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Thus, the 2.1 ML's coverage made the difference in morphology of these two samples become more clear.
The addition of the S-E copolymer increases the elastic modulus and dynamic viscosity of the blend, and the samples become more non-Newtonian as the block copolymer concentration increases.
It might be that high degrees of grinding the raw materials will make the samples become more prone to stick into small groups and this may not be conducive to the enzymatic hydrolysis reaction and subsequent ultrasound extraction.
The sheet resistance of the HF-treated samples then increases more rapidly, crossing the sheet resistance of the VH-treated samples at approximately 8 h of exposure, after which time, the HF-treated samples become more resistive than those with the VH termination.
With decreasing the number of layers, the PMLG samples become more insulating and we find that deviations from the behavior characteristic of ES-VRH hoccurg occur at slightly decreasing temperature as can be seen by comparing the temperature dependence of the conductance of the three samples (linear fit from top to bottom in Figure 6d).
Differences between Framvaren samples and Cariaco samples become more pronounced when looking at lower taxon levels.
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After modifying the PAAs surfaces by lauric acid and perfluorooctyltrichlorosilane (FOTS), the samples became more hydrophobic.
The samples became more centred or even favoured compression in the longitudinal direction.
As polyimides underwent thermal rearrangement, samples became more rigid, and tensile stress and elongation at break decreased.
These samples became more mature with prolonged in vivo implantation, and few signs of ossification were observed at all time points except for one sample that had not been wrapped completely.
It was also observed that the morphology of the samples became more randomized and of a disordered arrangement as the wavelength increased, and this is believed to be an effect of a corresponding decrease in energy.
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