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The method combines the advantages of both observing the dynamic processes of the sample surface and monitoring the frictional properties on the nanometer scale.
These results show that the method can be used not only for the observation of the dynamic processes of the sample surface but also for real-time monitoring differences in frictional properties of the surface with nanometer-scale resolution.
Preliminary bootstrap sampling from a large sample dataset showed that 2000 SBSs were needed to achieve a 97.5%% confidence level that the SAMM was within a Manhattan distance of 0.156 to the SAMM representing the mutational processes of the sample (data not shown).
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The thermal decomposition processes of the samples were characterized by DSC using Dupont (Wilmington, DE, USA) 2000 instrument at a heating rate of 10°C/min.
In the growth process of the sample, the InGaAs capping layer was doped with Si.
We also obtain the asymptotic distribution of the quantile process of the sample depth values.
A confocal scheme is used to record the bleaching process of the sample.
In the rupture process of the sample, a number of electromagnetic radiation signals were detected.
During the rewarming process of the sample in the cryovial in a traditional 37 °C water bath, the rewarming rate was 72.15 °C/min and the maximum temperature gradient in the sample was 20.5 °C/mm.
It was proved that the orientation of the groups occurs immediately after the plasma treatment; thus, in the "aging process" of the sample, changes occur in the surface thereof.
However, our sample included patients referred to a tertiary care structure and the selection process of the sample included the criteria of having a resistant-to-treatment, or chronic, severe and highly recurrent disorder.
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