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September 16, 2025RSC Advances0 citationsOpen Access

Magnetoelectric properties of bulk 0-3 Fe/BaTiO3-composites

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TBToni ButtlarHLHartmut S. LeipnerSEStefan G. Ebbinghaus

Key Points

  • Field-dependent magnetoelectric measurements showed that iron-doped composites exhibited unique behavior compared to undoped samples.
  • The highest magnetoelectric values were achieved in composites with specific iron content ratios, notably x = 0.4 and x = 0.3.
  • Rietveld refinements confirmed the agreement of experimental and nominal iron contents, validating the synthesis process.
  • Temperature-dependent measurements indicated low-temperature phase transitions of barium titanate, contributing to its functional properties.

Abstract

Magnetoelectric 0-3 Fe x /(BaTiO3)1-x composites (x = 0.1-0.8) were synthesized by reduction of Fe2O3/BaTiO3 pellets in forming gas. In a subsequent sintering step, dense composite ceramics were formed. Depending on the oxygen getter used in the sintering step (carbon or zirconium carbide) a partly iron-doped or undoped ferroelectric barium titanate matrix is obtained, which encloses micrometer-sized ferromagnetic Fe particles. The experimentally determined iron contents derived from Rietveld refinements and magnetic measurements are in good agreement with the nominal ones in the undoped composites. Field dependent magnetoelectric measurements revealed only small differences between the composites with doped and undoped BaTiO3 component when the magnetic field and the polarization are oriented parallel to each other. For samples with iron-doped BaTiO3, additional third extrema at low fields were found when the field was oriented perpendicular to the electric polarization whereas undoped samples exhibited only two extrema. The largest α ME values were measured for the Fe x /(BaTiO3)1-x composites with x = 0.4 (parallel) and x = 0.3 (perpendicular). Based on the integral of α ME, the magnetostriction of iron and a phenomenological model describing the connection between magnetostriction and the magnetoelectric effect was derived. In temperature-dependent magnetoelectric investigations the low-temperature phase transitions of BaTiO3 (tetragonal → orthorhombic → rhombohedral) were detected.

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Cite This Study

Buttlar et al. (2025) studied this question.

synapsesocial.com/papers/68d4508931b076d99fa5863ahttps://doi.org/10.1039/d5ra03466c
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