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June 3, 2026Ceramics International0 citationsOpen Access

Multi-doping of Ni, Ti, and Zr at the Fe Site enables multifunctional performance in BiFeO3-based ceramics

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NSNihed Ben SalahIKImen KallelMTMohamed Tabellout

Key Points

  • This research aims to enhance the multifunctionality of BiFeO3-based ceramics through multi-doping of Ni, Ti, and Zr.
  • Synthesis of BiFe0.95[(Ti0.9Zr0.1)0.5Ni0.5]0.05O3 via solid-state reaction
  • Characterization using X-ray diffraction and Raman spectroscopy to explore structural properties
  • Assessment of thermistor performance through dielectric property analysis and thermal cycling tests.
  • The BFTZNO ceramic exhibited a pronounced thermal anomaly at T N of approximately 584 K
  • Thermistor constants (B) ranged from 4280 to 15150 K with a sensitivity index (α) from −1.76% K−1 to −3.05% K−1
  • The ceramic showed less than 5% relative resistance drift after a 120-hour isothermal aging test at 700 K.

Abstract

In this study, lead-free multiferroic thermistor materials based on BiFeO 3 were developed by co-doping with titanium, zirconium, and nickel. The compound BiFe 0.95 (Ti 0.9 Zr 0.1 ) 0.5 Ni 0.5 0.05 O 3 (BFTZNO) was synthesized via a standard solid-state reaction route. X-ray diffraction patterns and Raman spectra indicated a rhombohedral R3c symmetry in the BFTZNO sample, exhibiting considerable distortion of the FeO 6 octahedron alongside a minor Bi 25 FeO 40 secondary phase (∼1.27%). A distinct thermal anomaly observed at approximately 584 K in the differential scanning calorimetry (DSC) curve corresponds to the Néel temperature ( T N ), characterized by an endothermic peak. Analysis of the dielectric data using a modified Cole–Cole model revealed a pronounced change in the relaxation frequency near T N , indicating the influence of magnetic ordering on the electrical transport behavior. Future direct magnetic field-dependent measurements are essential to confirm the presence of magnetoelectric coupling. The study of dielectric properties supports the presence of a negative temperature coefficient of resistance ( NTCR )-type conduction mechanism, as confirmed by the extracted parameters: the thermistor constant ( B ) ranging from 4280 to 15150 K within the temperature range of 480–717 K, and the sensitivity index (α) varying from −1.76% K -1 to −3.05 % K -1 . Thermally stimulated polarization current ( TSPC ) and impedance measurements over ten thermal cycles up to 600 K demonstrated short-term stability. To validate long-term high-temperature reliability, an extended 120-hour continuous isothermal aging test was performed at 700 K. The BFTZNO ceramic exhibited a minimal relative resistance drift of less than 5%. These results establish BFTZNO as a stable and suitable for high-temperature NTC thermistors.

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Cite This Study

Salah et al. (2026) studied this question.

synapsesocial.com/papers/6a1fc58bdee9eb8c0dce6f53https://doi.org/10.1016/j.ceramint.2026.05.373
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