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The shift rate for superposition is in the same range, but slightly higher in nanocomposites.
It should be pointed out that the shift rate is much more below 115 V, and it decreases afterward.
The data shows the shift rate at red end is larger than that at blue end wavelength.
The short DNA fragments shift faster than the long fragments, and the shift rate of DNA fragments is promoted by increasing the voltage of electrophoresis.
It is shown that the shift rate of this band with respect to strain increases with the draw ratio of the fibers, indicative of an increase in the axial molecular alignment and subsequent deformation of the cellulose chains.
Each of the four peaks that constitute the Raman 2D band splits and redshifts under strain, with the shift rate depending on the strain direction relative to the crystallographic orientation.
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The shift rates and the temperature shift factors can be then obtained from the model parameters.
Thus the maximum shift rate and limit value are relatively small.
Thus, when T A = 400°C to 600°C, the peak shift rate would be 1.4 meV/°C.
This dependence of the energy shift rate of a QD on its position is also validated by repeated indentation with horizontal scan experiment.
In contrast, creep measurements showed a slight decrease in the horizontal shift rate, μh, upon stretching (i.e. a decreased ageing rate).
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