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Mean sizes and ratios are listed separately for different conditions.
These two methods yield nanoparticles with different mean sizes and size distributions.
Data on the influence of water velocity and gas rate on mean sizes and size distributions are presented.
The diffraction rings from inner to outer in the inserted images in Figure 4a, b, c match the (111), (200), and (220) planes of the fcc TiC. Figure 3 Mean sizes and the size distribution of the TiC x particles.
The figure above shows particle size distribution, mean sizes and shapes of ZA (zinc-aluminium layered double hydroxide nanocomposite coated with Tween-80), ZA-LDH (zinc-aluminium layered double hydroxide nanocomposite), ZAL-LDH (zinc-aluminium-levodopa layered double hydroxide nanocomposite) and ZAL (zinc-aluminium-levodopa layered double hydroxide nanocomposite coated with Tween-80).
Predictions of size distributions, mean sizes and coefficients of variation in mixed-suspension mixed-product removal crystallizers are presented for the case when crystal growth rate is given by the expression G = G0 (1 + γL b as suggested by Abegg, Stevens and Larson (ASL).
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There was not much variation between the mean size and size distribution in other treatments.
The mean size and the size distribution of silica particles were measured by dynamic light scattering.
In all other treatments, there is not much variation between the mean size and size distribution.
The mean size and size distribution of the obtained nanocrystals were determined using TEM.
Significant effects on particle mean size and polydispersity were assessed by statistical analysis.
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