Influence of the interface on the magnetic properties of NiZn ferrite thin films treated by proton irradiation

In order to systematically investigate the influence of the interface on the magnetic properties, polycrystalline NiZn ferrite thin films were irradiated with 60keV proton in the dose range from 5×1012 to 5×1016ions/cm2. A non-destructive approach by proton irradiation was found to finely adjust the...

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Veröffentlicht in:Nuclear instruments & methods in physics research. Section B, Beam interactions with materials and atoms Beam interactions with materials and atoms, 2015-09, Vol.358, p.1-5
Hauptverfasser: Jiang, X.D., Guo, D.W., Zhang, C.H., Fan, X.L., Chai, G.Z., Xue, D.S.
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Sprache:eng
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Zusammenfassung:In order to systematically investigate the influence of the interface on the magnetic properties, polycrystalline NiZn ferrite thin films were irradiated with 60keV proton in the dose range from 5×1012 to 5×1016ions/cm2. A non-destructive approach by proton irradiation was found to finely adjust the magnetic properties of polycrystalline NiZn ferrite thin films such as coercivity, perpendicular magnetic anisotropy as well as the effective g value. The coercivity is about 725Oe for high proton dose ferrite, which is twice larger than the unirradiated one. The ferromagnetic resonance measurements indicated that perpendicular magnetic anisotropy and the effective g value increase with the irradiation dose. Our finding indicates that all modifications of these magnetic properties were associated with the change of interface due to the diffusion and the stress induced by proton irradiation. The change of the effective g value is a result of lattice expansion and the decrease of the magnetic dipole interaction between the columnar grains. This work provides a feasible way to tailor the magnetic properties of thin films by ion irradiation and promotes investigations for the stability of magnetic thin film devices in space or unclear radiation environments.
ISSN:0168-583X
1872-9584
DOI:10.1016/j.nimb.2015.05.010