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The influence of mechanochemical activation and thermal treatment on magnetic properties of the BaTiO3-FexOy powder mixture
Author(s) -
Zoran Ristanović,
A. Kalezić-Glišović,
Nebojša Mitrović,
Aleksandar Djukić,
Darko Kosanović,
A. Maričić
Publication year - 2015
Publication title -
science of sintering
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.309
H-Index - 25
eISSN - 1820-7413
pISSN - 0350-820X
DOI - 10.2298/sos141121001r
Subject(s) - materials science , barium titanate , annealing (glass) , thermomagnetic convection , magnetization , iron oxide , analytical chemistry (journal) , barium ferrite , ball mill , chemical engineering , metallurgy , ferrite (magnet) , composite material , chemistry , chromatography , ceramic , magnetic field , physics , quantum mechanics , engineering
Powder mixture of 50 mass % of barium titanate (BaTiO3) and 50 mass % of iron (Fe) was prepared by solid-state reaction technique, i.e. ball milled in air for 60 min, 80 min, 100 min, 120 min and 150 min. During mechanochemical activation it was observed the iron powder transitsion to iron oxides. Depending on the activation time the content of iron oxides FeO, Fe2O3 and Fe3O4 varies. Simultaneously, with the content change of the activated system, magnetic properties change as well. The XRD analysis of milled samples shown that as the activation time increase, the iron oxide percentage increases to, whereby the percentage of BaTiO3 in a total sample mass decreases. The percentage of iron oxides and BaTiO3 in annealed samples changes depending on annealing temperature. The thermomagnetic measurements performed by Faraday method shown that the powder mixture milled for 100 minutes exhibit maximum magnetization prior to annealing. The increase of magnetization maximum was observed after annealing at 540°C with all milled samples, and at room temperature it has enhancement from 10 % to 22 % depending on the activation time. The samples milled for 100 min and 150 min and then sintered at 1200w°C exhibit magnetoelectric properties. [Projekat Ministarstva nauke Republike Srbije, br. 172057

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