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The discharge efficiency is found to be improved at small Reynolds numbers and larger tank heights.
The buffering capability of solutions is found to be improved with increasing NH4F concentration.
The performance of DSSCs is found to be improved more by adding GNP layers with relatively low concentrations of GNPs near the front of the incident irradiation.
Stability is found to be improved by using a single revolution nut due to better control of the orifice size, but at the expense of some system stiffness.
With the increase in the flexural rigidity ratio of the LSs to beam web, the ductility is found to be improved.
The optimal short-circuit current approximately 28.6 mA/cm 2 is obtained at tarc = 80 nm and further it is found to be improved approximately 29.2 mA/cm 2 at G t = 400 nm.
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Although minor deterioration in both input and output current waveforms is observed at initial instant, but it is found to be improving very fast as shown in the result.
In addition, the energy resolution was found to be improved.
Adhesion was found to be improved in the composite architecture compared to pure MoSx and TiN coating.
After coating with the protective layer (Al2O3), the storage capacity was found to be improved dramatically.
The detection sensitivity was found to be improved remarkably, compared to the conventional disk electrode.
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