Preparation parameters optimization and structure investigation of multiferroic bismuth ferrite

Multiferroic bismuth ferrite, BiFeO3 (BFO), was prepared using conventional solid state reaction method. The obtained powders were thermally treated at different temperatures (600–850 °C) and times (15 min–15 h) with two heating regimes (slow and fast) to investigate the optimum synthesis conditions...

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Veröffentlicht in:Materials chemistry and physics 2018-06, Vol.211, p.445-451
Hauptverfasser: Hashem, H.M., Hamed, M.H.
Format: Artikel
Sprache:eng
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Zusammenfassung:Multiferroic bismuth ferrite, BiFeO3 (BFO), was prepared using conventional solid state reaction method. The obtained powders were thermally treated at different temperatures (600–850 °C) and times (15 min–15 h) with two heating regimes (slow and fast) to investigate the optimum synthesis conditions. Rietveld refinement was applied to the X-ray diffraction data and Raman spectroscopy has been used to verify the phase purity. Both the temperature and time of the heat treatment were critical parameters to obtain the high BFO phase content. Sample of 95 wt% of BFO phase has been achieved by using fast heating/cooling regime of 30 min at 800 °C and leaching with HNO3 to eliminate the impurity phases Bi2Fe4O9 and Bi25FeO40. Upper and lower calcinations temperatures and times result in higher content of secondary phases. The Raman active modes confirmed the presence of the single phase of BFO. Additional physical measurement (electrical and magnetic) prove the multiferroic feature of BFO. The estimated high activation energy (0.89 eV) indicates the antiferromagnetic order. The magnetic hysteresis loops gives indication for the existence of a weak canting moment. •Multiferroic bismuth ferrite (BiFeO3 phase) was prepared using solid state reaction method.•Thermal treatment (slow/fast heating regimes) was applied to optimize the synthesis conditions.•XRD analysis (Reitveld refinement) and Raman spectroscopy were used to verify the phase purity.•Electrical and magnetic properties were investigated to verify the multiforroic phenomenon.
ISSN:0254-0584
1879-3312
DOI:10.1016/j.matchemphys.2018.03.012