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We demonstrate that the samples containing nanoclays consistently outperform those based only on the polymer additives.
The observation of superparamagnetic blocking and the absence of magnetic remanence directly demonstrate that the samples are superparamagnetic at room temperature [29].
The results demonstrate that the samples preserve good optical limiting properties when the polymer is covalently attached to the carbon nanotube.
The OPLS-DA score scatter plots demonstrate that the samples are very well distinguished, showing the best separation for the combined dataset.
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Electrochemical tests demonstrate that the sample possesses large capacities.
Atomic force microscopy (AFM) and scanning electron microscopy (SEM) results demonstrate that the sample deposited at 8 cm distance has a relatively smooth, uniform and homogeneous surface.
The results demonstrate that the sample with the first four QBs containing Si doping has relatively lower barrier height and larger localization energy of carriers which is evidenced by diffusive interfaces of QWs in HRTEM images.
We also demonstrate that the sampling rate of the analogue to digital converter has to be high enough to avoid the negative effects of folding of the interference spectrum after sampling.
Furthermore, our simulation results for FPR also demonstrate that the sample size should be greater than 4 when estimating the first four moments of a distribution from Pearson distribution family.
To demonstrate that the sampling is from the uniform distribution and to determine the time that is necessary to obtain a good sampling are not easy tasks.
This demonstrate that the sample size was too small to test for differences of the CCT measurements between the three instruments.
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CEO of Professional Science Editing for Scientists @ prosciediting.com