Magnetic properties of co-precipitated hexaferrite powders with Sm-Co substitutions optimized with the molten flux method

In this work, using the chemical coprecipitation method, Sr1−xSmxFe12−xCoxO19 (x = 0, 0.1, 0.2) hexaferrite powders were prepared. Major magnetization loops were recorded at room temperature in order to determine the correct calcination temperature for optimum hard magnetic properties. It is found t...

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Veröffentlicht in:Physica. B, Condensed matter Condensed matter, 2017-11, Vol.525, p.78-83
Hauptverfasser: Serletis, C., Litsardakis, G., Pavlidou, E., Efthimiadis, K.G.
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Sprache:eng
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Zusammenfassung:In this work, using the chemical coprecipitation method, Sr1−xSmxFe12−xCoxO19 (x = 0, 0.1, 0.2) hexaferrite powders were prepared. Major magnetization loops were recorded at room temperature in order to determine the correct calcination temperature for optimum hard magnetic properties. It is found that a small degree of substitution increases substantially the coercive field. Also, the use of the molten flux calcination method increases the remanent magnetization. SEM/EDXS and XRD measurements were performed at the calcined powders: the results show that a single hexaferrite phase is formed and that the substituted powders consist of an assembly of grains with a mean diameter of 40nm. Measurements of minor magnetization loops and of the temperature and time dependence of the magnetization confirm that the powders consist of a non-oriented single domain magnetic particles assembly. The results indicate that Sm could be a viable replacement for La in the manufacturing of hexaferrites with a high-energy product.
ISSN:0921-4526
1873-2135
DOI:10.1016/j.physb.2017.09.025