Magnetic loss, permeability, and anisotropy compensation in CoO-doped Mn-Zn ferrites
Author(s) -
C. Beatrice,
Samuel Dobák,
V. Tsakaloudi,
C. Ragusa,
F. Fiorillo,
Luca Martino,
V.T. Zaspalis
Publication year - 2017
Publication title -
aip advances
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.421
H-Index - 58
ISSN - 2158-3226
DOI - 10.1063/1.4993718
Subject(s) - materials science , anisotropy , doping , permeability (electromagnetism) , analytical chemistry (journal) , nuclear magnetic resonance , magnetic anisotropy , atmospheric temperature range , ferrite (magnet) , sintering , condensed matter physics , magnetization , chemistry , magnetic field , thermodynamics , optics , composite material , optoelectronics , physics , biochemistry , quantum mechanics , membrane , chromatography
Mn-Zn ferrite samples prepared by conventional solid state reaction method and sintering at 1325 °C were Co-enriched by addition of CoO up to 6000 ppm and characterized versus frequency (DC – 1GHz), peak polarization (2 mT – 200 mT), and temperature (23 °C – 120 °C). The magnetic losses at room temperature are observed to pass through a deep minimum value around 4000 ppm CoO at all polarizations values. This trend is smoothed out either by approaching the MHz range or by increasing the temperature. Conversely, the initial permeability attains its maximum value around the same CoO content, while showing moderate monotonical decrease with increasing CoO at the typical working temperatures of 80 – 100 °C. The energy losses, measured by a combination of fluxmetric and transmission line methods, are affected by the eddy currents, on the conventional 5 mm thick ring samples, only beyond a few MHz. Their assessment relies on the separation of rotational and domain wall processes, which can be done by analysis of...
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