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Therefore, estimation of the actual size distribution of Ni clusters by superparamagnetic analysis was proved to be feasible.
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The spatial distribution of the Ni clusters was successively observed by TEM, which agreed fairly well with the estimated size distribution by superparamagnetic analysis.
The size distributions of precipitated Ni clusters on the surface of a LaNi5-based alloy immersed in alkaline solution (alkaline treatment) at 383 K for 0 110 min were precisely determined by combining superparamagnetic analysis and transmission electron microscopy (TEM) observations.
By definition, the superparamagnetic state is characterized by two features: the lack of remanence and the temperature dependence of magnetization curves (magnetization curves normalized by temperature superimpose, i.e., a plot of M/ T vs H/ T).
Frequency dependence is caused by superparamagnetic (SP) ferrimagnetic nanoparticles, which are commonly attributed to neoformation during soil forming processes.
In this work, 10-μm-sized superparamagnetic Fe3O4@−Fe2O3 watercress was synthesized by a one-step solvothermal method.
Superhydrophobic and superparamagnetic magnetite/silica composite was prepared by combining of the organic and inorganic materials in the present work.
In that study, superparamagnetic iron oxide was used to label MSCs, which were revealed by staining with Prussian blue for iron.
One of the most promising techniques for the production of superparamagnetic composites is the layer-by-layer self-assembly method.
In current research, the Fe3O4 superparamagnetic nanoparticles were synthesized by coprecipitation method.
Superparamagnetic nanoparticles were prepared by coprecipitation of ferrous (Fe2+) and ferric (Fe3+) aqueous solution by a base.
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