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Their dielectric properties over the broadband frequency range, i.e. 101 106 Hz, were compared with multi-walled carbon nanotubes (MWCNT /PVDF nanocomposites prepared by the same technique.
The strength was also considerably higher than the values reported for polymeric, bioactive glass ceramic and hydroxyapatite constructs prepared by the same technique and with the equivalent level of porosity.
The electrochemical cycling showed discharge capacity of ∼700 mAh g−1 (after 100 cycles) at 0.5 C current rate which is more than ∼2.4 times larger than that for the sulfur/carbon black composites prepared by the same technique.
PMVs from lung carcinoma cells (A549) were prepared by the same technique.
Cell line lysates used as controls were prepared by the same technique, from 1 × 10 cells ml−1 suspension.
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Thus, α-TCP is usually prepared by the same techniques as β-TCP (see the previous section) but, since the β-TCP → α-TCP transition temperature is ~1125 °C (Welch and Gutt 1961), calcining is performed at temperatures above ~1200 °C (Jokic et al. 2007).
Several polythiophene films, nominally prepared by the same electrochemical technique, were examined with in situ FTIR spectroscopy as a function of potential.
DMAB-modified PLGA nanoparticles were prepared by the same method.
Albumin-oxPL complexes (protein/lipid = 1/1 mol/mol) were prepared, using the same technique.
All sets were prepared using the same technique, and different sets have different technique parameters (see below).
We have performed both the microarray analysis and RT-qPCR validation on biological samples prepared with the same techniques and reagents, thus minimizing variations introduced by differences in sample preparation methods and assay platforms.
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