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Microwave properties of Mg–Zn ferrite deposited by the thermal evaporation technique

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Abstract Spinel ferrite samples of Mg0.6Zn0.4Fe2O4 were fabricated using the sol-gel technique. Thermal evaporation in the vacuum technique was used to deposit an (850, 350) ± 30 nm thick layer of this ferrite… Click to show full abstract

Abstract Spinel ferrite samples of Mg0.6Zn0.4Fe2O4 were fabricated using the sol-gel technique. Thermal evaporation in the vacuum technique was used to deposit an (850, 350) ± 30 nm thick layer of this ferrite powder on the glass substrates. The results of XRD, SEM, and AFM showed that the prepared thin films are polycrystalline and nano-sized, with homogeneous particle size and good distribution. The porosity of the films was small, and the occurrence of microstrain on the crystals was observed because of the sintering temperature. Ferrite's thin-film thickness effect on the microwave properties was studied using the Vector Network Analyzer (VNA) in the X-band frequency range of 8–12.5 GHz. The microwave properties increased with increasing film thickness due to the spin-spin interaction process between the incidence waves and the spin-wave. High stability of the reflection, absorption and very high proportions for the two thicknesses is obtained. The resonance peaks for the thin films of spinel ferrite appeared at frequencies of 8.2, 8.4, 8.6, 9.2, 9.8, 10.0, 10.2, 11.2, 11.4, 12.01, and 12.2 GHz.

Keywords: technique; thermal evaporation; properties ferrite; microwave properties

Journal Title: Vacuum
Year Published: 2020

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