requires time-consuming sample preparation and is often accompanied by cell death.
This study investigated the influence of ZnO nanostructures on dye adsorption to increase the photovoltaic conversion efficiency of solar cells.
With an aim of enhancing the power conversion efficiency, here we describe an employment of SiO2 incorporated TiO2 to enhance transmission, to suppress the recombination of electron-electrolyte, to elevate the dye loading and to increase the dye photostability.
The electron transport pathway in the cell will then take electrons from NADH and pass some of them on to the tetrazolium dye as shown in Fig. 2. Reduction of the tetrazolium dye due to increased cell respiration results in formation of a purple color in the well.
Octyloxy chains were introduced on the backbone of the dye, in order to increase donor capability, avoid aggregation side effects and increase physical insulation between electrolyte system and the TiO2 layer.
The TOC removal percentage of dye is found to increase with rising temperature for degradation processes.
Emission from the dye was observed to increase as emission from the quantum dot diminished.
The degradation rate for the decomposition of the dye was found to increase with an increase in catalyst concentration, (Saquib and Muneer 2003).
The enhanced photodegradation of dye is due to increase in catalyst and as result active sites increased, which in turn to increase the number of hydroxyl and superoxide radicals.
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