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This discrepancy has yet to be explained, but it may depend on nanomaterial-specific factors (differences between zinc and silver, size of nanomaterials, and velocity of ion release), differences in the time of ion determination (directly after spiking [39]; at test end (56 days) [16]), or differences in species habitat: F. candida lives in air-filled soil pores and earthworms in bulk soil.
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Interestingly, this effect starts decreasing when the silver nanoparticle size is greater than 40 nm and completely vanishes for silver nanoparticles of size 100 nm.
Bandwidth is governed by the silver particle size distribution.
c Corresponding histogram of the silver nanoparticles size distribution.
Varying the hydrogen annealing temperature and duration allowed us to grow MIFs differing in silver nanoisland size and concentration.
The results strongly depend on the silver grain size and significantly differ from the cross-section of a corresponding homogeneous material.
Primary silver particle size distributions by transmission electron microscopy (TEM) showed two populations of particles - smaller particles (< 5 nm) and larger particles between 20 and 40 nm.
It was revealed the effect of the internal structure of host polymer matrices depended on silver nanoparticle size, morphology, and stability.
By specifical probing of the outer surface of transparent, yellow, and red granules, three distinct silver nanoparticle size ranges were noticed: 1 10, 20 50, and >400 nm.
In the selective hydrogenation of the unsaturated aldehydes crotonaldehyde and acrolein an increased reactivity and selectivity to the desired alcohol was found with increasing silver nanoparticle size.
Four potential sources of heterogeneity were analyzed: study design (RCT or NPS); catheter type (C/R, M/R, or silver); sample size; and publication year.
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