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These confined cages formed very adequate cavities for growing nanoparticles (Fig. 8).
These parameters show that the gel of the present study is a good candidate for growing nanoparticles within the mesh of the biopolymers; the high porosity represents a good medium for the growth of nanoparticles without aggregation.
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To attain this aim, joint synthesis of nanoparticles and their matrix or modification of grown nanoparticles with surfactant molecules for compatibility with their matrix is used [7, 8].
Room temperature unsaturated multiferrioc properties were observed for the grown nanoparticles.
The conditions for growing CdS nanoparticles suitable for the visualization of biological tissues were theoretically studied and experimentally checked.
A high crystalline order is observed in the grown nanoparticles.
Introducing a novel strategy for growing dispersed metal nanoparticles at reduced graphene oxide (rGO) and nitrogen-doped GO (rNGO), this work aimed to design Pt-free electrocatalysts for water splitting.
In summary, we have devised a method for growing self-organized gold nanoparticles at relatively low temperature (323 K).
A method for growing carbon cages using gold nanoparticles as templates is reported.
The growth of magnetic nanostructure is highly recommended for the applications of magnetic devices like biosensors and the results suggest that the pulsed-laser method is a promising technique for growing nanocrystalline magnetic nanofibers and nanoparticles for biomedical applications.
Mo-doped Fe nanoparticles supported by aluminum oxide particles are used as catalysts for growing Y-junction single-wall carbon nanotubes.
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